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/* Handle parameterized types (templates) for GNU C++.
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   Copyright (C) 1992, 93-97, 1998, 1999 Free Software Foundation, Inc.
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   Written by Ken Raeburn (raeburn@cygnus.com) while at Watchmaker Computing.
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   Rewritten by Jason Merrill (jason@cygnus.com).
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This file is part of GNU CC.

GNU CC is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2, or (at your option)
any later version.

GNU CC is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
GNU General Public License for more details.

You should have received a copy of the GNU General Public License
along with GNU CC; see the file COPYING.  If not, write to
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the Free Software Foundation, 59 Temple Place - Suite 330,
Boston, MA 02111-1307, USA.  */
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/* Known bugs or deficiencies include:
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     all methods must be provided in header files; can't use a source
     file that contains only the method templates and "just win".  */
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#include "config.h"
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#include "system.h"
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#include "obstack.h"

#include "tree.h"
#include "flags.h"
#include "cp-tree.h"
#include "decl.h"
#include "parse.h"
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#include "lex.h"
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#include "output.h"
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#include "defaults.h"
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#include "except.h"
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#include "toplev.h"
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#include "rtl.h"
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#include "defaults.h"
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#include "ggc.h"
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/* The type of functions taking a tree, and some additional data, and
   returning an int.  */
typedef int (*tree_fn_t) PROTO((tree, void*));

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extern struct obstack permanent_obstack;

extern int lineno;
extern char *input_filename;

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/* The PENDING_TEMPLATES is a TREE_LIST of templates whose
   instantiations have been deferred, either because their definitions
   were not yet available, or because we were putting off doing the
   work.  The TREE_PURPOSE of each entry is a SRCLOC indicating where
   the instantiate request occurred; the TREE_VALUE is a either a DECL
   (for a function or static data member), or a TYPE (for a class)
   indicating what we are hoping to instantiate.  */
static tree pending_templates;
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static tree *template_tail = &pending_templates;

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static tree maybe_templates;
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static tree *maybe_template_tail = &maybe_templates;

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int processing_template_parmlist;
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static int template_header_count;

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static tree saved_trees;
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static varray_type inline_parm_levels;
static size_t inline_parm_levels_used;
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#define obstack_chunk_alloc xmalloc
#define obstack_chunk_free free

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#define UNIFY_ALLOW_NONE 0
#define UNIFY_ALLOW_MORE_CV_QUAL 1
#define UNIFY_ALLOW_LESS_CV_QUAL 2
#define UNIFY_ALLOW_DERIVED 4
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#define UNIFY_ALLOW_INTEGER 8
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#define GTB_VIA_VIRTUAL 1 /* The base class we are examining is
			     virtual, or a base class of a virtual
			     base.  */
#define GTB_IGNORE_TYPE 2 /* We don't need to try to unify the current
			     type with the desired type.  */

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static int resolve_overloaded_unification PROTO((tree, tree, tree, tree,
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						 unification_kind_t, int));
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static int try_one_overload PROTO((tree, tree, tree, tree, tree,
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				   unification_kind_t, int));
static int unify PROTO((tree, tree, tree, tree, int));
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static void add_pending_template PROTO((tree));
static int push_tinst_level PROTO((tree));
static tree classtype_mangled_name PROTO((tree));
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static char *mangle_class_name_for_template PROTO((char *, tree, tree));
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static tree tsubst_expr_values PROTO((tree, tree));
static int list_eq PROTO((tree, tree));
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static tree get_class_bindings PROTO((tree, tree, tree));
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static tree coerce_template_parms PROTO((tree, tree, tree, int, int));
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static void tsubst_enum	PROTO((tree, tree, tree));
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static tree add_to_template_args PROTO((tree, tree));
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static tree add_outermost_template_args PROTO((tree, tree));
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static void maybe_adjust_types_for_deduction PROTO((unification_kind_t, tree*,
						    tree*)); 
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static int  type_unification_real PROTO((tree, tree, tree, tree,
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					 int, unification_kind_t, int));
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static void note_template_header PROTO((int));
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static tree maybe_fold_nontype_arg PROTO((tree));
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static tree convert_nontype_argument PROTO((tree, tree));
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static tree convert_template_argument PROTO ((tree, tree, tree, int,
					      int , tree));
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static tree get_bindings_overload PROTO((tree, tree, tree));
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static int for_each_template_parm PROTO((tree, tree_fn_t, void*));
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static tree build_template_parm_index PROTO((int, int, int, tree, tree));
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static int inline_needs_template_parms PROTO((tree));
static void push_inline_template_parms_recursive PROTO((tree, int));
static tree retrieve_specialization PROTO((tree, tree));
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static tree retrieve_local_specialization PROTO((tree, tree));
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static tree register_specialization PROTO((tree, tree, tree));
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static tree register_local_specialization PROTO((tree, tree, tree));
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static int unregister_specialization PROTO((tree, tree));
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static tree reduce_template_parm_level PROTO((tree, tree, int));
static tree build_template_decl PROTO((tree, tree));
static int mark_template_parm PROTO((tree, void *));
static tree tsubst_friend_function PROTO((tree, tree));
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static tree tsubst_friend_class PROTO((tree, tree));
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static tree get_bindings_real PROTO((tree, tree, tree, int));
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static int template_decl_level PROTO((tree));
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static tree maybe_get_template_decl_from_type_decl PROTO((tree));
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static int check_cv_quals_for_unify PROTO((int, tree, tree));
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static tree tsubst_template_arg_vector PROTO((tree, tree, int));
static tree tsubst_template_parms PROTO((tree, tree, int));
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static void regenerate_decl_from_template PROTO((tree, tree));
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static tree most_specialized PROTO((tree, tree, tree));
static tree most_specialized_class PROTO((tree, tree));
static void set_mangled_name_for_template_decl PROTO((tree));
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static int template_class_depth_real PROTO((tree, int));
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static tree tsubst_aggr_type PROTO((tree, tree, int, tree, int));
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static tree tsubst_decl PROTO((tree, tree, tree, tree));
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static tree tsubst_arg_types PROTO((tree, tree, int, tree));
static tree tsubst_function_type PROTO((tree, tree, int, tree));
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static void check_specialization_scope PROTO((void));
static tree process_partial_specialization PROTO((tree));
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static void set_current_access_from_decl PROTO((tree));
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static void check_default_tmpl_args PROTO((tree, tree, int, int));
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static tree tsubst_call_declarator_parms PROTO((tree, tree, int, tree));
static tree get_template_base_recursive PROTO((tree, tree,
					       tree, tree, tree, int)); 
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static tree get_template_base PROTO((tree, tree, tree, tree));
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static tree try_class_unification PROTO((tree, tree, tree, tree));
static int coerce_template_template_parms PROTO((tree, tree, int,
						 tree, tree));
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static tree determine_specialization PROTO((tree, tree, tree *, int));
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static int template_args_equal PROTO((tree, tree));
static void print_template_context PROTO((int));
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static void tsubst_default_arguments PROTO((tree));
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/* Called once to initialize pt.c.  */

void
init_pt ()
{
  ggc_add_tree_root (&pending_templates, 1);
  ggc_add_tree_root (&maybe_templates, 1);
  ggc_add_tree_root (&saved_trees, 1);
}

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/* Do any processing required when DECL (a member template declaration
   using TEMPLATE_PARAMETERS as its innermost parameter list) is
   finished.  Returns the TEMPLATE_DECL corresponding to DECL, unless
   it is a specialization, in which case the DECL itself is returned.  */

tree
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finish_member_template_decl (decl)
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  tree decl;
{
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  if (decl == NULL_TREE || decl == void_type_node)
    return NULL_TREE;
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  else if (decl == error_mark_node)
    /* By returning NULL_TREE, the parser will just ignore this
       declaration.  We have already issued the error.  */
    return NULL_TREE;
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  else if (TREE_CODE (decl) == TREE_LIST)
    {
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      /* Assume that the class is the only declspec.  */
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      decl = TREE_VALUE (decl);
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      if (IS_AGGR_TYPE (decl) && CLASSTYPE_TEMPLATE_INFO (decl)
	  && ! CLASSTYPE_TEMPLATE_SPECIALIZATION (decl))
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	{
	  tree tmpl = CLASSTYPE_TI_TEMPLATE (decl);
	  check_member_template (tmpl);
	  return tmpl;
	}
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      return NULL_TREE;
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    }
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  else if (DECL_TEMPLATE_INFO (decl))
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    {
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      if (!DECL_TEMPLATE_SPECIALIZATION (decl))
	{
	  check_member_template (DECL_TI_TEMPLATE (decl));
	  return DECL_TI_TEMPLATE (decl);
	}
      else
	return decl;
    } 
  else
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    cp_error ("invalid member template declaration `%D'", decl);
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  return error_mark_node;
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}
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/* Returns the template nesting level of the indicated class TYPE.
   
   For example, in:
     template <class T>
     struct A
     {
       template <class U>
       struct B {};
     };

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   A<T>::B<U> has depth two, while A<T> has depth one.  
   Both A<T>::B<int> and A<int>::B<U> have depth one, if
   COUNT_SPECIALIZATIONS is 0 or if they are instantiations, not
   specializations.  

   This function is guaranteed to return 0 if passed NULL_TREE so
   that, for example, `template_class_depth (current_class_type)' is
   always safe.  */
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static int 
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template_class_depth_real (type, count_specializations)
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     tree type;
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     int count_specializations;
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{
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  int depth;
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  for (depth = 0; 
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       type && TREE_CODE (type) != NAMESPACE_DECL;
       type = (TREE_CODE (type) == FUNCTION_DECL) 
	 ? DECL_REAL_CONTEXT (type) : TYPE_CONTEXT (type))
    {
      if (TREE_CODE (type) != FUNCTION_DECL)
	{
	  if (CLASSTYPE_TEMPLATE_INFO (type)
	      && PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (type))
	      && ((count_specializations
		   && CLASSTYPE_TEMPLATE_SPECIALIZATION (type))
		  || uses_template_parms (CLASSTYPE_TI_ARGS (type))))
	    ++depth;
	}
      else 
	{
	  if (DECL_TEMPLATE_INFO (type)
	      && PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (type))
	      && ((count_specializations
		   && DECL_TEMPLATE_SPECIALIZATION (type))
		  || uses_template_parms (DECL_TI_ARGS (type))))
	    ++depth;
	}
    }
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  return depth;
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}
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/* Returns the template nesting level of the indicated class TYPE.
   Like template_class_depth_real, but instantiations do not count in
   the depth.  */

int 
template_class_depth (type)
     tree type;
{
  return template_class_depth_real (type, /*count_specializations=*/0);
}

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/* Returns 1 if processing DECL as part of do_pending_inlines
   needs us to push template parms.  */

static int
inline_needs_template_parms (decl)
     tree decl;
{
  if (! DECL_TEMPLATE_INFO (decl))
    return 0;
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  return (TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (most_general_template (decl)))
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	  > (processing_template_decl + DECL_TEMPLATE_SPECIALIZATION (decl)));
}

/* Subroutine of maybe_begin_member_template_processing.
   Push the template parms in PARMS, starting from LEVELS steps into the
   chain, and ending at the beginning, since template parms are listed
   innermost first.  */

static void
push_inline_template_parms_recursive (parmlist, levels)
     tree parmlist;
     int levels;
{
  tree parms = TREE_VALUE (parmlist);
  int i;

  if (levels > 1)
    push_inline_template_parms_recursive (TREE_CHAIN (parmlist), levels - 1);
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  ++processing_template_decl;
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  current_template_parms
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    = tree_cons (build_int_2 (0, processing_template_decl),
		 parms, current_template_parms);
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  TEMPLATE_PARMS_FOR_INLINE (current_template_parms) = 1;

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  pushlevel (0);
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  for (i = 0; i < TREE_VEC_LENGTH (parms); ++i) 
    {
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      tree parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
      my_friendly_assert (TREE_CODE_CLASS (TREE_CODE (parm)) == 'd', 0);
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      switch (TREE_CODE (parm))
	{
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	case TYPE_DECL:
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	case TEMPLATE_DECL:
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	  pushdecl (parm);
	  break;
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	case PARM_DECL:
	  {
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	    /* Make a CONST_DECL as is done in process_template_parm.
	       It is ugly that we recreate this here; the original
	       version built in process_template_parm is no longer
	       available.  */
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	    tree decl = build_decl (CONST_DECL, DECL_NAME (parm),
				    TREE_TYPE (parm));
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	    SET_DECL_ARTIFICIAL (decl);
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	    DECL_INITIAL (decl) = DECL_INITIAL (parm);
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	    DECL_TEMPLATE_PARM_P (decl) = 1;
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	    pushdecl (decl);
	  }
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	  break;
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	default:
	  my_friendly_abort (0);
	}
    }
}

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/* Restore the template parameter context for a member template or
   a friend template defined in a class definition.  */

void
maybe_begin_member_template_processing (decl)
     tree decl;
{
  tree parms;
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  int levels = 0;
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  if (inline_needs_template_parms (decl))
    {
      parms = DECL_TEMPLATE_PARMS (most_general_template (decl));
      levels = TMPL_PARMS_DEPTH (parms) - processing_template_decl;
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      if (DECL_TEMPLATE_SPECIALIZATION (decl))
	{
	  --levels;
	  parms = TREE_CHAIN (parms);
	}
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      push_inline_template_parms_recursive (parms, levels);
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    }

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  /* Remember how many levels of template parameters we pushed so that
     we can pop them later.  */
  if (!inline_parm_levels)
    VARRAY_INT_INIT (inline_parm_levels, 4, "inline_parm_levels");
  if (inline_parm_levels_used == inline_parm_levels->num_elements)
    VARRAY_GROW (inline_parm_levels, 2 * inline_parm_levels_used);
  VARRAY_INT (inline_parm_levels, inline_parm_levels_used) = levels;
  ++inline_parm_levels_used;
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}

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/* Undo the effects of begin_member_template_processing. */

void 
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maybe_end_member_template_processing ()
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{
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  int i;

  if (!inline_parm_levels_used)
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    return;

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  --inline_parm_levels_used;
  for (i = 0; 
       i < VARRAY_INT (inline_parm_levels, inline_parm_levels_used);
       ++i) 
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    {
      --processing_template_decl;
      current_template_parms = TREE_CHAIN (current_template_parms);
      poplevel (0, 0, 0);
    }
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}

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/* Returns non-zero iff T is a member template function.  We must be
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   careful as in
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     template <class T> class C { void f(); }

   Here, f is a template function, and a member, but not a member
   template.  This function does not concern itself with the origin of
   T, only its present state.  So if we have 

     template <class T> class C { template <class U> void f(U); }

   then neither C<int>::f<char> nor C<T>::f<double> is considered
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   to be a member template.  But, `template <class U> void
   C<int>::f(U)' is considered a member template.  */
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int
is_member_template (t)
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     tree t;
{
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  if (!DECL_FUNCTION_TEMPLATE_P (t))
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    /* Anything that isn't a function or a template function is
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       certainly not a member template.  */
    return 0;

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  /* A local class can't have member templates.  */
  if (hack_decl_function_context (t))
    return 0;

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  return (DECL_FUNCTION_MEMBER_P (DECL_TEMPLATE_RESULT (t))
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	  /* If there are more levels of template parameters than
	     there are template classes surrounding the declaration,
	     then we have a member template.  */
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	  && (TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (t)) > 
	      template_class_depth (DECL_CLASS_CONTEXT (t))));
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}
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#if 0 /* UNUSED */
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/* Returns non-zero iff T is a member template class.  See
   is_member_template for a description of what precisely constitutes
   a member template.  */

int
is_member_template_class (t)
     tree t;
{
  if (!DECL_CLASS_TEMPLATE_P (t))
    /* Anything that isn't a class template, is certainly not a member
       template.  */
    return 0;

  if (!DECL_CLASS_SCOPE_P (t))
    /* Anything whose context isn't a class type is surely not a
       member template.  */
    return 0;

  /* If there are more levels of template parameters than there are
     template classes surrounding the declaration, then we have a
     member template.  */
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  return  (TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (t)) > 
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	   template_class_depth (DECL_CONTEXT (t)));
}
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#endif
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/* Return a new template argument vector which contains all of ARGS,
   but has as its innermost set of arguments the EXTRA_ARGS.  The
   resulting vector will be built on a temporary obstack, and so must
   be explicitly copied to the permanent obstack, if required.  */
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static tree
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add_to_template_args (args, extra_args)
     tree args;
     tree extra_args;
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{
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  tree new_args;
  int extra_depth;
  int i;
  int j;
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  extra_depth = TMPL_ARGS_DEPTH (extra_args);
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  new_args = make_tree_vec (TMPL_ARGS_DEPTH (args) + extra_depth);
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  for (i = 1; i <= TMPL_ARGS_DEPTH (args); ++i)
    SET_TMPL_ARGS_LEVEL (new_args, i, TMPL_ARGS_LEVEL (args, i));
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  for (j = 1; j <= extra_depth; ++j, ++i)
    SET_TMPL_ARGS_LEVEL (new_args, i, TMPL_ARGS_LEVEL (extra_args, j));
    
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  return new_args;
}

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/* Like add_to_template_args, but only the outermost ARGS are added to
   the EXTRA_ARGS.  In particular, all but TMPL_ARGS_DEPTH
   (EXTRA_ARGS) levels are added.  This function is used to combine
   the template arguments from a partial instantiation with the
   template arguments used to attain the full instantiation from the
   partial instantiation.  */
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static tree
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add_outermost_template_args (args, extra_args)
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     tree args;
     tree extra_args;
{
  tree new_args;

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  /* If there are more levels of EXTRA_ARGS than there are ARGS,
     something very fishy is going on.  */
  my_friendly_assert (TMPL_ARGS_DEPTH (args) >= TMPL_ARGS_DEPTH (extra_args),
		      0);

  /* If *all* the new arguments will be the EXTRA_ARGS, just return
     them.  */
  if (TMPL_ARGS_DEPTH (args) == TMPL_ARGS_DEPTH (extra_args))
    return extra_args;

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  /* For the moment, we make ARGS look like it contains fewer levels.  */
  TREE_VEC_LENGTH (args) -= TMPL_ARGS_DEPTH (extra_args);
  
  new_args = add_to_template_args (args, extra_args);
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  /* Now, we restore ARGS to its full dimensions.  */
  TREE_VEC_LENGTH (args) += TMPL_ARGS_DEPTH (extra_args);
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  return new_args;
}
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/* We've got a template header coming up; push to a new level for storing
   the parms.  */
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void
begin_template_parm_list ()
{
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  /* We use a non-tag-transparent scope here, which causes pushtag to
     put tags in this scope, rather than in the enclosing class or
     namespace scope.  This is the right thing, since we want
     TEMPLATE_DECLS, and not TYPE_DECLS for template classes.  For a
     global template class, push_template_decl handles putting the
     TEMPLATE_DECL into top-level scope.  For a nested template class,
     e.g.:

       template <class T> struct S1 {
         template <class T> struct S2 {}; 
       };

     pushtag contains special code to call pushdecl_with_scope on the
     TEMPLATE_DECL for S2.  */
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  pushlevel (0);
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  declare_pseudo_global_level ();
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  ++processing_template_decl;
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  ++processing_template_parmlist;
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  note_template_header (0);
}

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/* This routine is called when a specialization is declared.  If it is
   illegal to declare a specialization here, an error is reported.  */

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static void
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check_specialization_scope ()
{
  tree scope = current_scope ();
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  /* [temp.expl.spec] 
     
     An explicit specialization shall be declared in the namespace of
     which the template is a member, or, for member templates, in the
     namespace of which the enclosing class or enclosing class
     template is a member.  An explicit specialization of a member
     function, member class or static data member of a class template
     shall be declared in the namespace of which the class template
     is a member.  */
  if (scope && TREE_CODE (scope) != NAMESPACE_DECL)
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    cp_error ("explicit specialization in non-namespace scope `%D'",
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	      scope);
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  /* [temp.expl.spec] 

     In an explicit specialization declaration for a member of a class
     template or a member template that appears in namespace scope,
     the member template and some of its enclosing class templates may
     remain unspecialized, except that the declaration shall not
     explicitly specialize a class member template if its enclosing
     class templates are not explicitly specialized as well.  */
  if (current_template_parms) 
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    cp_error ("enclosing class templates are not explicitly specialized");
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}

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/* We've just seen template <>. */

void
begin_specialization ()
{
  note_template_header (1);
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  check_specialization_scope ();
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}

/* Called at then end of processing a declaration preceeded by
   template<>.  */

void 
end_specialization ()
{
  reset_specialization ();
}

/* Any template <>'s that we have seen thus far are not referring to a
   function specialization. */

void
reset_specialization ()
{
  processing_specialization = 0;
  template_header_count = 0;
}

/* We've just seen a template header.  If SPECIALIZATION is non-zero,
   it was of the form template <>.  */

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static void 
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note_template_header (specialization)
     int specialization;
{
  processing_specialization = specialization;
  template_header_count++;
}

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/* We're beginning an explicit instantiation.  */
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void
begin_explicit_instantiation ()
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{
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  ++processing_explicit_instantiation;
}
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void
end_explicit_instantiation ()
{
  my_friendly_assert(processing_explicit_instantiation > 0, 0);
  --processing_explicit_instantiation;
}
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/* The TYPE is being declared.  If it is a template type, that means it
   is a partial specialization.  Do appropriate error-checking.  */

void 
maybe_process_partial_specialization (type)
     tree type;
{
  if (IS_AGGR_TYPE (type) && CLASSTYPE_USE_TEMPLATE (type))
    {
      if (CLASSTYPE_IMPLICIT_INSTANTIATION (type)
	  && TYPE_SIZE (type) == NULL_TREE)
	{
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	  if (current_namespace
	      != decl_namespace_context (CLASSTYPE_TI_TEMPLATE (type)))
	    {
	      cp_pedwarn ("specializing `%#T' in different namespace", type);
	      cp_pedwarn_at ("  from definition of `%#D'",
			     CLASSTYPE_TI_TEMPLATE (type));
	    }
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	  SET_CLASSTYPE_TEMPLATE_SPECIALIZATION (type);
	  if (processing_template_decl)
	    push_template_decl (TYPE_MAIN_DECL (type));
	}
      else if (CLASSTYPE_TEMPLATE_INSTANTIATION (type))
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	cp_error ("specialization of `%T' after instantiation", type);
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    }
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  else if (processing_specialization)
    cp_error ("explicit specialization of non-template `%T'", type);
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}

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/* Retrieve the specialization (in the sense of [temp.spec] - a
   specialization is either an instantiation or an explicit
   specialization) of TMPL for the given template ARGS.  If there is
   no such specialization, return NULL_TREE.  The ARGS are a vector of
   arguments, or a vector of vectors of arguments, in the case of
   templates with more than one level of parameters.  */
   
static tree
retrieve_specialization (tmpl, args)
     tree tmpl;
     tree args;
{
  tree s;

  my_friendly_assert (TREE_CODE (tmpl) == TEMPLATE_DECL, 0);

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  /* There should be as many levels of arguments as there are
     levels of parameters.  */
  my_friendly_assert (TMPL_ARGS_DEPTH (args) 
		      == TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (tmpl)),
		      0);
		      
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  for (s = DECL_TEMPLATE_SPECIALIZATIONS (tmpl);
       s != NULL_TREE;
       s = TREE_CHAIN (s))
    if (comp_template_args (TREE_PURPOSE (s), args))
      return TREE_VALUE (s);

  return NULL_TREE;
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}

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/* Like retrieve_speciailization, but for local declarations.  FN is
   the function in which we are looking for an instantiation.  */

static tree
retrieve_local_specialization (tmpl, fn)
     tree tmpl;
     tree fn;
{
  tree s = purpose_member (fn, DECL_TEMPLATE_SPECIALIZATIONS (tmpl));
  return s ? TREE_VALUE (s) : NULL_TREE;
}

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/* Returns non-zero iff DECL is a specialization of TMPL.  */

int
is_specialization_of (decl, tmpl)
     tree decl;
     tree tmpl;
{
  tree t;

  if (TREE_CODE (decl) == FUNCTION_DECL)
    {
      for (t = decl; 
	   t != NULL_TREE;
	   t = DECL_TEMPLATE_INFO (t) ? DECL_TI_TEMPLATE (t) : NULL_TREE)
	if (t == tmpl)
	  return 1;
    }
  else 
    {
      my_friendly_assert (TREE_CODE (decl) == TYPE_DECL, 0);

      for (t = TREE_TYPE (decl);
	   t != NULL_TREE;
	   t = CLASSTYPE_USE_TEMPLATE (t)
	     ? TREE_TYPE (CLASSTYPE_TI_TEMPLATE (t)) : NULL_TREE)
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	if (same_type_p (TYPE_MAIN_VARIANT (t), 
			 TYPE_MAIN_VARIANT (TREE_TYPE (tmpl))))
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	  return 1;
    }  
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  return 0;
}
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/* Register the specialization SPEC as a specialization of TMPL with
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   the indicated ARGS.  Returns SPEC, or an equivalent prior
   declaration, if available.  */
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static tree
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register_specialization (spec, tmpl, args)
     tree spec;
     tree tmpl;
     tree args;
{
  tree s;

  my_friendly_assert (TREE_CODE (tmpl) == TEMPLATE_DECL, 0);

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  if (TREE_CODE (spec) == FUNCTION_DECL 
      && uses_template_parms (DECL_TI_ARGS (spec)))
    /* This is the FUNCTION_DECL for a partial instantiation.  Don't
       register it; we want the corresponding TEMPLATE_DECL instead.
       We use `uses_template_parms (DECL_TI_ARGS (spec))' rather than
       the more obvious `uses_template_parms (spec)' to avoid problems
       with default function arguments.  In particular, given
       something like this:

          template <class T> void f(T t1, T t = T())

       the default argument expression is not substituted for in an
       instantiation unless and until it is actually needed.  */
    return spec;
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  /* There should be as many levels of arguments as there are
     levels of parameters.  */
  my_friendly_assert (TMPL_ARGS_DEPTH (args) 
		      == TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (tmpl)),
		      0);

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  for (s = DECL_TEMPLATE_SPECIALIZATIONS (tmpl);
       s != NULL_TREE;
       s = TREE_CHAIN (s))
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    {
      tree fn = TREE_VALUE (s);

      /* We can sometimes try to re-register a specialization that we've
	 already got.  In particular, regenerate_decl_from_template
	 calls duplicate_decls which will update the specialization
	 list.  But, we'll still get called again here anyhow.  It's
	 more convenient to simply allow this than to try to prevent it.  */
      if (fn == spec)
	return spec;
      else if (comp_template_args (TREE_PURPOSE (s), args))
	{
	  if (DECL_TEMPLATE_SPECIALIZATION (spec))
	    {
	      if (DECL_TEMPLATE_INSTANTIATION (fn))
		{
		  if (TREE_USED (fn) 
		      || DECL_EXPLICIT_INSTANTIATION (fn))
		    {
		      cp_error ("specialization of %D after instantiation",
				fn);
		      return spec;
		    }
		  else
		    {
		      /* This situation should occur only if the first
			 specialization is an implicit instantiation,
			 the second is an explicit specialization, and
			 the implicit instantiation has not yet been
			 used.  That situation can occur if we have
			 implicitly instantiated a member function and
			 then specialized it later.

			 We can also wind up here if a friend
			 declaration that looked like an instantiation
			 turns out to be a specialization:

			   template <class T> void foo(T);
			   class S { friend void foo<>(int) };
			   template <> void foo(int);  

			 We transform the existing DECL in place so that
			 any pointers to it become pointers to the
			 updated declaration.  

			 If there was a definition for the template, but
			 not for the specialization, we want this to
			 look as if there is no definition, and vice
			 versa.  */
		      DECL_INITIAL (fn) = NULL_TREE;
		      duplicate_decls (spec, fn);

		      return fn;
		    }
		}
	      else if (DECL_TEMPLATE_SPECIALIZATION (fn))
		{
		  duplicate_decls (spec, fn);
		  return fn;
		}
	    }
	}
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      }

  DECL_TEMPLATE_SPECIALIZATIONS (tmpl)
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     = tree_cons (args, spec, DECL_TEMPLATE_SPECIALIZATIONS (tmpl));
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  return spec;
}

/* Unregister the specialization SPEC as a specialization of TMPL.
   Returns nonzero if the SPEC was listed as a specialization of
   TMPL.  */

static int
unregister_specialization (spec, tmpl)
     tree spec;
     tree tmpl;
{
  tree* s;

  for (s = &DECL_TEMPLATE_SPECIALIZATIONS (tmpl);
       *s != NULL_TREE;
       s = &TREE_CHAIN (*s))
    if (TREE_VALUE (*s) == spec)
      {
	*s = TREE_CHAIN (*s);
	return 1;
      }

  return 0;
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}

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/* Like register_specialization, but for local declarations.  FN is
   the function in which we are registering SPEC, an instantiation of
   TMPL.  */

static tree
register_local_specialization (spec, tmpl, fn)
     tree spec;
     tree tmpl;
     tree fn;
{
  DECL_TEMPLATE_SPECIALIZATIONS (tmpl)
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     = tree_cons (fn, spec, DECL_TEMPLATE_SPECIALIZATIONS (tmpl));
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  return spec;
}

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/* Print the list of candidate FNS in an error message.  */

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void
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print_candidates (fns)
     tree fns;
{
  tree fn;

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  const char *str = "candidates are:";
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  for (fn = fns; fn != NULL_TREE; fn = TREE_CHAIN (fn))
    {
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      tree f;

      for (f = TREE_VALUE (fn); f; f = OVL_NEXT (f))
	cp_error_at ("%s %+#D", str, OVL_CURRENT (f));
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      str = "               ";
    }
}

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/* Returns the template (one of the functions given by TEMPLATE_ID)
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   which can be specialized to match the indicated DECL with the
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   explicit template args given in TEMPLATE_ID.  The DECL may be
   NULL_TREE if none is available.  In that case, the functions in
   TEMPLATE_ID are non-members.

   If NEED_MEMBER_TEMPLATE is non-zero the function is known to be a
   specialization of a member template.

   The template args (those explicitly specified and those deduced)
   are output in a newly created vector *TARGS_OUT.

   If it is impossible to determine the result, an error message is
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   issued.  The error_mark_node is returned to indicate failure.  */
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static tree
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determine_specialization (template_id, decl, targs_out, 
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			  need_member_template)
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     tree template_id;
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     tree decl;
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     tree* targs_out;
     int need_member_template;
{
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  tree fns;
  tree targs;
  tree explicit_targs;
  tree candidates = NULL_TREE;
  tree templates = NULL_TREE;
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  *targs_out = NULL_TREE;

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  if (template_id == error_mark_node)
    return error_mark_node;

  fns = TREE_OPERAND (template_id, 0);
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  explicit_targs = TREE_OPERAND (template_id, 1);
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  if (fns == error_mark_node)
    return error_mark_node;

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  /* Check for baselinks. */
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  if (BASELINK_P (fns))
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    fns = TREE_VALUE (fns);
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  if (!is_overloaded_fn (fns))
    {
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      cp_error ("`%D' is not a function template", fns);
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      return error_mark_node;
    }

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  for (; fns; fns = OVL_NEXT (fns))
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    {
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      tree tmpl;

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      tree fn = OVL_CURRENT (fns);
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      if (TREE_CODE (fn) == TEMPLATE_DECL)
	/* DECL might be a specialization of FN.  */
	tmpl = fn;
      else if (need_member_template)
	/* FN is an ordinary member function, and we need a
	   specialization of a member template.  */
	continue;
      else if (TREE_CODE (fn) != FUNCTION_DECL)
	/* We can get IDENTIFIER_NODEs here in certain erroneous
	   cases.  */
	continue;
      else if (!DECL_FUNCTION_MEMBER_P (fn))
	/* This is just an ordinary non-member function.  Nothing can
	   be a specialization of that.  */
	continue;
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      else
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	{
	  tree decl_arg_types;
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	  /* This is an ordinary member function.  However, since
	     we're here, we can assume it's enclosing class is a
	     template class.  For example,
	     
	       template <typename T> struct S { void f(); };
	       template <> void S<int>::f() {}

	     Here, S<int>::f is a non-template, but S<int> is a
	     template class.  If FN has the same type as DECL, we
	     might be in business.  */
	  if (!same_type_p (TREE_TYPE (TREE_TYPE (decl)),
			    TREE_TYPE (TREE_TYPE (fn))))
	    /* The return types differ.  */
	    continue;

	  /* Adjust the type of DECL in case FN is a static member.  */
	  decl_arg_types = TYPE_ARG_TYPES (TREE_TYPE (decl));
	  if (DECL_STATIC_FUNCTION_P (fn) 
	      && DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
	    decl_arg_types = TREE_CHAIN (decl_arg_types);

	  if (compparms (TYPE_ARG_TYPES (TREE_TYPE (fn)), 
			 decl_arg_types))
	    /* They match!  */
	    candidates = tree_cons (NULL_TREE, fn, candidates);

	  continue;
	}
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      /* See whether this function might be a specialization of this
	 template.  */
      targs = get_bindings (tmpl, decl, explicit_targs);
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      if (!targs)
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	/* We cannot deduce template arguments that when used to
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	   specialize TMPL will produce DECL.  */
	continue;

      /* Save this template, and the arguments deduced.  */
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      templates = tree_cons (targs, tmpl, templates);
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    }
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  if (templates && TREE_CHAIN (templates))
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    {
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      /* We have:
	 
	   [temp.expl.spec]

	   It is possible for a specialization with a given function
	   signature to be instantiated from more than one function
	   template.  In such cases, explicit specification of the
	   template arguments must be used to uniquely identify the
	   function template specialization being specialized.

	 Note that here, there's no suggestion that we're supposed to
	 determine which of the candidate templates is most
	 specialized.  However, we, also have:

	   [temp.func.order]

	   Partial ordering of overloaded function template
	   declarations is used in the following contexts to select
	   the function template to which a function template
	   specialization refers: 

           -- when an explicit specialization refers to a function
	      template. 

	 So, we do use the partial ordering rules, at least for now.
	 This extension can only serve to make illegal programs legal,
	 so it's safe.  And, there is strong anecdotal evidence that
	 the committee intended the partial ordering rules to apply;
	 the EDG front-end has that behavior, and John Spicer claims
	 that the committee simply forgot to delete the wording in
	 [temp.expl.spec].  */
     tree tmpl = most_specialized (templates, decl, explicit_targs);
     if (tmpl && tmpl != error_mark_node)
       {
	 targs = get_bindings (tmpl, decl, explicit_targs);
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	 templates = tree_cons (targs, tmpl, NULL_TREE);
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       }
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    }

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  if (templates == NULL_TREE && candidates == NULL_TREE)
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    {
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      cp_error_at ("template-id `%D' for `%+D' does not match any template declaration",
		   template_id, decl);
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      return error_mark_node;
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    }
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  else if ((templates && TREE_CHAIN (templates))
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	   || (candidates && TREE_CHAIN (candidates))
	   || (templates && candidates))
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    {
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      cp_error_at ("ambiguous template specialization `%D' for `%+D'",
		   template_id, decl);
      chainon (candidates, templates);
      print_candidates (candidates);
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      return error_mark_node;
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    }

  /* We have one, and exactly one, match. */
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  if (candidates)
    {
      /* It was a specialization of an ordinary member function in a
	 template class.  */
      *targs_out = copy_node (DECL_TI_ARGS (TREE_VALUE (candidates)));
      return DECL_TI_TEMPLATE (TREE_VALUE (candidates));
    }

  /* It was a specialization of a template.  */
  targs = DECL_TI_ARGS (DECL_RESULT (TREE_VALUE (templates)));
  if (TMPL_ARGS_HAVE_MULTIPLE_LEVELS (targs))
    {
      *targs_out = copy_node (targs);
      SET_TMPL_ARGS_LEVEL (*targs_out, 
			   TMPL_ARGS_DEPTH (*targs_out),
			   TREE_PURPOSE (templates));
    }
  else
    *targs_out = TREE_PURPOSE (templates);
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  return TREE_VALUE (templates);
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}
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/* Check to see if the function just declared, as indicated in
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   DECLARATOR, and in DECL, is a specialization of a function
   template.  We may also discover that the declaration is an explicit
   instantiation at this point.

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   Returns DECL, or an equivalent declaration that should be used
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   instead if all goes well.  Issues an error message if something is
   amiss.  Returns error_mark_node if the error is not easily
   recoverable.
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   FLAGS is a bitmask consisting of the following flags: 

   2: The function has a definition.
   4: The function is a friend.

   The TEMPLATE_COUNT is the number of references to qualifying
   template classes that appeared in the name of the function.  For
   example, in

     template <class T> struct S { void f(); };
     void S<int>::f();
     
   the TEMPLATE_COUNT would be 1.  However, explicitly specialized
   classes are not counted in the TEMPLATE_COUNT, so that in

     template <class T> struct S {};
     template <> struct S<int> { void f(); }
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     template <> void S<int>::f();
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   the TEMPLATE_COUNT would be 0.  (Note that this declaration is
   illegal; there should be no template <>.)

   If the function is a specialization, it is marked as such via
   DECL_TEMPLATE_SPECIALIZATION.  Furthermore, its DECL_TEMPLATE_INFO
   is set up correctly, and it is added to the list of specializations 
   for that template.  */
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tree
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check_explicit_specialization (declarator, decl, template_count, flags)
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     tree declarator;
     tree decl;
     int template_count;
     int flags;
{
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  int have_def = flags & 2;
  int is_friend = flags & 4;
  int specialization = 0;
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  int explicit_instantiation = 0;
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  int member_specialization = 0;
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  tree ctype = DECL_CLASS_CONTEXT (decl);
  tree dname = DECL_NAME (decl);
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  if (processing_specialization) 
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    {
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      /* The last template header was of the form template <>.  */
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      if (template_header_count > template_count) 
	{
	  /* There were more template headers than qualifying template
	     classes.  */
	  if (template_header_count - template_count > 1)
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	    /* There shouldn't be that many template parameter lists.
	       There can be at most one parameter list for every
	       qualifying class, plus one for the function itself.  */
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	    cp_error ("too many template parameter lists in declaration of `%D'", decl);
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	  SET_DECL_TEMPLATE_SPECIALIZATION (decl);
	  if (ctype)
	    member_specialization = 1;
	  else
	    specialization = 1;
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	}
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      else if (template_header_count == template_count)
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	{
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	  /* The counts are equal.  So, this might be a
	     specialization, but it is not a specialization of a
	     member template.  It might be something like
		 
	     template <class T> struct S { 
	     void f(int i); 
	     };
	     template <>
	     void S<int>::f(int i) {}  */
	  specialization = 1;
	  SET_DECL_TEMPLATE_SPECIALIZATION (decl);
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	}
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      else 
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	{
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	  /* This cannot be an explicit specialization.  There are not
	     enough headers for all of the qualifying classes.  For
	     example, we might have:
	     
	     template <>
	     void S<int>::T<char>::f();
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	     But, we're missing another template <>.  */
	  cp_error("too few template parameter lists in declaration of `%D'", decl);
	  return decl;
	} 
    }
  else if (processing_explicit_instantiation)
    {
      if (template_header_count)
	cp_error ("template parameter list used in explicit instantiation");
	  
      if (have_def)
	cp_error ("definition provided for explicit instantiation");
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      explicit_instantiation = 1;
    }
  else if (ctype != NULL_TREE
	   && !TYPE_BEING_DEFINED (ctype)
	   && CLASSTYPE_TEMPLATE_INSTANTIATION (ctype)
	   && !is_friend)
    {
      /* This case catches outdated code that looks like this:

	 template <class T> struct S { void f(); };
	 void S<int>::f() {} // Missing template <>

	 We disable this check when the type is being defined to
	 avoid complaining about default compiler-generated
	 constructors, destructors, and assignment operators.
	 Since the type is an instantiation, not a specialization,
	 these are the only functions that can be defined before
	 the class is complete.  */
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	  /* If they said
	       template <class T> void S<int>::f() {}
	     that's bogus.  */
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      if (template_header_count)
	{
	  cp_error ("template parameters specified in specialization");
	  return decl;
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	}
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      if (pedantic)
	cp_pedwarn
	  ("explicit specialization not preceded by `template <>'");
      specialization = 1;
      SET_DECL_TEMPLATE_SPECIALIZATION (decl);
    }
  else if (TREE_CODE (declarator) == TEMPLATE_ID_EXPR)
    {
      if (is_friend)
	/* This could be something like:

	   template <class T> void f(T);
	   class S { friend void f<>(int); }  */
	specialization = 1;
      else
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	{
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	  /* This case handles bogus declarations like template <>
	     template <class T> void f<int>(); */
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	  cp_error ("template-id `%D' in declaration of primary template",
		    declarator);
	  return decl;
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	}
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    }
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  if (specialization || member_specialization)
    {
      tree t = TYPE_ARG_TYPES (TREE_TYPE (decl));
      for (; t; t = TREE_CHAIN (t))
	if (TREE_PURPOSE (t))
	  {
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	    cp_pedwarn
	      ("default argument specified in explicit specialization");
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	    break;
	  }
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      if (current_lang_name == lang_name_c)
	cp_error ("template specialization with C linkage");
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    }

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  if (specialization || member_specialization || explicit_instantiation)
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    {
      tree tmpl = NULL_TREE;
      tree targs = NULL_TREE;

      /* Make sure that the declarator is a TEMPLATE_ID_EXPR.  */
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      if (TREE_CODE (declarator) != TEMPLATE_ID_EXPR)
	{
	  tree fns;

	  my_friendly_assert (TREE_CODE (declarator) == IDENTIFIER_NODE, 
			      0);
	  if (!ctype)
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	    fns = IDENTIFIER_NAMESPACE_VALUE (dname);
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	  else
	    fns = dname;

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	  declarator = 
	    lookup_template_function (fns, NULL_TREE);
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	}

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      if (declarator == error_mark_node)
	return error_mark_node;

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      if (ctype != NULL_TREE && TYPE_BEING_DEFINED (ctype))
	{
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	  if (!explicit_instantiation)
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	    /* A specialization in class scope.  This is illegal,
	       but the error will already have been flagged by
	       check_specialization_scope.  */
	    return error_mark_node;
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	  else
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	    {
	      /* It's not legal to write an explicit instantiation in
		 class scope, e.g.:
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	           class C { template void f(); }
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		   This case is caught by the parser.  However, on
		   something like:
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		   template class C { void f(); };
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		   (which is illegal) we can get here.  The error will be
		   issued later.  */
	      ;
	    }
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	  return decl;
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	}
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      else if (TREE_CODE (TREE_OPERAND (declarator, 0)) == LOOKUP_EXPR)
	{
	  /* A friend declaration.  We can't do much, because we don't
	   know what this resolves to, yet.  */
	  my_friendly_assert (is_friend != 0, 0);
	  my_friendly_assert (!explicit_instantiation, 0);
	  SET_DECL_IMPLICIT_INSTANTIATION (decl);
	  return decl;
	} 
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      else if (ctype != NULL_TREE 
	       && (TREE_CODE (TREE_OPERAND (declarator, 0)) ==
		   IDENTIFIER_NODE))
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	{
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	  /* Find the list of functions in ctype that have the same
	     name as the declared function.  */
	  tree name = TREE_OPERAND (declarator, 0);
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	  tree fns = NULL_TREE;
	  int idx;

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	  if (name == constructor_name (ctype) 
	      || name == constructor_name_full (ctype))
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	    {
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	      int is_constructor = DECL_CONSTRUCTOR_P (decl);
	      
	      if (is_constructor ? !TYPE_HAS_CONSTRUCTOR (ctype)
		  : !TYPE_HAS_DESTRUCTOR (ctype))
		{
		  /* From [temp.expl.spec]:
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		     If such an explicit specialization for the member
		     of a class template names an implicitly-declared
		     special member function (clause _special_), the
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		     program is ill-formed.  

		     Similar language is found in [temp.explicit].  */
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		  cp_error ("specialization of implicitly-declared special member function");
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		  return error_mark_node;
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		}
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	      name = is_constructor ? ctor_identifier : dtor_identifier;
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	    }
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	  if (!IDENTIFIER_TYPENAME_P (name))
	    {
	      idx = lookup_fnfields_1 (ctype, name);
	      if (idx >= 0)
		fns = TREE_VEC_ELT (CLASSTYPE_METHOD_VEC (ctype), idx);
	    }
	  else
	    {
	      tree methods;

	      /* For a type-conversion operator, we cannot do a
		 name-based lookup.  We might be looking for `operator
		 int' which will be a specialization of `operator T'.
		 So, we find *all* the conversion operators, and then
		 select from them.  */
	      fns = NULL_TREE;

	      methods = CLASSTYPE_METHOD_VEC (ctype);
	      if (methods)
		for (idx = 2; idx < TREE_VEC_LENGTH (methods); ++idx) 
		  {
		    tree ovl = TREE_VEC_ELT (methods, idx);

		    if (!ovl || !DECL_CONV_FN_P (OVL_CURRENT (ovl)))
		      /* There are no more conversion functions.  */
		      break;

		    /* Glue all these conversion functions together
		       with those we already have.  */
		    for (; ovl; ovl = OVL_NEXT (ovl))
		      fns = ovl_cons (OVL_CURRENT (ovl), fns);
		  }
	    }
	      
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	  if (fns == NULL_TREE) 
	    {
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	      cp_error ("no member function `%D' declared in `%T'",
			name, ctype);
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	      return error_mark_node;
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	    }
	  else
	    TREE_OPERAND (declarator, 0) = fns;
	}
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      /* Figure out what exactly is being specialized at this point.
	 Note that for an explicit instantiation, even one for a
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	 member function, we cannot tell apriori whether the
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	 instantiation is for a member template, or just a member
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	 function of a template class.  Even if a member template is
	 being instantiated, the member template arguments may be
	 elided if they can be deduced from the rest of the
	 declaration.  */
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      tmpl = determine_specialization (declarator, decl,
				       &targs, 
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				       member_specialization);
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      if (!tmpl || tmpl == error_mark_node)
	/* We couldn't figure out what this declaration was
	   specializing.  */
	return error_mark_node;
      else
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	{
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	  tree gen_tmpl = most_general_template (tmpl);
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	  if (explicit_instantiation)
	    {
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	      /* We don't set DECL_EXPLICIT_INSTANTIATION here; that
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		 is done by do_decl_instantiation later.  */ 

	      int arg_depth = TMPL_ARGS_DEPTH (targs);
	      int parm_depth = TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (tmpl));

	      if (arg_depth > parm_depth)
		{
		  /* If TMPL is not the most general template (for
		     example, if TMPL is a friend template that is
		     injected into namespace scope), then there will
		     be too many levels fo TARGS.  Remove some of them
		     here.  */
		  int i;
		  tree new_targs;

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		  new_targs = make_tree_vec (parm_depth);
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		  for (i = arg_depth - parm_depth; i < arg_depth; ++i)
		    TREE_VEC_ELT (new_targs, i - (arg_depth - parm_depth))
		      = TREE_VEC_ELT (targs, i);
		  targs = new_targs;
		}
		  
	      decl = instantiate_template (tmpl, targs);
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	      return decl;
	    }
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	  /* If we though that the DECL was a member function, but it
	     turns out to be specializing a static member function,
	     make DECL a static member function as well.  */
	  if (DECL_STATIC_FUNCTION_P (tmpl)
	      && DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
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	    {
	      revert_static_member_fn (&decl, 0, 0);
	      last_function_parms = TREE_CHAIN (last_function_parms);
	    }
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	  /* Set up the DECL_TEMPLATE_INFO for DECL.  */
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	  DECL_TEMPLATE_INFO (decl) = tree_cons (tmpl, targs, NULL_TREE);
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	  /* Mangle the function name appropriately.  Note that we do
	     not mangle specializations of non-template member
	     functions of template classes, e.g. with
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	       template <class T> struct S { void f(); }
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	     and given the specialization 
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	       template <> void S<int>::f() {}
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	     we do not mangle S<int>::f() here.  That's because it's
	     just an ordinary member function and doesn't need special
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	     treatment.  We do this here so that the ordinary,
	     non-template, name-mangling algorith will not be used
	     later.  */
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	  if ((is_member_template (tmpl) || ctype == NULL_TREE)
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	      && name_mangling_version >= 1)
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	    set_mangled_name_for_template_decl (decl);
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	  if (is_friend && !have_def)
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	    /* This is not really a declaration of a specialization.
	       It's just the name of an instantiation.  But, it's not
	       a request for an instantiation, either.  */
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	    SET_DECL_IMPLICIT_INSTANTIATION (decl);
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	  /* Register this specialization so that we can find it
	     again.  */
	  decl = register_specialization (decl, gen_tmpl, targs);
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	}
    }
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  return decl;
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}
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/* TYPE is being declared.  Verify that the use of template headers
   and such is reasonable.  Issue error messages if not.  */

void
maybe_check_template_type (type)
     tree type;
{
  if (template_header_count)
    {
      /* We are in the scope of some `template <...>' header.  */

      int context_depth 
	= template_class_depth_real (TYPE_CONTEXT (type),
				     /*count_specializations=*/1);

      if (template_header_count <= context_depth)
	/* This is OK; the template headers are for the context.  We
	   are actually too lenient here; like
	   check_explicit_specialization we should consider the number
	   of template types included in the actual declaration.  For
	   example, 

	     template <class T> struct S {
	       template <class U> template <class V>
	       struct I {};
	     }; 

	   is illegal, but:

	     template <class T> struct S {
	       template <class U> struct I;
	     }; 

	     template <class T> template <class U.
	     struct S<T>::I {};

	   is not.  */
	; 
      else if (template_header_count > context_depth + 1)
	/* There are two many template parameter lists.  */
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	cp_error ("too many template parameter lists in declaration of `%T'", type); 
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    }
}

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/* Returns 1 iff PARMS1 and PARMS2 are identical sets of template
   parameters.  These are represented in the same format used for
   DECL_TEMPLATE_PARMS.  */

int comp_template_parms (parms1, parms2)
     tree parms1;
     tree parms2;
{
  tree p1;
  tree p2;

  if (parms1 == parms2)
    return 1;

  for (p1 = parms1, p2 = parms2; 
       p1 != NULL_TREE && p2 != NULL_TREE;
       p1 = TREE_CHAIN (p1), p2 = TREE_CHAIN (p2))
    {
      tree t1 = TREE_VALUE (p1);
      tree t2 = TREE_VALUE (p2);
      int i;

      my_friendly_assert (TREE_CODE (t1) == TREE_VEC, 0);
      my_friendly_assert (TREE_CODE (t2) == TREE_VEC, 0);

      if (TREE_VEC_LENGTH (t1) != TREE_VEC_LENGTH (t2))
	return 0;

      for (i = 0; i < TREE_VEC_LENGTH (t2); ++i) 
	{
	  tree parm1 = TREE_VALUE (TREE_VEC_ELT (t1, i));
	  tree parm2 = TREE_VALUE (TREE_VEC_ELT (t2, i));

	  if (TREE_CODE (parm1) != TREE_CODE (parm2))
	    return 0;

	  if (TREE_CODE (parm1) == TEMPLATE_TYPE_PARM)
	    continue;
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	  else if (!same_type_p (TREE_TYPE (parm1), TREE_TYPE (parm2)))
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	    return 0;
	}
    }

  if ((p1 != NULL_TREE) != (p2 != NULL_TREE))
    /* One set of parameters has more parameters lists than the
       other.  */
    return 0;

  return 1;
}

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/* Complain if DECL shadows a template parameter.

   [temp.local]: A template-parameter shall not be redeclared within its
   scope (including nested scopes).  */

void
check_template_shadow (decl)
     tree decl;
{
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  tree olddecl;

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  /* If we're not in a template, we can't possibly shadow a template
     parameter.  */
  if (!current_template_parms)
    return;

  /* Figure out what we're shadowing.  */
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  if (TREE_CODE (decl) == OVERLOAD)
    decl = OVL_CURRENT (decl);
  olddecl = IDENTIFIER_VALUE (DECL_NAME (decl));
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  /* If there's no previous binding for this name, we're not shadowing
     anything, let alone a template parameter.  */
  if (!olddecl)
    return;

  /* If we're not shadowing a template parameter, we're done.  Note
     that OLDDECL might be an OVERLOAD (or perhaps even an
     ERROR_MARK), so we can't just blithely assume it to be a _DECL
     node.  */
  if (TREE_CODE_CLASS (TREE_CODE (olddecl)) != 'd'
      || !DECL_TEMPLATE_PARM_P (olddecl))
    return;

  /* We check for decl != olddecl to avoid bogus errors for using a
     name inside a class.  We check TPFI to avoid duplicate errors for
     inline member templates.  */
  if (decl == olddecl 
      || TEMPLATE_PARMS_FOR_INLINE (current_template_parms))
    return;

  cp_error_at ("declaration of `%#D'", decl);
  cp_error_at (" shadows template parm `%#D'", olddecl);
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}
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/* Return a new TEMPLATE_PARM_INDEX with the indicated INDEX, LEVEL,
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   ORIG_LEVEL, DECL, and TYPE.  */

static tree
build_template_parm_index (index, level, orig_level, decl, type)
     int index;
     int level;
     int orig_level;
     tree decl;
     tree type;
{
  tree t = make_node (TEMPLATE_PARM_INDEX);
  TEMPLATE_PARM_IDX (t) = index;
  TEMPLATE_PARM_LEVEL (t) = level;
  TEMPLATE_PARM_ORIG_LEVEL (t) = orig_level;
  TEMPLATE_PARM_DECL (t) = decl;
  TREE_TYPE (t) = type;

  return t;
}

/* Return a TEMPLATE_PARM_INDEX, similar to INDEX, but whose
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   TEMPLATE_PARM_LEVEL has been decreased by LEVELS.  If such a
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   TEMPLATE_PARM_INDEX already exists, it is returned; otherwise, a
   new one is created.  */

static tree 
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reduce_template_parm_level (index, type, levels)
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     tree index;
     tree type;
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     int levels;
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{
  if (TEMPLATE_PARM_DESCENDANTS (index) == NULL_TREE
      || (TEMPLATE_PARM_LEVEL (TEMPLATE_PARM_DESCENDANTS (index))
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	  != TEMPLATE_PARM_LEVEL (index) - levels))
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    {
      tree decl 
	= build_decl (TREE_CODE (TEMPLATE_PARM_DECL (index)),
		      DECL_NAME (TEMPLATE_PARM_DECL (index)),
		      type);
      tree t
	= build_template_parm_index (TEMPLATE_PARM_IDX (index),
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				     TEMPLATE_PARM_LEVEL (index) - levels,
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				     TEMPLATE_PARM_ORIG_LEVEL (index),
				     decl, type);
      TEMPLATE_PARM_DESCENDANTS (index) = t;
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      /* Template template parameters need this.  */
      DECL_TEMPLATE_PARMS (decl)
	= DECL_TEMPLATE_PARMS (TEMPLATE_PARM_DECL (index));
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    }

  return TEMPLATE_PARM_DESCENDANTS (index);
}

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/* Process information from new template parameter NEXT and append it to the
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   LIST being built.  */
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tree
process_template_parm (list, next)
     tree list, next;
{
  tree parm;
  tree decl = 0;
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  tree defval;
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  int is_type, idx;
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  parm = next;
  my_friendly_assert (TREE_CODE (parm) == TREE_LIST, 259);
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  defval = TREE_PURPOSE (parm);
  parm = TREE_VALUE (parm);
  is_type = TREE_PURPOSE (parm) == class_type_node;
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  if (list)
    {
      tree p = TREE_VALUE (tree_last (list));

      if (TREE_CODE (p) == TYPE_DECL)
	idx = TEMPLATE_TYPE_IDX (TREE_TYPE (p));
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      else if (TREE_CODE (p) == TEMPLATE_DECL)
	idx = TEMPLATE_TYPE_IDX (TREE_TYPE (DECL_TEMPLATE_RESULT (p)));
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      else
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	idx = TEMPLATE_PARM_IDX (DECL_INITIAL (p));
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      ++idx;
    }
  else
    idx = 0;

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  if (!is_type)
    {
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      my_friendly_assert (TREE_CODE (TREE_PURPOSE (parm)) == TREE_LIST, 260);
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      /* is a const-param */
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      parm = grokdeclarator (TREE_VALUE (parm), TREE_PURPOSE (parm),
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			     PARM, 0, NULL_TREE);
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      /* [temp.param]

	 The top-level cv-qualifiers on the template-parameter are
	 ignored when determining its type.  */
      TREE_TYPE (parm) = TYPE_MAIN_VARIANT (TREE_TYPE (parm));

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      /* A template parameter is not modifiable.  */
      TREE_READONLY (parm) = 1;
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      if (IS_AGGR_TYPE (TREE_TYPE (parm))
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	  && TREE_CODE (TREE_TYPE (parm)) != TEMPLATE_TYPE_PARM
	  && TREE_CODE (TREE_TYPE (parm)) != TYPENAME_TYPE)
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	{
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	  cp_error ("`%#T' is not a valid type for a template constant parameter",
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		    TREE_TYPE (parm));
	  if (DECL_NAME (parm) == NULL_TREE)
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	    error ("  a template type parameter must begin with `class' or `typename'");
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	  TREE_TYPE (parm) = void_type_node;
	}
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      else if (pedantic
	       && (TREE_CODE (TREE_TYPE (parm)) == REAL_TYPE
		   || TREE_CODE (TREE_TYPE (parm)) == COMPLEX_TYPE))
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	cp_pedwarn ("`%T' is not a valid type for a template constant parameter",
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		    TREE_TYPE (parm));
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      decl = build_decl (CONST_DECL, DECL_NAME (parm), TREE_TYPE (parm));
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      DECL_INITIAL (parm) = DECL_INITIAL (decl) 
	= build_template_parm_index (idx, processing_template_decl,
				     processing_template_decl,
				     decl, TREE_TYPE (parm));
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    }
  else
    {
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      tree t;
      parm = TREE_VALUE (parm);
      
      if (parm && TREE_CODE (parm) == TEMPLATE_DECL)
	{
	  t = make_lang_type (TEMPLATE_TEMPLATE_PARM);
	  /* This is for distinguishing between real templates and template 
	     template parameters */
	  TREE_TYPE (parm) = t;
	  TREE_TYPE (DECL_TEMPLATE_RESULT (parm)) = t;
	  decl = parm;
	}
      else
	{
	  t = make_lang_type (TEMPLATE_TYPE_PARM);
	  /* parm is either IDENTIFIER_NODE or NULL_TREE */
	  decl = build_decl (TYPE_DECL, parm, t);
	}
        
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      TYPE_NAME (t) = decl;
      TYPE_STUB_DECL (t) = decl;
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      parm = decl;
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      TEMPLATE_TYPE_PARM_INDEX (t)
	= build_template_parm_index (idx, processing_template_decl, 
				     processing_template_decl,
				     decl, TREE_TYPE (parm));
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    }
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  SET_DECL_ARTIFICIAL (decl);
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  DECL_TEMPLATE_PARM_P (decl) = 1;
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  pushdecl (decl);
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  parm = build_tree_list (defval, parm);
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  return chainon (list, parm);
}

/* The end of a template parameter list has been reached.  Process the
   tree list into a parameter vector, converting each parameter into a more
   useful form.	 Type parameters are saved as IDENTIFIER_NODEs, and others
   as PARM_DECLs.  */

tree
end_template_parm_list (parms)
     tree parms;
{
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  int nparms;
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  tree parm;
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  tree saved_parmlist = make_tree_vec (list_length (parms));

  current_template_parms
    = tree_cons (build_int_2 (0, processing_template_decl),
		 saved_parmlist, current_template_parms);
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  for (parm = parms, nparms = 0; 
       parm; 
       parm = TREE_CHAIN (parm), nparms++)
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    TREE_VEC_ELT (saved_parmlist, nparms) = parm;
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  --processing_template_parmlist;

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  return saved_parmlist;
}

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/* end_template_decl is called after a template declaration is seen.  */

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void
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end_template_decl ()
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{
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  reset_specialization ();

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  if (! processing_template_decl)
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    return;

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  /* This matches the pushlevel in begin_template_parm_list.  */
  poplevel (0, 0, 0);
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  --processing_template_decl;
  current_template_parms = TREE_CHAIN (current_template_parms);
  (void) get_pending_sizes ();	/* Why? */
}
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/* Given a template argument vector containing the template PARMS.
   The innermost PARMS are given first.  */
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tree
current_template_args ()
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{
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  tree header;
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  tree args = NULL_TREE;
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  int length = TMPL_PARMS_DEPTH (current_template_parms);
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  int l = length;

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  /* If there is only one level of template parameters, we do not
     create a TREE_VEC of TREE_VECs.  Instead, we return a single
     TREE_VEC containing the arguments.  */
  if (length > 1)
    args = make_tree_vec (length);

  for (header = current_template_parms; header; header = TREE_CHAIN (header))
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    {
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      tree a = copy_node (TREE_VALUE (header));
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      int i;

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      TREE_TYPE (a) = NULL_TREE;
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      for (i = TREE_VEC_LENGTH (a) - 1; i >= 0; --i)
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	{
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	  tree t = TREE_VEC_ELT (a, i);

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	  /* T will be a list if we are called from within a
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	     begin/end_template_parm_list pair, but a vector directly
	     if within a begin/end_member_template_processing pair.  */
	  if (TREE_CODE (t) == TREE_LIST) 
	    {
	      t = TREE_VALUE (t);
	      
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	      if (TREE_CODE (t) == TYPE_DECL 
		  || TREE_CODE (t) == TEMPLATE_DECL)
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		t = TREE_TYPE (t);
	      else
		t = DECL_INITIAL (t);
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	      TREE_VEC_ELT (a, i) = t;
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	    }
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	}
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      if (length > 1)
	TREE_VEC_ELT (args, --l) = a;
      else
	args = a;
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    }

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  return args;
}
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/* Return a TEMPLATE_DECL corresponding to DECL, using the indicated
   template PARMS.  Used by push_template_decl below.  */

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static tree
build_template_decl (decl, parms)
     tree decl;
     tree parms;
{
  tree tmpl = build_lang_decl (TEMPLATE_DECL, DECL_NAME (decl), NULL_TREE);
  DECL_TEMPLATE_PARMS (tmpl) = parms;
  DECL_CONTEXT (tmpl) = DECL_CONTEXT (decl);
  if (DECL_LANG_SPECIFIC (decl))
    {
      DECL_CLASS_CONTEXT (tmpl) = DECL_CLASS_CONTEXT (decl);
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      DECL_STATIC_FUNCTION_P (tmpl) = DECL_STATIC_FUNCTION_P (decl);
      DECL_CONSTRUCTOR_P (tmpl) = DECL_CONSTRUCTOR_P (decl);
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      DECL_NONCONVERTING_P (tmpl) = DECL_NONCONVERTING_P (decl);
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    }

  return tmpl;
}

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struct template_parm_data
{
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  /* The level of the template parameters we are currently
     processing.  */
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  int level;
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  /* The index of the specialization argument we are currently
     processing.  */
  int current_arg;

  /* An array whose size is the number of template parameters.  The
     elements are non-zero if the parameter has been used in any one
     of the arguments processed so far.  */
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  int* parms;
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  /* An array whose size is the number of template arguments.  The
     elements are non-zero if the argument makes use of template
     parameters of this level.  */
  int* arg_uses_template_parms;
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};

/* Subroutine of push_template_decl used to see if each template
   parameter in a partial specialization is used in the explicit
   argument list.  If T is of the LEVEL given in DATA (which is
   treated as a template_parm_data*), then DATA->PARMS is marked
   appropriately.  */

static int
mark_template_parm (t, data)
     tree t;
     void* data;
{
  int level;
  int idx;
  struct template_parm_data* tpd = (struct template_parm_data*) data;

  if (TREE_CODE (t) == TEMPLATE_PARM_INDEX)
    {
      level = TEMPLATE_PARM_LEVEL (t);
      idx = TEMPLATE_PARM_IDX (t);
    }
  else
    {
      level = TEMPLATE_TYPE_LEVEL (t);
      idx = TEMPLATE_TYPE_IDX (t);
    }

  if (level == tpd->level)
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    {
      tpd->parms[idx] = 1;
      tpd->arg_uses_template_parms[tpd->current_arg] = 1;
    }
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  /* Return zero so that for_each_template_parm will continue the
     traversal of the tree; we want to mark *every* template parm.  */
  return 0;
}

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/* Process the partial specialization DECL.  */

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static tree
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process_partial_specialization (decl)
     tree decl;
{
  tree type = TREE_TYPE (decl);
  tree maintmpl = CLASSTYPE_TI_TEMPLATE (type);
  tree specargs = CLASSTYPE_TI_ARGS (type);
  tree inner_args = innermost_args (specargs);
  tree inner_parms = INNERMOST_TEMPLATE_PARMS (current_template_parms);
  tree main_inner_parms = DECL_INNERMOST_TEMPLATE_PARMS (maintmpl);
  int nargs = TREE_VEC_LENGTH (inner_args);
  int ntparms = TREE_VEC_LENGTH (inner_parms);
  int  i;
  int did_error_intro = 0;
  struct template_parm_data tpd;
  struct template_parm_data tpd2;

  /* We check that each of the template parameters given in the
     partial specialization is used in the argument list to the
     specialization.  For example:

       template <class T> struct S;
       template <class T> struct S<T*>;

     The second declaration is OK because `T*' uses the template
     parameter T, whereas

       template <class T> struct S<int>;

     is no good.  Even trickier is:

       template <class T>
       struct S1
       {
	  template <class U>
	  struct S2;
	  template <class U>
	  struct S2<T>;
       };

     The S2<T> declaration is actually illegal; it is a
     full-specialization.  Of course, 

	  template <class U>
	  struct S2<T (*)(U)>;

     or some such would have been OK.  */
  tpd.level = TMPL_PARMS_DEPTH (current_template_parms);
  tpd.parms = alloca (sizeof (int) * ntparms);
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  bzero ((PTR) tpd.parms, sizeof (int) * ntparms);
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  tpd.arg_uses_template_parms = alloca (sizeof (int) * nargs);
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  bzero ((PTR) tpd.arg_uses_template_parms, sizeof (int) * nargs);
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  for (i = 0; i < nargs; ++i)
    {
      tpd.current_arg = i;
      for_each_template_parm (TREE_VEC_ELT (inner_args, i),
			      &mark_template_parm,
			      &tpd);
    }
  for (i = 0; i < ntparms; ++i)
    if (tpd.parms[i] == 0)
      {
	/* One of the template parms was not used in the
           specialization.  */
	if (!did_error_intro)
	  {
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	    cp_error ("template parameters not used in partial specialization:");
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	    did_error_intro = 1;
	  }

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	cp_error ("        `%D'", 
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		  TREE_VALUE (TREE_VEC_ELT (inner_parms, i)));
      }

  /* [temp.class.spec]

     The argument list of the specialization shall not be identical to
     the implicit argument list of the primary template.  */
  if (comp_template_args (inner_args, 
			  innermost_args (CLASSTYPE_TI_ARGS (TREE_TYPE
							     (maintmpl)))))
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    cp_error ("partial specialization `%T' does not specialize any template arguments", type);
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  /* [temp.class.spec]

     A partially specialized non-type argument expression shall not
     involve template parameters of the partial specialization except
     when the argument expression is a simple identifier.

     The type of a template parameter corresponding to a specialized
     non-type argument shall not be dependent on a parameter of the
     specialization.  */
  my_friendly_assert (nargs == DECL_NTPARMS (maintmpl), 0);
  tpd2.parms = 0;
  for (i = 0; i < nargs; ++i)
    {
      tree arg = TREE_VEC_ELT (inner_args, i);
      if (/* These first two lines are the `non-type' bit.  */
	  TREE_CODE_CLASS (TREE_CODE (arg)) != 't'
	  && TREE_CODE (arg) != TEMPLATE_DECL
	  /* This next line is the `argument expression is not just a
	     simple identifier' condition and also the `specialized
	     non-type argument' bit.  */
	  && TREE_CODE (arg) != TEMPLATE_PARM_INDEX)
	{
	  if (tpd.arg_uses_template_parms[i])
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	    cp_error ("template argument `%E' involves template parameter(s)", arg);
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	  else 
	    {
	      /* Look at the corresponding template parameter,
		 marking which template parameters its type depends
		 upon.  */
	      tree type = 
		TREE_TYPE (TREE_VALUE (TREE_VEC_ELT (main_inner_parms, 
						     i)));

	      if (!tpd2.parms)
		{
		  /* We haven't yet initialized TPD2.  Do so now.  */
		  tpd2.arg_uses_template_parms 
		    =  (int*) alloca (sizeof (int) * nargs);
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		  /* The number of parameters here is the number in the
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		     main template, which, as checked in the assertion
		     above, is NARGS.  */
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		  tpd2.parms = (int*) alloca (sizeof (int) * nargs);
		  tpd2.level = 
		    TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (maintmpl));
		}

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	      /* Mark the template parameters.  But this time, we're
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		 looking for the template parameters of the main
		 template, not in the specialization.  */
	      tpd2.current_arg = i;
	      tpd2.arg_uses_template_parms[i] = 0;
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	      bzero ((PTR) tpd2.parms, sizeof (int) * nargs);
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	      for_each_template_parm (type,
				      &mark_template_parm,
				      &tpd2);
		  
	      if (tpd2.arg_uses_template_parms [i])
		{
		  /* The type depended on some template parameters.
		     If they are fully specialized in the
		     specialization, that's OK.  */
		  int j;
		  for (j = 0; j < nargs; ++j)
		    if (tpd2.parms[j] != 0
			&& tpd.arg_uses_template_parms [j])
		      {
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			cp_error ("type `%T' of template argument `%E' depends on template parameter(s)", 
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				  type,
				  arg);
			break;
		      }
		}
	    }
	}
    }

  if (retrieve_specialization (maintmpl, specargs))
    /* We've already got this specialization.  */
    return decl;

  DECL_TEMPLATE_SPECIALIZATIONS (maintmpl) = CLASSTYPE_TI_SPEC_INFO (type)
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    = tree_cons (inner_args, inner_parms,
		 DECL_TEMPLATE_SPECIALIZATIONS (maintmpl));
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  TREE_TYPE (DECL_TEMPLATE_SPECIALIZATIONS (maintmpl)) = type;
  return decl;
}

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/* Check that a template declaration's use of default arguments is not
   invalid.  Here, PARMS are the template parameters.  IS_PRIMARY is
   non-zero if DECL is the thing declared by a primary template.
   IS_PARTIAL is non-zero if DECL is a partial specialization.  */

static void
check_default_tmpl_args (decl, parms, is_primary, is_partial)
     tree decl;
     tree parms;
     int is_primary;
     int is_partial;
{
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  const char *msg;
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  int last_level_to_check;
  tree parm_level;
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  /* [temp.param] 

     A default template-argument shall not be specified in a
     function template declaration or a function template definition, nor
     in the template-parameter-list of the definition of a member of a
     class template.  */

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  if (TREE_CODE (DECL_REAL_CONTEXT (decl)) == FUNCTION_DECL)
    /* You can't have a function template declaration in a local
       scope, nor you can you define a member of a class template in a
       local scope.  */
    return;

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  if (current_class_type
      && !TYPE_BEING_DEFINED (current_class_type)
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      && DECL_LANG_SPECIFIC (decl)
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      /* If this is either a friend defined in the scope of the class
	 or a member function.  */
      && DECL_CLASS_CONTEXT (decl) == current_class_type
      /* And, if it was a member function, it really was defined in
	 the scope of the class.  */
      && (!DECL_FUNCTION_MEMBER_P (decl) || DECL_DEFINED_IN_CLASS_P (decl)))
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    /* We already checked these parameters when the template was
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       declared, so there's no need to do it again now.  This function
       was defined in class scope, but we're processing it's body now
       that the class is complete.  */
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    return;

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  /* [temp.param]
	 
     If a template-parameter has a default template-argument, all
     subsequent template-parameters shall have a default
     template-argument supplied.  */
  for (parm_level = parms; parm_level; parm_level = TREE_CHAIN (parm_level))
    {
      tree inner_parms = TREE_VALUE (parm_level);
      int ntparms = TREE_VEC_LENGTH (inner_parms);
      int seen_def_arg_p = 0; 
      int i;

      for (i = 0; i < ntparms; ++i) 
	{
	  tree parm = TREE_VEC_ELT (inner_parms, i);
	  if (TREE_PURPOSE (parm))
	    seen_def_arg_p = 1;
	  else if (seen_def_arg_p)
	    {
	      cp_error ("no default argument for `%D'", TREE_VALUE (parm));
	      /* For better subsequent error-recovery, we indicate that
		 there should have been a default argument.  */
	      TREE_PURPOSE (parm) = error_mark_node;
	    }
	}
    }

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  if (TREE_CODE (decl) != TYPE_DECL || is_partial || !is_primary)
    /* For an ordinary class template, default template arguments are
       allowed at the innermost level, e.g.:
         template <class T = int>
	 struct S {};
       but, in a partial specialization, they're not allowed even
       there, as we have in [temp.class.spec]:
     
	 The template parameter list of a specialization shall not
	 contain default template argument values.  

       So, for a partial specialization, or for a function template,
       we look at all of them.  */
    ;
  else
    /* But, for a primary class template that is not a partial
       specialization we look at all template parameters except the
       innermost ones.  */
    parms = TREE_CHAIN (parms);

  /* Figure out what error message to issue.  */
  if (TREE_CODE (decl) == FUNCTION_DECL)
    msg = "default argument for template parameter in function template `%D'";
  else if (is_partial)
    msg = "default argument in partial specialization `%D'";
  else
    msg = "default argument for template parameter for class enclosing `%D'";

  if (current_class_type && TYPE_BEING_DEFINED (current_class_type))
    /* If we're inside a class definition, there's no need to
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       examine the parameters to the class itself.  On the one
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       hand, they will be checked when the class is defined, and,
       on the other, default arguments are legal in things like:
         template <class T = double>
         struct S { template <class U> void f(U); };
       Here the default argument for `S' has no bearing on the
       declaration of `f'.  */
    last_level_to_check = template_class_depth (current_class_type) + 1;
  else
    /* Check everything.  */
    last_level_to_check = 0;

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  for (parm_level = parms; 
       parm_level && TMPL_PARMS_DEPTH (parm_level) >= last_level_to_check; 
       parm_level = TREE_CHAIN (parm_level))
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    {
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      tree inner_parms = TREE_VALUE (parm_level);
      int i;
      int ntparms;
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      ntparms = TREE_VEC_LENGTH (inner_parms);
      for (i = 0; i < ntparms; ++i) 
	if (TREE_PURPOSE (TREE_VEC_ELT (inner_parms, i)))
	  {
	    if (msg)
	      {
		cp_error (msg, decl);
		msg = 0;
	      }

	    /* Clear out the default argument so that we are not
	       confused later.  */
	    TREE_PURPOSE (TREE_VEC_ELT (inner_parms, i)) = NULL_TREE;
	  }

      /* At this point, if we're still interested in issuing messages,
	 they must apply to classes surrounding the object declared.  */
      if (msg)
	msg = "default argument for template parameter for class enclosing `%D'"; 
    }
}

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/* Creates a TEMPLATE_DECL for the indicated DECL using the template
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   parameters given by current_template_args, or reuses a
   previously existing one, if appropriate.  Returns the DECL, or an
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   equivalent one, if it is replaced via a call to duplicate_decls.  

   If IS_FRIEND is non-zero, DECL is a friend declaration.  */
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tree
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push_template_decl_real (decl, is_friend)
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     tree decl;
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     int is_friend;
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{
  tree tmpl;
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  tree args;
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  tree info;
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  tree ctx;
  int primary;
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  int is_partial;
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  int new_template_p = 0;
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  /* See if this is a partial specialization.  */
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  is_partial = (DECL_IMPLICIT_TYPEDEF_P (decl)
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		&& TREE_CODE (TREE_TYPE (decl)) != ENUMERAL_TYPE
		&& CLASSTYPE_TEMPLATE_SPECIALIZATION (TREE_TYPE (decl)));
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  is_friend |= (TREE_CODE (decl) == FUNCTION_DECL && DECL_FRIEND_P (decl));
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  if (is_friend)
    /* For a friend, we want the context of the friend function, not
       the type of which it is a friend.  */
    ctx = DECL_CONTEXT (decl);
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  else if (DECL_REAL_CONTEXT (decl)
	   && TREE_CODE (DECL_REAL_CONTEXT (decl)) != NAMESPACE_DECL)
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    /* In the case of a virtual function, we want the class in which
       it is defined.  */
    ctx = DECL_REAL_CONTEXT (decl);
  else
    /* Otherwise, if we're currently definining some class, the DECL
       is assumed to be a member of the class.  */
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    ctx = current_scope ();
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  if (ctx && TREE_CODE (ctx) == NAMESPACE_DECL)
    ctx = NULL_TREE;

  if (!DECL_CONTEXT (decl))
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    DECL_CONTEXT (decl) = FROB_CONTEXT (current_namespace);
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  /* See if this is a primary template.  */
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  primary = pseudo_global_level_p ();
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  if (primary)
    {
      if (current_lang_name == lang_name_c)
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	cp_error ("template with C linkage");
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      else if (TREE_CODE (decl) == TYPE_DECL 
	       && ANON_AGGRNAME_P (DECL_NAME (decl))) 
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2373
	cp_error ("template class without a name");
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      else if ((DECL_IMPLICIT_TYPEDEF_P (decl)
		&& CLASS_TYPE_P (TREE_TYPE (decl)))
	       || (TREE_CODE (decl) == VAR_DECL && ctx && CLASS_TYPE_P (ctx))
	       || TREE_CODE (decl) == FUNCTION_DECL)
	/* OK */;
      else
2380
	cp_error ("template declaration of `%#D'", decl);
2381 2382
    }

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  /* Check to see that the rules regarding the use of default
     arguments are not being violated.  */
  check_default_tmpl_args (decl, current_template_parms, 
			   primary, is_partial);
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2387

2388 2389
  if (is_partial)
    return process_partial_specialization (decl);
2390

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  args = current_template_args ();

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2393 2394 2395 2396
  if (!ctx 
      || TREE_CODE (ctx) == FUNCTION_DECL
      || TYPE_BEING_DEFINED (ctx)
      || (is_friend && !DECL_TEMPLATE_INFO (decl)))
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2397
    {
2398
      if (DECL_LANG_SPECIFIC (decl)
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	  && DECL_TEMPLATE_INFO (decl)
	  && DECL_TI_TEMPLATE (decl))
	tmpl = DECL_TI_TEMPLATE (decl);
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      /* If DECL is a TYPE_DECL for a class-template, then there won't
	 be DECL_LANG_SPECIFIC.  The information equivalent to
	 DECL_TEMPLATE_INFO is found in TYPE_TEMPLATE_INFO instead.  */
      else if (DECL_IMPLICIT_TYPEDEF_P (decl) 
	       && TYPE_TEMPLATE_INFO (TREE_TYPE (decl))
	       && TYPE_TI_TEMPLATE (TREE_TYPE (decl)))
	{
	  /* Since a template declaration already existed for this
	     class-type, we must be redeclaring it here.  Make sure
	     that the redeclaration is legal.  */
	  redeclare_class_template (TREE_TYPE (decl),
				    current_template_parms);
	  /* We don't need to create a new TEMPLATE_DECL; just use the
	     one we already had.  */
	  tmpl = TYPE_TI_TEMPLATE (TREE_TYPE (decl));
	}
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2418
      else
2419
	{
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2420
	  tmpl = build_template_decl (decl, current_template_parms);
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	  new_template_p = 1;

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	  if (DECL_LANG_SPECIFIC (decl)
	      && DECL_TEMPLATE_SPECIALIZATION (decl))
	    {
	      /* A specialization of a member template of a template
		 class. */
	      SET_DECL_TEMPLATE_SPECIALIZATION (tmpl);
	      DECL_TEMPLATE_INFO (tmpl) = DECL_TEMPLATE_INFO (decl);
	      DECL_TEMPLATE_INFO (decl) = NULL_TREE;
	    }
2432
	}
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    }
  else
    {
2436
      tree a, t, current, parms;
2437
      int i;
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2438

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2439
      if (CLASSTYPE_TEMPLATE_INSTANTIATION (ctx))
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	cp_error ("must specialize `%#T' before defining member `%#D'",
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2441
		  ctx, decl);
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      if (TREE_CODE (decl) == TYPE_DECL)
	{
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	  if ((IS_AGGR_TYPE_CODE (TREE_CODE (TREE_TYPE (decl)))
	       || TREE_CODE (TREE_TYPE (decl)) == ENUMERAL_TYPE)
	      && TYPE_TEMPLATE_INFO (TREE_TYPE (decl))
	      && TYPE_TI_TEMPLATE (TREE_TYPE (decl)))
	    tmpl = TYPE_TI_TEMPLATE (TREE_TYPE (decl));
2449 2450
	  else
	    {
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	      cp_error ("`%D' does not declare a template type", decl);
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	      return decl;
	    }
	}
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2455
      else if (! DECL_TEMPLATE_INFO (decl))
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2456
	{
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2457
	  cp_error ("template definition of non-template `%#D'", decl);
2458
	  return decl;
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2459
	}
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2460
      else
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2461
	tmpl = DECL_TI_TEMPLATE (decl);
2462
      
2463 2464 2465 2466
      if (is_member_template (tmpl)
	  && DECL_FUNCTION_TEMPLATE_P (tmpl)
	  && DECL_TEMPLATE_INFO (decl) && DECL_TI_ARGS (decl) 
	  && DECL_TEMPLATE_SPECIALIZATION (decl))
2467
	{
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	  tree new_tmpl;

	  /* The declaration is a specialization of a member
	     template, declared outside the class.  Therefore, the
	     innermost template arguments will be NULL, so we
	     replace them with the arguments determined by the
	     earlier call to check_explicit_specialization.  */
	  args = DECL_TI_ARGS (decl);

	  new_tmpl 
	    = build_template_decl (decl, current_template_parms);
	  DECL_TEMPLATE_RESULT (new_tmpl) = decl;
	  TREE_TYPE (new_tmpl) = TREE_TYPE (decl);
	  DECL_TI_TEMPLATE (decl) = new_tmpl;
	  SET_DECL_TEMPLATE_SPECIALIZATION (new_tmpl);
2483 2484
	  DECL_TEMPLATE_INFO (new_tmpl) 
	    = tree_cons (tmpl, args, NULL_TREE);
2485 2486 2487

	  register_specialization (new_tmpl, tmpl, args);
	  return decl;
2488 2489
	}

2490
      /* Make sure the template headers we got make sense.  */
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2491

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      parms = DECL_TEMPLATE_PARMS (tmpl);
      i = TMPL_PARMS_DEPTH (parms);
      if (TMPL_ARGS_DEPTH (args) != i)
2495
	{
2496 2497
	  cp_error ("expected %d levels of template parms for `%#D', got %d",
		    i, decl, TMPL_ARGS_DEPTH (args));
2498
	}
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      else
	for (current = decl; i > 0; --i, parms = TREE_CHAIN (parms))
	  {
	    a = TMPL_ARGS_LEVEL (args, i);
	    t = INNERMOST_TEMPLATE_PARMS (parms);

	    if (TREE_VEC_LENGTH (t) != TREE_VEC_LENGTH (a))
	      {
		if (current == decl)
		  cp_error ("got %d template parameters for `%#D'",
			    TREE_VEC_LENGTH (a), decl);
		else
		  cp_error ("got %d template parameters for `%#T'",
			    TREE_VEC_LENGTH (a), current);
		cp_error ("  but %d required", TREE_VEC_LENGTH (t));
	      }
2515

2516 2517
	    /* Perhaps we should also check that the parms are used in the
               appropriate qualifying scopes in the declarator?  */
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2518

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	    if (current == decl)
	      current = ctx;
	    else
	      current = TYPE_CONTEXT (current);
	  }
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2524
    }
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2525

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2526 2527
  DECL_TEMPLATE_RESULT (tmpl) = decl;
  TREE_TYPE (tmpl) = TREE_TYPE (decl);
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2528

2529 2530 2531
  /* Push template declarations for global functions and types.  Note
     that we do not try to push a global template friend declared in a
     template class; such a thing may well depend on the template
2532
     parameters of the class.  */
2533
  if (new_template_p && !ctx 
2534
      && !(is_friend && template_class_depth (current_class_type) > 0))
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2535
    tmpl = pushdecl_namespace_level (tmpl);
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2536

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2537
  if (primary)
2538
    DECL_PRIMARY_TEMPLATE (tmpl) = tmpl;
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2539

2540
  info = tree_cons (tmpl, args, NULL_TREE);
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2541

2542
  if (DECL_IMPLICIT_TYPEDEF_P (decl))
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    {
2544 2545 2546
      SET_TYPE_TEMPLATE_INFO (TREE_TYPE (tmpl), info);
      if ((!ctx || TREE_CODE (ctx) != FUNCTION_DECL)
	  && TREE_CODE (TREE_TYPE (decl)) != ENUMERAL_TYPE)
2547
	DECL_NAME (decl) = classtype_mangled_name (TREE_TYPE (decl));
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2548
    }
2549
  else if (DECL_LANG_SPECIFIC (decl))
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    DECL_TEMPLATE_INFO (decl) = info;
2551 2552

  return DECL_TEMPLATE_RESULT (tmpl);
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2553 2554
}

2555 2556 2557 2558 2559 2560 2561 2562 2563
tree
push_template_decl (decl)
     tree decl;
{
  return push_template_decl_real (decl, 0);
}

/* Called when a class template TYPE is redeclared with the indicated
   template PARMS, e.g.:
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     template <class T> struct S;
     template <class T> struct S {};  */

void 
2569
redeclare_class_template (type, parms)
2570
     tree type;
2571
     tree parms;
2572
{
2573
  tree tmpl;
2574
  tree tmpl_parms;
2575 2576
  int i;

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  if (!TYPE_TEMPLATE_INFO (type))
    {
      cp_error ("`%T' is not a template type", type);
      return;
    }

  tmpl = TYPE_TI_TEMPLATE (type);
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  if (!PRIMARY_TEMPLATE_P (tmpl))
    /* The type is nested in some template class.  Nothing to worry
       about here; there are no new template parameters for the nested
       type.  */
    return;

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  parms = INNERMOST_TEMPLATE_PARMS (parms);
  tmpl_parms = DECL_INNERMOST_TEMPLATE_PARMS (tmpl);

2593 2594
  if (TREE_VEC_LENGTH (parms) != TREE_VEC_LENGTH (tmpl_parms))
    {
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      cp_error_at ("previous declaration `%D'", tmpl);
      cp_error ("used %d template parameter%s instead of %d",
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		TREE_VEC_LENGTH (tmpl_parms), 
		TREE_VEC_LENGTH (tmpl_parms) == 1 ? "" : "s",
		TREE_VEC_LENGTH (parms));
      return;
    }

  for (i = 0; i < TREE_VEC_LENGTH (tmpl_parms); ++i)
    {
      tree tmpl_parm = TREE_VALUE (TREE_VEC_ELT (tmpl_parms, i));
      tree parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
      tree tmpl_default = TREE_PURPOSE (TREE_VEC_ELT (tmpl_parms, i));
      tree parm_default = TREE_PURPOSE (TREE_VEC_ELT (parms, i));

      if (TREE_CODE (tmpl_parm) != TREE_CODE (parm))
	{
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2612 2613
	  cp_error_at ("template parameter `%#D'", tmpl_parm);
	  cp_error ("redeclared here as `%#D'", parm);
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	  return;
	}

      if (tmpl_default != NULL_TREE && parm_default != NULL_TREE)
	{
	  /* We have in [temp.param]:

	     A template-parameter may not be given default arguments
	     by two different declarations in the same scope.  */
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2623 2624
	  cp_error ("redefinition of default argument for `%#D'", parm);
	  cp_error_at ("  original definition appeared here", tmpl_parm);
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	  return;
	}

      if (parm_default != NULL_TREE)
	/* Update the previous template parameters (which are the ones
	   that will really count) with the new default value.  */
	TREE_PURPOSE (TREE_VEC_ELT (tmpl_parms, i)) = parm_default;
2632 2633 2634 2635
      else if (tmpl_default != NULL_TREE)
	/* Update the new parameters, too; they'll be used as the
	   parameters for any members.  */
	TREE_PURPOSE (TREE_VEC_ELT (parms, i)) = tmpl_default;
2636 2637
    }
}
2638 2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649

/* Attempt to convert the non-type template parameter EXPR to the
   indicated TYPE.  If the conversion is successful, return the
   converted value.  If the conversion is unsuccesful, return
   NULL_TREE if we issued an error message, or error_mark_node if we
   did not.  We issue error messages for out-and-out bad template
   parameters, but not simply because the conversion failed, since we
   might be just trying to do argument deduction.  By the time this
   function is called, neither TYPE nor EXPR may make use of template
   parameters.  */

static tree
2650
convert_nontype_argument (type, expr)
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     tree type;
     tree expr;
{
  tree expr_type = TREE_TYPE (expr);

  /* A template-argument for a non-type, non-template
     template-parameter shall be one of:

     --an integral constant-expression of integral or enumeration
     type; or
     
     --the name of a non-type template-parameter; or
     
     --the name of an object or function with external linkage,
     including function templates and function template-ids but
2666
     excluding non-static class members, expressed as id-expression;
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     or
     
     --the address of an object or function with external linkage,
     including function templates and function template-ids but
     excluding non-static class members, expressed as & id-expression
     where the & is optional if the name refers to a function or
     array; or
     
     --a pointer to member expressed as described in _expr.unary.op_.  */

2677 2678 2679 2680 2681 2682
  /* An integral constant-expression can include const variables or
     enumerators.  Simplify things by folding them to their values,
     unless we're about to bind the declaration to a reference
     parameter.  */
  if (INTEGRAL_TYPE_P (expr_type) && TREE_READONLY_DECL_P (expr)
      && TREE_CODE (type) != REFERENCE_TYPE)
2683 2684
    expr = decl_constant_value (expr);

2685 2686 2687 2688 2689
  if (is_overloaded_fn (expr))
    /* OK for now.  We'll check that it has external linkage later.
       Check this first since if expr_type is the unknown_type_node
       we would otherwise complain below.  */
    ;
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  else if (TYPE_PTRMEM_P (expr_type)
	   || TYPE_PTRMEMFUNC_P (expr_type))
    {
      if (TREE_CODE (expr) != PTRMEM_CST)
	goto bad_argument;
    }
2696
  else if (TYPE_PTR_P (expr_type)
2697
	   || TYPE_PTRMEM_P (expr_type)
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	   || TREE_CODE (expr_type) == ARRAY_TYPE
	   || TREE_CODE (type) == REFERENCE_TYPE
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	   /* If expr is the address of an overloaded function, we
	      will get the unknown_type_node at this point.  */
	   || expr_type == unknown_type_node)
    {
      tree referent;
2705 2706
      tree e = expr;
      STRIP_NOPS (e);
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2708 2709 2710 2711
      if (TREE_CODE (type) == REFERENCE_TYPE
	  || TREE_CODE (expr_type) == ARRAY_TYPE)
	referent = e;
      else
2712
	{
2713 2714 2715 2716
	  if (TREE_CODE (e) != ADDR_EXPR)
	    {
	    bad_argument:
	      cp_error ("`%E' is not a valid template argument", expr);
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	      if (TYPE_PTR_P (expr_type))
		{
		  if (TREE_CODE (TREE_TYPE (expr_type)) == FUNCTION_TYPE)
		    cp_error ("it must be the address of a function with external linkage");
		  else
		    cp_error ("it must be the address of an object with external linkage");
		}
	      else if (TYPE_PTRMEM_P (expr_type)
		       || TYPE_PTRMEMFUNC_P (expr_type))
		cp_error ("it must be a pointer-to-member of the form `&X::Y'");

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	      return NULL_TREE;
	    }

	  referent = TREE_OPERAND (e, 0);
	  STRIP_NOPS (referent);
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	}

      if (TREE_CODE (referent) == STRING_CST)
	{
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2737
	  cp_error ("string literal %E is not a valid template argument", 
2738
		    referent);
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2739
	  error ("because it is the address of an object with static linkage");
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	  return NULL_TREE;
	}

      if (is_overloaded_fn (referent))
	/* We'll check that it has external linkage later.  */
	;
      else if (TREE_CODE (referent) != VAR_DECL)
	goto bad_argument;
      else if (!TREE_PUBLIC (referent))
	{
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2750
	  cp_error ("address of non-extern `%E' cannot be used as template argument", referent); 
2751 2752 2753
	  return error_mark_node;
	}
    }
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  else if (INTEGRAL_TYPE_P (expr_type) 
	   || TYPE_PTRMEM_P (expr_type) 
	   || TYPE_PTRMEMFUNC_P (expr_type)
	   /* The next two are g++ extensions.  */
	   || TREE_CODE (expr_type) == REAL_TYPE
	   || TREE_CODE (expr_type) == COMPLEX_TYPE)
2760
    {
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      if (! TREE_CONSTANT (expr))
	{
	non_constant:
	  cp_error ("non-constant `%E' cannot be used as template argument",
		    expr);
	  return NULL_TREE;
	}
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    }
  else 
    {
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2771
      cp_error ("object `%E' cannot be used as template argument", expr);
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      return NULL_TREE;
    }

  switch (TREE_CODE (type))
    {
    case INTEGER_TYPE:
    case BOOLEAN_TYPE:
    case ENUMERAL_TYPE:
      /* For a non-type template-parameter of integral or enumeration
         type, integral promotions (_conv.prom_) and integral
         conversions (_conv.integral_) are applied. */
      if (!INTEGRAL_TYPE_P (expr_type))
	return error_mark_node;
      
      /* It's safe to call digest_init in this case; we know we're
	 just converting one integral constant expression to another.  */
2788
      expr = digest_init (type, expr, (tree*) 0);
2789

2790
      if (TREE_CODE (expr) != INTEGER_CST)
2791
	/* Curiously, some TREE_CONSTANT integral expressions do not
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	   simplify to integer constants.  For example, `3 % 0',
	   remains a TRUNC_MOD_EXPR.  */
	goto non_constant;
      
      return expr;
	
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    case REAL_TYPE:
    case COMPLEX_TYPE:
      /* These are g++ extensions.  */
      if (TREE_CODE (expr_type) != TREE_CODE (type))
	return error_mark_node;

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      expr = digest_init (type, expr, (tree*) 0);
      
      if (TREE_CODE (expr) != REAL_CST)
	goto non_constant;

      return expr;
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    case POINTER_TYPE:
      {
	tree type_pointed_to = TREE_TYPE (type);
 
	if (TYPE_PTRMEM_P (type))
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	  {
	    tree e;

	    /* For a non-type template-parameter of type pointer to data
	       member, qualification conversions (_conv.qual_) are
	       applied.  */
	    e = perform_qualification_conversions (type, expr);
	    if (TREE_CODE (e) == NOP_EXPR)
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	      /* The call to perform_qualification_conversions will
		 insert a NOP_EXPR over EXPR to do express conversion,
		 if necessary.  But, that will confuse us if we use
		 this (converted) template parameter to instantiate
		 another template; then the thing will not look like a
		 valid template argument.  So, just make a new
		 constant, of the appropriate type.  */
	      e = make_ptrmem_cst (type, PTRMEM_CST_MEMBER (expr));
2832 2833
	    return e;
	  }
2834 2835 2836 2837 2838 2839 2840 2841 2842 2843 2844
	else if (TREE_CODE (type_pointed_to) == FUNCTION_TYPE)
	  { 
	    /* For a non-type template-parameter of type pointer to
	       function, only the function-to-pointer conversion
	       (_conv.func_) is applied.  If the template-argument
	       represents a set of overloaded functions (or a pointer to
	       such), the matching function is selected from the set
	       (_over.over_).  */
	    tree fns;
	    tree fn;

2845
	    if (TREE_CODE (expr) == ADDR_EXPR)
2846 2847 2848 2849
	      fns = TREE_OPERAND (expr, 0);
	    else
	      fns = expr;

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	    fn = instantiate_type (type_pointed_to, fns, 0);
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	    if (fn == error_mark_node)
	      return error_mark_node;

	    if (!TREE_PUBLIC (fn))
	      {
		if (really_overloaded_fn (fns))
		  return error_mark_node;
		else
		  goto bad_argument;
	      }

	    expr = build_unary_op (ADDR_EXPR, fn, 0);

2865
	    my_friendly_assert (same_type_p (type, TREE_TYPE (expr)), 
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				0);
	    return expr;
	  }
	else 
	  {
	    /* For a non-type template-parameter of type pointer to
	       object, qualification conversions (_conv.qual_) and the
	       array-to-pointer conversion (_conv.array_) are applied.
	       [Note: In particular, neither the null pointer conversion
	       (_conv.ptr_) nor the derived-to-base conversion
	       (_conv.ptr_) are applied.  Although 0 is a valid
	       template-argument for a non-type template-parameter of
	       integral type, it is not a valid template-argument for a
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	       non-type template-parameter of pointer type.]  
	    
	       The call to decay_conversion performs the
	       array-to-pointer conversion, if appropriate.  */
	    expr = decay_conversion (expr);
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	    if (expr == error_mark_node)
	      return error_mark_node;
	    else
	      return perform_qualification_conversions (type, expr);
	  }
      }
      break;

    case REFERENCE_TYPE:
      {
	tree type_referred_to = TREE_TYPE (type);

	if (TREE_CODE (type_referred_to) == FUNCTION_TYPE)
	  {
	    /* For a non-type template-parameter of type reference to
2900 2901 2902 2903
	       function, no conversions apply.  If the
	       template-argument represents a set of overloaded
	       functions, the matching function is selected from the
	       set (_over.over_).  */
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	    tree fns = expr;
	    tree fn;

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2907
	    fn = instantiate_type (type_referred_to, fns, 0);
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	    if (fn == error_mark_node)
	      return error_mark_node;
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	    if (!TREE_PUBLIC (fn))
	      {
		if (really_overloaded_fn (fns))
		  /* Don't issue an error here; we might get a different
		     function if the overloading had worked out
		     differently.  */
		  return error_mark_node;
		else
		  goto bad_argument;
	      }

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	    my_friendly_assert (same_type_p (type_referred_to, 
					     TREE_TYPE (fn)),
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				0);

	    return fn;
	  }
	else
	  {
	    /* For a non-type template-parameter of type reference to
	       object, no conversions apply.  The type referred to by the
	       reference may be more cv-qualified than the (otherwise
	       identical) type of the template-argument.  The
	       template-parameter is bound directly to the
	       template-argument, which must be an lvalue.  */
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	    if ((TYPE_MAIN_VARIANT (expr_type)
		 != TYPE_MAIN_VARIANT (type_referred_to))
2939 2940
		|| !at_least_as_qualified_p (type_referred_to,
					     expr_type)
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		|| !real_lvalue_p (expr))
	      return error_mark_node;
	    else
	      return expr;
	  }
      }
      break;

    case RECORD_TYPE:
      {
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	if (!TYPE_PTRMEMFUNC_P (type))
	  /* This handles templates like
	       template<class T, T t> void f();
	     when T is substituted with any class.  The second template
	     parameter becomes invalid and the template candidate is
	     rejected.  */
	  return error_mark_node;
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	/* For a non-type template-parameter of type pointer to member
	   function, no conversions apply.  If the template-argument
	   represents a set of overloaded member functions, the
	   matching member function is selected from the set
	   (_over.over_).  */

	if (!TYPE_PTRMEMFUNC_P (expr_type) && 
	    expr_type != unknown_type_node)
	  return error_mark_node;

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	if (TREE_CODE (expr) == PTRMEM_CST)
2970 2971
	  {
	    /* A ptr-to-member constant.  */
2972
	    if (!same_type_p (type, expr_type))
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	      return error_mark_node;
	    else 
	      return expr;
	  }

	if (TREE_CODE (expr) != ADDR_EXPR)
	  return error_mark_node;

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	expr = instantiate_type (type, expr, 0);
2982
	
2983
	if (expr == error_mark_node)
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	  return error_mark_node;

2986
	my_friendly_assert (same_type_p (type, TREE_TYPE (expr)),
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			    0);
	return expr;
      }
      break;

    default:
      /* All non-type parameters must have one of these types.  */
      my_friendly_abort (0);
      break;
    }

  return error_mark_node;
}

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/* Return 1 if PARM_PARMS and ARG_PARMS matches using rule for 
   template template parameters.  Both PARM_PARMS and ARG_PARMS are 
   vectors of TREE_LIST nodes containing TYPE_DECL, TEMPLATE_DECL 
   or PARM_DECL.
   
   ARG_PARMS may contain more parameters than PARM_PARMS.  If this is 
   the case, then extra parameters must have default arguments.

   Consider the example:
     template <class T, class Allocator = allocator> class vector;
     template<template <class U> class TT> class C;

   C<vector> is a valid instantiation.  PARM_PARMS for the above code 
   contains a TYPE_DECL (for U),  ARG_PARMS contains two TYPE_DECLs (for 
   T and Allocator) and OUTER_ARGS contains the argument that is used to 
   substitute the TT parameter.  */

static int
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coerce_template_template_parms (parm_parms, arg_parms, complain, 
				in_decl, outer_args)
     tree parm_parms, arg_parms;
     int complain;
     tree in_decl, outer_args;
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{
  int nparms, nargs, i;
  tree parm, arg;

  my_friendly_assert (TREE_CODE (parm_parms) == TREE_VEC, 0);
  my_friendly_assert (TREE_CODE (arg_parms) == TREE_VEC, 0);

  nparms = TREE_VEC_LENGTH (parm_parms);
  nargs = TREE_VEC_LENGTH (arg_parms);

  /* The rule here is opposite of coerce_template_parms.  */
  if (nargs < nparms
      || (nargs > nparms
	  && TREE_PURPOSE (TREE_VEC_ELT (arg_parms, nparms)) == NULL_TREE))
    return 0;

  for (i = 0; i < nparms; ++i)
    {
      parm = TREE_VALUE (TREE_VEC_ELT (parm_parms, i));
      arg = TREE_VALUE (TREE_VEC_ELT (arg_parms, i));

      if (arg == NULL_TREE || arg == error_mark_node
          || parm == NULL_TREE || parm == error_mark_node)
	return 0;

      if (TREE_CODE (arg) != TREE_CODE (parm))
        return 0;

      switch (TREE_CODE (parm))
	{
	case TYPE_DECL:
	  break;

	case TEMPLATE_DECL:
	  /* We encounter instantiations of templates like
	       template <template <template <class> class> class TT>
	       class C;  */
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	  {
	    tree parmparm = DECL_INNERMOST_TEMPLATE_PARMS (parm);
	    tree argparm = DECL_INNERMOST_TEMPLATE_PARMS (arg);

	    if (!coerce_template_template_parms (parmparm, argparm, 
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					         complain, in_decl,
						 outer_args))
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	      return 0;
	  }
	  break;
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	case PARM_DECL:
	  /* The tsubst call is used to handle cases such as
	       template <class T, template <T> class TT> class D;  
	     i.e. the parameter list of TT depends on earlier parameters.  */
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	  if (!same_type_p (tsubst (TREE_TYPE (parm), outer_args, 
				    complain, in_decl),
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			    TREE_TYPE (arg)))
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	    return 0;
	  break;
	  
	default:
	  my_friendly_abort (0);
	}
    }
  return 1;
}

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/* Convert the indicated template ARG as necessary to match the
   indicated template PARM.  Returns the converted ARG, or
   error_mark_node if the conversion was unsuccessful.  Error messages
   are issued if COMPLAIN is non-zero.  This conversion is for the Ith
   parameter in the parameter list.  ARGS is the full set of template
   arguments deduced so far.  */

static tree
convert_template_argument (parm, arg, args, complain, i, in_decl)
     tree parm;
     tree arg;
     tree args;
     int complain;
     int i;
     tree in_decl;
{
  tree val;
  tree inner_args;
  int is_type, requires_type, is_tmpl_type, requires_tmpl_type;
  
  inner_args = innermost_args (args);

  if (TREE_CODE (arg) == TREE_LIST 
      && TREE_TYPE (arg) != NULL_TREE
      && TREE_CODE (TREE_TYPE (arg)) == OFFSET_TYPE)
    {  
      /* The template argument was the name of some
	 member function.  That's usually
	 illegal, but static members are OK.  In any
	 case, grab the underlying fields/functions
	 and issue an error later if required.  */
      arg = TREE_VALUE (arg);
      TREE_TYPE (arg) = unknown_type_node;
    }

  requires_tmpl_type = TREE_CODE (parm) == TEMPLATE_DECL;
  requires_type = (TREE_CODE (parm) == TYPE_DECL
		   || requires_tmpl_type);

  /* Check if it is a class template.  If REQUIRES_TMPL_TYPE is true,
     we also accept implicitly created TYPE_DECL as a valid argument.
     This is necessary to handle the case where we pass a template name
     to a template template parameter in a scope where we've derived from
     in instantiation of that template, so the template name refers to that
     instantiation.  We really ought to handle this better.  */
  is_tmpl_type 
    = ((TREE_CODE (arg) == TEMPLATE_DECL
	&& TREE_CODE (DECL_TEMPLATE_RESULT (arg)) == TYPE_DECL)
       || (TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM
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	   && !TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (arg))
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       || (TREE_CODE (arg) == RECORD_TYPE
	   && CLASSTYPE_TEMPLATE_INFO (arg)
	   && TREE_CODE (TYPE_NAME (arg)) == TYPE_DECL
	   && DECL_ARTIFICIAL (TYPE_NAME (arg))
	   && requires_tmpl_type
3144
	   && is_base_of_enclosing_class (arg, current_class_type)));
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  if (is_tmpl_type && TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM)
    arg = TYPE_STUB_DECL (arg);
  else if (is_tmpl_type && TREE_CODE (arg) == RECORD_TYPE)
    arg = CLASSTYPE_TI_TEMPLATE (arg);

  is_type = TREE_CODE_CLASS (TREE_CODE (arg)) == 't' || is_tmpl_type;

  if (requires_type && ! is_type && TREE_CODE (arg) == SCOPE_REF
      && TREE_CODE (TREE_OPERAND (arg, 0)) == TEMPLATE_TYPE_PARM)
    {
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      cp_pedwarn ("to refer to a type member of a template parameter,");
      cp_pedwarn ("  use `typename %E'", arg);
3157 3158
      
      arg = make_typename_type (TREE_OPERAND (arg, 0),
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				TREE_OPERAND (arg, 1),
				complain);
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      is_type = 1;
    }
  if (is_type != requires_type)
    {
      if (in_decl)
	{
	  if (complain)
	    {
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	      cp_error ("type/value mismatch at argument %d in template parameter list for `%D'",
3170 3171
			i + 1, in_decl);
	      if (is_type)
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		cp_error ("  expected a constant of type `%T', got `%T'",
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			  TREE_TYPE (parm),
			  (is_tmpl_type ? DECL_NAME (arg) : arg));
	      else
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		cp_error ("  expected a type, got `%E'", arg);
3177 3178 3179 3180 3181 3182 3183 3184
	    }
	}
      return error_mark_node;
    }
  if (is_tmpl_type ^ requires_tmpl_type)
    {
      if (in_decl && complain)
	{
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	  cp_error ("type/value mismatch at argument %d in template parameter list for `%D'",
3186 3187
		    i + 1, in_decl);
	  if (is_tmpl_type)
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	    cp_error ("  expected a type, got `%T'", DECL_NAME (arg));
3189
	  else
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	    cp_error ("  expected a class template, got `%T'", arg);
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	}
      return error_mark_node;
    }
      
  if (is_type)
    {
      if (requires_tmpl_type)
	{
	  tree parmparm = DECL_INNERMOST_TEMPLATE_PARMS (parm);
	  tree argparm = DECL_INNERMOST_TEMPLATE_PARMS (arg);

3202
	  if (coerce_template_template_parms (parmparm, argparm, complain,
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					      in_decl, inner_args))
	    {
	      val = arg;
		  
	      /* TEMPLATE_TEMPLATE_PARM node is preferred over 
		 TEMPLATE_DECL.  */
	      if (val != error_mark_node 
		  && DECL_TEMPLATE_TEMPLATE_PARM_P (val))
		val = TREE_TYPE (val);
	    }
	  else
	    {
	      if (in_decl && complain)
		{
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3217
		  cp_error ("type/value mismatch at argument %d in template parameter list for `%D'",
3218
			    i + 1, in_decl);
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		  cp_error ("  expected a template of type `%D', got `%D'", parm, arg);
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		}
		  
	      val = error_mark_node;
	    }
	}
      else
	{
	  val = groktypename (arg);
	  if (! processing_template_decl)
	    {
	      /* [basic.link]: A name with no linkage (notably, the
		 name of a class or enumeration declared in a local
		 scope) shall not be used to declare an entity with
		 linkage.  This implies that names with no linkage
		 cannot be used as template arguments.  */
	      tree t = no_linkage_check (val);
	      if (t)
		{
		  if (ANON_AGGRNAME_P (TYPE_IDENTIFIER (t)))
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3239 3240
		    cp_pedwarn
		      ("template-argument `%T' uses anonymous type", val);
3241
		  else
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		    cp_error
		      ("template-argument `%T' uses local type `%T'",
3244 3245 3246 3247 3248 3249 3250 3251
		       val, t);
		  return error_mark_node;
		}
	    }
	}
    }
  else
    {
3252
      tree t = tsubst (TREE_TYPE (parm), args, complain, in_decl);
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      if (processing_template_decl)
	arg = maybe_fold_nontype_arg (arg);

      if (!uses_template_parms (arg) && !uses_template_parms (t))
	/* We used to call digest_init here.  However, digest_init
	   will report errors, which we don't want when complain
	   is zero.  More importantly, digest_init will try too
	   hard to convert things: for example, `0' should not be
	   converted to pointer type at this point according to
	   the standard.  Accepting this is not merely an
	   extension, since deciding whether or not these
	   conversions can occur is part of determining which
	   function template to call, or whether a given epxlicit
	   argument specification is legal.  */
	val = convert_nontype_argument (t, arg);
      else
	val = arg;

      if (val == NULL_TREE)
	val = error_mark_node;
      else if (val == error_mark_node && complain)
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	cp_error ("could not convert template argument `%E' to `%T'", 
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		  arg, t);
    }

  return val;
}

/* Convert all template arguments to their appropriate types, and
   return a vector containing the innermost resulting template
   arguments.  If any error occurs, return error_mark_node, and, if
   COMPLAIN is non-zero, issue an error message.  Some error messages
   are issued even if COMPLAIN is zero; for instance, if a template
   argument is composed from a local class.
3288 3289 3290 3291

   If REQUIRE_ALL_ARGUMENTS is non-zero, all arguments must be
   provided in ARGLIST, or else trailing parameters must have default
   values.  If REQUIRE_ALL_ARGUMENTS is zero, we will attempt argument
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   deduction for any unspecified trailing arguments.  

   The resulting TREE_VEC is allocated on a temporary obstack, and
   must be explicitly copied if it will be permanent.  */
3296
   
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3297
static tree
3298
coerce_template_parms (parms, args, in_decl,
3299
		       complain,
3300
		       require_all_arguments)
3301
     tree parms, args;
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     tree in_decl;
3303 3304
     int complain;
     int require_all_arguments;
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{
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  int nparms, nargs, i, lost = 0;
3307
  tree inner_args;
3308 3309
  tree new_args;
  tree new_inner_args;
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3310

3311
  inner_args = innermost_args (args);
3312
  nargs = NUM_TMPL_ARGS (inner_args);
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  nparms = TREE_VEC_LENGTH (parms);

  if (nargs > nparms
      || (nargs < nparms
3317
	  && require_all_arguments
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	  && TREE_PURPOSE (TREE_VEC_ELT (parms, nargs)) == NULL_TREE))
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    {
3320 3321
      if (complain) 
	{
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	  cp_error ("wrong number of template arguments (%d, should be %d)",
3323
		    nargs, nparms);
3324 3325
	  
	  if (in_decl)
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3326
	    cp_error_at ("provided for `%D'", in_decl);
3327 3328
	}

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      return error_mark_node;
    }

3332
  new_inner_args = make_tree_vec (nparms);
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  new_args = add_outermost_template_args (args, new_inner_args);
  for (i = 0; i < nparms; i++)
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    {
3336 3337
      tree arg;
      tree parm;
3338

3339 3340
      /* Get the Ith template parameter.  */
      parm = TREE_VEC_ELT (parms, i);
3341

3342 3343
      /* Calculate the Ith argument.  */
      if (inner_args && TREE_CODE (inner_args) == TREE_LIST)
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	{
3345 3346
	  arg = TREE_VALUE (inner_args);
	  inner_args = TREE_CHAIN (inner_args);
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	}
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      else if (i < nargs)
	arg = TREE_VEC_ELT (inner_args, i);
      /* If no template argument was supplied, look for a default
	 value.  */
      else if (TREE_PURPOSE (parm) == NULL_TREE)
	{
	  /* There was no default value.  */
	  my_friendly_assert (!require_all_arguments, 0);
	  break;
	}
      else if (TREE_CODE (TREE_VALUE (parm)) == TYPE_DECL)
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	arg = tsubst (TREE_PURPOSE (parm), new_args, complain, in_decl);
3360
      else
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	arg = tsubst_expr (TREE_PURPOSE (parm), new_args, complain,
			   in_decl);
3363

3364
      /* Now, convert the Ith argument, as necessary.  */
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      if (arg == NULL_TREE)
	/* We're out of arguments.  */
	{
	  my_friendly_assert (!require_all_arguments, 0);
	  break;
	}
3371
      else if (arg == error_mark_node)
3372
	{
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	  cp_error ("template argument %d is invalid", i + 1);
3374
	  arg = error_mark_node;
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	}
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      else 
	arg = convert_template_argument (TREE_VALUE (parm), 
					 arg, new_args, complain, i,
					 in_decl); 
      
      if (arg == error_mark_node)
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	lost++;
3383
      TREE_VEC_ELT (new_inner_args, i) = arg;
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    }
3385

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  if (lost)
    return error_mark_node;
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  return new_inner_args;
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}

3392 3393
/* Returns 1 if template args OT and NT are equivalent.  */

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3394
static int
3395 3396 3397 3398 3399 3400 3401 3402 3403 3404 3405
template_args_equal (ot, nt)
     tree ot, nt;
{
  if (nt == ot)
    return 1;
  if (TREE_CODE (nt) != TREE_CODE (ot))
    return 0;
  if (TREE_CODE (nt) == TREE_VEC)
    /* For member templates */
    return comp_template_args (ot, nt);
  else if (TREE_CODE_CLASS (TREE_CODE (ot)) == 't')
3406
    return same_type_p (ot, nt);
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  else
    return (cp_tree_equal (ot, nt) > 0);
}

/* Returns 1 iff the OLDARGS and NEWARGS are in fact identical sets
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   of template arguments.  Returns 0 otherwise.  */

3414
int
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comp_template_args (oldargs, newargs)
     tree oldargs, newargs;
{
  int i;

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  if (TREE_VEC_LENGTH (oldargs) != TREE_VEC_LENGTH (newargs))
    return 0;

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  for (i = 0; i < TREE_VEC_LENGTH (oldargs); ++i)
    {
      tree nt = TREE_VEC_ELT (newargs, i);
      tree ot = TREE_VEC_ELT (oldargs, i);

3428
      if (! template_args_equal (ot, nt))
3429
	return 0;
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    }
  return 1;
}

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/* Given class template name and parameter list, produce a user-friendly name
   for the instantiation.  */
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static char *
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mangle_class_name_for_template (name, parms, arglist)
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     char *name;
     tree parms, arglist;
{
  static struct obstack scratch_obstack;
  static char *scratch_firstobj;
  int i, nparms;

  if (!scratch_firstobj)
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    gcc_obstack_init (&scratch_obstack);
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  else
    obstack_free (&scratch_obstack, scratch_firstobj);
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  scratch_firstobj = obstack_alloc (&scratch_obstack, 1);
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#define ccat(c)	obstack_1grow (&scratch_obstack, (c));
#define cat(s)	obstack_grow (&scratch_obstack, (s), strlen (s))

  cat (name);
  ccat ('<');
  nparms = TREE_VEC_LENGTH (parms);
3458
  arglist = innermost_args (arglist);
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  my_friendly_assert (nparms == TREE_VEC_LENGTH (arglist), 268);
  for (i = 0; i < nparms; i++)
    {
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      tree parm = TREE_VALUE (TREE_VEC_ELT (parms, i));
      tree arg = TREE_VEC_ELT (arglist, i);
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      if (i)
	ccat (',');

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      if (TREE_CODE (parm) == TYPE_DECL)
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	{
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3470
	  cat (type_as_string (arg, TS_CHASE_TYPEDEFS));
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3471 3472
	  continue;
	}
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      else if (TREE_CODE (parm) == TEMPLATE_DECL)
	{
	  if (TREE_CODE (arg) == TEMPLATE_DECL)
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3476 3477 3478
	    {
	      /* Already substituted with real template.  Just output 
		 the template name here */
3479
              tree context = DECL_CONTEXT (arg);
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              if (context)
                {
                  /* The template may be defined in a namespace, or
                     may be a member template.  */
                  my_friendly_assert (TREE_CODE (context) == NAMESPACE_DECL
                                      || CLASS_TYPE_P (context), 
                                      980422);
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		  cat(decl_as_string (DECL_CONTEXT (arg), 0));
		  cat("::");
		}
	      cat (IDENTIFIER_POINTER (DECL_NAME (arg)));
	    }
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	  else
	    /* Output the parameter declaration */
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	    cat (type_as_string (arg, TS_CHASE_TYPEDEFS));
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	  continue;
	}
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      else
	my_friendly_assert (TREE_CODE (parm) == PARM_DECL, 269);

      if (TREE_CODE (arg) == TREE_LIST)
	{
	  /* New list cell was built because old chain link was in
	     use.  */
	  my_friendly_assert (TREE_PURPOSE (arg) == NULL_TREE, 270);
	  arg = TREE_VALUE (arg);
	}
      /* No need to check arglist against parmlist here; we did that
	 in coerce_template_parms, called from lookup_template_class.  */
      cat (expr_as_string (arg, 0));
    }
  {
    char *bufp = obstack_next_free (&scratch_obstack);
    int offset = 0;
    while (bufp[offset - 1] == ' ')
      offset--;
    obstack_blank_fast (&scratch_obstack, offset);

    /* B<C<char> >, not B<C<char>> */
    if (bufp[offset - 1] == '>')
      ccat (' ');
  }
  ccat ('>');
  ccat ('\0');
  return (char *) obstack_base (&scratch_obstack);
}

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3527
static tree
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classtype_mangled_name (t)
     tree t;
{
  if (CLASSTYPE_TEMPLATE_INFO (t)
3532 3533
      /* Specializations have already had their names set up in
	 lookup_template_class.  */
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      && !CLASSTYPE_TEMPLATE_SPECIALIZATION (t))
    {
      tree tmpl = most_general_template (CLASSTYPE_TI_TEMPLATE (t));

3538 3539
      /* For non-primary templates, the template parameters are
	 implicit from their surrounding context.  */
3540 3541 3542 3543 3544 3545 3546 3547 3548 3549 3550
      if (PRIMARY_TEMPLATE_P (tmpl))
	{
	  tree name = DECL_NAME (tmpl);
	  char *mangled_name = mangle_class_name_for_template
	    (IDENTIFIER_POINTER (name), 
	     DECL_INNERMOST_TEMPLATE_PARMS (tmpl),
	     CLASSTYPE_TI_ARGS (t));
	  tree id = get_identifier (mangled_name);
	  IDENTIFIER_TEMPLATE (id) = name;
	  return id;
	}
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    }
3552 3553

  return TYPE_IDENTIFIER (t);
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}

static void
add_pending_template (d)
     tree d;
{
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  tree ti;

  if (TREE_CODE_CLASS (TREE_CODE (d)) == 't')
    ti = CLASSTYPE_TEMPLATE_INFO (d);
  else
    ti = DECL_TEMPLATE_INFO (d);

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  if (TI_PENDING_TEMPLATE_FLAG (ti))
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    return;

3570
  *template_tail = tree_cons (build_srcloc_here (), d, NULL_TREE);
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  template_tail = &TREE_CHAIN (*template_tail);
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  TI_PENDING_TEMPLATE_FLAG (ti) = 1;
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}

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/* Return a TEMPLATE_ID_EXPR corresponding to the indicated FNS (which
   may be either a _DECL or an overloaded function or an
   IDENTIFIER_NODE), and ARGLIST.  */

tree
lookup_template_function (fns, arglist)
     tree fns, arglist;
{
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3584
  tree type;
3585

3586 3587
  if (fns == NULL_TREE)
    {
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3588
      cp_error ("non-template used as template");
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      return error_mark_node;
    }

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  type = TREE_TYPE (fns);
  if (TREE_CODE (fns) == OVERLOAD || !type)
    type = unknown_type_node;

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  if (processing_template_decl)
    return build_min (TEMPLATE_ID_EXPR, type, fns, arglist);  
  else
    return build (TEMPLATE_ID_EXPR, type, fns, arglist);
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}

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/* Within the scope of a template class S<T>, the name S gets bound
   (in build_self_reference) to a TYPE_DECL for the class, not a
   TEMPLATE_DECL.  If DECL is a TYPE_DECL for current_class_type,
   or one of its enclosing classes, and that type is a template,
   return the associated TEMPLATE_DECL.  Otherwise, the original
   DECL is returned.  */

3609
static tree
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maybe_get_template_decl_from_type_decl (decl)
     tree decl;
{
  return (decl != NULL_TREE
	  && TREE_CODE (decl) == TYPE_DECL 
	  && DECL_ARTIFICIAL (decl)
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3616
	  && CLASS_TYPE_P (TREE_TYPE (decl))
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	  && CLASSTYPE_TEMPLATE_INFO (TREE_TYPE (decl))) 
    ? CLASSTYPE_TI_TEMPLATE (TREE_TYPE (decl)) : decl;
}
3620

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3621 3622 3623 3624
/* Given an IDENTIFIER_NODE (type TEMPLATE_DECL) and a chain of
   parameters, find the desired type.

   D1 is the PTYPENAME terminal, and ARGLIST is the list of arguments.
3625 3626
   (Actually ARGLIST may be either a TREE_LIST or a TREE_VEC.  It will
   be a TREE_LIST if called directly from the parser, and a TREE_VEC
3627
   otherwise.)  Since ARGLIST is build on the temp_decl_obstack, we must
3628 3629
   copy it here to keep it from being reclaimed when the decl storage
   is reclaimed.
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3630 3631

   IN_DECL, if non-NULL, is the template declaration we are trying to
3632 3633
   instantiate.  

3634 3635 3636
   If ENTERING_SCOPE is non-zero, we are about to enter the scope of
   the class we are looking up.

3637 3638 3639
   If the template class is really a local class in a template
   function, then the FUNCTION_CONTEXT is the function in which it is
   being instantiated.  */
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3640

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3641
tree
3642
lookup_template_class (d1, arglist, in_decl, context, entering_scope)
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     tree d1, arglist;
     tree in_decl;
3645
     tree context;
3646
     int entering_scope;
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3647
{
3648
  tree template = NULL_TREE, parmlist;
3649
  tree t;
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3650 3651 3652

  if (TREE_CODE (d1) == IDENTIFIER_NODE)
    {
3653 3654 3655
      if (IDENTIFIER_VALUE (d1) 
	  && DECL_TEMPLATE_TEMPLATE_PARM_P (IDENTIFIER_VALUE (d1)))
	template = IDENTIFIER_VALUE (d1);
3656 3657
      else
	{
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3658 3659
	  if (context)
	    push_decl_namespace (context);
3660 3661
	  template = lookup_name (d1, /*prefer_type=*/0);
	  template = maybe_get_template_decl_from_type_decl (template);
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3662 3663
	  if (context)
	    pop_decl_namespace ();
3664
	}
3665 3666
      if (template)
	context = DECL_CONTEXT (template);
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    }
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  else if (TREE_CODE (d1) == TYPE_DECL && IS_AGGR_TYPE (TREE_TYPE (d1)))
    {
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      tree type = TREE_TYPE (d1);

      /* If we are declaring a constructor, say A<T>::A<T>, we will get
	 an implicit typename for the second A.  Deal with it.  */
      if (TREE_CODE (type) == TYPENAME_TYPE && TREE_TYPE (type))
	type = TREE_TYPE (type);
	
      if (CLASSTYPE_TEMPLATE_INFO (type))
3678
	{
3679
	  template = CLASSTYPE_TI_TEMPLATE (type);
3680 3681
	  d1 = DECL_NAME (template);
	}
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3682
    }
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  else if (TREE_CODE (d1) == ENUMERAL_TYPE 
	   || (TREE_CODE_CLASS (TREE_CODE (d1)) == 't' 
	       && IS_AGGR_TYPE (d1)))
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3686
    {
3687
      template = TYPE_TI_TEMPLATE (d1);
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      d1 = DECL_NAME (template);
    }
3690 3691 3692 3693 3694 3695 3696
  else if (TREE_CODE (d1) == TEMPLATE_DECL
	   && TREE_CODE (DECL_RESULT (d1)) == TYPE_DECL)
    {
      template = d1;
      d1 = DECL_NAME (template);
      context = DECL_CONTEXT (template);
    }
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  else
    my_friendly_abort (272);
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3699 3700

  /* With something like `template <class T> class X class X { ... };'
3701 3702 3703 3704
     we could end up with D1 having nothing but an IDENTIFIER_VALUE.
     We don't want to do that, but we have to deal with the situation,
     so let's give them some syntax errors to chew on instead of a
     crash.  */
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3705
  if (! template)
3706 3707 3708 3709
    {
      cp_error ("`%T' is not a template", d1);
      return error_mark_node;
    }
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3710

3711 3712
  if (context == NULL_TREE)
    context = global_namespace;
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3713

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  if (TREE_CODE (template) != TEMPLATE_DECL)
    {
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3716
      cp_error ("non-template type `%T' used as a template", d1);
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3717
      if (in_decl)
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	cp_error_at ("for template declaration `%D'", in_decl);
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      return error_mark_node;
    }

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  if (DECL_TEMPLATE_TEMPLATE_PARM_P (template))
    {
      /* Create a new TEMPLATE_DECL and TEMPLATE_TEMPLATE_PARM node to store
         template arguments */

      tree parm = copy_template_template_parm (TREE_TYPE (template));
      tree template2 = TYPE_STUB_DECL (parm);
      tree arglist2;

      parmlist = DECL_INNERMOST_TEMPLATE_PARMS (template);

3733
      arglist2 = coerce_template_parms (parmlist, arglist, template, 1, 1);
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      if (arglist2 == error_mark_node)
	return error_mark_node;

3737
      TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (parm)
3738
	= tree_cons (template2, arglist2, NULL_TREE);
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      TYPE_SIZE (parm) = 0;
      return parm;
    }
3742
  else 
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3743
    {
3744
      tree template_type = TREE_TYPE (template);
3745
      tree gen_tmpl;
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      tree type_decl;
      tree found = NULL_TREE;
      int arg_depth;
      int parm_depth;
3750
      int is_partial_instantiation;
3751

3752 3753
      gen_tmpl = most_general_template (template);
      parmlist = DECL_TEMPLATE_PARMS (gen_tmpl);
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      parm_depth = TMPL_PARMS_DEPTH (parmlist);
      arg_depth = TMPL_ARGS_DEPTH (arglist);

      if (arg_depth == 1 && parm_depth > 1)
	{
3759
	  /* We've been given an incomplete set of template arguments.
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	     For example, given:

	       template <class T> struct S1 {
	         template <class U> struct S2 {};
		 template <class U> struct S2<U*> {};
	        };
	     
	     we will be called with an ARGLIST of `U*', but the
	     TEMPLATE will be `template <class T> template
	     <class U> struct S1<T>::S2'.  We must fill in the missing
	     arguments.  */
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	  arglist 
	    = add_outermost_template_args (TYPE_TI_ARGS (TREE_TYPE (template)),
					   arglist);
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	  arg_depth = TMPL_ARGS_DEPTH (arglist);
	}
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3776

3777
      /* Now we should enough arguments.  */
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      my_friendly_assert (parm_depth == arg_depth, 0);
      
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      /* From here on, we're only interested in the most general
	 template.  */
      template = gen_tmpl;

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      /* Calculate the BOUND_ARGS.  These will be the args that are
	 actually tsubst'd into the definition to create the
	 instantiation.  */
      if (parm_depth > 1)
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	{
	  /* We have multiple levels of arguments to coerce, at once.  */
	  int i;
3791
	  int saved_depth = TMPL_ARGS_DEPTH (arglist);
3792

3793
	  tree bound_args = make_tree_vec (parm_depth);
3794
	  
3795
	  for (i = saved_depth,
3796
		 t = DECL_TEMPLATE_PARMS (template); 
3797
	       i > 0 && t != NULL_TREE;
3798
	       --i, t = TREE_CHAIN (t))
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	    {
	      tree a = coerce_template_parms (TREE_VALUE (t),
					      arglist, template, 1, 1);
	      SET_TMPL_ARGS_LEVEL (bound_args, i, a);

	      /* We temporarily reduce the length of the ARGLIST so
		 that coerce_template_parms will see only the arguments
		 corresponding to the template parameters it is
		 examining.  */
	      TREE_VEC_LENGTH (arglist)--;
	    }

	  /* Restore the ARGLIST to its full size.  */
	  TREE_VEC_LENGTH (arglist) = saved_depth;

3814
	  arglist = bound_args;
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	}
      else
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	arglist
	  = coerce_template_parms (INNERMOST_TEMPLATE_PARMS (parmlist),
				   innermost_args (arglist),
				   template, 1, 1);

      if (arglist == error_mark_node)
	/* We were unable to bind the arguments.  */
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	return error_mark_node;

3826 3827 3828 3829 3830 3831 3832 3833
      /* In the scope of a template class, explicit references to the
	 template class refer to the type of the template, not any
	 instantiation of it.  For example, in:
	 
	   template <class T> class C { void f(C<T>); }

	 the `C<T>' is just the same as `C'.  Outside of the
	 class, however, such a reference is an instantiation.  */
3834
      if (comp_template_args (TYPE_TI_ARGS (template_type),
3835 3836 3837 3838 3839
			      arglist))
	{
	  found = template_type;
	  
	  if (!entering_scope && PRIMARY_TEMPLATE_P (template))
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3840
	    {
3841 3842 3843 3844 3845 3846 3847 3848 3849 3850
	      tree ctx;
	      
	      /* Note that we use DECL_CONTEXT, rather than
		 CP_DECL_CONTEXT, so that the termination test is
		 always just `ctx'.  We're not interested in namepace
		 scopes.  */
	      for (ctx = current_class_type; 
		   ctx; 
		   ctx = (TREE_CODE_CLASS (TREE_CODE (ctx)) == 't') 
		     ? TYPE_CONTEXT (ctx) : DECL_CONTEXT (ctx))
3851
		if (same_type_p (ctx, template_type))
3852 3853 3854 3855 3856 3857 3858
		  break;
	      
	      if (!ctx)
		/* We're not in the scope of the class, so the
		   TEMPLATE_TYPE is not the type we want after
		   all.  */
		found = NULL_TREE;
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3859 3860
	    }
	}
3861 3862
      
      if (!found)
3863
	{
3864 3865 3866 3867
	  for (found = DECL_TEMPLATE_INSTANTIATIONS (template);
	       found; found = TREE_CHAIN (found))
	    if (comp_template_args (TREE_PURPOSE (found), arglist))
	      break;
3868

3869 3870
	  if (found)
	    found = TREE_VALUE (found);
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3871
	}
3872

3873
      if (found)
3874
	return found;
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3875

3876
      /* This type is a "partial instantiation" if any of the template
3877 3878 3879
	 arguments still inolve template parameters.  Note that we set
	 IS_PARTIAL_INSTANTIATION for partial specializations as
	 well.  */
3880 3881
      is_partial_instantiation = uses_template_parms (arglist);

3882 3883 3884 3885 3886 3887 3888 3889 3890 3891 3892 3893 3894 3895 3896
      if (!is_partial_instantiation 
	  && !PRIMARY_TEMPLATE_P (template)
	  && TREE_CODE (CP_DECL_CONTEXT (template)) == NAMESPACE_DECL)
	{
	  found = xref_tag_from_type (TREE_TYPE (template),
				      DECL_NAME (template),
				      /*globalize=*/1);
	  return found;
	}
				    
      /* Since we didn't find the type, we'll have to create it.
	 Since we'll be saving this type on the
	 DECL_TEMPLATE_INSTANTIATIONS list, it must be permanent.  */
      push_obstacks (&permanent_obstack, &permanent_obstack);
      
3897
      /* Create the type.  */
3898 3899
      if (TREE_CODE (template_type) == ENUMERAL_TYPE)
	{
3900
	  if (!is_partial_instantiation)
3901
	    t = start_enum (TYPE_IDENTIFIER (template_type));
3902
	  else
3903
	    /* We don't want to call start_enum for this type, since
3904 3905 3906 3907 3908 3909 3910 3911 3912 3913 3914 3915
	       the values for the enumeration constants may involve
	       template parameters.  And, no one should be interested
	       in the enumeration constants for such a type.  */
	    t = make_node (ENUMERAL_TYPE);
	}
      else
	{
	  t = make_lang_type (TREE_CODE (template_type));
	  CLASSTYPE_DECLARED_CLASS (t) 
	    = CLASSTYPE_DECLARED_CLASS (template_type);
	  CLASSTYPE_GOT_SEMICOLON (t) = 1;
	  SET_CLASSTYPE_IMPLICIT_INSTANTIATION (t);
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3916
	  TYPE_FOR_JAVA (t) = TYPE_FOR_JAVA (template_type);
3917 3918
	}

3919
      /* If we called start_enum above, this information will already
3920 3921 3922 3923
	 be set up.  */
      if (!TYPE_NAME (t))
	{
	  TYPE_CONTEXT (t) = FROB_CONTEXT (context);
3924
	  
3925
	  type_decl = create_implicit_typedef (DECL_NAME (template), t);
3926
	  DECL_CONTEXT (type_decl) = TYPE_CONTEXT (t);
3927
	  TYPE_STUB_DECL (t) = type_decl;
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	  DECL_SOURCE_FILE (type_decl) 
	    = DECL_SOURCE_FILE (TYPE_STUB_DECL (template_type));
	  DECL_SOURCE_LINE (type_decl) 
	    = DECL_SOURCE_LINE (TYPE_STUB_DECL (template_type));
	}
      else
	type_decl = TYPE_NAME (t);
3935

3936 3937 3938 3939 3940 3941 3942 3943 3944 3945 3946 3947 3948 3949 3950 3951 3952 3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965 3966 3967 3968 3969 3970 3971 3972 3973 3974 3975 3976 3977 3978 3979 3980 3981 3982 3983 3984 3985
      /* Set up the template information.  We have to figure out which
	 template is the immediate parent if this is a full
	 instantiation.  */
      if (parm_depth == 1 || is_partial_instantiation
	  || !PRIMARY_TEMPLATE_P (template))
	/* This case is easy; there are no member templates involved.  */
	found = template;
      else
	{
	  /* This is a full instantiation of a member template.  There
	     should be some partial instantiation of which this is an
	     instance.  */

	  for (found = DECL_TEMPLATE_INSTANTIATIONS (template);
	       found; found = TREE_CHAIN (found))
	    {
	      int success;
	      tree tmpl = CLASSTYPE_TI_TEMPLATE (TREE_VALUE (found));

	      /* We only want partial instantiations, here, not
		 specializations or full instantiations.  */
	      if (CLASSTYPE_TEMPLATE_SPECIALIZATION (TREE_VALUE (found))
		  || !uses_template_parms (TREE_VALUE (found)))
		continue;

	      /* Temporarily reduce by one the number of levels in the
		 ARGLIST and in FOUND so as to avoid comparing the
		 last set of arguments.  */
	      TREE_VEC_LENGTH (arglist)--;
	      TREE_VEC_LENGTH (TREE_PURPOSE (found)) --;

	      /* See if the arguments match.  If they do, then TMPL is
		 the partial instantiation we want.  */
	      success = comp_template_args (TREE_PURPOSE (found), arglist);

	      /* Restore the argument vectors to their full size.  */
	      TREE_VEC_LENGTH (arglist)++;
	      TREE_VEC_LENGTH (TREE_PURPOSE (found))++;

	      if (success)
		{
		  found = tmpl;
		  break;
		}
	    }

	  if (!found)
	    my_friendly_abort (0);
	}

3986
      SET_TYPE_TEMPLATE_INFO (t,
3987
			      tree_cons (found, arglist, NULL_TREE));  
3988 3989 3990 3991 3992 3993
      DECL_TEMPLATE_INSTANTIATIONS (template) 
	= tree_cons (arglist, t, 
		     DECL_TEMPLATE_INSTANTIATIONS (template));

      if (TREE_CODE (t) == ENUMERAL_TYPE 
	  && !is_partial_instantiation)
3994 3995 3996 3997 3998 3999 4000 4001
	/* Now that the type has been registered on the instantiations
	   list, we set up the enumerators.  Because the enumeration
	   constants may involve the enumeration type itself, we make
	   sure to register the type first, and then create the
	   constants.  That way, doing tsubst_expr for the enumeration
	   constants won't result in recursive calls here; we'll find
	   the instantiation and exit above.  */
	tsubst_enum (template_type, t, arglist);
4002 4003 4004

      /* We're done with the permanent obstack, now.  */
      pop_obstacks ();
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4005

4006 4007
      /* Reset the name of the type, now that CLASSTYPE_TEMPLATE_INFO
	 is set up.  */
4008 4009
      if (TREE_CODE (t) != ENUMERAL_TYPE)
	DECL_NAME (type_decl) = classtype_mangled_name (t);
4010
      DECL_ASSEMBLER_NAME (type_decl) = DECL_NAME (type_decl);
4011
      if (!is_partial_instantiation)
4012 4013 4014
	{
	  DECL_ASSEMBLER_NAME (type_decl)
	    = get_identifier (build_overload_name (t, 1, 1));
4015 4016 4017 4018 4019

	  /* For backwards compatibility; code that uses
	     -fexternal-templates expects looking up a template to
	     instantiate it.  I think DDD still relies on this.
	     (jason 8/20/1998) */
4020 4021
	  if (TREE_CODE (t) != ENUMERAL_TYPE
	      && flag_external_templates
4022 4023 4024 4025 4026
	      && CLASSTYPE_INTERFACE_KNOWN (TREE_TYPE (template))
	      && ! CLASSTYPE_INTERFACE_ONLY (TREE_TYPE (template)))
	    add_pending_template (t);
	}
      else
4027 4028 4029
	/* If the type makes use of template parameters, the
	   code that generates debugging information will crash.  */
	DECL_IGNORED_P (TYPE_STUB_DECL (t)) = 1;
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4030

4031 4032
      return t;
    }
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4033 4034
}

4035 4036 4037 4038 4039 4040 4041 4042
/* For each TEMPLATE_TYPE_PARM, TEMPLATE_TEMPLATE_PARM, or
   TEMPLATE_PARM_INDEX in T, call FN with the parameter and the DATA.
   If FN returns non-zero, the iteration is terminated, and
   for_each_template_parm returns 1.  Otherwise, the iteration
   continues.  If FN never returns a non-zero value, the value
   returned by for_each_template_parm is 0.  If FN is NULL, it is
   considered to be the function which always returns 1.  */

4043
static int
4044
for_each_template_parm (t, fn, data)
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4045
     tree t;
4046 4047
     tree_fn_t fn;
     void* data;
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4048 4049 4050
{
  if (!t)
    return 0;
4051 4052 4053 4054 4055

  if (TREE_CODE_CLASS (TREE_CODE (t)) == 't'
      && for_each_template_parm (TYPE_CONTEXT (t), fn, data))
    return 1;

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4056 4057
  switch (TREE_CODE (t))
    {
4058
    case ARRAY_REF:
4059
    case OFFSET_REF:
4060 4061 4062
      return (for_each_template_parm (TREE_OPERAND (t, 0), fn, data)
	      || for_each_template_parm (TREE_OPERAND (t, 1), fn, data));

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    case IDENTIFIER_NODE:
      if (!IDENTIFIER_TEMPLATE (t))
	return 0;
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4066
      my_friendly_abort (42);
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4067 4068 4069 4070 4071 4072

      /* aggregates of tree nodes */
    case TREE_VEC:
      {
	int i = TREE_VEC_LENGTH (t);
	while (i--)
4073
	  if (for_each_template_parm (TREE_VEC_ELT (t, i), fn, data))
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4074 4075 4076 4077
	    return 1;
	return 0;
      }
    case TREE_LIST:
4078 4079
      if (for_each_template_parm (TREE_PURPOSE (t), fn, data)
	  || for_each_template_parm (TREE_VALUE (t), fn, data))
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4080
	return 1;
4081
      return for_each_template_parm (TREE_CHAIN (t), fn, data);
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4082

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4083 4084 4085 4086 4087
    case OVERLOAD:
      if (for_each_template_parm (OVL_FUNCTION (t), fn, data))
	return 1;
      return for_each_template_parm (OVL_CHAIN (t), fn, data);

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4088 4089 4090
      /* constructed type nodes */
    case POINTER_TYPE:
    case REFERENCE_TYPE:
4091
      return for_each_template_parm (TREE_TYPE (t), fn, data);
4092

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4093
    case RECORD_TYPE:
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4094
      if (TYPE_PTRMEMFUNC_FLAG (t))
4095 4096
	return for_each_template_parm (TYPE_PTRMEMFUNC_FN_TYPE (t),
				       fn, data);
4097 4098
      /* Fall through.  */

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4099
    case UNION_TYPE:
4100 4101
    case ENUMERAL_TYPE:
      if (! TYPE_TEMPLATE_INFO (t))
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4102
	return 0;
4103
      return for_each_template_parm (TREE_VALUE
4104
				     (TYPE_TEMPLATE_INFO (t)),
4105
				     fn, data);
4106 4107
    case METHOD_TYPE:
      if (for_each_template_parm (TYPE_METHOD_BASETYPE (t), fn, data))
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4108
	return 1;
4109 4110 4111 4112 4113 4114 4115 4116 4117 4118 4119 4120 4121 4122 4123 4124 4125 4126
      /* Fall through.  */

    case FUNCTION_TYPE:
      /* Check the parameter types.  Since default arguments are not
	 instantiated until they are needed, the TYPE_ARG_TYPES may
	 contain expressions that involve template parameters.  But,
	 no-one should be looking at them yet.  And, once they're
	 instantiated, they don't contain template parameters, so
	 there's no point in looking at them then, either.  */
      {
	tree parm;

	for (parm = TYPE_ARG_TYPES (t); parm; parm = TREE_CHAIN (parm))
	  if (for_each_template_parm (TREE_VALUE (parm), fn, data))
	    return 1;
      }

      /* Check the return type, too.  */
4127
      return for_each_template_parm (TREE_TYPE (t), fn, data);
4128

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4129
    case ARRAY_TYPE:
4130
      if (for_each_template_parm (TYPE_DOMAIN (t), fn, data))
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4131
	return 1;
4132
      return for_each_template_parm (TREE_TYPE (t), fn, data);
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4133
    case OFFSET_TYPE:
4134
      if (for_each_template_parm (TYPE_OFFSET_BASETYPE (t), fn, data))
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4135
	return 1;
4136
      return for_each_template_parm (TREE_TYPE (t), fn, data);
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4137 4138 4139

      /* decl nodes */
    case TYPE_DECL:
4140
      return for_each_template_parm (TREE_TYPE (t), fn, data);
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4141

4142 4143 4144
    case TEMPLATE_DECL:
      /* A template template parameter is encountered */
      if (DECL_TEMPLATE_TEMPLATE_PARM_P (t))
4145 4146
	return for_each_template_parm (TREE_TYPE (t), fn, data);
      /* Already substituted template template parameter */
4147 4148
      return 0;
      
4149
    case CONST_DECL:
4150
      if (for_each_template_parm (DECL_INITIAL (t), fn, data))
4151 4152 4153
	return 1;
      goto check_type_and_context;

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4154
    case FUNCTION_DECL:
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4155 4156
    case VAR_DECL:
      if (DECL_LANG_SPECIFIC (t) && DECL_TEMPLATE_INFO (t)
4157
	  && for_each_template_parm (DECL_TI_ARGS (t), fn, data))
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4158 4159 4160
	return 1;
      /* fall through */
    case PARM_DECL:
4161
    check_type_and_context:
4162
      if (for_each_template_parm (TREE_TYPE (t), fn, data))
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4163
	return 1;
4164 4165
      if (DECL_CONTEXT (t) 
	  && for_each_template_parm (DECL_CONTEXT (t), fn, data))
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4166 4167 4168 4169
	return 1;
      return 0;

    case CALL_EXPR:
4170 4171 4172
      return (for_each_template_parm (TREE_OPERAND (t, 0), fn, data)
	      || for_each_template_parm (TREE_OPERAND (t, 1), fn, data));
	
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4173
    case ADDR_EXPR:
4174
      return for_each_template_parm (TREE_OPERAND (t, 0), fn, data);
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4175 4176

      /* template parm nodes */
4177
    case TEMPLATE_TEMPLATE_PARM:
4178
      /* Record template parameters such as `T' inside `TT<T>'.  */
4179 4180
      if (TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (t)
	  && for_each_template_parm (TYPE_TI_ARGS (t), fn, data))
4181 4182
	return 1;
    case TEMPLATE_TYPE_PARM:
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4183
    case TEMPLATE_PARM_INDEX:
4184 4185 4186 4187
      if (fn)
	return (*fn)(t, data);
      else
	return 1;
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4188 4189 4190

      /* simple type nodes */
    case INTEGER_TYPE:
4191
      if (for_each_template_parm (TYPE_MIN_VALUE (t), fn, data))
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4192
	return 1;
4193
      return for_each_template_parm (TYPE_MAX_VALUE (t), fn, data);
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4194 4195

    case REAL_TYPE:
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4196
    case COMPLEX_TYPE:
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4197
    case VOID_TYPE:
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4198
    case BOOLEAN_TYPE:
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4199
    case NAMESPACE_DECL:
4200
    case FIELD_DECL:
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4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211 4212 4213 4214
      return 0;

      /* constants */
    case INTEGER_CST:
    case REAL_CST:
    case STRING_CST:
      return 0;

    case ERROR_MARK:
      /* Non-error_mark_node ERROR_MARKs are bad things.  */
      my_friendly_assert (t == error_mark_node, 274);
      /* NOTREACHED */
      return 0;

4215 4216 4217
    case PTRMEM_CST:
      return for_each_template_parm (TREE_TYPE (t), fn, data);

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4218
    case SCOPE_REF:
4219
      return for_each_template_parm (TREE_OPERAND (t, 0), fn, data);
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4220

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4221 4222
    case CONSTRUCTOR:
      if (TREE_TYPE (t) && TYPE_PTRMEMFUNC_P (TREE_TYPE (t)))
4223 4224 4225
	return for_each_template_parm (TYPE_PTRMEMFUNC_FN_TYPE
				       (TREE_TYPE (t)), fn, data);
      return for_each_template_parm (TREE_OPERAND (t, 1), fn, data);
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4226

4227 4228 4229 4230
    case SIZEOF_EXPR:
    case ALIGNOF_EXPR:
      return for_each_template_parm (TREE_OPERAND (t, 0), fn, data);

4231 4232 4233 4234 4235 4236 4237
    case TYPENAME_TYPE:
      if (!fn)
	return 1;
      return (for_each_template_parm (TYPE_CONTEXT (t), fn, data)
	      || for_each_template_parm (TYPENAME_TYPE_FULLNAME (t),
					 fn, data));

4238 4239
    case INDIRECT_REF:
    case COMPONENT_REF:
4240
      /* If there's no type, then this thing must be some expression
4241
	 involving template parameters.  */
4242 4243 4244 4245 4246 4247 4248
      if (!fn && !TREE_TYPE (t))
	return 1;
      if (TREE_CODE (t) == COMPONENT_REF)
	return (for_each_template_parm (TREE_OPERAND (t, 0), fn, data)
		|| for_each_template_parm (TREE_OPERAND (t, 1), fn, data));
      else
	return for_each_template_parm (TREE_OPERAND (t, 0), fn, data);
4249

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brendan committed
4250 4251 4252 4253 4254 4255 4256 4257 4258
    case MODOP_EXPR:
    case CAST_EXPR:
    case REINTERPRET_CAST_EXPR:
    case CONST_CAST_EXPR:
    case STATIC_CAST_EXPR:
    case DYNAMIC_CAST_EXPR:
    case ARROW_EXPR:
    case DOTSTAR_EXPR:
    case TYPEID_EXPR:
4259
    case LOOKUP_EXPR:
4260
    case PSEUDO_DTOR_EXPR:
4261 4262 4263
      if (!fn)
	return 1;
      /* Fall through.  */
4264

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4265 4266 4267 4268 4269
    default:
      switch (TREE_CODE_CLASS (TREE_CODE (t)))
	{
	case '1':
	case '2':
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4270
	case 'e':
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mrs committed
4271 4272 4273
	case '<':
	  {
	    int i;
4274
	    for (i = first_rtl_op (TREE_CODE (t)); --i >= 0;)
4275
	      if (for_each_template_parm (TREE_OPERAND (t, i), fn, data))
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4276 4277 4278 4279 4280 4281 4282 4283 4284 4285 4286 4287 4288 4289
		return 1;
	    return 0;
	  }
	default:
	  break;
	}
      sorry ("testing %s for template parms",
	     tree_code_name [(int) TREE_CODE (t)]);
      my_friendly_abort (82);
      /* NOTREACHED */
      return 0;
    }
}

4290 4291 4292 4293 4294 4295 4296
int
uses_template_parms (t)
     tree t;
{
  return for_each_template_parm (t, 0, 0);
}

4297 4298 4299
static struct tinst_level *current_tinst_level;
static struct tinst_level *free_tinst_level;
static int tinst_depth;
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4300
extern int max_tinst_depth;
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4301
#ifdef GATHER_STATISTICS
4302
int depth_reached;
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4303
#endif
4304 4305
int tinst_level_tick;
int last_template_error_tick;
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4306

4307
/* Print out all the template instantiations that we are currently
4308 4309
   working on.  If ERR, we are being called from cp_thing, so do
   the right thing for an error message.  */
4310

4311 4312 4313
static void
print_template_context (err)
     int err;
4314 4315 4316 4317 4318
{
  struct tinst_level *p = current_tinst_level;
  int line = lineno;
  char *file = input_filename;

4319
  if (err && p)
4320
    {
4321 4322 4323 4324 4325 4326
      if (current_function_decl != p->decl
	  && current_function_decl != NULL_TREE)
	/* We can get here during the processing of some synthesized
	   method.  Then, p->decl will be the function that's causing
	   the synthesis.  */
	;
4327 4328
      else
	{
4329 4330 4331 4332
	  if (current_function_decl == p->decl)
	    /* Avoid redundancy with the the "In function" line.  */;
	  else 
	    fprintf (stderr, "%s: In instantiation of `%s':\n",
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nathan committed
4333
		     file, decl_as_string (p->decl, TS_DECL_TYPE | TS_FUNC_NORETURN));
4334
	  
4335 4336
	  line = p->line;
	  file = p->file;
4337 4338 4339 4340
	  p = p->next;
	}
    }

4341 4342
  for (; p; p = p->next)
    {
4343
      fprintf (stderr, "%s:%d:   instantiated from `%s'\n", file, line,
nathan's avatar
nathan committed
4344
	       decl_as_string (p->decl, TS_DECL_TYPE | TS_FUNC_NORETURN));
4345 4346
      line = p->line;
      file = p->file;
4347
    }
4348
  fprintf (stderr, "%s:%d:   instantiated from here\n", file, line);
4349 4350
}

4351 4352 4353 4354 4355 4356 4357 4358 4359 4360 4361 4362 4363
/* Called from cp_thing to print the template context for an error.  */

void
maybe_print_template_context ()
{
  if (last_template_error_tick == tinst_level_tick
      || current_tinst_level == 0)
    return;

  last_template_error_tick = tinst_level_tick;
  print_template_context (1);
}

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4364
static int
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4365 4366
push_tinst_level (d)
     tree d;
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4367 4368 4369
{
  struct tinst_level *new;

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4370 4371
  if (tinst_depth >= max_tinst_depth)
    {
4372 4373 4374 4375 4376 4377
      /* If the instantiation in question still has unbound template parms,
	 we don't really care if we can't instantiate it, so just return.
         This happens with base instantiation for implicit `typename'.  */
      if (uses_template_parms (d))
	return 0;

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4378
      last_template_error_tick = tinst_level_tick;
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4379
      error ("template instantiation depth exceeds maximum of %d",
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4380
	     max_tinst_depth);
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4381 4382
      error (" (use -ftemplate-depth-NN to increase the maximum)");
      cp_error ("  instantiating `%D'", d);
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4383

4384
      print_template_context (0);
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4385

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4386 4387 4388
      return 0;
    }

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4389 4390 4391 4392 4393 4394 4395 4396
  if (free_tinst_level)
    {
      new = free_tinst_level;
      free_tinst_level = new->next;
    }
  else
    new = (struct tinst_level *) xmalloc (sizeof (struct tinst_level));

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4397 4398 4399
  new->decl = d;
  new->line = lineno;
  new->file = input_filename;
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4400 4401
  new->next = current_tinst_level;
  current_tinst_level = new;
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4402

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4403
  ++tinst_depth;
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4404 4405 4406 4407 4408
#ifdef GATHER_STATISTICS
  if (tinst_depth > depth_reached)
    depth_reached = tinst_depth;
#endif

4409
  ++tinst_level_tick;
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4410
  return 1;
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4411 4412 4413 4414 4415 4416 4417
}

void
pop_tinst_level ()
{
  struct tinst_level *old = current_tinst_level;

4418 4419 4420 4421
  /* Restore the filename and line number stashed away when we started
     this instantiation.  */
  lineno = old->line;
  input_filename = old->file;
4422
  extract_interface_info ();
4423
  
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4424 4425 4426
  current_tinst_level = old->next;
  old->next = free_tinst_level;
  free_tinst_level = old;
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4427
  --tinst_depth;
4428
  ++tinst_level_tick;
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4429 4430 4431 4432 4433 4434 4435 4436 4437 4438 4439 4440 4441
}

struct tinst_level *
tinst_for_decl ()
{
  struct tinst_level *p = current_tinst_level;

  if (p)
    for (; p->next ; p = p->next )
      ;
  return p;
}

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jason committed
4442 4443 4444 4445 4446 4447 4448 4449 4450 4451 4452
/* DECL is a friend FUNCTION_DECL or TEMPLATE_DECL.  ARGS is the
   vector of template arguments, as for tsubst.

   Returns an appropriate tsbust'd friend declaration.  */

static tree
tsubst_friend_function (decl, args)
     tree decl;
     tree args;
{
  tree new_friend;
4453 4454 4455 4456 4457 4458
  int line = lineno;
  char *file = input_filename;

  lineno = DECL_SOURCE_LINE (decl);
  input_filename = DECL_SOURCE_FILE (decl);

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4459 4460 4461 4462 4463 4464 4465 4466 4467 4468 4469 4470 4471 4472 4473 4474 4475 4476
  if (TREE_CODE (decl) == FUNCTION_DECL 
      && DECL_TEMPLATE_INSTANTIATION (decl)
      && TREE_CODE (DECL_TI_TEMPLATE (decl)) != TEMPLATE_DECL)
    /* This was a friend declared with an explicit template
       argument list, e.g.:
       
       friend void f<>(T);
       
       to indicate that f was a template instantiation, not a new
       function declaration.  Now, we have to figure out what
       instantiation of what template.  */
    {
      tree template_id;
      tree new_args;
      tree tmpl;

      template_id
	= lookup_template_function (tsubst_expr (DECL_TI_TEMPLATE (decl),
4477 4478
						 args, /*complain=*/1, 
						 NULL_TREE),
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4479
				    tsubst (DECL_TI_ARGS (decl),
4480 4481 4482
					    args, /*complain=*/1, 
					    NULL_TREE));
      new_friend = tsubst (decl, args, /*complain=*/1, NULL_TREE);
4483 4484
      tmpl = determine_specialization (template_id, new_friend,
				       &new_args, 
4485
				       /*need_member_template=*/0);
4486 4487
      new_friend = instantiate_template (tmpl, new_args);
      goto done;
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4488
    }
4489

4490
  new_friend = tsubst (decl, args, /*complain=*/1, NULL_TREE);
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4491
	
4492
  /* The NEW_FRIEND will look like an instantiation, to the
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4493 4494 4495 4496 4497 4498 4499 4500 4501 4502 4503 4504
     compiler, but is not an instantiation from the point of view of
     the language.  For example, we might have had:
     
     template <class T> struct S {
       template <class U> friend void f(T, U);
     };
     
     Then, in S<int>, template <class U> void f(int, U) is not an
     instantiation of anything.  */
  DECL_USE_TEMPLATE (new_friend) = 0;
  if (TREE_CODE (decl) == TEMPLATE_DECL)
    DECL_USE_TEMPLATE (DECL_TEMPLATE_RESULT (new_friend)) = 0;
4505 4506 4507 4508 4509 4510 4511 4512 4513 4514 4515 4516 4517 4518 4519 4520

  /* The mangled name for the NEW_FRIEND is incorrect.  The call to
     tsubst will have resulted in a call to
     set_mangled_name_for_template_decl.  But, the function is not a
     template instantiation and should not be mangled like one.
     Therefore, we remangle the function name.  We don't have to do
     this if the NEW_FRIEND is a template since
     set_mangled_name_for_template_decl doesn't do anything if the
     function declaration still uses template arguments.  */
  if (TREE_CODE (new_friend) != TEMPLATE_DECL)
    {
      set_mangled_name_for_decl (new_friend);
      DECL_RTL (new_friend) = 0;
      make_decl_rtl (new_friend, NULL_PTR, 1);
    }
      
4521
  if (DECL_NAMESPACE_SCOPE_P (new_friend))
jason's avatar
jason committed
4522
    {
4523
      tree old_decl;
4524 4525
      tree new_friend_template_info;
      tree new_friend_result_template_info;
4526
      tree ns;
4527 4528 4529 4530 4531 4532
      int  new_friend_is_defn;

      /* We must save some information from NEW_FRIEND before calling
	 duplicate decls since that function will free NEW_FRIEND if
	 possible.  */
      new_friend_template_info = DECL_TEMPLATE_INFO (new_friend);
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      if (TREE_CODE (new_friend) == TEMPLATE_DECL)
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	{
	  /* This declaration is a `primary' template.  */
	  DECL_PRIMARY_TEMPLATE (new_friend) = new_friend;
	  
	  new_friend_is_defn 
	    = DECL_INITIAL (DECL_RESULT (new_friend)) != NULL_TREE;
	  new_friend_result_template_info
	    = DECL_TEMPLATE_INFO (DECL_RESULT (new_friend));
	}
      else
	{
	  new_friend_is_defn = DECL_INITIAL (new_friend) != NULL_TREE;
	  new_friend_result_template_info = NULL_TREE;
	}
4548

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      /* Inside pushdecl_namespace_level, we will push into the 
	 current namespace. However, the friend function should 
	 tyically go into the namespace of the template. */
      ns = decl_namespace_context (new_friend);
      push_nested_namespace (ns);
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      old_decl = pushdecl_namespace_level (new_friend);
4555
      pop_nested_namespace (ns);
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      if (old_decl != new_friend)
	{
	  /* This new friend declaration matched an existing
	     declaration.  For example, given:

	       template <class T> void f(T);
	       template <class U> class C { 
		 template <class T> friend void f(T) {} 
	       };

	     the friend declaration actually provides the definition
	     of `f', once C has been instantiated for some type.  So,
	     old_decl will be the out-of-class template declaration,
	     while new_friend is the in-class definition.

	     But, if `f' was called before this point, the
	     instantiation of `f' will have DECL_TI_ARGS corresponding
	     to `T' but not to `U', references to which might appear
	     in the definition of `f'.  Previously, the most general
	     template for an instantiation of `f' was the out-of-class
	     version; now it is the in-class version.  Therefore, we
	     run through all specialization of `f', adding to their
	     DECL_TI_ARGS appropriately.  In particular, they need a
	     new set of outer arguments, corresponding to the
	     arguments for this class instantiation.  

	     The same situation can arise with something like this:

	       friend void f(int);
	       template <class T> class C { 
	         friend void f(T) {}
               };

	     when `C<int>' is instantiated.  Now, `f(int)' is defined
	     in the class.  */

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	  if (!new_friend_is_defn)
	    /* On the other hand, if the in-class declaration does
	       *not* provide a definition, then we don't want to alter
	       existing definitions.  We can just leave everything
	       alone.  */
4598
	    ;
4599
	  else
4600
	    {
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	      /* Overwrite whatever template info was there before, if
		 any, with the new template information pertaining to
		 the declaration.  */
	      DECL_TEMPLATE_INFO (old_decl) = new_friend_template_info;

	      if (TREE_CODE (old_decl) != TEMPLATE_DECL)
		/* duplicate_decls will take care of this case.  */
		;
	      else 
4610
		{
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		  tree t;
		  tree new_friend_args;

		  DECL_TEMPLATE_INFO (DECL_RESULT (old_decl)) 
		    = new_friend_result_template_info;
		    
		  new_friend_args = TI_ARGS (new_friend_template_info);
		  for (t = DECL_TEMPLATE_SPECIALIZATIONS (old_decl); 
		       t != NULL_TREE;
		       t = TREE_CHAIN (t))
		    {
		      tree spec = TREE_VALUE (t);
4623
		  
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		      DECL_TI_ARGS (spec) 
			= add_outermost_template_args (new_friend_args,
						       DECL_TI_ARGS (spec));
		    }

		  /* Now, since specializations are always supposed to
		     hang off of the most general template, we must move
		     them.  */
		  t = most_general_template (old_decl);
		  if (t != old_decl)
		    {
		      DECL_TEMPLATE_SPECIALIZATIONS (t)
			= chainon (DECL_TEMPLATE_SPECIALIZATIONS (t),
				   DECL_TEMPLATE_SPECIALIZATIONS (old_decl));
		      DECL_TEMPLATE_SPECIALIZATIONS (old_decl) = NULL_TREE;
		    }
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		}
	    }

	  /* The information from NEW_FRIEND has been merged into OLD_DECL
	     by duplicate_decls.  */
	  new_friend = old_decl;
	}
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    }
  else if (TYPE_SIZE (DECL_CONTEXT (new_friend)))
    {
      /* Check to see that the declaration is really present, and,
	 possibly obtain an improved declaration.  */
      tree fn = check_classfn (DECL_CONTEXT (new_friend),
			       new_friend);
      
      if (fn)
	new_friend = fn;
    }

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 done:
  lineno = line;
  input_filename = file;
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4662 4663 4664
  return new_friend;
}

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/* FRIEND_TMPL is a friend TEMPLATE_DECL.  ARGS is the vector of
   template arguments, as for tsubst.
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   Returns an appropriate tsbust'd friend type.  */

static tree
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tsubst_friend_class (friend_tmpl, args)
     tree friend_tmpl;
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     tree args;
{
4675
  tree friend_type;
4676
  tree tmpl;
4677

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  /* First, we look for a class template.  */
  tmpl = lookup_name (DECL_NAME (friend_tmpl), /*prefer_type=*/0); 
  
  /* But, if we don't find one, it might be because we're in a
     situation like this:

       template <class T>
       struct S {
         template <class U>
	 friend struct S;
       };

     Here, in the scope of (say) S<int>, `S' is bound to a TYPE_DECL
     for `S<int>', not the TEMPLATE_DECL.  */
4692
  if (!tmpl || !DECL_CLASS_TEMPLATE_P (tmpl))
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    {
      tmpl = lookup_name (DECL_NAME (friend_tmpl), /*prefer_type=*/1);
      tmpl = maybe_get_template_decl_from_type_decl (tmpl);
    }
4697

4698
  if (tmpl && DECL_CLASS_TEMPLATE_P (tmpl))
4699 4700
    {
      /* The friend template has already been declared.  Just
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	 check to see that the declarations match, and install any new
	 default parameters.  We must tsubst the default parameters,
	 of course.  We only need the innermost template parameters
	 because that is all that redeclare_class_template will look
	 at.  */
      tree parms 
	= tsubst_template_parms (DECL_TEMPLATE_PARMS (friend_tmpl),
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				 args, /*complain=*/1);
4709
      redeclare_class_template (TREE_TYPE (tmpl), parms);
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      friend_type = TREE_TYPE (tmpl);
    }
  else
    {
      /* The friend template has not already been declared.  In this
	 case, the instantiation of the template class will cause the
	 injection of this template into the global scope.  */
4717
      tmpl = tsubst (friend_tmpl, args, /*complain=*/1, NULL_TREE);
4718 4719 4720 4721 4722 4723 4724 4725 4726 4727 4728 4729 4730 4731 4732

      /* The new TMPL is not an instantiation of anything, so we
 	 forget its origins.  We don't reset CLASSTYPE_TI_TEMPLATE for
	 the new type because that is supposed to be the corresponding
	 template decl, i.e., TMPL.  */
      DECL_USE_TEMPLATE (tmpl) = 0;
      DECL_TEMPLATE_INFO (tmpl) = NULL_TREE;
      CLASSTYPE_USE_TEMPLATE (TREE_TYPE (tmpl)) = 0;

      /* Inject this template into the global scope.  */
      friend_type = TREE_TYPE (pushdecl_top_level (tmpl));
    }

  return friend_type;
}
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4734
tree
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instantiate_class_template (type)
     tree type;
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{
4738
  tree template, args, pattern, t;
4739
  tree typedecl;
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4740

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4741
  if (type == error_mark_node)
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    return error_mark_node;

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  if (TYPE_BEING_DEFINED (type) || TYPE_SIZE (type))
    return type;

4747
  /* Figure out which template is being instantiated.  */
4748
  template = most_general_template (CLASSTYPE_TI_TEMPLATE (type));
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4749
  my_friendly_assert (TREE_CODE (template) == TEMPLATE_DECL, 279);
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4750

4751 4752 4753
  /* Figure out which arguments are being used to do the
     instantiation.  */
  args = CLASSTYPE_TI_ARGS (type);
4754
  PARTIAL_INSTANTIATION_P (type) = uses_template_parms (args);
4755

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  if (pedantic && PARTIAL_INSTANTIATION_P (type))
    /* If this is a partial instantiation, then we can't instantiate
       the type; there's no telling whether or not one of the
       template parameters might eventually be instantiated to some
       value that results in a specialization being used.  For
       example, consider:

         template <class T>
         struct S {};

         template <class U> 
         void f(S<U>);
	     
         template <> 
         struct S<int> {};

       Now, the `S<U>' in `f<int>' is the specialization, not an
4773
       instantiation of the original template.  */
4774
    return type;
4775 4776 4777 4778

  /* Determine what specialization of the original template to
     instantiate.  */
  if (PARTIAL_INSTANTIATION_P (type))
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    /* There's no telling which specialization is appropriate at this
       point.  Since all peeking at the innards of this partial
       instantiation are extensions (like the "implicit typename"
       extension, which allows users to omit the keyword `typename' on
       names that are declared as types in template base classes), we
       are free to do what we please.

       Trying to figure out which partial instantiation to use can
       cause a crash.  (Some of the template arguments don't even have
       types.)  So, we just use the most general version.  */
    t = NULL_TREE;
  else
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    {
4792 4793 4794
      t = most_specialized_class (template, args);

      if (t == error_mark_node)
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	{
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	  const char *str = "candidates are:";
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	  cp_error ("ambiguous class template instantiation for `%#T'", type);
	  for (t = DECL_TEMPLATE_SPECIALIZATIONS (template); t; 
	       t = TREE_CHAIN (t))
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	    {
4801 4802 4803 4804 4805 4806
	      if (get_class_bindings (TREE_VALUE (t), TREE_PURPOSE (t),
				      args))
		{
		  cp_error_at ("%s %+#T", str, TREE_TYPE (t));
		  str = "               ";
		}
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4807
	    }
4808
	  TYPE_BEING_DEFINED (type) = 1;
4809
	  return error_mark_node;
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4810 4811
	}
    }
4812 4813

  if (t)
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    pattern = TREE_TYPE (t);
  else
    pattern = TREE_TYPE (template);
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4817

4818 4819
  /* If the template we're instantiating is incomplete, then clearly
     there's nothing we can do.  */
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4820
  if (TYPE_SIZE (pattern) == NULL_TREE)
4821
    return type;
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4822

4823 4824 4825 4826 4827 4828 4829 4830 4831 4832 4833 4834 4835 4836
  /* If this is a partial instantiation, don't tsubst anything.  We will
     only use this type for implicit typename, so the actual contents don't
     matter.  All that matters is whether a particular name is a type.  */
  if (PARTIAL_INSTANTIATION_P (type))
    {
      /* The fields set here must be kept in sync with those cleared
	 in begin_class_definition.  */
      TYPE_BINFO_BASETYPES (type) = TYPE_BINFO_BASETYPES (pattern);
      TYPE_FIELDS (type) = TYPE_FIELDS (pattern);
      TYPE_METHODS (type) = TYPE_METHODS (pattern);
      CLASSTYPE_TAGS (type) = CLASSTYPE_TAGS (pattern);
      /* Pretend that the type is complete, so that we will look
	 inside it during name lookup and such.  */
      TYPE_SIZE (type) = integer_zero_node;
4837
      return type;
4838 4839 4840 4841
    }

  /* If we've recursively instantiated too many templates, stop.  */
  if (! push_tinst_level (type))
4842
    return type;
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  /* Now we're really doing the instantiation.  Mark the type as in
     the process of being defined.  */
  TYPE_BEING_DEFINED (type) = 1;

  maybe_push_to_top_level (uses_template_parms (type));

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4850
  if (t)
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    {
      /* This TYPE is actually a instantiation of of a partial
	 specialization.  We replace the innermost set of ARGS with
	 the arguments appropriate for substitution.  For example,
	 given:

	   template <class T> struct S {};
	   template <class T> struct S<T*> {};
	 
	 and supposing that we are instantiating S<int*>, ARGS will
	 present be {int*} but we need {int}.  */
      tree inner_args 
	= get_class_bindings (TREE_VALUE (t), TREE_PURPOSE (t),
			      args);

      /* If there were multiple levels in ARGS, replacing the
	 innermost level would alter CLASSTYPE_TI_ARGS, which we don't
	 want, so we make a copy first.  */
      if (TMPL_ARGS_HAVE_MULTIPLE_LEVELS (args))
	{
	  args = copy_node (args);
	  SET_TMPL_ARGS_LEVEL (args, TMPL_ARGS_DEPTH (args), inner_args);
	}
      else
	args = inner_args;
    }
4877

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4878 4879 4880 4881 4882 4883 4884
  if (flag_external_templates)
    {
      if (flag_alt_external_templates)
	{
	  CLASSTYPE_INTERFACE_ONLY (type) = interface_only;
	  SET_CLASSTYPE_INTERFACE_UNKNOWN_X (type, interface_unknown);
	  CLASSTYPE_VTABLE_NEEDS_WRITING (type)
4885 4886
	    = (! CLASSTYPE_INTERFACE_ONLY (type)
	       && CLASSTYPE_INTERFACE_KNOWN (type));
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4887 4888 4889 4890 4891 4892 4893
	}
      else
	{
	  CLASSTYPE_INTERFACE_ONLY (type) = CLASSTYPE_INTERFACE_ONLY (pattern);
	  SET_CLASSTYPE_INTERFACE_UNKNOWN_X
	    (type, CLASSTYPE_INTERFACE_UNKNOWN (pattern));
	  CLASSTYPE_VTABLE_NEEDS_WRITING (type)
4894 4895
	    = (! CLASSTYPE_INTERFACE_ONLY (type)
	       && CLASSTYPE_INTERFACE_KNOWN (type));
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4896 4897 4898
	}
    }
  else
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4899
    {
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4900 4901
      SET_CLASSTYPE_INTERFACE_UNKNOWN (type);
      CLASSTYPE_VTABLE_NEEDS_WRITING (type) = 1;
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4902 4903
    }

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4904 4905 4906 4907 4908 4909 4910 4911 4912 4913 4914 4915 4916 4917 4918 4919 4920 4921 4922 4923 4924 4925 4926
  TYPE_HAS_CONSTRUCTOR (type) = TYPE_HAS_CONSTRUCTOR (pattern);
  TYPE_HAS_DESTRUCTOR (type) = TYPE_HAS_DESTRUCTOR (pattern);
  TYPE_OVERLOADS_CALL_EXPR (type) = TYPE_OVERLOADS_CALL_EXPR (pattern);
  TYPE_OVERLOADS_ARRAY_REF (type) = TYPE_OVERLOADS_ARRAY_REF (pattern);
  TYPE_OVERLOADS_ARROW (type) = TYPE_OVERLOADS_ARROW (pattern);
  TYPE_GETS_NEW (type) = TYPE_GETS_NEW (pattern);
  TYPE_GETS_DELETE (type) = TYPE_GETS_DELETE (pattern);
  TYPE_VEC_DELETE_TAKES_SIZE (type) = TYPE_VEC_DELETE_TAKES_SIZE (pattern);
  TYPE_HAS_ASSIGN_REF (type) = TYPE_HAS_ASSIGN_REF (pattern);
  TYPE_HAS_CONST_ASSIGN_REF (type) = TYPE_HAS_CONST_ASSIGN_REF (pattern);
  TYPE_HAS_ABSTRACT_ASSIGN_REF (type) = TYPE_HAS_ABSTRACT_ASSIGN_REF (pattern);
  TYPE_HAS_INIT_REF (type) = TYPE_HAS_INIT_REF (pattern);
  TYPE_HAS_CONST_INIT_REF (type) = TYPE_HAS_CONST_INIT_REF (pattern);
  TYPE_HAS_DEFAULT_CONSTRUCTOR (type) = TYPE_HAS_DEFAULT_CONSTRUCTOR (pattern);
  TYPE_HAS_CONVERSION (type) = TYPE_HAS_CONVERSION (pattern);
  TYPE_USES_COMPLEX_INHERITANCE (type)
    = TYPE_USES_COMPLEX_INHERITANCE (pattern);
  TYPE_USES_MULTIPLE_INHERITANCE (type)
    = TYPE_USES_MULTIPLE_INHERITANCE (pattern);
  TYPE_USES_VIRTUAL_BASECLASSES (type)
    = TYPE_USES_VIRTUAL_BASECLASSES (pattern);
  TYPE_PACKED (type) = TYPE_PACKED (pattern);
  TYPE_ALIGN (type) = TYPE_ALIGN (pattern);
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4927
  TYPE_FOR_JAVA (type) = TYPE_FOR_JAVA (pattern); /* For libjava's JArray<T> */
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4928 4929
  if (ANON_AGGR_TYPE_P (pattern))
    SET_ANON_AGGR_TYPE_P (type);
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4930

4931 4932 4933 4934 4935
  if (TYPE_BINFO_BASETYPES (pattern))
    {
      tree base_list = NULL_TREE;
      tree pbases = TYPE_BINFO_BASETYPES (pattern);
      int i;
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4936

4937 4938 4939 4940 4941 4942 4943
      /* Substitute into each of the bases to determine the actual
	 basetypes.  */
      for (i = 0; i < TREE_VEC_LENGTH (pbases); ++i)
	{
	  tree base;
	  tree access;
	  tree pbase;
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4944

4945
	  pbase = TREE_VEC_ELT (pbases, i);
4946

4947 4948 4949 4950 4951
	  /* Substitue to figure out the base class.  */
	  base = tsubst (BINFO_TYPE (pbase), args, 
			 /*complain=*/1, NULL_TREE);
	  if (base == error_mark_node)
	    continue;
4952

4953 4954 4955 4956 4957 4958 4959
	  /* Calculate the correct access node.  */
	  if (TREE_VIA_VIRTUAL (pbase)) 
	    {
	      if (TREE_VIA_PUBLIC (pbase))
		access = access_public_virtual_node;
	      else if (TREE_VIA_PROTECTED (pbase))
		access = access_protected_virtual_node;
4960
	      else 
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		access = access_private_virtual_node;
	    }
	  else
	    {
	      if (TREE_VIA_PUBLIC (pbase))
		access = access_public_node;
	      else if (TREE_VIA_PROTECTED (pbase))
		access = access_protected_node;
4969
	      else 
4970 4971
		access = access_private_node;
	    }
4972

4973 4974
	  base_list = tree_cons (access, base, base_list);
	}
4975

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      /* The list is now in reverse order; correct that.  */
      base_list = nreverse (base_list);

      /* Now call xref_basetypes to set up all the base-class
	 information.  */
      xref_basetypes (TREE_CODE (pattern) == RECORD_TYPE
		      ? (CLASSTYPE_DECLARED_CLASS (pattern)
			 ? class_type_node : record_type_node)
		      : union_type_node,
		      DECL_NAME (TYPE_NAME (pattern)),
		      type,
		      base_list);
    }
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4990 4991 4992 4993 4994 4995 4996
  /* Now that our base classes are set up, enter the scope of the
     class, so that name lookups into base classes, etc. will work
     corectly.  This is precisely analagous to what we do in
     begin_class_definition when defining an ordinary non-template
     class.  */
  pushclass (type, 1);

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  for (t = CLASSTYPE_TAGS (pattern); t; t = TREE_CHAIN (t))
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    {
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      tree tag = TREE_VALUE (t);
5000 5001
      tree name = TYPE_IDENTIFIER (tag);
      tree newtag;
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5002

5003
      newtag = tsubst (tag, args, /*complain=*/1, NULL_TREE);
5004
      if (TREE_CODE (newtag) != ENUMERAL_TYPE)
5005
	{
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	  if (TYPE_LANG_SPECIFIC (tag) && CLASSTYPE_IS_TEMPLATE (tag))
	    /* Unfortunately, lookup_template_class sets
	       CLASSTYPE_IMPLICIT_INSTANTIATION for a partial
	       instantiation (i.e., for the type of a member template
	       class nested within a template class.)  This behavior is
	       required for maybe_process_partial_specialization to work
	       correctly, but is not accurate in this case; the TAG is not
	       an instantiation of anything.  (The corresponding
	       TEMPLATE_DECL is an instantiation, but the TYPE is not.) */
	    CLASSTYPE_USE_TEMPLATE (newtag) = 0;

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	  /* Now, we call pushtag to put this NEWTAG into the scope of
	     TYPE.  We first set up the IDENTIFIER_TYPE_VALUE to avoid
	     pushtag calling push_template_decl.  We don't have to do
	     this for enums because it will already have been done in
	     tsubst_enum.  */
	  if (name)
	    SET_IDENTIFIER_TYPE_VALUE (name, newtag);
	  pushtag (name, newtag, /*globalize=*/0);
	}
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    }

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  /* Don't replace enum constants here.  */
  for (t = TYPE_FIELDS (pattern); t; t = TREE_CHAIN (t))
5030
    if (TREE_CODE (t) != CONST_DECL)
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      {
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	tree r;

	/* The the file and line for this declaration, to assist in
	   error message reporting.  Since we called push_tinst_level
	   above, we don't need to restore these.  */
	lineno = DECL_SOURCE_LINE (t);
	input_filename = DECL_SOURCE_FILE (t);

5040
	r = tsubst (t, args, /*complain=*/1, NULL_TREE);
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5041 5042
	if (TREE_CODE (r) == VAR_DECL)
	  {
5043 5044
	    tree init;

5045
	    if (DECL_DEFINED_IN_CLASS_P (r))
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	      init = tsubst_expr (DECL_INITIAL (t), args,
				  /*complain=*/1, NULL_TREE);
	    else
	      init = NULL_TREE;

	    finish_static_data_member_decl (r, init,
					    /*asmspec_tree=*/NULL_TREE, 
					    /*need_pop=*/0,
					    /*flags=*/0);

5056 5057
	    if (DECL_DEFINED_IN_CLASS_P (r))
	      check_static_variable_definition (r, TREE_TYPE (r));
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5058
	  }
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	/* R will have a TREE_CHAIN if and only if it has already been
	   processed by finish_member_declaration.  This can happen
	   if, for example, it is a TYPE_DECL for a class-scoped
	   ENUMERAL_TYPE; such a thing will already have been added to
	   the field list by tsubst_enum above.  */
	if (!TREE_CHAIN (r))
	  {
	    set_current_access_from_decl (r);
	    finish_member_declaration (r);
	  }
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      }
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5071

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  /* Set up the list (TYPE_METHODS) and vector (CLASSTYPE_METHOD_VEC)
     for this instantiation.  */
  for (t = TYPE_METHODS (pattern); t; t = TREE_CHAIN (t))
    {
5076
      tree r = tsubst (t, args, /*complain=*/1, NULL_TREE);
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      set_current_access_from_decl (r);
      finish_member_declaration (r);
    }
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5080

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  /* Construct the DECL_FRIENDLIST for the new class type.  */
  typedecl = TYPE_MAIN_DECL (type);
  for (t = DECL_FRIENDLIST (TYPE_MAIN_DECL (pattern));
       t != NULL_TREE;
       t = TREE_CHAIN (t))
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5086
    {
5087
      tree friends;
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5088

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      for (friends = TREE_VALUE (t);
	   friends != NULL_TREE;
	   friends = TREE_CHAIN (friends))
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	if (TREE_PURPOSE (friends) == error_mark_node)
	  add_friend (type, 
		      tsubst_friend_function (TREE_VALUE (friends),
					      args));
	else
	  add_friends (type, 
		       tsubst_copy (TREE_PURPOSE (t), args,
				    /*complain=*/1, NULL_TREE),
		       tsubst (TREE_PURPOSE (friends), args,
			       /*complain=*/1, NULL_TREE));
5102
    }
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5103

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  for (t = CLASSTYPE_FRIEND_CLASSES (pattern);
       t != NULL_TREE;
       t = TREE_CHAIN (t))
    {
      tree friend_type = TREE_VALUE (t);
5109
      tree new_friend_type;
5110

5111 5112 5113
      if (TREE_CODE (friend_type) == TEMPLATE_DECL)
	new_friend_type = tsubst_friend_class (friend_type, args);
      else if (uses_template_parms (friend_type))
5114 5115
	new_friend_type = tsubst (friend_type, args, /*complain=*/1,
				  NULL_TREE);
5116
      else 
5117 5118
	{
	  tree ns = decl_namespace_context (TYPE_MAIN_DECL (friend_type));
5119

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	  /* The call to xref_tag_from_type does injection for friend
	     classes.  */
	  push_nested_namespace (ns);
	  new_friend_type = 
	    xref_tag_from_type (friend_type, NULL_TREE, 1);
	  pop_nested_namespace (ns);
	}
5127 5128 5129 5130 5131 5132 5133 5134 5135 5136

      if (TREE_CODE (friend_type) == TEMPLATE_DECL)
	/* Trick make_friend_class into realizing that the friend
	   we're adding is a template, not an ordinary class.  It's
	   important that we use make_friend_class since it will
	   perform some error-checking and output cross-reference
	   information.  */
	++processing_template_decl;

      make_friend_class (type, new_friend_type);
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5137

5138 5139
      if (TREE_CODE (friend_type) == TEMPLATE_DECL)
	--processing_template_decl;
5140
    }
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5141

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  for (t = TYPE_FIELDS (type); t; t = TREE_CHAIN (t))
    if (TREE_CODE (t) == FIELD_DECL)
      {
	TREE_TYPE (t) = complete_type (TREE_TYPE (t));
	require_complete_type (t);
      }
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5148

5149 5150 5151 5152 5153 5154 5155 5156
  /* Set the file and line number information to whatever is given for
     the class itself.  This puts error messages involving generated
     implicit functions at a predictable point, and the same point
     that would be used for non-template classes.  */
  lineno = DECL_SOURCE_LINE (typedecl);
  input_filename = DECL_SOURCE_FILE (typedecl);

  unreverse_member_declarations (type);
5157
  finish_struct_1 (type);
5158
  CLASSTYPE_GOT_SEMICOLON (type) = 1;
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5159

5160 5161
  /* Clear this now so repo_template_used is happy.  */
  TYPE_BEING_DEFINED (type) = 0;
5162
  repo_template_used (type);
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  /* Now that the class is complete, instantiate default arguments for
     any member functions.  We don't do this earlier because the
     default arguments may reference members of the class.  */
  if (!PRIMARY_TEMPLATE_P (template))
    for (t = TYPE_METHODS (type); t; t = TREE_CHAIN (t))
      if (TREE_CODE (t) == FUNCTION_DECL 
	  /* Implicitly generated member functions will not have tmplate
	     information; they are not instantiations, but instead are
	     created "fresh" for each instantiation.  */
	  && DECL_TEMPLATE_INFO (t))
	tsubst_default_arguments (t);

5176
  popclass ();
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  pop_from_top_level ();
  pop_tinst_level ();

  return type;
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}

static int
list_eq (t1, t2)
     tree t1, t2;
{
  if (t1 == NULL_TREE)
    return t2 == NULL_TREE;
  if (t2 == NULL_TREE)
    return 0;
  /* Don't care if one declares its arg const and the other doesn't -- the
     main variant of the arg type is all that matters.  */
  if (TYPE_MAIN_VARIANT (TREE_VALUE (t1))
      != TYPE_MAIN_VARIANT (TREE_VALUE (t2)))
    return 0;
  return list_eq (TREE_CHAIN (t1), TREE_CHAIN (t2));
}

5199 5200 5201 5202 5203 5204 5205 5206 5207 5208 5209 5210 5211 5212 5213 5214 5215 5216 5217 5218 5219 5220 5221 5222 5223 5224
/* If arg is a non-type template parameter that does not depend on template
   arguments, fold it like we weren't in the body of a template.  */

static tree
maybe_fold_nontype_arg (arg)
     tree arg;
{
  if (TREE_CODE_CLASS (TREE_CODE (arg)) != 't'
      && !uses_template_parms (arg))
    {
      /* Sometimes, one of the args was an expression involving a
	 template constant parameter, like N - 1.  Now that we've
	 tsubst'd, we might have something like 2 - 1.  This will
	 confuse lookup_template_class, so we do constant folding
	 here.  We have to unset processing_template_decl, to
	 fool build_expr_from_tree() into building an actual
	 tree.  */

      int saved_processing_template_decl = processing_template_decl; 
      processing_template_decl = 0;
      arg = fold (build_expr_from_tree (arg));
      processing_template_decl = saved_processing_template_decl; 
    }
  return arg;
}

5225
/* Return the TREE_VEC with the arguments for the innermost template header,
5226 5227
   where ARGS is either that or the VEC of VECs for all the
   arguments.  */
5228 5229

tree
5230
innermost_args (args)
5231 5232
     tree args;
{
5233
  return TMPL_ARGS_LEVEL (args, TMPL_ARGS_DEPTH (args));
5234
}
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5235

5236 5237
/* Substitute ARGS into the vector of template arguments T.  */

5238
static tree
5239
tsubst_template_arg_vector (t, args, complain)
5240 5241
     tree t;
     tree args;
5242
     int complain;
5243 5244 5245 5246 5247 5248 5249 5250 5251 5252
{
  int len = TREE_VEC_LENGTH (t), need_new = 0, i;
  tree *elts = (tree *) alloca (len * sizeof (tree));
  
  bzero ((char *) elts, len * sizeof (tree));
  
  for (i = 0; i < len; i++)
    {
      if (TREE_VEC_ELT (t, i) != NULL_TREE
	  && TREE_CODE (TREE_VEC_ELT (t, i)) == TREE_VEC)
5253 5254
	elts[i] = tsubst_template_arg_vector (TREE_VEC_ELT (t, i),
					      args, complain);
5255 5256
      else
	elts[i] = maybe_fold_nontype_arg
5257 5258
	  (tsubst_expr (TREE_VEC_ELT (t, i), args, complain,
			NULL_TREE));
5259 5260 5261 5262 5263 5264 5265 5266
      
      if (elts[i] != TREE_VEC_ELT (t, i))
	need_new = 1;
    }
  
  if (!need_new)
    return t;
  
5267
  t = make_tree_vec (len);
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  for (i = 0; i < len; i++)
    TREE_VEC_ELT (t, i) = elts[i];
  
  return t;
}

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/* Return the result of substituting ARGS into the template parameters
   given by PARMS.  If there are m levels of ARGS and m + n levels of
   PARMS, then the result will contain n levels of PARMS.  For
   example, if PARMS is `template <class T> template <class U>
   template <T*, U, class V>' and ARGS is {{int}, {double}} then the
   result will be `template <int*, double, class V>'.  */

5281
static tree
5282
tsubst_template_parms (parms, args, complain)
5283 5284
     tree parms;
     tree args;
5285
     int complain;
5286
{
5287 5288
  tree r = NULL_TREE;
  tree* new_parms;
5289 5290 5291 5292 5293 5294 5295 5296 5297 5298 5299 5300 5301 5302 5303 5304 5305 5306

  for (new_parms = &r;
       TMPL_PARMS_DEPTH (parms) > TMPL_ARGS_DEPTH (args);
       new_parms = &(TREE_CHAIN (*new_parms)),
	 parms = TREE_CHAIN (parms))
    {
      tree new_vec = 
	make_tree_vec (TREE_VEC_LENGTH (TREE_VALUE (parms)));
      int i;
      
      for (i = 0; i < TREE_VEC_LENGTH (new_vec); ++i)
	{
	  tree default_value =
	    TREE_PURPOSE (TREE_VEC_ELT (TREE_VALUE (parms), i));
	  tree parm_decl = 
	    TREE_VALUE (TREE_VEC_ELT (TREE_VALUE (parms), i));
	  
	  TREE_VEC_ELT (new_vec, i)
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	    = build_tree_list (tsubst (default_value, args, complain,
				       NULL_TREE), 
			       tsubst (parm_decl, args, complain,
				       NULL_TREE));
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	}
      
      *new_parms = 
	tree_cons (build_int_2 (0, (TMPL_PARMS_DEPTH (parms) 
				    - TMPL_ARGS_DEPTH (args))),
		   new_vec, NULL_TREE);
    }

  return r;
}

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/* Substitute the ARGS into the indicated aggregate (or enumeration)
   type T.  If T is not an aggregate or enumeration type, it is
   handled as if by tsubst.  IN_DECL is as for tsubst.  If
   ENTERING_SCOPE is non-zero, T is the context for a template which
   we are presently tsubst'ing.  Return the subsituted value.  */
5327

5328
static tree
5329
tsubst_aggr_type (t, args, complain, in_decl, entering_scope)
5330 5331
     tree t;
     tree args;
5332
     int complain;
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     tree in_decl;
     int entering_scope;
{
  if (t == NULL_TREE)
    return NULL_TREE;

  switch (TREE_CODE (t))
    {
    case RECORD_TYPE:
      if (TYPE_PTRMEMFUNC_P (t))
	{
	  tree r = build_ptrmemfunc_type
5345
	    (tsubst (TYPE_PTRMEMFUNC_FN_TYPE (t), args, complain, in_decl));
5346 5347
	  return cp_build_qualified_type_real (r, TYPE_QUALS (t),
					       complain);
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	}

      /* else fall through */
5351
    case ENUMERAL_TYPE:
5352
    case UNION_TYPE:
5353
      if (TYPE_TEMPLATE_INFO (t))
5354 5355 5356 5357 5358 5359 5360 5361 5362
	{
	  tree argvec;
	  tree context;
	  tree r;

	  /* First, determine the context for the type we are looking
	     up.  */
	  if (TYPE_CONTEXT (t) != NULL_TREE)
	    context = tsubst_aggr_type (TYPE_CONTEXT (t), args,
5363
					complain,
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					in_decl, /*entering_scope=*/1);
	  else
	    context = NULL_TREE;

	  /* Then, figure out what arguments are appropriate for the
	     type we are trying to find.  For example, given:

	       template <class T> struct S;
	       template <class T, class U> void f(T, U) { S<U> su; }

	     and supposing that we are instantiating f<int, double>,
	     then our ARGS will be {int, double}, but, when looking up
	     S we only want {double}.  */
5377 5378
	  argvec = tsubst_template_arg_vector (TYPE_TI_ARGS (t), args,
					       complain);
5379 5380 5381 5382

  	  r = lookup_template_class (t, argvec, in_decl, context,
				     entering_scope);

5383 5384
	  return cp_build_qualified_type_real (r, TYPE_QUALS (t),
					       complain);
5385 5386 5387 5388 5389 5390
	}
      else 
	/* This is not a template type, so there's nothing to do.  */
	return t;

    default:
5391
      return tsubst (t, args, complain, in_decl);
5392 5393 5394
    }
}

5395 5396 5397 5398 5399 5400 5401 5402 5403 5404 5405 5406 5407 5408 5409 5410 5411 5412 5413 5414 5415 5416 5417 5418 5419 5420 5421 5422 5423 5424 5425 5426 5427 5428 5429 5430 5431 5432 5433 5434 5435 5436 5437 5438 5439 5440 5441 5442 5443 5444 5445 5446 5447 5448 5449 5450 5451 5452 5453 5454
/* Substitute into the default argument ARG (a default argument for
   FN), which has the indicated TYPE.  */

tree
tsubst_default_argument (fn, type, arg)
     tree fn;
     tree type;
     tree arg;
{
  /* This default argument came from a template.  Instantiate the
     default argument here, not in tsubst.  In the case of
     something like: 
     
       template <class T>
       struct S {
	 static T t();
	 void f(T = t());
       };
     
     we must be careful to do name lookup in the scope of S<T>,
     rather than in the current class.  */
  if (DECL_CLASS_SCOPE_P (fn))
    pushclass (DECL_REAL_CONTEXT (fn), 2);

  arg = tsubst_expr (arg, DECL_TI_ARGS (fn), /*complain=*/1, NULL_TREE);
  
  if (DECL_CLASS_SCOPE_P (fn))
    popclass ();

  /* Make sure the default argument is reasonable.  */
  arg = check_default_argument (type, arg);

  return arg;
}

/* Substitute into all the default arguments for FN.  */

static void
tsubst_default_arguments (fn)
     tree fn;
{
  tree arg;
  tree tmpl_args;

  tmpl_args = DECL_TI_ARGS (fn);

  /* If this function is not yet instantiated, we certainly don't need
     its default arguments.  */
  if (uses_template_parms (tmpl_args))
    return;

  for (arg = TYPE_ARG_TYPES (TREE_TYPE (fn)); 
       arg; 
       arg = TREE_CHAIN (arg))
    if (TREE_PURPOSE (arg))
      TREE_PURPOSE (arg) = tsubst_default_argument (fn, 
						    TREE_VALUE (arg),
						    TREE_PURPOSE (arg));
}

5455 5456 5457 5458
/* Substitute the ARGS into the T, which is a _DECL.  TYPE is the
   (already computed) substitution of ARGS into TREE_TYPE (T), if
   appropriate.  Return the result of the substitution.  IN_DECL is as
   for tsubst.  */
5459

5460
static tree
5461 5462 5463 5464
tsubst_decl (t, args, type, in_decl)
     tree t;
     tree args;
     tree type;
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5465 5466
     tree in_decl;
{
5467 5468
  int saved_lineno;
  char* saved_filename;
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5469
  tree r = NULL_TREE;
5470

5471 5472 5473 5474 5475
  /* Set the filename and linenumber to improve error-reporting.  */
  saved_lineno = lineno;
  saved_filename = input_filename;
  lineno = DECL_SOURCE_LINE (t);
  input_filename = DECL_SOURCE_FILE (t);
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5476

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5477 5478
  switch (TREE_CODE (t))
    {
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    case TEMPLATE_DECL:
      {
	/* We can get here when processing a member template function
	   of a template class.  */
	tree decl = DECL_TEMPLATE_RESULT (t);
5484
	tree spec;
5485
	int is_template_template_parm = DECL_TEMPLATE_TEMPLATE_PARM_P (t);
5486

5487 5488
	if (!is_template_template_parm)
	  {
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	    /* We might already have an instance of this template.
	       The ARGS are for the surrounding class type, so the
	       full args contain the tsubst'd args for the context,
	       plus the innermost args from the template decl.  */
	    tree tmpl_args = DECL_CLASS_TEMPLATE_P (t) 
	      ? CLASSTYPE_TI_ARGS (TREE_TYPE (t))
	      : DECL_TI_ARGS (DECL_RESULT (t));
5496 5497
	    tree full_args;
	    
5498 5499
	    full_args = tsubst_template_arg_vector (tmpl_args, args,
						    /*complain=*/1);
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	    /* tsubst_template_arg_vector doesn't copy the vector if
	       nothing changed.  But, *something* should have
	       changed.  */
	    my_friendly_assert (full_args != tmpl_args, 0);

	    spec = retrieve_specialization (t, full_args);
5507
	    if (spec != NULL_TREE)
5508 5509 5510 5511
	      {
		r = spec;
		break;
	      }
5512
	  }
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	/* Make a new template decl.  It will be similar to the
	   original, but will record the current template arguments. 
	   We also create a new function declaration, which is just
	   like the old one, but points to this new template, rather
	   than the old one.  */
5519 5520 5521 5522
	r = copy_node (t);
	copy_lang_decl (r);
	my_friendly_assert (DECL_LANG_SPECIFIC (r) != 0, 0);
	TREE_CHAIN (r) = NULL_TREE;
5523 5524 5525

	if (is_template_template_parm)
	  {
5526
	    tree new_decl = tsubst (decl, args, /*complain=*/1, in_decl);
5527 5528 5529
	    DECL_RESULT (r) = new_decl;
	    TREE_TYPE (r) = TREE_TYPE (new_decl);
	    break;
5530 5531
	  }

5532
	DECL_CONTEXT (r) 
5533 5534
	  = tsubst_aggr_type (DECL_CONTEXT (t), args, /*complain=*/1,
			      in_decl, /*entering_scope=*/1);
5535
	DECL_CLASS_CONTEXT (r) 
5536 5537 5538
	  = tsubst_aggr_type (DECL_CLASS_CONTEXT (t), args, 
			      /*complain=*/1, in_decl, 
			      /*entering_scope=*/1); 
5539
	DECL_TEMPLATE_INFO (r) = build_tree_list (t, args);
5540 5541 5542

	if (TREE_CODE (decl) == TYPE_DECL)
	  {
5543 5544
	    tree new_type = tsubst (TREE_TYPE (t), args,
				    /*complain=*/1, in_decl);
5545 5546 5547 5548
	    TREE_TYPE (r) = new_type;
	    CLASSTYPE_TI_TEMPLATE (new_type) = r;
	    DECL_RESULT (r) = TYPE_MAIN_DECL (new_type);
	    DECL_TI_ARGS (r) = CLASSTYPE_TI_ARGS (new_type);
5549 5550 5551
	  }
	else
	  {
5552
	    tree new_decl = tsubst (decl, args, /*complain=*/1, in_decl);
5553 5554 5555 5556
	    DECL_RESULT (r) = new_decl;
	    DECL_TI_TEMPLATE (new_decl) = r;
	    TREE_TYPE (r) = TREE_TYPE (new_decl);
	    DECL_TI_ARGS (r) = DECL_TI_ARGS (new_decl);
5557 5558
	  }

5559 5560 5561
	SET_DECL_IMPLICIT_INSTANTIATION (r);
	DECL_TEMPLATE_INSTANTIATIONS (r) = NULL_TREE;
	DECL_TEMPLATE_SPECIALIZATIONS (r) = NULL_TREE;
5562 5563 5564 5565

	/* The template parameters for this new template are all the
	   template parameters for the old template, except the
	   outermost level of parameters. */
5566
	DECL_TEMPLATE_PARMS (r) 
5567 5568
	  = tsubst_template_parms (DECL_TEMPLATE_PARMS (t), args,
				   /*complain=*/1);
5569

5570
	if (PRIMARY_TEMPLATE_P (t))
5571
	  DECL_PRIMARY_TEMPLATE (r) = r;
5572

5573
	/* We don't partially instantiate partial specializations.  */
5574
	if (TREE_CODE (decl) == TYPE_DECL)
5575
	  break;
5576

5577 5578 5579 5580 5581 5582 5583 5584 5585 5586 5587 5588 5589 5590 5591 5592 5593 5594 5595 5596 5597 5598 5599 5600 5601 5602 5603 5604 5605 5606 5607 5608 5609 5610 5611 5612 5613 5614 5615 5616
	for (spec = DECL_TEMPLATE_SPECIALIZATIONS (t);
	     spec != NULL_TREE;
	     spec = TREE_CHAIN (spec))
	  {
	    /* It helps to consider example here.  Consider:

	       template <class T>
	       struct S {
	         template <class U>
		 void f(U u);

		 template <>
		 void f(T* t) {}
	       };
	       
	       Now, for example, we are instantiating S<int>::f(U u).  
	       We want to make a template:

	       template <class U>
	       void S<int>::f(U);

	       It will have a specialization, for the case U = int*, of
	       the form:

	       template <>
	       void S<int>::f<int*>(int*);

	       This specialization will be an instantiation of
	       the specialization given in the declaration of S, with
	       argument list int*.  */

	    tree fn = TREE_VALUE (spec);
	    tree spec_args;
	    tree new_fn;

	    if (!DECL_TEMPLATE_SPECIALIZATION (fn))
	      /* Instantiations are on the same list, but they're of
		 no concern to us.  */
	      continue;

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	    if (TREE_CODE (fn) != TEMPLATE_DECL)
	      /* A full specialization.  There's no need to record
		 that here.  */
	      continue;

5622 5623
	    spec_args = tsubst (DECL_TI_ARGS (fn), args,
				/*complain=*/1, in_decl); 
5624
	    new_fn = tsubst (DECL_RESULT (most_general_template (fn)), 
5625
			     spec_args, /*complain=*/1, in_decl); 
5626
	    DECL_TI_TEMPLATE (new_fn) = fn;
5627
	    register_specialization (new_fn, r, 
5628
				     innermost_args (spec_args));
5629 5630 5631
	  }

	/* Record this partial instantiation.  */
5632 5633
	register_specialization (r, t, 
				 DECL_TI_ARGS (DECL_RESULT (r)));
5634

5635
      }
5636
      break;
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5637 5638 5639

    case FUNCTION_DECL:
      {
5640
	tree ctx;
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5641
	tree argvec = NULL_TREE;
5642
	tree *friends;
5643
	tree gen_tmpl;
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	int member;
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	int args_depth;
	int parms_depth;
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	/* Nobody should be tsubst'ing into non-template functions.  */
	my_friendly_assert (DECL_TEMPLATE_INFO (t) != NULL_TREE, 0);

	if (TREE_CODE (DECL_TI_TEMPLATE (t)) == TEMPLATE_DECL)
	  {
	    tree spec;

	    /* Calculate the most general template of which R is a
	       specialization, and the complete set of arguments used to
	       specialize R.  */
	    gen_tmpl = most_general_template (DECL_TI_TEMPLATE (t));
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	    argvec 
	      = tsubst_template_arg_vector (DECL_TI_ARGS 
					    (DECL_TEMPLATE_RESULT (gen_tmpl)),
5662
					    args, /*complain=*/1); 
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	    /* Check to see if we already have this specialization.  */
	    spec = retrieve_specialization (gen_tmpl, argvec);
5666

5667
	    if (spec)
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	      {
		r = spec;
		break;
	      }
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	    /* Here, we deal with the peculiar case:

		 template <class T> struct S { 
		   template <class U> friend void f();
		 };
		 template <class U> friend void f() {}
		 template S<int>;
		 template void f<double>();

	       Here, the ARGS for the instantiation of will be {int,
	       double}.  But, we only need as many ARGS as there are
	       levels of template parameters in CODE_PATTERN.  We are
	       careful not to get fooled into reducing the ARGS in
	       situations like:

		 template <class T> struct S { template <class U> void f(U); }
		 template <class T> template <> void S<T>::f(int) {}

	       which we can spot because the pattern will be a
	       specialization in this case.  */
	    args_depth = TMPL_ARGS_DEPTH (args);
	    parms_depth = 
	      TMPL_PARMS_DEPTH (DECL_TEMPLATE_PARMS (DECL_TI_TEMPLATE (t))); 
	    if (args_depth > parms_depth
		&& !DECL_TEMPLATE_SPECIALIZATION (t))
	      {
		my_friendly_assert (DECL_FRIEND_P (t), 0);

		if (parms_depth > 1)
		  {
		    int i;

5705
		    args = make_tree_vec (parms_depth);
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		    for (i = 0; i < parms_depth; ++i)
		      TREE_VEC_ELT (args, i) = 
			TREE_VEC_ELT (args, i + (args_depth - parms_depth));
		  }
		else
		  args = TREE_VEC_ELT (args, args_depth - parms_depth);
	      }
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	  }
	else
	  {
	    /* This special case arises when we have something like this:

	         template <class T> struct S { 
		   friend void f<int>(int, double); 
		 };

	       Here, the DECL_TI_TEMPLATE for the friend declaration
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	       will be a LOOKUP_EXPR or an IDENTIFIER_NODE.  We are
	       being called from tsubst_friend_function, and we want
	       only to create a new decl (R) with appropriate types so
	       that we can call determine_specialization.  */
	    my_friendly_assert ((TREE_CODE (DECL_TI_TEMPLATE (t)) 
				 == LOOKUP_EXPR)
				|| (TREE_CODE (DECL_TI_TEMPLATE (t))
				    == IDENTIFIER_NODE), 0);
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	    gen_tmpl = NULL_TREE;
	  }

5734
	if (DECL_CLASS_SCOPE_P (t))
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	  {
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	    if (DECL_NAME (t) == constructor_name (DECL_CONTEXT (t)))
	      member = 2;
	    else
	      member = 1;
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	    ctx = tsubst_aggr_type (DECL_CLASS_CONTEXT (t), args, 
				    /*complain=*/1, t, 
5742
				    /*entering_scope=*/1);
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	  }
	else
	  {
	    member = 0;
	    ctx = NULL_TREE;
	  }
5749
	type = tsubst (type, args, /*complain=*/1, in_decl);
5750 5751
	if (type == error_mark_node)
	  return error_mark_node;
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5752

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	/* We do NOT check for matching decls pushed separately at this
           point, as they may not represent instantiations of this
           template, and in any case are considered separate under the
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           discrete model.  Instead, see add_maybe_template.  */
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	r = copy_node (t);
	copy_lang_decl (r);
5760
	DECL_USE_TEMPLATE (r) = 0;
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	TREE_TYPE (r) = type;

	DECL_CONTEXT (r)
5764 5765
	  = tsubst_aggr_type (DECL_CONTEXT (t), args, /*complain=*/1, t,
			      /*entering_scope=*/1);
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5766 5767
	DECL_CLASS_CONTEXT (r) = ctx;

5768
	if (member && IDENTIFIER_TYPENAME_P (DECL_NAME (r)))
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	  /* Type-conversion operator.  Reconstruct the name, in
	     case it's the name of one of the template's parameters.  */
	  DECL_NAME (r) = build_typename_overload (TREE_TYPE (type));
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5772

5773 5774
	DECL_ARGUMENTS (r) = tsubst (DECL_ARGUMENTS (t), args,
				     /*complain=*/1, t);
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	DECL_MAIN_VARIANT (r) = r;
	DECL_RESULT (r) = NULL_TREE;

	TREE_STATIC (r) = 0;
	TREE_PUBLIC (r) = TREE_PUBLIC (t);
	DECL_EXTERNAL (r) = 1;
	DECL_INTERFACE_KNOWN (r) = 0;
	DECL_DEFER_OUTPUT (r) = 0;
	TREE_CHAIN (r) = NULL_TREE;
	DECL_PENDING_INLINE_INFO (r) = 0;
5785
	DECL_PENDING_INLINE_P (r) = 0;
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	TREE_USED (r) = 0;

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	/* Set up the DECL_TEMPLATE_INFO for R and compute its mangled
	   name.  There's no need to do this in the special friend
	   case mentioned above where GEN_TMPL is NULL.  */
	if (gen_tmpl)
5792
	  {
5793
	    DECL_TEMPLATE_INFO (r) 
5794
	      = tree_cons (gen_tmpl, argvec, NULL_TREE);
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	    SET_DECL_IMPLICIT_INSTANTIATION (r);
	    register_specialization (r, gen_tmpl, argvec);

	    /* Set the mangled name for R.  */
	    if (DECL_DESTRUCTOR_P (t))
	      DECL_ASSEMBLER_NAME (r) = build_destructor_name (ctx);
	    else 
5802
	      {
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		/* Instantiations of template functions must be mangled
		   specially, in order to conform to 14.5.5.1
		   [temp.over.link].  */
		tree tmpl = DECL_TI_TEMPLATE (t);
5807
		
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		/* TMPL will be NULL if this is a specialization of a
		   member function of a template class.  */
		if (name_mangling_version < 1
		    || tmpl == NULL_TREE
		    || (member && !is_member_template (tmpl)
			&& !DECL_TEMPLATE_INFO (tmpl)))
		  set_mangled_name_for_decl (r);
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		else
5816
		  set_mangled_name_for_template_decl (r);
5817
	      }
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	    DECL_RTL (r) = 0;
	    make_decl_rtl (r, NULL_PTR, 1);
	    
	    /* Like grokfndecl.  If we don't do this, pushdecl will
	       mess up our TREE_CHAIN because it doesn't find a
	       previous decl.  Sigh.  */
	    if (member
5826
		&& ! uses_template_parms (r)
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		&& (IDENTIFIER_GLOBAL_VALUE (DECL_ASSEMBLER_NAME (r)) 
		    == NULL_TREE))
	      SET_IDENTIFIER_GLOBAL_VALUE (DECL_ASSEMBLER_NAME (r), r);
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	    /* We're not supposed to instantiate default arguments
	       until they are called, for a template.  But, for a
	       declaration like:

	         template <class T> void f () 
                 { extern void g(int i = T()); }
		 
	       we should do the substitution when the template is
	       instantiated.  We handle the member function case in
	       instantiate_class_template since the default arguments
	       might refer to other members of the class.  */
	    if (!member
		&& !PRIMARY_TEMPLATE_P (gen_tmpl)
		&& !uses_template_parms (argvec))
	      tsubst_default_arguments (r);
5846
	  }
5847

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	/* Copy the list of befriending classes.  */
	for (friends = &DECL_BEFRIENDING_CLASSES (r);
	     *friends;
	     friends = &TREE_CHAIN (*friends)) 
	  {
	    *friends = copy_node (*friends);
	    TREE_VALUE (*friends) = tsubst (TREE_VALUE (*friends),
					    args, /*complain=*/1, 
					    in_decl);
	  }

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	if (DECL_CONSTRUCTOR_P (r))
	  {
	    maybe_retrofit_in_chrg (r);
	    grok_ctor_properties (ctx, r);
	  }
5864
	else if (DECL_OVERLOADED_OPERATOR_P (r))
5865
	  grok_op_properties (r, DECL_VIRTUAL_P (r), DECL_FRIEND_P (r));
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      }
5867
      break;
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    case PARM_DECL:
      {
5871
	r = copy_node (t);
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	TREE_TYPE (r) = type;
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	c_apply_type_quals_to_decl (CP_TYPE_QUALS (type), r);

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	if (TREE_CODE (DECL_INITIAL (r)) != TEMPLATE_PARM_INDEX)
	  DECL_INITIAL (r) = TREE_TYPE (r);
	else
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	  DECL_INITIAL (r) = tsubst (DECL_INITIAL (r), args,
				     /*complain=*/1, in_decl);
5880

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	DECL_CONTEXT (r) = NULL_TREE;
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	if (PROMOTE_PROTOTYPES
	    && (TREE_CODE (type) == INTEGER_TYPE
		|| TREE_CODE (type) == ENUMERAL_TYPE)
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	    && TYPE_PRECISION (type) < TYPE_PRECISION (integer_type_node))
	  DECL_ARG_TYPE (r) = integer_type_node;
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	if (TREE_CHAIN (t))
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	  TREE_CHAIN (r) = tsubst (TREE_CHAIN (t), args,
				   /*complain=*/1, TREE_CHAIN (t));
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      }
5891
      break;
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5892

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    case FIELD_DECL:
      {
5895
	r = copy_node (t);
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5896
	copy_lang_decl (r);
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	TREE_TYPE (r) = type;
	c_apply_type_quals_to_decl (CP_TYPE_QUALS (type), r);

	/* We don't have to set DECL_CONTEXT here; it is set by
	   finish_member_declaration.  */
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	DECL_INITIAL (r) = tsubst_expr (DECL_INITIAL (t), args,
					/*complain=*/1, in_decl);
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	TREE_CHAIN (r) = NULL_TREE;
5905
	if (TREE_CODE (type) == VOID_TYPE) 
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5906
	  cp_error_at ("instantiation of `%D' as type void", r);
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5907
      }
5908
      break;
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    case USING_DECL:
      {
5912
	r = copy_node (t);
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5913
	DECL_INITIAL (r)
5914
	  = tsubst_copy (DECL_INITIAL (t), args, /*complain=*/1, in_decl);
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	TREE_CHAIN (r) = NULL_TREE;
      }
5917
      break;
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    case TYPE_DECL:
      if (DECL_IMPLICIT_TYPEDEF_P (t))
	{
	  /* For an implicit typedef, we just want the implicit
	     typedef for the tsubst'd type.  We've already got the
	     tsubst'd type, as TYPE, so we just need it's associated
	     declaration.  */
	  r = TYPE_NAME (type);
	  break;
	}
      else if (!DECL_LANG_SPECIFIC (t))
	{
	  /* For a template type parameter, we don't have to do
	     anything special.  */
	  r= TYPE_NAME (type);
	  break;
	}

      /* Fall through.  */

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5939 5940
    case VAR_DECL:
      {
5941 5942 5943 5944
	tree argvec;
	tree gen_tmpl;
	tree spec;
	tree tmpl;
5945 5946
	tree ctx;

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	/* Nobody should be tsubst'ing into non-template variables.  */
	my_friendly_assert (DECL_LANG_SPECIFIC (t) 
			    && DECL_TEMPLATE_INFO (t) != NULL_TREE, 0);
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5950

5951 5952 5953 5954 5955 5956 5957 5958
	if (TYPE_P (DECL_CONTEXT (t)))
	  ctx = tsubst_aggr_type (DECL_CONTEXT (t), args, 
				  /*complain=*/1,
				  in_decl, /*entering_scope=*/1);
	else
	  /* Subsequent calls to pushdecl will fill this in.  */
	  ctx = NULL_TREE;

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	/* Check to see if we already have this specialization.  */
	tmpl = DECL_TI_TEMPLATE (t);
	gen_tmpl = most_general_template (tmpl);
5962
	argvec = tsubst (DECL_TI_ARGS (t), args, /*complain=*/1, in_decl);
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	if (ctx)
	  spec = retrieve_specialization (gen_tmpl, argvec);
	else
	  spec = retrieve_local_specialization (gen_tmpl,
						current_function_decl);

5969
	if (spec)
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	  {
	    r = spec;
	    break;
	  }
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5974

5975 5976 5977 5978
	/* This declaration is going to have to be around for a while,
	   so me make sure it is on a saveable obstack.  */
	push_obstacks_nochange ();
	saveable_allocation ();
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	r = copy_node (t);
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	pop_obstacks ();

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5982
	TREE_TYPE (r) = type;
5983
	c_apply_type_quals_to_decl (CP_TYPE_QUALS (type), r);
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	DECL_CONTEXT (r) = ctx;
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	/* Don't try to expand the initializer until someone tries to use
	   this variable; otherwise we run into circular dependencies.  */
	DECL_INITIAL (r) = NULL_TREE;
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5989 5990
	DECL_RTL (r) = 0;
	DECL_SIZE (r) = 0;
5991 5992
	copy_lang_decl (r);
	DECL_CLASS_CONTEXT (r) = DECL_CONTEXT (r);
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5993

5994 5995 5996 5997 5998
	/* Even if the original location is out of scope, the newly
	   substituted one is not.  */
	if (TREE_CODE (r) == VAR_DECL)
	  DECL_DEAD_FOR_LOCAL (r) = 0;

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	/* A static data member declaration is always marked external
	   when it is declared in-class, even if an initializer is
	   present.  We mimic the non-template processing here.  */
6002 6003
	if (ctx)
	  DECL_EXTERNAL (r) = 1;
6004

6005
	DECL_TEMPLATE_INFO (r) = tree_cons (tmpl, argvec, NULL_TREE);
6006
	SET_DECL_IMPLICIT_INSTANTIATION (r);
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	if (ctx)
	  register_specialization (r, gen_tmpl, argvec);
	else
	  register_local_specialization (r, gen_tmpl,
					 current_function_decl);
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6012 6013

	TREE_CHAIN (r) = NULL_TREE;
6014
	if (TREE_CODE (r) == VAR_DECL && TREE_CODE (type) == VOID_TYPE)
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6015
	  cp_error_at ("instantiation of `%D' as type void", r);
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6016
      }
6017
      break;
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6018

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    default:
      my_friendly_abort (0);
    } 

  /* Restore the file and line information.  */
  lineno = saved_lineno;
  input_filename = saved_filename;

  return r;
}

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/* Substitue into the ARG_TYPES of a function type.  */

6032
static tree
6033
tsubst_arg_types (arg_types, args, complain, in_decl)
6034 6035
     tree arg_types;
     tree args;
6036
     int complain;
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     tree in_decl;
{
  tree remaining_arg_types;
  tree type;

  if (!arg_types || arg_types == void_list_node)
    return arg_types;
  
  remaining_arg_types = tsubst_arg_types (TREE_CHAIN (arg_types),
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					  args, complain, in_decl);
  if (remaining_arg_types == error_mark_node)
    return error_mark_node;

  type = tsubst (TREE_VALUE (arg_types), args, complain, in_decl);
  if (type == error_mark_node)
    return error_mark_node;
6053

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  /* Do array-to-pointer, function-to-pointer conversion, and ignore
     top-level qualifiers as required.  */
  type = TYPE_MAIN_VARIANT (type_decays_to (type));
6057 6058 6059 6060

  /* Note that we do not substitute into default arguments here.  The
     standard mandates that they be instantiated only when needed,
     which is done in build_over_call.  */
6061 6062
  return hash_tree_cons (TREE_PURPOSE (arg_types), type,
			 remaining_arg_types);
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}

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/* Substitute into a FUNCTION_TYPE or METHOD_TYPE.  This routine does
   *not* handle the exception-specification for FNTYPE, because the
   initial substitution of explicitly provided template parameters
   during argument deduction forbids substitution into the
   exception-specification:

     [temp.deduct]

     All references in the function type of the function template to  the
     corresponding template parameters are replaced by the specified tem-
     plate argument values.  If a substitution in a template parameter or
     in  the function type of the function template results in an invalid
     type, type deduction fails.  [Note: The equivalent  substitution  in
     exception specifications is done only when the function is instanti-
     ated, at which point a program is  ill-formed  if  the  substitution
     results in an invalid type.]  */

static tree
tsubst_function_type (t, args, complain, in_decl)
     tree t;
     tree args;
     int complain;
     tree in_decl;
{
  tree return_type;
  tree arg_types;
  tree fntype;

6094
  /* The TYPE_CONTEXT is not used for function/method types.  */
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  my_friendly_assert (TYPE_CONTEXT (t) == NULL_TREE, 0);

  /* Substitue the return type.  */
  return_type = tsubst (TREE_TYPE (t), args, complain, in_decl);
  if (return_type == error_mark_node)
    return error_mark_node;

  /* Substitue the argument types.  */
  arg_types = tsubst_arg_types (TYPE_ARG_TYPES (t), args,
				complain, in_decl); 
  if (arg_types == error_mark_node)
    return error_mark_node;
  
  /* Construct a new type node and return it.  */
  if (TREE_CODE (t) == FUNCTION_TYPE)
    fntype = build_function_type (return_type, arg_types);
  else
    {
      tree r = TREE_TYPE (TREE_VALUE (arg_types));
      if (! IS_AGGR_TYPE (r))
	{
	  /* [temp.deduct]
	     
	     Type deduction may fail for any of the following
	     reasons:
	     
	     -- Attempting to create "pointer to member of T" when T
	     is not a class type.  */
	  if (complain)
	    cp_error ("creating pointer to member function of non-class type `%T'",
		      r);
	  return error_mark_node;
	}
      
      fntype = build_cplus_method_type (r, return_type, TREE_CHAIN
					(arg_types));
    }
  fntype = build_qualified_type (fntype, TYPE_QUALS (t));
6133
  fntype = build_type_attribute_variant (fntype, TYPE_ATTRIBUTES (t));
6134 6135 6136 6137
  
  return fntype;  
}

6138 6139
/* Substitute into the PARMS of a call-declarator.  */

6140
static tree
6141
tsubst_call_declarator_parms (parms, args, complain, in_decl)
6142 6143
     tree parms;
     tree args;
6144
     int complain;
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     tree in_decl;
{
  tree new_parms;
  tree type;
  tree defarg;

  if (!parms || parms == void_list_node)
    return parms;
  
  new_parms = tsubst_call_declarator_parms (TREE_CHAIN (parms),
6155
					    args, complain, in_decl);
6156 6157

  /* Figure out the type of this parameter.  */
6158
  type = tsubst (TREE_VALUE (parms), args, complain, in_decl);
6159 6160
  
  /* Figure out the default argument as well.  Note that we use
6161 6162
     tsubst_expr since the default argument is really an expression.  */
  defarg = tsubst_expr (TREE_PURPOSE (parms), args, complain, in_decl);
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  /* Chain this parameter on to the front of those we have already
     processed.  We don't use hash_tree_cons because that function
     doesn't check TREE_PARMLIST.  */
  new_parms = tree_cons (defarg, type, new_parms);

  /* And note that these are parameters.  */
  TREE_PARMLIST (new_parms) = 1;
  
  return new_parms;
}

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/* Take the tree structure T and replace template parameters used
   therein with the argument vector ARGS.  IN_DECL is an associated
   decl for diagnostics.  If an error occurs, returns ERROR_MARK_NODE.
   An appropriate error message is issued only if COMPLAIN is
   non-zero.  Note that we must be relatively non-tolerant of
   extensions here, in order to preserve conformance; if we allow
   substitutions that should not be allowed, we may allow argument
   deductions that should not succeed, and therefore report ambiguous
   overload situations where there are none.  In theory, we could
   allow the substitution, but indicate that it should have failed,
   and allow our caller to make sure that the right thing happens, but
   we don't try to do this yet.

   This function is used for dealing with types, decls and the like;
   for expressions, use tsubst_expr or tsubst_copy.  */
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tree
6192
tsubst (t, args, complain, in_decl)
6193
     tree t, args;
6194
     int complain;
6195 6196
     tree in_decl;
{
6197
  tree type, r;
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  if (t == NULL_TREE || t == error_mark_node
      || t == integer_type_node
      || t == void_type_node
      || t == char_type_node
      || TREE_CODE (t) == NAMESPACE_DECL)
    return t;

  if (TREE_CODE (t) == IDENTIFIER_NODE)
    type = IDENTIFIER_TYPE_VALUE (t);
  else
    type = TREE_TYPE (t);
  if (type == unknown_type_node)
    my_friendly_abort (42);

  if (type && TREE_CODE (t) != FUNCTION_DECL
      && TREE_CODE (t) != TYPENAME_TYPE
      && TREE_CODE (t) != TEMPLATE_DECL
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      && TREE_CODE (t) != IDENTIFIER_NODE
      && TREE_CODE (t) != FUNCTION_TYPE
      && TREE_CODE (t) != METHOD_TYPE)
    type = tsubst (type, args, complain, in_decl);
  if (type == error_mark_node)
    return error_mark_node;
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  if (TREE_CODE_CLASS (TREE_CODE (t)) == 'd')
    return tsubst_decl (t, args, type, in_decl);

  switch (TREE_CODE (t))
    {
    case RECORD_TYPE:
    case UNION_TYPE:
    case ENUMERAL_TYPE:
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      return tsubst_aggr_type (t, args, complain, in_decl,
			       /*entering_scope=*/0);
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    case ERROR_MARK:
    case IDENTIFIER_NODE:
    case OP_IDENTIFIER:
    case VOID_TYPE:
    case REAL_TYPE:
    case COMPLEX_TYPE:
    case BOOLEAN_TYPE:
    case INTEGER_CST:
    case REAL_CST:
    case STRING_CST:
      return t;

    case INTEGER_TYPE:
      if (t == integer_type_node)
	return t;

      if (TREE_CODE (TYPE_MIN_VALUE (t)) == INTEGER_CST
	  && TREE_CODE (TYPE_MAX_VALUE (t)) == INTEGER_CST)
	return t;
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      {
6255
	tree max, omax = TREE_OPERAND (TYPE_MAX_VALUE (t), 0);
6256

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	max = tsubst_expr (omax, args, complain, in_decl);
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	if (max == error_mark_node)
	  return error_mark_node;

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	/* See if we can reduce this expression to something simpler.  */
	max = maybe_fold_nontype_arg (max);
	if (!processing_template_decl && TREE_READONLY_DECL_P (max))
	  max = decl_constant_value (max);

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	if (processing_template_decl 
	    /* When providing explicit arguments to a template
	       function, but leaving some arguments for subsequent
	       deduction, MAX may be template-dependent even if we're
	       not PROCESSING_TEMPLATE_DECL.  */
	    || TREE_CODE (max) != INTEGER_CST)
6272
	  {
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	    tree itype = make_node (INTEGER_TYPE);
	    TYPE_MIN_VALUE (itype) = size_zero_node;
	    TYPE_MAX_VALUE (itype) = build_min (MINUS_EXPR, sizetype, max,
						integer_one_node);
	    return itype;
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	  }

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	if (integer_zerop (omax))
	  {
	    /* Still allow an explicit array of size zero.  */
	    if (pedantic)
	      pedwarn ("creating array with size zero");
	  }
	else if (integer_zerop (max) || INT_CST_LT (max, integer_zero_node))
6287
	  {
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	    /* [temp.deduct]

	       Type deduction may fail for any of the following
	       reasons:  

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		 Attempting to create an array with a size that is
		 zero or negative.  */
6295
	    if (complain)
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	      cp_error ("creating array with size zero (`%E')", max);
6297 6298

	    return error_mark_node;
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	  }

6301
	max = fold (build_binary_op (MINUS_EXPR, max, integer_one_node));
6302
	return build_index_type (max);
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      }

    case TEMPLATE_TYPE_PARM:
    case TEMPLATE_TEMPLATE_PARM:
    case TEMPLATE_PARM_INDEX:
      {
	int idx;
	int level;
	int levels;
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	r = NULL_TREE;
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	if (TREE_CODE (t) == TEMPLATE_TYPE_PARM
	    || TREE_CODE (t) == TEMPLATE_TEMPLATE_PARM)
	  {
	    idx = TEMPLATE_TYPE_IDX (t);
	    level = TEMPLATE_TYPE_LEVEL (t);
	  }
	else
	  {
	    idx = TEMPLATE_PARM_IDX (t);
	    level = TEMPLATE_PARM_LEVEL (t);
	  }

	if (TREE_VEC_LENGTH (args) > 0)
	  {
	    tree arg = NULL_TREE;

	    levels = TMPL_ARGS_DEPTH (args);
	    if (level <= levels)
	      arg = TMPL_ARG (args, level, idx);

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	    if (arg == error_mark_node)
	      return error_mark_node;
	    else if (arg != NULL_TREE)
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	      {
		if (TREE_CODE (t) == TEMPLATE_TYPE_PARM)
		  {
		    my_friendly_assert (TREE_CODE_CLASS (TREE_CODE (arg))
					== 't', 0);
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		    return cp_build_qualified_type_real
		      (arg, CP_TYPE_QUALS (arg) | CP_TYPE_QUALS (t),
		       complain);
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		  }
		else if (TREE_CODE (t) == TEMPLATE_TEMPLATE_PARM)
		  {
6349
		    if (TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (t))
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		      {
			/* We are processing a type constructed from
			   a template template parameter */
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			tree argvec = tsubst (TYPE_TI_ARGS (t),
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					      args, complain, in_decl);
			if (argvec == error_mark_node)
			  return error_mark_node;
			
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			/* We can get a TEMPLATE_TEMPLATE_PARM here when 
			   we are resolving nested-types in the signature of 
			   a member function templates.
			   Otherwise ARG is a TEMPLATE_DECL and is the real 
			   template to be instantiated.  */
			if (TREE_CODE (arg) == TEMPLATE_TEMPLATE_PARM)
			  arg = TYPE_NAME (arg);

			r = lookup_template_class (DECL_NAME (arg), 
						   argvec, in_decl, 
						   DECL_CONTEXT (arg),
						   /*entering_scope=*/0);
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			return cp_build_qualified_type_real (r, 
							     TYPE_QUALS (t),
							     complain);
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		      }
		    else
		      /* We are processing a template argument list.  */ 
		      return arg;
		  }
		else
		  return arg;
	      }
	  }
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	else
	  my_friendly_abort (981018);
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	if (level == 1)
	  /* This can happen during the attempted tsubst'ing in
	     unify.  This means that we don't yet have any information
	     about the template parameter in question.  */
	  return t;

	/* If we get here, we must have been looking at a parm for a
	   more deeply nested template.  Make a new version of this
	   template parameter, but with a lower level.  */
	switch (TREE_CODE (t))
	  {
	  case TEMPLATE_TYPE_PARM:
	  case TEMPLATE_TEMPLATE_PARM:
	    r = copy_node (t);
	    TEMPLATE_TYPE_PARM_INDEX (r)
	      = reduce_template_parm_level (TEMPLATE_TYPE_PARM_INDEX (t),
					    r, levels);
	    TYPE_STUB_DECL (r) = TYPE_NAME (r) = TEMPLATE_TYPE_DECL (r);
	    TYPE_MAIN_VARIANT (r) = r;
	    TYPE_POINTER_TO (r) = NULL_TREE;
	    TYPE_REFERENCE_TO (r) = NULL_TREE;

	    if (TREE_CODE (t) == TEMPLATE_TEMPLATE_PARM
6408
		&& TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (t))
6409
	      {
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		tree argvec = tsubst (TYPE_TI_ARGS (t), args,
				      complain, in_decl); 
		if (argvec == error_mark_node)
		  return error_mark_node;

6415
		TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (r)
6416
		  = tree_cons (TYPE_NAME (t), argvec, NULL_TREE);
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	      }
	    break;

	  case TEMPLATE_PARM_INDEX:
	    r = reduce_template_parm_level (t, type, levels);
	    break;
	   
	  default:
	    my_friendly_abort (0);
	  }

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	return r;
6429
      }
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    case TREE_LIST:
      {
	tree purpose, value, chain, result;

	if (t == void_list_node)
	  return t;

	purpose = TREE_PURPOSE (t);
	if (purpose)
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	  {
	    purpose = tsubst (purpose, args, complain, in_decl);
	    if (purpose == error_mark_node)
	      return error_mark_node;
	  }
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	value = TREE_VALUE (t);
	if (value)
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	  {
	    value = tsubst (value, args, complain, in_decl);
	    if (value == error_mark_node)
	      return error_mark_node;
	  }
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	chain = TREE_CHAIN (t);
	if (chain && chain != void_type_node)
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	  {
	    chain = tsubst (chain, args, complain, in_decl);
	    if (chain == error_mark_node)
	      return error_mark_node;
	  }
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	if (purpose == TREE_PURPOSE (t)
	    && value == TREE_VALUE (t)
	    && chain == TREE_CHAIN (t))
	  return t;
6463
	result = hash_tree_cons (purpose, value, chain);
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	TREE_PARMLIST (result) = TREE_PARMLIST (t);
	return result;
      }
    case TREE_VEC:
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      if (type != NULL_TREE)
	{
6470 6471
	  /* A binfo node.  We always need to make a copy, of the node
	     itself and of its BINFO_BASETYPES.  */
6472

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	  t = copy_node (t);

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	  /* Make sure type isn't a typedef copy.  */
	  type = BINFO_TYPE (TYPE_BINFO (type));

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	  TREE_TYPE (t) = complete_type (type);
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	  if (IS_AGGR_TYPE (type))
	    {
	      BINFO_VTABLE (t) = TYPE_BINFO_VTABLE (type);
	      BINFO_VIRTUALS (t) = TYPE_BINFO_VIRTUALS (type);
	      if (TYPE_BINFO_BASETYPES (type) != NULL_TREE)
		BINFO_BASETYPES (t) = copy_node (TYPE_BINFO_BASETYPES (type));
	    }
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	  return t;
	}
6488 6489

      /* Otherwise, a vector of template arguments.  */
6490
      return tsubst_template_arg_vector (t, args, complain);
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    case POINTER_TYPE:
    case REFERENCE_TYPE:
      {
	enum tree_code code;
6496

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6497 6498 6499 6500
	if (type == TREE_TYPE (t))
	  return t;

	code = TREE_CODE (t);
6501 6502 6503 6504 6505 6506 6507 6508 6509 6510


	/* [temp.deduct]
	   
	   Type deduction may fail for any of the following
	   reasons:  

	   -- Attempting to create a pointer to reference type.
	   -- Attempting to create a reference to a reference type or
	      a reference to void.  */
6511 6512
	if (TREE_CODE (type) == REFERENCE_TYPE
	    || (code == REFERENCE_TYPE && TREE_CODE (type) == VOID_TYPE))
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	  {
	    static int   last_line = 0;
	    static char* last_file = 0;

	    /* We keep track of the last time we issued this error
	       message to avoid spewing a ton of messages during a
	       single bad template instantiation.  */
6520 6521
	    if (complain && (last_line != lineno ||
			     last_file != input_filename))
6522
	      {
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		if (TREE_CODE (type) == VOID_TYPE)
		  cp_error ("forming reference to void");
		else
		  cp_error ("forming %s to reference type `%T'",
			    (code == POINTER_TYPE) ? "pointer" : "reference",
			    type);
6529 6530 6531 6532
		last_line = lineno;
		last_file = input_filename;
	      }

6533
	    return error_mark_node;
6534 6535
	  }
	else if (code == POINTER_TYPE)
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	  r = build_pointer_type (type);
	else
	  r = build_reference_type (type);
6539
	r = cp_build_qualified_type_real (r, TYPE_QUALS (t), complain);
6540

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	/* Will this ever be needed for TYPE_..._TO values?  */
	layout_type (r);
	return r;
      }
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    case OFFSET_TYPE:
6546
      {
6547 6548 6549 6550 6551 6552 6553 6554 6555 6556 6557 6558 6559 6560 6561
	r = tsubst (TYPE_OFFSET_BASETYPE (t), args, complain, in_decl);
	if (r == error_mark_node || !IS_AGGR_TYPE (r))
	  {
	    /* [temp.deduct]

	       Type deduction may fail for any of the following
	       reasons:
	       
	       -- Attempting to create "pointer to member of T" when T
	          is not a class type.  */
	    if (complain)
	      cp_error ("creating pointer to member of non-class type `%T'", 
			r);
	    return error_mark_node;
	  }
6562 6563
	return build_offset_type (r, type);
      }
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    case FUNCTION_TYPE:
    case METHOD_TYPE:
      {
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	tree fntype;
6568
	tree raises;
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	fntype = tsubst_function_type (t, args, complain, in_decl);
	if (fntype == error_mark_node)
	  return error_mark_node;
6573 6574 6575

	/* Substitue the exception specification. */
	raises = TYPE_RAISES_EXCEPTIONS (t);
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6576 6577
	if (raises)
	  {
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	    tree   list = NULL_TREE;
	    
	    if (! TREE_VALUE (raises))
	      list = raises;
	    else
	      for (; raises != NULL_TREE; raises = TREE_CHAIN (raises))
	        {
	          tree spec = TREE_VALUE (raises);
	          
	          spec = tsubst (spec, args, complain, in_decl);
	          if (spec == error_mark_node)
	            return spec;
	          list = add_exception_specifier (list, spec, complain);
	        }
	    fntype = build_exception_variant (fntype, list);
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	  }
	return fntype;
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      }
    case ARRAY_TYPE:
      {
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	tree domain = tsubst (TYPE_DOMAIN (t), args, complain, in_decl);
	if (domain == error_mark_node)
	  return error_mark_node;

	/* As an optimization, we avoid regenerating the array type if
	   it will obviously be the same as T.  */
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	if (type == TREE_TYPE (t) && domain == TYPE_DOMAIN (t))
	  return t;
6606

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	/* These checks should match the ones in grokdeclarator.  

	   [temp.deduct] 
	
	   The deduction may fail for any of the following reasons: 

	   -- Attempting to create an array with an element type that
	      is void, a function type, or a reference type.  */
	if (TREE_CODE (type) == VOID_TYPE 
	    || TREE_CODE (type) == FUNCTION_TYPE
	    || TREE_CODE (type) == REFERENCE_TYPE)
6618
	  {
6619 6620 6621
	    if (complain)
	      cp_error ("creating array of `%T'", type);
	    return error_mark_node;
6622 6623
	  }

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	r = build_cplus_array_type (type, domain);
	return r;
      }

    case PLUS_EXPR:
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    case MINUS_EXPR:
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      {
	tree e1 = tsubst (TREE_OPERAND (t, 0), args, complain,
			  in_decl);
	tree e2 = tsubst (TREE_OPERAND (t, 1), args, complain,
			  in_decl);

	if (e1 == error_mark_node || e2 == error_mark_node)
	  return error_mark_node;

	return fold (build (TREE_CODE (t), TREE_TYPE (t), e1, e2));
      }
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    case NEGATE_EXPR:
    case NOP_EXPR:
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      {
	tree e = tsubst (TREE_OPERAND (t, 0), args, complain,
			  in_decl);
	if (e == error_mark_node)
	  return error_mark_node;

	return fold (build (TREE_CODE (t), TREE_TYPE (t), e));
      }
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    case TYPENAME_TYPE:
      {
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	tree ctx = tsubst_aggr_type (TYPE_CONTEXT (t), args, complain,
				     in_decl, /*entering_scope=*/1);
	tree f = tsubst_copy (TYPENAME_TYPE_FULLNAME (t), args,
			      complain, in_decl); 

	if (ctx == error_mark_node || f == error_mark_node)
	  return error_mark_node;
6662

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	if (!IS_AGGR_TYPE (ctx))
	  {
	    if (complain)
	      cp_error ("`%T' is not a class, struct, or union type",
			ctx);
	    return error_mark_node;
	  }
	else if (!uses_template_parms (ctx) && !TYPE_BEING_DEFINED (ctx))
	  {
	    /* Normally, make_typename_type does not require that the CTX
	       have complete type in order to allow things like:
6674
	     
6675
	         template <class T> struct S { typename S<T>::X Y; };
6676

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	       But, such constructs have already been resolved by this
	       point, so here CTX really should have complete type, unless
	       it's a partial instantiation.  */
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	    ctx = complete_type (ctx);
	    if (!TYPE_SIZE (ctx))
	      {
		if (complain)
		  incomplete_type_error (NULL_TREE, ctx);
		return error_mark_node;
	      }
	  }
6688

6689
	f = make_typename_type (ctx, f, complain);
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	if (f == error_mark_node)
	  return f;
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	return cp_build_qualified_type_real (f, 
					     CP_TYPE_QUALS (f) 
					     | CP_TYPE_QUALS (t),
					     complain);
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      }

    case INDIRECT_REF:
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      {
	tree e = tsubst (TREE_OPERAND (t, 0), args, complain,
			 in_decl);
	if (e == error_mark_node)
	  return error_mark_node;
	return make_pointer_declarator (type, e);
      }

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    case ADDR_EXPR:
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      {
	tree e = tsubst (TREE_OPERAND (t, 0), args, complain,
			 in_decl);
	if (e == error_mark_node)
	  return error_mark_node;
	return make_reference_declarator (type, e);
      }
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    case ARRAY_REF:
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      {
	tree e1 = tsubst (TREE_OPERAND (t, 0), args, complain,
			  in_decl);
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	tree e2 = tsubst_expr (TREE_OPERAND (t, 1), args, complain,
			       in_decl);
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	if (e1 == error_mark_node || e2 == error_mark_node)
	  return error_mark_node;

	return build_parse_node (ARRAY_REF, e1, e2, tsubst_expr);
      }
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    case CALL_EXPR:
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      {
	tree e1 = tsubst (TREE_OPERAND (t, 0), args, complain,
			  in_decl);
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	tree e2 = (tsubst_call_declarator_parms
		   (CALL_DECLARATOR_PARMS (t), args, complain, in_decl));
	tree e3 = tsubst (CALL_DECLARATOR_EXCEPTION_SPEC (t), args,
			  complain, in_decl);
6736 6737 6738 6739 6740

	if (e1 == error_mark_node || e2 == error_mark_node 
	    || e3 == error_mark_node)
	  return error_mark_node;

6741
	return make_call_declarator (e1, e2, CALL_DECLARATOR_QUALS (t), e3);
6742
      }
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    case SCOPE_REF:
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      {
	tree e1 = tsubst (TREE_OPERAND (t, 0), args, complain,
				  in_decl);
	tree e2 = tsubst (TREE_OPERAND (t, 1), args, complain, in_decl);
	if (e1 == error_mark_node || e2 == error_mark_node)
	  return error_mark_node;

	return build_parse_node (TREE_CODE (t), e1, e2);
      }
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6755
    case TYPEOF_TYPE:
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      {
	tree e1 = tsubst_expr (TYPE_FIELDS (t), args, complain,
			       in_decl);
	if (e1 == error_mark_node)
	  return error_mark_node;

	return TREE_TYPE (e1); 
      }
6764

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6765
    default:
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6766
      sorry ("use of `%s' in template",
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6767 6768 6769 6770 6771
	     tree_code_name [(int) TREE_CODE (t)]);
      return error_mark_node;
    }
}

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/* Like tsubst, but deals with expressions.  This function just replaces
   template parms; to finish processing the resultant expression, use
   tsubst_expr.  */

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6776
tree
6777
tsubst_copy (t, args, complain, in_decl)
6778
     tree t, args;
6779
     int complain;
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6780 6781 6782
     tree in_decl;
{
  enum tree_code code;
6783
  tree r;
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6784

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6785 6786 6787 6788
  if (t == NULL_TREE || t == error_mark_node)
    return t;

  code = TREE_CODE (t);
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6789

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6790 6791 6792
  switch (code)
    {
    case PARM_DECL:
6793
      return do_identifier (DECL_NAME (t), 0, NULL_TREE);
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6794 6795

    case CONST_DECL:
6796 6797 6798 6799 6800 6801 6802 6803 6804
      {
	tree enum_type;
	tree v;

	if (!DECL_CONTEXT (t))
	  /* This is a global enumeration constant.  */
	  return t;

	/* Unfortunately, we cannot just call lookup_name here.
6805 6806 6807 6808 6809 6810 6811 6812 6813
	   Consider:
	   
	     template <int I> int f() {
	     enum E { a = I };
	     struct S { void g() { E e = a; } };
	     };
	   
	   When we instantiate f<7>::S::g(), say, lookup_name is not
	   clever enough to find f<7>::a.  */
6814
	enum_type 
6815
	  = tsubst_aggr_type (TREE_TYPE (t), args, complain, in_decl, 
6816 6817 6818 6819 6820 6821 6822 6823 6824 6825 6826 6827 6828
			      /*entering_scope=*/0);

	for (v = TYPE_VALUES (enum_type); 
	     v != NULL_TREE; 
	     v = TREE_CHAIN (v))
	  if (TREE_PURPOSE (v) == DECL_NAME (t))
	    return TREE_VALUE (v);

	  /* We didn't find the name.  That should never happen; if
	     name-lookup found it during preliminary parsing, we
	     should find it again here during instantiation.  */
	my_friendly_abort (0);
      }
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6829
      return t;
6830

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6831 6832 6833
    case FIELD_DECL:
      if (DECL_CONTEXT (t))
	{
6834 6835
	  tree ctx;

6836
	  ctx = tsubst_aggr_type (DECL_CONTEXT (t), args, complain, in_decl,
6837
				  /*entering_scope=*/1);
6838
	  if (ctx != DECL_CONTEXT (t))
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6839 6840 6841 6842 6843 6844 6845
	    return lookup_field (ctx, DECL_NAME (t), 0, 0);
	}
      return t;

    case VAR_DECL:
    case FUNCTION_DECL:
      if (DECL_LANG_SPECIFIC (t) && DECL_TEMPLATE_INFO (t))
6846
	t = tsubst (t, args, complain, in_decl);
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6847 6848 6849
      mark_used (t);
      return t;

6850 6851
    case TEMPLATE_DECL:
      if (is_member_template (t))
6852
	return tsubst (t, args, complain, in_decl);
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      else
	return t;

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    case LOOKUP_EXPR:
      {
	/* We must tsbust into a LOOKUP_EXPR in case the names to
	   which it refers is a conversion operator; in that case the
	   name will change.  We avoid making unnecessary copies,
	   however.  */
	
6863
	tree id = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
6864 6865 6866

	if (id != TREE_OPERAND (t, 0))
	  {
6867
	    r = build_nt (LOOKUP_EXPR, id);
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	    LOOKUP_EXPR_GLOBAL (r) = LOOKUP_EXPR_GLOBAL (t);
	    t = r;
	  }

	return t;
      }

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6875 6876
    case CAST_EXPR:
    case REINTERPRET_CAST_EXPR:
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6877 6878 6879
    case CONST_CAST_EXPR:
    case STATIC_CAST_EXPR:
    case DYNAMIC_CAST_EXPR:
6880
    case NOP_EXPR:
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6881
      return build1
6882 6883
	(code, tsubst (TREE_TYPE (t), args, complain, in_decl),
	 tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl));
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6884 6885 6886 6887 6888 6889 6890 6891

    case INDIRECT_REF:
    case PREDECREMENT_EXPR:
    case PREINCREMENT_EXPR:
    case POSTDECREMENT_EXPR:
    case POSTINCREMENT_EXPR:
    case NEGATE_EXPR:
    case TRUTH_NOT_EXPR:
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6892
    case BIT_NOT_EXPR:
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6893 6894 6895
    case ADDR_EXPR:
    case CONVERT_EXPR:      /* Unary + */
    case SIZEOF_EXPR:
6896
    case ALIGNOF_EXPR:
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6897
    case ARROW_EXPR:
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6898
    case THROW_EXPR:
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6899
    case TYPEID_EXPR:
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6900
      return build1
6901
	(code, tsubst (TREE_TYPE (t), args, complain, in_decl),
6902
	 tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl));
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6903 6904 6905 6906 6907 6908 6909 6910 6911 6912 6913 6914 6915 6916 6917 6918 6919 6920 6921 6922 6923 6924 6925 6926 6927 6928 6929 6930 6931 6932 6933 6934 6935 6936 6937 6938 6939 6940

    case PLUS_EXPR:
    case MINUS_EXPR:
    case MULT_EXPR:
    case TRUNC_DIV_EXPR:
    case CEIL_DIV_EXPR:
    case FLOOR_DIV_EXPR:
    case ROUND_DIV_EXPR:
    case EXACT_DIV_EXPR:
    case BIT_AND_EXPR:
    case BIT_ANDTC_EXPR:
    case BIT_IOR_EXPR:
    case BIT_XOR_EXPR:
    case TRUNC_MOD_EXPR:
    case FLOOR_MOD_EXPR:
    case TRUTH_ANDIF_EXPR:
    case TRUTH_ORIF_EXPR:
    case TRUTH_AND_EXPR:
    case TRUTH_OR_EXPR:
    case RSHIFT_EXPR:
    case LSHIFT_EXPR:
    case RROTATE_EXPR:
    case LROTATE_EXPR:
    case EQ_EXPR:
    case NE_EXPR:
    case MAX_EXPR:
    case MIN_EXPR:
    case LE_EXPR:
    case GE_EXPR:
    case LT_EXPR:
    case GT_EXPR:
    case COMPONENT_REF:
    case ARRAY_REF:
    case COMPOUND_EXPR:
    case SCOPE_REF:
    case DOTSTAR_EXPR:
    case MEMBER_REF:
      return build_nt
6941 6942
	(code, tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl),
	 tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl));
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6943 6944 6945 6946

    case CALL_EXPR:
      {
	tree fn = TREE_OPERAND (t, 0);
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6947
	if (is_overloaded_fn (fn))
6948
	  fn = tsubst_copy (get_first_fn (fn), args, complain, in_decl);
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6949
	else
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6950
	  /* Sometimes FN is a LOOKUP_EXPR.  */
6951
	  fn = tsubst_copy (fn, args, complain, in_decl);
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6952
	return build_nt
6953 6954
	  (code, fn, tsubst_copy (TREE_OPERAND (t, 1), args, complain,
				  in_decl),
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6955 6956 6957 6958 6959 6960 6961 6962
	   NULL_TREE);
      }

    case METHOD_CALL_EXPR:
      {
	tree name = TREE_OPERAND (t, 0);
	if (TREE_CODE (name) == BIT_NOT_EXPR)
	  {
6963 6964
	    name = tsubst_copy (TREE_OPERAND (name, 0), args,
				complain, in_decl);
6965
	    name = build1 (BIT_NOT_EXPR, NULL_TREE, name);
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6966 6967 6968 6969
	  }
	else if (TREE_CODE (name) == SCOPE_REF
		 && TREE_CODE (TREE_OPERAND (name, 1)) == BIT_NOT_EXPR)
	  {
6970 6971
	    tree base = tsubst_copy (TREE_OPERAND (name, 0), args,
				     complain, in_decl);
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6972
	    name = TREE_OPERAND (name, 1);
6973 6974
	    name = tsubst_copy (TREE_OPERAND (name, 0), args,
				complain, in_decl);
6975
	    name = build1 (BIT_NOT_EXPR, NULL_TREE, name);
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6976 6977 6978
	    name = build_nt (SCOPE_REF, base, name);
	  }
	else
6979
	  name = tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl);
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6980
	return build_nt
6981 6982 6983
	  (code, name, tsubst_copy (TREE_OPERAND (t, 1), args,
				    complain, in_decl),
	   tsubst_copy (TREE_OPERAND (t, 2), args, complain, in_decl),
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6984 6985 6986
	   NULL_TREE);
      }

6987 6988 6989 6990 6991 6992 6993 6994
    case STMT_EXPR:
      /* This processing should really occur in tsubst_expr, However,
	 tsubst_expr does not recurse into expressions, since it
	 assumes that there aren't any statements inside them.
	 Instead, it simply calls build_expr_from_tree.  So, we need
	 to expand the STMT_EXPR here.  */
      if (!processing_template_decl)
	{
6995
	  tree stmt_expr = begin_stmt_expr ();
6996 6997
	  tsubst_expr (STMT_EXPR_STMT (t), args,
		       complain, in_decl);
6998
	  return finish_stmt_expr (stmt_expr);
6999
	}
7000 7001
      
      return t;
7002

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7003 7004
    case COND_EXPR:
    case MODOP_EXPR:
7005
    case PSEUDO_DTOR_EXPR:
7006
      {
7007
	r = build_nt
7008 7009 7010
	  (code, tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl),
	   tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl),
	   tsubst_copy (TREE_OPERAND (t, 2), args, complain, in_decl));
7011 7012
	return r;
      }
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7013 7014 7015

    case NEW_EXPR:
      {
7016
	r = build_nt
7017 7018 7019
	(code, tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl),
	 tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl),
	 tsubst_copy (TREE_OPERAND (t, 2), args, complain, in_decl));
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7020 7021 7022 7023 7024 7025
	NEW_EXPR_USE_GLOBAL (r) = NEW_EXPR_USE_GLOBAL (t);
	return r;
      }

    case DELETE_EXPR:
      {
7026
	r = build_nt
7027 7028
	(code, tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl),
	 tsubst_copy (TREE_OPERAND (t, 1), args, complain, in_decl));
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7029 7030 7031 7032 7033
	DELETE_EXPR_USE_GLOBAL (r) = DELETE_EXPR_USE_GLOBAL (t);
	DELETE_EXPR_USE_VEC (r) = DELETE_EXPR_USE_VEC (t);
	return r;
      }

7034 7035
    case TEMPLATE_ID_EXPR:
      {
7036
        /* Substituted template arguments */
7037 7038
	tree targs = tsubst_copy (TREE_OPERAND (t, 1), args, complain,
				  in_decl);
7039 7040 7041 7042 7043 7044 7045 7046 7047 7048 7049 7050 7051 7052

	if (targs && TREE_CODE (targs) == TREE_LIST)
	  {
	    tree chain;
	    for (chain = targs; chain; chain = TREE_CHAIN (chain))
	      TREE_VALUE (chain) = maybe_fold_nontype_arg (TREE_VALUE (chain));
	  }
	else if (targs)
	  {
	    int i;
	    for (i = 0; i < TREE_VEC_LENGTH (targs); ++i)
	      TREE_VEC_ELT (targs, i) 
		= maybe_fold_nontype_arg (TREE_VEC_ELT (targs, i));
	  }
7053 7054

	return lookup_template_function
7055
	  (tsubst_copy (TREE_OPERAND (t, 0), args, complain, in_decl), targs);
7056 7057
      }

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7058 7059 7060 7061 7062 7063 7064 7065 7066
    case TREE_LIST:
      {
	tree purpose, value, chain;

	if (t == void_list_node)
	  return t;

	purpose = TREE_PURPOSE (t);
	if (purpose)
7067
	  purpose = tsubst_copy (purpose, args, complain, in_decl);
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7068 7069
	value = TREE_VALUE (t);
	if (value)
7070
	  value = tsubst_copy (value, args, complain, in_decl);
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7071 7072
	chain = TREE_CHAIN (t);
	if (chain && chain != void_type_node)
7073
	  chain = tsubst_copy (chain, args, complain, in_decl);
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7074 7075 7076 7077 7078 7079 7080 7081 7082 7083 7084 7085
	if (purpose == TREE_PURPOSE (t)
	    && value == TREE_VALUE (t)
	    && chain == TREE_CHAIN (t))
	  return t;
	return tree_cons (purpose, value, chain);
      }

    case RECORD_TYPE:
    case UNION_TYPE:
    case ENUMERAL_TYPE:
    case INTEGER_TYPE:
    case TEMPLATE_TYPE_PARM:
7086
    case TEMPLATE_TEMPLATE_PARM:
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7087
    case TEMPLATE_PARM_INDEX:
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7088 7089 7090 7091 7092 7093 7094
    case POINTER_TYPE:
    case REFERENCE_TYPE:
    case OFFSET_TYPE:
    case FUNCTION_TYPE:
    case METHOD_TYPE:
    case ARRAY_TYPE:
    case TYPENAME_TYPE:
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7095
    case TYPE_DECL:
7096
      return tsubst (t, args, complain, in_decl);
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7097

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7098
    case IDENTIFIER_NODE:
7099 7100 7101 7102
      if (IDENTIFIER_TYPENAME_P (t)
	  /* Make sure it's not just a variable named `__opr', for instance,
	     which can occur in some existing code.  */
	  && TREE_TYPE (t))
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mrs committed
7103
	return build_typename_overload
7104
	  (tsubst (TREE_TYPE (t), args, complain, in_decl));
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7105 7106 7107
      else
	return t;

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7108
    case CONSTRUCTOR:
7109 7110
      {
	r = build
7111 7112 7113
	  (CONSTRUCTOR, tsubst (TREE_TYPE (t), args, complain, in_decl), 
	   NULL_TREE, tsubst_copy (CONSTRUCTOR_ELTS (t), args,
				   complain, in_decl));
7114 7115 7116
	TREE_HAS_CONSTRUCTOR (r) = TREE_HAS_CONSTRUCTOR (t);
	return r;
      }
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7117

7118 7119 7120 7121 7122
    case VA_ARG_EXPR:
      return build_va_arg (tsubst_copy (TREE_OPERAND (t, 0), args, complain,
					in_decl),
			   tsubst (TREE_TYPE (t), args, complain, in_decl));
     
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7123 7124 7125 7126 7127
    default:
      return t;
    }
}

7128
/* Like tsubst_copy, but also does semantic processing.  */
7129

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7130
tree
7131
tsubst_expr (t, args, complain, in_decl)
7132
     tree t, args;
7133
     int complain;
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mrs committed
7134 7135
     tree in_decl;
{
7136 7137
  tree stmt;

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7138 7139 7140
  if (t == NULL_TREE || t == error_mark_node)
    return t;

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7141
  if (processing_template_decl)
7142
    return tsubst_copy (t, args, complain, in_decl);
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7143 7144

  switch (TREE_CODE (t))
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mrs committed
7145
    {
7146
    case RETURN_INIT:
7147
      prep_stmt (t);
7148 7149 7150 7151 7152 7153 7154
      finish_named_return_value
	(TREE_OPERAND (t, 0),
	 tsubst_expr (TREE_OPERAND (t, 1), args, /*complain=*/1, in_decl));
      tsubst_expr (TREE_CHAIN (t), args, complain, in_decl);
      break;

    case CTOR_INITIALIZER:
7155
      prep_stmt (t);
7156 7157 7158 7159 7160 7161 7162 7163
      current_member_init_list
	= tsubst_expr_values (TREE_OPERAND (t, 0), args);
      current_base_init_list
	= tsubst_expr_values (TREE_OPERAND (t, 1), args);
      setup_vtbl_ptr ();
      tsubst_expr (TREE_CHAIN (t), args, complain, in_decl);
      break;

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7164
    case RETURN_STMT:
7165
      prep_stmt (t);
7166
      finish_return_stmt (tsubst_expr (RETURN_EXPR (t),
7167
				       args, complain, in_decl));
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7168 7169 7170
      break;

    case EXPR_STMT:
7171
      prep_stmt (t);
7172
      finish_expr_stmt (tsubst_expr (EXPR_STMT_EXPR (t),
7173
				     args, complain, in_decl));
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7174 7175 7176 7177 7178
      break;

    case DECL_STMT:
      {
	int i = suspend_momentary ();
7179 7180
	tree decl;
	tree init;
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mrs committed
7181

7182
	prep_stmt (t);
7183
	decl = DECL_STMT_DECL (t);
7184 7185 7186 7187 7188 7189 7190
	if (TREE_CODE (decl) == LABEL_DECL)
	  finish_label_decl (DECL_NAME (decl));
	else
	  {
	    init = DECL_INITIAL (decl);
	    decl = tsubst (decl, args, complain, in_decl);
	    init = tsubst_expr (init, args, complain, in_decl);
7191 7192
	    if (init)
	      DECL_INITIAL (decl) = error_mark_node;
7193 7194 7195 7196 7197
	    /* By marking the declaration as instantiated, we avoid
	       trying to instantiate it.  Since instantiate_decl can't
	       handle local variables, and since we've already done
	       all that needs to be done, that's the right thing to
	       do.  */
7198 7199 7200
	    if (TREE_CODE (decl) == VAR_DECL)
	      DECL_TEMPLATE_INSTANTIATED (decl) = 1;
	    maybe_push_decl (decl);
7201
	    cp_finish_decl (decl, init, NULL_TREE, 0, 0);
7202
	  }
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7203
	resume_momentary (i);
7204
	return decl;
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7205
      }
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7206

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7207 7208 7209
    case FOR_STMT:
      {
	tree tmp;
7210
	prep_stmt (t);
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mrs committed
7211

7212
	stmt = begin_for_stmt ();
7213
	for (tmp = FOR_INIT_STMT (t); tmp; tmp = TREE_CHAIN (tmp))
7214
	  tsubst_expr (tmp, args, complain, in_decl);
7215
	finish_for_init_stmt (stmt);
7216
	finish_for_cond (tsubst_expr (FOR_COND (t), args,
7217
				      complain, in_decl),
7218
			 stmt);
7219
	tmp = tsubst_expr (FOR_EXPR (t), args, complain, in_decl);
7220
	finish_for_expr (tmp, stmt);
7221
	tsubst_expr (FOR_BODY (t), args, complain, in_decl);
7222
	finish_for_stmt (tmp, stmt);
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7223 7224
      }
      break;
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7225

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7226 7227
    case WHILE_STMT:
      {
7228
	prep_stmt (t);
7229
	stmt = begin_while_stmt ();
7230
	finish_while_stmt_cond (tsubst_expr (WHILE_COND (t),
7231
					     args, complain, in_decl),
7232
				stmt);
7233
	tsubst_expr (WHILE_BODY (t), args, complain, in_decl);
7234
	finish_while_stmt (stmt);
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mrs committed
7235 7236
      }
      break;
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mrs committed
7237

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mrs committed
7238 7239
    case DO_STMT:
      {
7240
	prep_stmt (t);
7241
	stmt = begin_do_stmt ();
7242
	tsubst_expr (DO_BODY (t), args, complain, in_decl);
7243
	finish_do_body (stmt);
7244
	finish_do_stmt (tsubst_expr (DO_COND (t), args,
7245
				     complain, in_decl),
7246
			stmt);
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mrs committed
7247 7248
      }
      break;
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mrs committed
7249

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7250
    case IF_STMT:
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7251
      {
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7252 7253
	tree tmp;

7254
	prep_stmt (t);
7255
	stmt = begin_if_stmt ();
7256
	finish_if_stmt_cond (tsubst_expr (IF_COND (t),
7257
					  args, complain, in_decl),
7258
			     stmt);
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mrs committed
7259

7260
	if (tmp = THEN_CLAUSE (t), tmp)
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mrs committed
7261
	  {
7262
	    tsubst_expr (tmp, args, complain, in_decl);
7263
	    finish_then_clause (stmt);
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mrs committed
7264 7265
	  }

7266 7267 7268
	if (tmp = ELSE_CLAUSE (t), tmp)
	  {
	    begin_else_clause ();
7269
	    tsubst_expr (tmp, args, complain, in_decl);
7270
	    finish_else_clause (stmt);
7271
	  }
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mrs committed
7272

7273
	finish_if_stmt ();
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mrs committed
7274
      }
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7275
      break;
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mrs committed
7276

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7277 7278
    case COMPOUND_STMT:
      {
7279
	tree substmt;
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7280

7281
	prep_stmt (t);
7282
	stmt = begin_compound_stmt (COMPOUND_STMT_NO_SCOPE (t));
7283 7284 7285
	for (substmt = COMPOUND_BODY (t); 
	     substmt != NULL_TREE;
	     substmt = TREE_CHAIN (substmt))
7286
	  tsubst_expr (substmt, args, complain, in_decl);
7287
	return finish_compound_stmt (COMPOUND_STMT_NO_SCOPE (t), stmt);
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7288 7289
      }
      break;
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7290

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7291
    case BREAK_STMT:
7292
      prep_stmt (t);
7293
      finish_break_stmt ();
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7294
      break;
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mrs committed
7295

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7296
    case CONTINUE_STMT:
7297
      prep_stmt (t);
7298
      finish_continue_stmt ();
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7299 7300
      break;

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mrs committed
7301 7302
    case SWITCH_STMT:
      {
7303
	tree val;
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mrs committed
7304

7305
	prep_stmt (t);
7306
	stmt = begin_switch_stmt ();
7307
	val = tsubst_expr (SWITCH_COND (t), args, complain, in_decl);
7308
	finish_switch_cond (val, stmt);
7309 7310
	tsubst_expr (SWITCH_BODY (t), args, complain, in_decl);
	finish_switch_stmt (val, stmt);
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mrs committed
7311 7312 7313 7314
      }
      break;

    case CASE_LABEL:
7315
      prep_stmt (t);
7316 7317
      finish_case_label (tsubst_expr (CASE_LOW (t), args, complain, in_decl),
			 tsubst_expr (CASE_HIGH (t), args, complain, in_decl));
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7318 7319
      break;

7320 7321 7322
    case LABEL_STMT:
      lineno = STMT_LINENO (t);
      finish_label_stmt (DECL_NAME (LABEL_STMT_LABEL (t)));
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7323 7324 7325
      break;

    case GOTO_STMT:
7326
      prep_stmt (t);
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7327
      t = GOTO_DESTINATION (t);
7328
      if (TREE_CODE (t) != LABEL_DECL)
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mmitchel committed
7329 7330 7331
	/* Computed goto's must be tsubst'd into.  On the other hand,
	   non-computed gotos must not be; the identifier in question
	   will have no binding.  */
7332
	t = tsubst_expr (t, args, complain, in_decl);
7333 7334
      else
	t = DECL_NAME (t);
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7335
      finish_goto_stmt (t);
7336 7337 7338
      break;

    case ASM_STMT:
7339
      prep_stmt (t);
7340
      finish_asm_stmt (ASM_CV_QUAL (t),
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		       tsubst_expr (ASM_STRING (t), args, complain, in_decl),
		       tsubst_expr (ASM_OUTPUTS (t), args, complain, in_decl),
		       tsubst_expr (ASM_INPUTS (t), args, complain, in_decl), 
		       tsubst_expr (ASM_CLOBBERS (t), args, complain,
				    in_decl));
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7346
      break;
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7347 7348

    case TRY_BLOCK:
7349
      prep_stmt (t);
7350
      if (CLEANUP_P (t))
7351
	{
7352
	  stmt = begin_try_block ();
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	  tsubst_expr (TRY_STMTS (t), args, complain, in_decl);
	  finish_cleanup_try_block (stmt);
	  finish_cleanup (tsubst_expr (TRY_HANDLERS (t), args,
				       complain, in_decl),
			  stmt);
	}
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      else
	{
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	  tree handler;

	  if (FN_TRY_BLOCK_P (t))
	    stmt = begin_function_try_block ();
	  else
	    stmt = begin_try_block ();

	  tsubst_expr (TRY_STMTS (t), args, complain, in_decl);

	  if (FN_TRY_BLOCK_P (t))
	    finish_function_try_block (stmt);
	  else
	    finish_try_block (stmt);

	  handler = TRY_HANDLERS (t);
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	  for (; handler; handler = TREE_CHAIN (handler))
	    tsubst_expr (handler, args, complain, in_decl);
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	  if (FN_TRY_BLOCK_P (t))
	    finish_function_handler_sequence (stmt);
	  else
	    finish_handler_sequence (stmt);
7382
	}
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7383
      break;
7384
      
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7385
    case HANDLER:
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      {
	tree decl;
	tree blocks;

	prep_stmt (t);
	stmt = begin_handler ();
	if (HANDLER_PARMS (t))
	  {
	    decl = DECL_STMT_DECL (HANDLER_PARMS (t));
	    decl = tsubst (decl, args, complain, in_decl);
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	    /* Prevent instantiate_decl from trying to instantiate
	       this variable.  We've already done all that needs to be
	       done.  */
	    DECL_TEMPLATE_INSTANTIATED (decl) = 1;
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	  }
	else
	  decl = NULL_TREE;
	blocks = finish_handler_parms (decl, stmt);
	tsubst_expr (HANDLER_BODY (t), args, complain, in_decl);
	finish_handler (blocks, stmt);
      }
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7407 7408
      break;

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7409
    case TAG_DEFN:
7410
      prep_stmt (t);
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7411 7412
      t = TREE_TYPE (t);
      if (TREE_CODE (t) == ENUMERAL_TYPE)
7413
	tsubst (t, args, complain, NULL_TREE);
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7414 7415
      break;

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7416
    default:
7417
      return build_expr_from_tree (tsubst_copy (t, args, complain, in_decl));
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    }
  return NULL_TREE;
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7420 7421
}

7422
/* Instantiate the indicated variable or function template TMPL with
7423 7424
   the template arguments in TARG_PTR.  */

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7425 7426
tree
instantiate_template (tmpl, targ_ptr)
7427
     tree tmpl, targ_ptr;
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7428
{
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7429
  tree fndecl;
7430 7431
  tree gen_tmpl;
  tree spec;
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7432 7433 7434
  int i, len;
  struct obstack *old_fmp_obstack;
  extern struct obstack *function_maybepermanent_obstack;
7435
  tree inner_args;
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7436

7437 7438 7439
  if (tmpl == error_mark_node)
    return error_mark_node;

7440 7441
  my_friendly_assert (TREE_CODE (tmpl) == TEMPLATE_DECL, 283);

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  /* Check to see if we already have this specialization.  */
  spec = retrieve_specialization (tmpl, targ_ptr);
  if (spec != NULL_TREE)
    return spec;

  if (DECL_TEMPLATE_INFO (tmpl))
7448
    {
7449 7450 7451 7452 7453 7454 7455 7456 7457
      /* The TMPL is a partial instantiation.  To get a full set of
	 arguments we must add the arguments used to perform the
	 partial instantiation.  */
      targ_ptr = add_outermost_template_args (DECL_TI_ARGS (tmpl),
					      targ_ptr);
      gen_tmpl = most_general_template (tmpl);

      /* Check to see if we already have this specialization.  */
      spec = retrieve_specialization (gen_tmpl, targ_ptr);
7458 7459
      if (spec != NULL_TREE)
	return spec;
7460
    }
7461 7462
  else
    gen_tmpl = tmpl;
7463

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  push_obstacks (&permanent_obstack, &permanent_obstack);
  old_fmp_obstack = function_maybepermanent_obstack;
  function_maybepermanent_obstack = &permanent_obstack;
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7467

7468 7469
  len = DECL_NTPARMS (gen_tmpl);
  inner_args = innermost_args (targ_ptr);
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7470 7471
  i = len;
  while (i--)
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7472
    {
7473
      tree t = TREE_VEC_ELT (inner_args, i);
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      if (TREE_CODE_CLASS (TREE_CODE (t)) == 't')
	{
	  tree nt = target_type (t);
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7477
	  if (IS_AGGR_TYPE (nt) && decl_function_context (TYPE_MAIN_DECL (nt)))
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mrs committed
7478
	    {
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7479 7480
	      cp_error ("type `%T' composed from a local class is not a valid template-argument", t);
	      cp_error ("  trying to instantiate `%D'", gen_tmpl);
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7481 7482 7483 7484
	      fndecl = error_mark_node;
	      goto out;
	    }
	}
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7485 7486
    }

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7487
  /* substitute template parameters */
7488
  fndecl = tsubst (DECL_RESULT (gen_tmpl), targ_ptr, /*complain=*/1, gen_tmpl);
7489 7490 7491
  /* The DECL_TI_TEMPLATE should always be the immediate parent
     template, not the most general template.  */
  DECL_TI_TEMPLATE (fndecl) = tmpl;
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7492

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  if (flag_external_templates)
    add_pending_template (fndecl);

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 out:
  function_maybepermanent_obstack = old_fmp_obstack;
  pop_obstacks ();
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7499

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7500
  return fndecl;
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7501
}
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7502 7503

/* Push the name of the class template into the scope of the instantiation.  */
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7504 7505

void
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7506 7507
overload_template_name (type)
     tree type;
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7508
{
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7509 7510
  tree id = DECL_NAME (CLASSTYPE_TI_TEMPLATE (type));
  tree decl;
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7511

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7512 7513 7514
  if (IDENTIFIER_CLASS_VALUE (id)
      && TREE_TYPE (IDENTIFIER_CLASS_VALUE (id)) == type)
    return;
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7515

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7516 7517 7518
  decl = build_decl (TYPE_DECL, id, type);
  SET_DECL_ARTIFICIAL (decl);
  pushdecl_class_level (decl);
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7519 7520
}

7521 7522 7523
/* The FN is a TEMPLATE_DECL for a function.  The ARGS are the
   arguments that are being used when calling it.  TARGS is a vector
   into which the deduced template arguments are placed.  
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7524 7525 7526 7527 7528

   Return zero for success, 2 for an incomplete match that doesn't resolve
   all the types, and 1 for complete failure.  An error message will be
   printed only for an incomplete match.

7529 7530
   If FN is a conversion operator, RETURN_TYPE is the type desired as
   the result of the conversion operator.
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7531

7532
   TPARMS is a vector of template parameters.
7533 7534 7535

   The EXPLICIT_TARGS are explicit template arguments provided via a
   template-id.
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7536

7537 7538 7539 7540 7541 7542 7543 7544 7545 7546 7547 7548 7549 7550 7551
   The parameter STRICT is one of:

   DEDUCE_CALL: 
     We are deducing arguments for a function call, as in
     [temp.deduct.call].

   DEDUCE_CONV:
     We are deducing arguments for a conversion function, as in 
     [temp.deduct.conv].

   DEDUCE_EXACT:
     We are deducing arguments when calculating the partial
     ordering between specializations of function or class
     templates, as in [temp.func.order] and [temp.class.order],
     when doing an explicit instantiation as in [temp.explicit],
7552
     when determining an explicit specialization as in
7553
     [temp.expl.spec], or when taking the address of a function
7554 7555 7556
     template, as in [temp.deduct.funcaddr]. 

   The other arguments are as for type_unification.  */
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7557 7558

int
7559
fn_type_unification (fn, explicit_targs, targs, args, return_type,
7560
		     strict)
7561
     tree fn, explicit_targs, targs, args, return_type;
7562
     unification_kind_t strict;
7563
{
7564 7565
  tree parms;
  tree fntype;
7566
  int result;
7567

7568 7569 7570 7571
  my_friendly_assert (TREE_CODE (fn) == TEMPLATE_DECL, 0);
  
  fntype = TREE_TYPE (fn);
  if (explicit_targs)
7572
    {
7573 7574 7575 7576 7577 7578 7579 7580 7581 7582 7583 7584 7585 7586 7587 7588 7589 7590 7591
      /* [temp.deduct]
	  
	 The specified template arguments must match the template
	 parameters in kind (i.e., type, nontype, template), and there
	 must not be more arguments than there are parameters;
	 otherwise type deduction fails.

	 Nontype arguments must match the types of the corresponding
	 nontype template parameters, or must be convertible to the
	 types of the corresponding nontype parameters as specified in
	 _temp.arg.nontype_, otherwise type deduction fails.

	 All references in the function type of the function template
	 to the corresponding template parameters are replaced by the
	 specified template argument values.  If a substitution in a
	 template parameter or in the function type of the function
	 template results in an invalid type, type deduction fails.  */
      int i;
      tree converted_args;
7592

7593 7594 7595 7596 7597
      converted_args
	= (coerce_template_parms (DECL_INNERMOST_TEMPLATE_PARMS (fn), 
				  explicit_targs, NULL_TREE, /*complain=*/0, 
				  /*require_all_arguments=*/0));
      if (converted_args == error_mark_node)
7598
	return 1;
7599

7600 7601 7602
      fntype = tsubst (fntype, converted_args, /*complain=*/0, NULL_TREE);
      if (fntype == error_mark_node)
	return 1;
7603

7604 7605 7606
      /* Place the explicitly specified arguments in TARGS.  */
      for (i = 0; i < TREE_VEC_LENGTH (targs); i++)
	TREE_VEC_ELT (targs, i) = TREE_VEC_ELT (converted_args, i);
7607
    }
7608 7609
     
  parms = TYPE_ARG_TYPES (fntype);
7610

7611 7612 7613
  if (DECL_CONV_FN_P (fn))
    {
      /* This is a template conversion operator.  Use the return types
7614 7615
         as well as the argument types.  We use it instead of 'this', since
         we could be comparing conversions from different classes.  */
7616 7617 7618
      parms = tree_cons (NULL_TREE, TREE_TYPE (fntype),
			 TREE_CHAIN (parms));
      args = tree_cons (NULL_TREE, return_type, TREE_CHAIN (args));
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    }

  /* We allow incomplete unification without an error message here
     because the standard doesn't seem to explicitly prohibit it.  Our
     callers must be ready to deal with unification failures in any
     event.  */
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  result = type_unification_real (DECL_INNERMOST_TEMPLATE_PARMS (fn), 
				  targs, parms, args, /*subr=*/0,
				  strict, /*allow_incomplete*/1);

  if (result == 0) 
    /* All is well so far.  Now, check:
       
       [temp.deduct] 
       
       When all template arguments have been deduced, all uses of
       template parameters in nondeduced contexts are replaced with
       the corresponding deduced argument values.  If the
       substitution results in an invalid type, as described above,
       type deduction fails.  */
    if (tsubst (TREE_TYPE (fn), targs, /*complain=*/0, NULL_TREE)
	== error_mark_node)
      return 1;

  return result;
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}

/* Adjust types before performing type deduction, as described in
   [temp.deduct.call] and [temp.deduct.conv].  The rules in these two
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7648 7649 7650 7651
   sections are symmetric.  PARM is the type of a function parameter
   or the return type of the conversion function.  ARG is the type of
   the argument passed to the call, or the type of the value
   intialized with the result of the conversion function.  */
7652

7653
static void
7654 7655 7656 7657 7658 7659 7660 7661 7662 7663 7664 7665
maybe_adjust_types_for_deduction (strict, parm, arg)
     unification_kind_t strict;
     tree* parm;
     tree* arg;
{
  switch (strict)
    {
    case DEDUCE_CALL:
      break;

    case DEDUCE_CONV:
      {
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7666 7667 7668
	/* Swap PARM and ARG throughout the remainder of this
	   function; the handling is precisely symmetric since PARM
	   will initialize ARG rather than vice versa.  */
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	tree* temp = parm;
	parm = arg;
	arg = temp;
	break;
      }

    case DEDUCE_EXACT:
      /* There is nothing to do in this case.  */
      return;

    default:
      my_friendly_abort (0);
    }

  if (TREE_CODE (*parm) != REFERENCE_TYPE)
    {
      /* [temp.deduct.call]
	 
	 If P is not a reference type:
	 
	 --If A is an array type, the pointer type produced by the
	 array-to-pointer standard conversion (_conv.array_) is
	 used in place of A for type deduction; otherwise,
	 
	 --If A is a function type, the pointer type produced by
	 the function-to-pointer standard conversion
	 (_conv.func_) is used in place of A for type deduction;
	 otherwise,
	 
	 --If A is a cv-qualified type, the top level
	 cv-qualifiers of A's type are ignored for type
	 deduction.  */
      if (TREE_CODE (*arg) == ARRAY_TYPE)
	*arg = build_pointer_type (TREE_TYPE (*arg));
7703
      else if (TREE_CODE (*arg) == FUNCTION_TYPE)
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	*arg = build_pointer_type (*arg);
      else
	*arg = TYPE_MAIN_VARIANT (*arg);
    }
  
  /* [temp.deduct.call]
     
     If P is a cv-qualified type, the top level cv-qualifiers
     of P's type are ignored for type deduction.  If P is a
     reference type, the type referred to by P is used for
     type deduction.  */
  *parm = TYPE_MAIN_VARIANT (*parm);
  if (TREE_CODE (*parm) == REFERENCE_TYPE)
    *parm = TREE_TYPE (*parm);
7718 7719
}

7720
/* Like type_unfication.
7721 7722 7723 7724

   If SUBR is 1, we're being called recursively (to unify the
   arguments of a function or method parameter of a function
   template).  */
7725

7726
static int
7727
type_unification_real (tparms, targs, parms, args, subr,
7728
		       strict, allow_incomplete)
7729
     tree tparms, targs, parms, args;
7730 7731 7732
     int subr;
     unification_kind_t strict;
     int allow_incomplete;
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{
  tree parm, arg;
  int i;
  int ntparms = TREE_VEC_LENGTH (tparms);
7737
  int sub_strict;
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7738 7739

  my_friendly_assert (TREE_CODE (tparms) == TREE_VEC, 289);
7740 7741
  my_friendly_assert (parms == NULL_TREE 
		      || TREE_CODE (parms) == TREE_LIST, 290);
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7742
  /* ARGS could be NULL (via a call from parse.y to
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7743 7744 7745 7746 7747
     build_x_function_call).  */
  if (args)
    my_friendly_assert (TREE_CODE (args) == TREE_LIST, 291);
  my_friendly_assert (ntparms > 0, 292);

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  switch (strict)
    {
    case DEDUCE_CALL:
      sub_strict = UNIFY_ALLOW_MORE_CV_QUAL | UNIFY_ALLOW_DERIVED;
      break;
      
    case DEDUCE_CONV:
      sub_strict = UNIFY_ALLOW_LESS_CV_QUAL;
      break;

    case DEDUCE_EXACT:
      sub_strict = UNIFY_ALLOW_NONE;
      break;
      
    default:
      my_friendly_abort (0);
    }

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  while (parms
	 && parms != void_list_node
	 && args
	 && args != void_list_node)
    {
      parm = TREE_VALUE (parms);
      parms = TREE_CHAIN (parms);
      arg = TREE_VALUE (args);
      args = TREE_CHAIN (args);

      if (arg == error_mark_node)
	return 1;
      if (arg == unknown_type_node)
7779 7780 7781
	/* We can't deduce anything from this, but we might get all the
	   template args from other function args.  */
	continue;
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7782

7783 7784 7785 7786 7787
      /* Conversions will be performed on a function argument that
	 corresponds with a function parameter that contains only
	 non-deducible template parameters and explicitly specified
	 template parameters.  */
      if (! uses_template_parms (parm))
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7788
	{
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	  tree type;

	  if (TREE_CODE_CLASS (TREE_CODE (arg)) != 't')
	    type = TREE_TYPE (arg);
	  else
	    {
	      type = arg;
	      arg = NULL_TREE;
	    }

7799
	  if (strict == DEDUCE_EXACT)
7800
	    {
7801
	      if (same_type_p (parm, type))
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		continue;
	    }
	  else
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	    /* It might work; we shouldn't check now, because we might
	       get into infinite recursion.  Overload resolution will
	       handle it.  */
	    continue;
7809

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	  return 1;
	}
	
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      if (TREE_CODE_CLASS (TREE_CODE (arg)) != 't')
	{
	  my_friendly_assert (TREE_TYPE (arg) != NULL_TREE, 293);
7816
	  if (type_unknown_p (arg))
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7817
	    {
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	      /* [temp.deduct.type] A template-argument can be deduced from
		 a pointer to function or pointer to member function
		 argument if the set of overloaded functions does not
		 contain function templates and at most one of a set of
		 overloaded functions provides a unique match.  */

	      if (resolve_overloaded_unification
7825
		  (tparms, targs, parm, arg, strict, sub_strict)
7826 7827 7828
		  != 0)
		return 1;
	      continue;
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7829
	    }
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7830 7831
	  arg = TREE_TYPE (arg);
	}
7832

7833 7834
      if (!subr)
	maybe_adjust_types_for_deduction (strict, &parm, &arg);
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mrs committed
7835

7836
      switch (unify (tparms, targs, parm, arg, sub_strict))
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	{
	case 0:
	  break;
	case 1:
	  return 1;
	}
    }
  /* Fail if we've reached the end of the parm list, and more args
     are present, and the parm list isn't variadic.  */
  if (args && args != void_list_node && parms == void_list_node)
    return 1;
  /* Fail if parms are left and they don't have default values.	 */
  if (parms
      && parms != void_list_node
      && TREE_PURPOSE (parms) == NULL_TREE)
    return 1;
  if (!subr)
    for (i = 0; i < ntparms; i++)
7855
      if (TREE_VEC_ELT (targs, i) == NULL_TREE)
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7856
	{
7857
	  if (!allow_incomplete)
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7858
	    error ("incomplete type unification");
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	  return 2;
	}
  return 0;
}

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/* Subroutine of type_unification_real.  Args are like the variables at the
   call site.  ARG is an overloaded function (or template-id); we try
   deducing template args from each of the overloads, and if only one
   succeeds, we go with that.  Modifies TARGS and returns 0 on success.  */

static int
resolve_overloaded_unification (tparms, targs, parm, arg, strict,
7871
				sub_strict)
7872 7873 7874 7875 7876 7877 7878 7879 7880
     tree tparms, targs, parm, arg;
     unification_kind_t strict;
     int sub_strict;
{
  tree tempargs = copy_node (targs);
  int good = 0;

  if (TREE_CODE (arg) == ADDR_EXPR)
    arg = TREE_OPERAND (arg, 0);
7881

7882 7883 7884 7885 7886
  if (TREE_CODE (arg) == COMPONENT_REF)
    /* Handle `&x' where `x' is some static or non-static member
       function name.  */
    arg = TREE_OPERAND (arg, 1);

7887 7888 7889
  if (TREE_CODE (arg) == OFFSET_REF)
    arg = TREE_OPERAND (arg, 1);

7890 7891 7892 7893
  /* Strip baselink information.  */
  while (TREE_CODE (arg) == TREE_LIST)
    arg = TREE_VALUE (arg);

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  if (TREE_CODE (arg) == TEMPLATE_ID_EXPR)
    {
      /* If we got some explicit template args, we need to plug them into
	 the affected templates before we try to unify, in case the
	 explicit args will completely resolve the templates in question.  */

      tree expl_subargs = TREE_OPERAND (arg, 1);
      arg = TREE_OPERAND (arg, 0);

      for (; arg; arg = OVL_NEXT (arg))
	{
	  tree fn = OVL_CURRENT (arg);
	  tree subargs, elem;

	  if (TREE_CODE (fn) != TEMPLATE_DECL)
	    continue;

	  subargs = get_bindings_overload (fn, DECL_RESULT (fn), expl_subargs);
	  if (subargs)
	    {
7914 7915
	      elem = tsubst (TREE_TYPE (fn), subargs, /*complain=*/0,
			     NULL_TREE);
7916 7917
	      if (TREE_CODE (elem) == METHOD_TYPE)
		elem = build_ptrmemfunc_type (build_pointer_type (elem));
7918
	      good += try_one_overload (tparms, targs, tempargs, parm, elem,
7919
					strict, sub_strict);
7920 7921 7922 7923 7924 7925
	    }
	}
    }
  else if (TREE_CODE (arg) == OVERLOAD)
    {
      for (; arg; arg = OVL_NEXT (arg))
7926 7927 7928 7929 7930 7931
	{
	  tree type = TREE_TYPE (OVL_CURRENT (arg));
	  if (TREE_CODE (type) == METHOD_TYPE)
	    type = build_ptrmemfunc_type (build_pointer_type (type));
	  good += try_one_overload (tparms, targs, tempargs, parm,
				    type,
7932
				    strict, sub_strict);
7933
	}
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    }
  else
    my_friendly_abort (981006);

  /* [temp.deduct.type] A template-argument can be deduced from a pointer
     to function or pointer to member function argument if the set of
     overloaded functions does not contain function templates and at most
     one of a set of overloaded functions provides a unique match.

     So if we found multiple possibilities, we return success but don't
     deduce anything.  */

  if (good == 1)
    {
      int i = TREE_VEC_LENGTH (targs);
      for (; i--; )
	if (TREE_VEC_ELT (tempargs, i))
	  TREE_VEC_ELT (targs, i) = TREE_VEC_ELT (tempargs, i);
    }
  if (good)
    return 0;

  return 1;
}

/* Subroutine of resolve_overloaded_unification; does deduction for a single
   overload.  Fills TARGS with any deduced arguments, or error_mark_node if
   different overloads deduce different arguments for a given parm.
   Returns 1 on success.  */

static int
7965
try_one_overload (tparms, orig_targs, targs, parm, arg, strict,
7966
		  sub_strict)
7967
     tree tparms, orig_targs, targs, parm, arg;
7968 7969 7970 7971 7972 7973 7974 7975 7976 7977 7978 7979 7980 7981 7982 7983 7984 7985 7986 7987 7988 7989 7990 7991
     unification_kind_t strict;
     int sub_strict;
{
  int nargs;
  tree tempargs;
  int i;

  /* [temp.deduct.type] A template-argument can be deduced from a pointer
     to function or pointer to member function argument if the set of
     overloaded functions does not contain function templates and at most
     one of a set of overloaded functions provides a unique match.

     So if this is a template, just return success.  */

  if (uses_template_parms (arg))
    return 1;

  maybe_adjust_types_for_deduction (strict, &parm, &arg);

  /* We don't copy orig_targs for this because if we have already deduced
     some template args from previous args, unify would complain when we
     try to deduce a template parameter for the same argument, even though
     there isn't really a conflict.  */
  nargs = TREE_VEC_LENGTH (targs);
7992
  tempargs = make_tree_vec (nargs);
7993

7994
  if (unify (tparms, tempargs, parm, arg, sub_strict) != 0)
7995 7996 7997
    return 0;

  /* First make sure we didn't deduce anything that conflicts with
7998
     explicitly specified args.  */
7999 8000 8001
  for (i = nargs; i--; )
    {
      tree elt = TREE_VEC_ELT (tempargs, i);
8002
      tree oldelt = TREE_VEC_ELT (orig_targs, i);
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      if (elt == NULL_TREE)
	continue;
      else if (uses_template_parms (elt))
	{
	  /* Since we're unifying against ourselves, we will fill in template
	     args used in the function parm list with our own template parms.
	     Discard them.  */
	  TREE_VEC_ELT (tempargs, i) = NULL_TREE;
	  continue;
	}
      else if (oldelt && ! template_args_equal (oldelt, elt))
	return 0;
    }

  for (i = nargs; i--; )
    {
      tree elt = TREE_VEC_ELT (tempargs, i);

      if (elt)
	TREE_VEC_ELT (targs, i) = elt;
    }

  return 1;
}

8029 8030 8031 8032
/* PARM is a template class (perhaps with unbound template
   parameters).  ARG is a fully instantiated type.  If ARG can be
   bound to PARM, return ARG, otherwise return NULL_TREE.  TPARMS and
   TARGS are as for unify.  */
8033 8034

static tree
8035
try_class_unification (tparms, targs, parm, arg)
8036 8037
     tree tparms;
     tree targs;
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     tree parm;
     tree arg;
{
  int i;
  tree copy_of_targs;

  if (!CLASSTYPE_TEMPLATE_INFO (arg)
      || CLASSTYPE_TI_TEMPLATE (arg) != CLASSTYPE_TI_TEMPLATE (parm))
    return NULL_TREE;

  /* We need to make a new template argument vector for the call to
     unify.  If we used TARGS, we'd clutter it up with the result of
     the attempted unification, even if this class didn't work out.
     We also don't want to commit ourselves to all the unifications
     we've already done, since unification is supposed to be done on
     an argument-by-argument basis.  In other words, consider the
     following pathological case:

       template <int I, int J, int K>
       struct S {};
       
       template <int I, int J>
       struct S<I, J, 2> : public S<I, I, I>, S<J, J, J> {};
       
       template <int I, int J, int K>
       void f(S<I, J, K>, S<I, I, I>);
       
       void g() {
         S<0, 0, 0> s0;
         S<0, 1, 2> s2;
       
         f(s0, s2);
       }

     Now, by the time we consider the unification involving `s2', we
     already know that we must have `f<0, 0, 0>'.  But, even though
     `S<0, 1, 2>' is derived from `S<0, 0, 0>', the code is not legal
     because there are two ways to unify base classes of S<0, 1, 2>
     with S<I, I, I>.  If we kept the already deduced knowledge, we
     would reject the possibility I=1.  */
8078
  copy_of_targs = make_tree_vec (TREE_VEC_LENGTH (targs));
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  i = unify (tparms, copy_of_targs, CLASSTYPE_TI_ARGS (parm),
	     CLASSTYPE_TI_ARGS (arg), UNIFY_ALLOW_NONE);
  
  /* If unification failed, we're done.  */
  if (i != 0)
    return NULL_TREE;
  else
    return arg;
}

/* Subroutine of get_template_base.  RVAL, if non-NULL, is a base we
   have alreay discovered to be satisfactory.  ARG_BINFO is the binfo
   for the base class of ARG that we are currently examining.  */

static tree
get_template_base_recursive (tparms, targs, parm,
			     arg_binfo, rval, flags)
     tree tparms;
     tree targs;
     tree arg_binfo;
8099
     tree rval;
8100 8101
     tree parm;
     int flags;
8102 8103 8104
{
  tree binfos;
  int i, n_baselinks;
8105
  tree arg = BINFO_TYPE (arg_binfo);
8106

8107
  if (!(flags & GTB_IGNORE_TYPE))
8108
    {
8109 8110
      tree r = try_class_unification (tparms, targs,
				      parm, arg);
8111

8112
      /* If there is more than one satisfactory baseclass, then:
8113

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	   [temp.deduct.call]

	   If they yield more than one possible deduced A, the type
	   deduction fails.

	   applies.  */
      if (r && rval && !same_type_p (r, rval))
	return error_mark_node;
      else if (r)
	rval = r;
8124 8125
    }

8126
  binfos = BINFO_BASETYPES (arg_binfo);
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  n_baselinks = binfos ? TREE_VEC_LENGTH (binfos) : 0;

  /* Process base types.  */
  for (i = 0; i < n_baselinks; i++)
    {
      tree base_binfo = TREE_VEC_ELT (binfos, i);
8133
      int this_virtual;
8134

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      /* Skip this base, if we've already seen it.  */
      if (BINFO_MARKED (base_binfo))
	continue;

      this_virtual = 
	(flags & GTB_VIA_VIRTUAL) || TREE_VIA_VIRTUAL (base_binfo);
      
      /* When searching for a non-virtual, we cannot mark virtually
	 found binfos.  */
      if (! this_virtual)
	SET_BINFO_MARKED (base_binfo);
      
      rval = get_template_base_recursive (tparms, targs,
					  parm,
					  base_binfo, 
					  rval,
					  GTB_VIA_VIRTUAL * this_virtual);
      
      /* If we discovered more than one matching base class, we can
	 stop now.  */
      if (rval == error_mark_node)
	return error_mark_node;
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    }

  return rval;
}

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/* Given a template type PARM and a class type ARG, find the unique
   base type in ARG that is an instance of PARM.  We do not examine
   ARG itself; only its base-classes.  If there is no appropriate base
   class, return NULL_TREE.  If there is more than one, return
   error_mark_node.  PARM may be the type of a partial specialization,
   as well as a plain template type.  Used by unify.  */
8168 8169

static tree
8170
get_template_base (tparms, targs, parm, arg)
8171 8172
     tree tparms;
     tree targs;
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     tree parm;
     tree arg;
8175
{
8176 8177
  tree rval;
  tree arg_binfo;
8178

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  my_friendly_assert (IS_AGGR_TYPE_CODE (TREE_CODE (arg)), 92);
  
  arg_binfo = TYPE_BINFO (complete_type (arg));
  rval = get_template_base_recursive (tparms, targs,
				      parm, arg_binfo, 
				      NULL_TREE,
				      GTB_IGNORE_TYPE);
8186

8187 8188
  /* Since get_template_base_recursive marks the bases classes, we
     must unmark them here.  */
8189
  dfs_walk (arg_binfo, dfs_unmark, markedp, 0);
8190 8191 8192 8193

  return rval;
}

8194 8195
/* Returns the level of DECL, which declares a template parameter.  */

8196
static int
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template_decl_level (decl)
     tree decl;
{
  switch (TREE_CODE (decl))
    {
    case TYPE_DECL:
    case TEMPLATE_DECL:
      return TEMPLATE_TYPE_LEVEL (TREE_TYPE (decl));

    case PARM_DECL:
      return TEMPLATE_PARM_LEVEL (DECL_INITIAL (decl));

    default:
      my_friendly_abort (0);
8211
      return 0;
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    }
}

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/* Decide whether ARG can be unified with PARM, considering only the
   cv-qualifiers of each type, given STRICT as documented for unify.
   Returns non-zero iff the unification is OK on that basis.*/
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mrs committed
8218

8219
static int
8220 8221 8222 8223 8224
check_cv_quals_for_unify (strict, arg, parm)
     int strict;
     tree arg;
     tree parm;
{
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  if (!(strict & UNIFY_ALLOW_MORE_CV_QUAL)
      && !at_least_as_qualified_p (arg, parm))
    return 0;

  if (!(strict & UNIFY_ALLOW_LESS_CV_QUAL)
      && !at_least_as_qualified_p (parm, arg))
    return 0;

  return 1;
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}

/* Takes parameters as for type_unification.  Returns 0 if the
   type deduction suceeds, 1 otherwise.  The parameter STRICT is a
   bitwise or of the following flags:

     UNIFY_ALLOW_NONE:
       Require an exact match between PARM and ARG.
     UNIFY_ALLOW_MORE_CV_QUAL:
       Allow the deduced ARG to be more cv-qualified than ARG.
     UNIFY_ALLOW_LESS_CV_QUAL:
       Allow the deduced ARG to be less cv-qualified than ARG.
     UNIFY_ALLOW_DERIVED:
       Allow the deduced ARG to be a template base class of ARG,
       or a pointer to a template base class of the type pointed to by
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       ARG.
     UNIFY_ALLOW_INTEGER:
       Allow any integral type to be deduced.  See the TEMPLATE_PARM_INDEX
       case for more information.  */
8253

8254
static int
8255
unify (tparms, targs, parm, arg, strict)
8256
     tree tparms, targs, parm, arg;
8257
     int strict;
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mrs committed
8258 8259
{
  int idx;
8260
  tree targ;
8261
  tree tparm;
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  /* I don't think this will do the right thing with respect to types.
     But the only case I've seen it in so far has been array bounds, where
     signedness is the only information lost, and I think that will be
     okay.  */
  while (TREE_CODE (parm) == NOP_EXPR)
    parm = TREE_OPERAND (parm, 0);

  if (arg == error_mark_node)
    return 1;
  if (arg == unknown_type_node)
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    /* We can't deduce anything from this, but we might get all the
       template args from other function args.  */
    return 0;

8277
  /* If PARM uses template parameters, then we can't bail out here,
8278
     even if ARG == PARM, since we won't record unifications for the
8279 8280 8281
     template parameters.  We might need them if we're trying to
     figure out which of two things is more specialized.  */
  if (arg == parm && !uses_template_parms (parm))
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8282 8283
    return 0;

8284 8285 8286
  /* Immediately reject some pairs that won't unify because of
     cv-qualification mismatches.  */
  if (TREE_CODE (arg) == TREE_CODE (parm)
8287
      && TREE_CODE_CLASS (TREE_CODE (arg)) == 't'
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      /* We check the cv-qualifiers when unifying with template type
	 parameters below.  We want to allow ARG `const T' to unify with
	 PARM `T' for example, when computing which of two templates
	 is more specialized, for example.  */
      && TREE_CODE (arg) != TEMPLATE_TYPE_PARM
      && !check_cv_quals_for_unify (strict, arg, parm))
8294 8295
    return 1;

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8296 8297
  switch (TREE_CODE (parm))
    {
8298 8299 8300 8301 8302 8303
    case TYPENAME_TYPE:
      /* In a type which contains a nested-name-specifier, template
	 argument values cannot be deduced for template parameters used
	 within the nested-name-specifier.  */
      return 0;

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8304
    case TEMPLATE_TYPE_PARM:
8305
    case TEMPLATE_TEMPLATE_PARM:
8306 8307 8308 8309 8310 8311 8312
      tparm = TREE_VALUE (TREE_VEC_ELT (tparms, 0));

      if (TEMPLATE_TYPE_LEVEL (parm)
	  != template_decl_level (tparm))
	/* The PARM is not one we're trying to unify.  Just check
	   to see if it matches ARG.  */
	return (TREE_CODE (arg) == TREE_CODE (parm)
8313
		&& same_type_p (parm, arg)) ? 0 : 1;
8314
      idx = TEMPLATE_TYPE_IDX (parm);
8315
      targ = TREE_VEC_ELT (targs, idx);
8316
      tparm = TREE_VALUE (TREE_VEC_ELT (tparms, idx));
8317

8318
      /* Check for mixed types and values.  */
8319 8320 8321 8322
      if ((TREE_CODE (parm) == TEMPLATE_TYPE_PARM
	   && TREE_CODE (tparm) != TYPE_DECL)
	  || (TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM 
	      && TREE_CODE (tparm) != TEMPLATE_DECL))
8323 8324
	return 1;

8325
      if (TREE_CODE (parm) == TEMPLATE_TEMPLATE_PARM)
8326
	{
8327
	  if (TEMPLATE_TEMPLATE_PARM_TEMPLATE_INFO (parm))
8328 8329 8330
	    {
	      /* We arrive here when PARM does not involve template 
		 specialization.  */
8331

8332 8333 8334
	      /* ARG must be constructed from a template class.  */
	      if (TREE_CODE (arg) != RECORD_TYPE || !CLASSTYPE_TEMPLATE_INFO (arg))
		return 1;
8335

8336
	      {
8337 8338
		tree parmtmpl = TYPE_TI_TEMPLATE (parm);
		tree parmvec = TYPE_TI_ARGS (parm);
8339 8340 8341 8342 8343 8344 8345 8346 8347
		tree argvec = CLASSTYPE_TI_ARGS (arg);
		tree argtmplvec
		  = DECL_INNERMOST_TEMPLATE_PARMS (CLASSTYPE_TI_TEMPLATE (arg));
		int i;

		/* The parameter and argument roles have to be switched here 
		   in order to handle default arguments properly.  For example, 
		   template<template <class> class TT> void f(TT<int>) 
		   should be able to accept vector<int> which comes from 
8348
		   template <class T, class Allocator = allocator> 
8349 8350
		   class vector.  */

8351
		if (coerce_template_parms (argtmplvec, parmvec, parmtmpl, 0, 1)
8352 8353
		    == error_mark_node)
		  return 1;
8354
	  
8355 8356 8357 8358 8359
		/* Deduce arguments T, i from TT<T> or TT<i>.  
		   We check each element of PARMVEC and ARGVEC individually
		   rather than the whole TREE_VEC since they can have
		   different number of elements.  */

8360 8361 8362
		for (i = 0; i < TREE_VEC_LENGTH (parmvec); ++i)
		  {
		    tree t = TREE_VEC_ELT (parmvec, i);
8363

8364 8365
		    if (unify (tparms, targs, t, 
			       TREE_VEC_ELT (argvec, i), 
8366
			       UNIFY_ALLOW_NONE))
8367 8368
		      return 1;
		  }
8369
	      }
8370 8371 8372 8373 8374
	      arg = CLASSTYPE_TI_TEMPLATE (arg);
	    }
	}
      else
	{
8375 8376 8377 8378 8379 8380
	  /* If PARM is `const T' and ARG is only `int', we don't have
	     a match unless we are allowing additional qualification.
	     If ARG is `const int' and PARM is just `T' that's OK;
	     that binds `const int' to `T'.  */
	  if (!check_cv_quals_for_unify (strict | UNIFY_ALLOW_LESS_CV_QUAL, 
					 arg, parm))
8381 8382
	    return 1;

8383 8384 8385
	  /* Consider the case where ARG is `const volatile int' and
	     PARM is `const T'.  Then, T should be `volatile int'.  */
	  arg = 
8386 8387 8388 8389 8390 8391
	    cp_build_qualified_type_real (arg,
					  CP_TYPE_QUALS (arg) 
					  & ~CP_TYPE_QUALS (parm),
					  /*complain=*/0);
	  if (arg == error_mark_node)
	    return 1;
8392 8393 8394
	}

      /* Simple cases: Value already set, does match or doesn't.  */
8395
      if (targ != NULL_TREE && same_type_p (targ, arg))
8396
	return 0;
8397
      else if (targ)
8398
	return 1;
8399 8400 8401 8402 8403 8404 8405 8406 8407 8408 8409 8410 8411 8412

      /* Make sure that ARG is not a variable-sized array.  (Note that
	 were talking about variable-sized arrays (like `int[n]'),
	 rather than arrays of unknown size (like `int[]').)  We'll
	 get very confused by such a type since the bound of the array
	 will not be computable in an instantiation.  Besides, such
	 types are not allowed in ISO C++, so we can do as we please
	 here.  */
      if (TREE_CODE (arg) == ARRAY_TYPE 
	  && !uses_template_parms (arg)
	  && (TREE_CODE (TYPE_MAX_VALUE (TYPE_DOMAIN (arg)))
	      != INTEGER_CST))
	return 1;

8413
      TREE_VEC_ELT (targs, idx) = arg;
8414 8415
      return 0;

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8416
    case TEMPLATE_PARM_INDEX:
8417 8418 8419 8420 8421 8422 8423
      tparm = TREE_VALUE (TREE_VEC_ELT (tparms, 0));

      if (TEMPLATE_PARM_LEVEL (parm) 
	  != template_decl_level (tparm))
	/* The PARM is not one we're trying to unify.  Just check
	   to see if it matches ARG.  */
	return (TREE_CODE (arg) == TREE_CODE (parm)
8424
		&& cp_tree_equal (parm, arg) > 0) ? 0 : 1;
8425

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8426
      idx = TEMPLATE_PARM_IDX (parm);
8427
      targ = TREE_VEC_ELT (targs, idx);
8428

8429
      if (targ)
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8430
	{
8431
	  int i = (cp_tree_equal (targ, arg) > 0);
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8432 8433 8434 8435 8436 8437
	  if (i == 1)
	    return 0;
	  else if (i == 0)
	    return 1;
	  else
	    my_friendly_abort (42);
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8438 8439
	}

8440 8441 8442 8443 8444 8445 8446 8447 8448 8449 8450 8451 8452 8453 8454 8455
      /* [temp.deduct.type] If, in the declaration of a function template
	 with a non-type template-parameter, the non-type
	 template-parameter is used in an expression in the function
	 parameter-list and, if the corresponding template-argument is
	 deduced, the template-argument type shall match the type of the
	 template-parameter exactly, except that a template-argument
	 deduced from an array bound may be of any integral type.  */
      if (same_type_p (TREE_TYPE (arg), TREE_TYPE (parm)))
	/* OK */;
      else if ((strict & UNIFY_ALLOW_INTEGER)
	       && (TREE_CODE (TREE_TYPE (parm)) == INTEGER_TYPE
		   || TREE_CODE (TREE_TYPE (parm)) == BOOLEAN_TYPE))
	/* OK */;
      else
	return 1;

8456
      TREE_VEC_ELT (targs, idx) = arg;
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8457 8458 8459
      return 0;

    case POINTER_TYPE:
8460 8461
      {
	int sub_strict;
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8462

8463 8464 8465 8466 8467 8468 8469 8470 8471 8472 8473 8474 8475 8476 8477 8478 8479 8480 8481
	if (TREE_CODE (arg) != POINTER_TYPE)
	  return 1;
	
	/* [temp.deduct.call]

	   A can be another pointer or pointer to member type that can
	   be converted to the deduced A via a qualification
	   conversion (_conv.qual_).

	   We pass down STRICT here rather than UNIFY_ALLOW_NONE.
	   This will allow for additional cv-qualification of the
	   pointed-to types if appropriate.  In general, this is a bit
	   too generous; we are only supposed to allow qualification
	   conversions and this method will allow an ARG of char** and
	   a deduced ARG of const char**.  However, overload
	   resolution will subsequently invalidate the candidate, so
	   this is probably OK.  */
	sub_strict = strict;
	
8482
	if (TREE_CODE (TREE_TYPE (arg)) != RECORD_TYPE)
8483 8484 8485 8486
	  /* The derived-to-base conversion only persists through one
	     level of pointers.  */
	  sub_strict &= ~UNIFY_ALLOW_DERIVED;

8487 8488
	return unify (tparms, targs, TREE_TYPE (parm), 
		      TREE_TYPE (arg), sub_strict);
8489
      }
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8490 8491

    case REFERENCE_TYPE:
8492 8493 8494
      if (TREE_CODE (arg) != REFERENCE_TYPE)
	return 1;
      return unify (tparms, targs, TREE_TYPE (parm), TREE_TYPE (arg),
8495
		    UNIFY_ALLOW_NONE);
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8496 8497 8498 8499

    case ARRAY_TYPE:
      if (TREE_CODE (arg) != ARRAY_TYPE)
	return 1;
8500 8501 8502 8503
      if ((TYPE_DOMAIN (parm) == NULL_TREE)
	  != (TYPE_DOMAIN (arg) == NULL_TREE))
	return 1;
      if (TYPE_DOMAIN (parm) != NULL_TREE
8504
	  && unify (tparms, targs, TYPE_DOMAIN (parm),
8505
		    TYPE_DOMAIN (arg), UNIFY_ALLOW_NONE) != 0)
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8506
	return 1;
8507
      return unify (tparms, targs, TREE_TYPE (parm), TREE_TYPE (arg),
8508
		    UNIFY_ALLOW_NONE);
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8509 8510

    case REAL_TYPE:
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    case COMPLEX_TYPE:
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    case INTEGER_TYPE:
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    case BOOLEAN_TYPE:
8514
    case VOID_TYPE:
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      if (TREE_CODE (arg) != TREE_CODE (parm))
	return 1;

8518 8519
      if (TREE_CODE (parm) == INTEGER_TYPE
	  && TREE_CODE (TYPE_MAX_VALUE (parm)) != INTEGER_CST)
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8520 8521
	{
	  if (TYPE_MIN_VALUE (parm) && TYPE_MIN_VALUE (arg)
8522
	      && unify (tparms, targs, TYPE_MIN_VALUE (parm),
8523
			TYPE_MIN_VALUE (arg), UNIFY_ALLOW_INTEGER))
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8524 8525
	    return 1;
	  if (TYPE_MAX_VALUE (parm) && TYPE_MAX_VALUE (arg)
8526
	      && unify (tparms, targs, TYPE_MAX_VALUE (parm),
8527
			TYPE_MAX_VALUE (arg), UNIFY_ALLOW_INTEGER))
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8528 8529
	    return 1;
	}
8530 8531 8532
      /* We use the TYPE_MAIN_VARIANT since we have already
	 checked cv-qualification at the top of the
	 function.  */
8533 8534
      else if (!same_type_p (TYPE_MAIN_VARIANT (arg),
			     TYPE_MAIN_VARIANT (parm)))
8535 8536
	return 1;

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8537 8538 8539 8540 8541
      /* As far as unification is concerned, this wins.	 Later checks
	 will invalidate it if necessary.  */
      return 0;

      /* Types INTEGER_CST and MINUS_EXPR can come from array bounds.  */
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8542
      /* Type INTEGER_CST can come from ordinary constant template args.  */
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8543
    case INTEGER_CST:
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8544 8545 8546
      while (TREE_CODE (arg) == NOP_EXPR)
	arg = TREE_OPERAND (arg, 0);

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8547 8548 8549 8550 8551 8552 8553 8554 8555 8556 8557 8558
      if (TREE_CODE (arg) != INTEGER_CST)
	return 1;
      return !tree_int_cst_equal (parm, arg);

    case TREE_VEC:
      {
	int i;
	if (TREE_CODE (arg) != TREE_VEC)
	  return 1;
	if (TREE_VEC_LENGTH (parm) != TREE_VEC_LENGTH (arg))
	  return 1;
	for (i = TREE_VEC_LENGTH (parm) - 1; i >= 0; i--)
8559
	  if (unify (tparms, targs,
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8560
		     TREE_VEC_ELT (parm, i), TREE_VEC_ELT (arg, i),
8561
		     UNIFY_ALLOW_NONE))
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8562 8563 8564 8565 8566
	    return 1;
	return 0;
      }

    case RECORD_TYPE:
8567 8568
    case UNION_TYPE:
      if (TREE_CODE (arg) != TREE_CODE (parm))
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8569
	return 1;
8570
  
8571 8572 8573 8574 8575 8576 8577 8578 8579 8580 8581
      if (TYPE_PTRMEMFUNC_P (parm))
	{
	  if (!TYPE_PTRMEMFUNC_P (arg))
	    return 1;

	  return unify (tparms, targs, 
			TYPE_PTRMEMFUNC_FN_TYPE (parm),
			TYPE_PTRMEMFUNC_FN_TYPE (arg),
			strict);
	}

8582
      if (CLASSTYPE_TEMPLATE_INFO (parm))
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8583
	{
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8584
	  tree t = NULL_TREE;
8585

8586
	  if (strict & UNIFY_ALLOW_DERIVED)
8587 8588 8589 8590 8591 8592 8593 8594 8595 8596 8597 8598 8599 8600 8601 8602 8603 8604 8605 8606 8607 8608 8609
	    {
	      /* First, we try to unify the PARM and ARG directly.  */
	      t = try_class_unification (tparms, targs,
					 parm, arg);

	      if (!t)
		{
		  /* Fallback to the special case allowed in
		     [temp.deduct.call]:
		     
		       If P is a class, and P has the form
		       template-id, then A can be a derived class of
		       the deduced A.  Likewise, if P is a pointer to
		       a class of the form template-id, A can be a
		       pointer to a derived class pointed to by the
		       deduced A.  */
		  t = get_template_base (tparms, targs,
					 parm, arg);

		  if (! t || t == error_mark_node)
		    return 1;
		}
	    }
8610
	  else if (CLASSTYPE_TEMPLATE_INFO (arg) 
8611 8612
		   && (CLASSTYPE_TI_TEMPLATE (parm) 
		       == CLASSTYPE_TI_TEMPLATE (arg)))
8613 8614
	    /* Perhaps PARM is something like S<U> and ARG is S<int>.
	       Then, we should unify `int' and `U'.  */
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	    t = arg;
8616 8617
	  else
	    /* There's no chance of unication succeeding.  */
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	    return 1;
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8619

8620
	  return unify (tparms, targs, CLASSTYPE_TI_ARGS (parm),
8621
			CLASSTYPE_TI_ARGS (t), UNIFY_ALLOW_NONE);
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8622
	}
8623 8624
      else if (!same_type_p (TYPE_MAIN_VARIANT (parm),
			     TYPE_MAIN_VARIANT (arg)))
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	return 1;
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8626
      return 0;
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8627 8628 8629

    case METHOD_TYPE:
    case FUNCTION_TYPE:
8630
      if (TREE_CODE (arg) != TREE_CODE (parm))
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8631
	return 1;
8632 8633

      if (unify (tparms, targs, TREE_TYPE (parm),
8634
		 TREE_TYPE (arg), UNIFY_ALLOW_NONE))
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8635
	return 1;
8636
      return type_unification_real (tparms, targs, TYPE_ARG_TYPES (parm),
8637
				    TYPE_ARG_TYPES (arg), 1, 
8638
				    DEDUCE_EXACT, 0);
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    case OFFSET_TYPE:
      if (TREE_CODE (arg) != OFFSET_TYPE)
	return 1;
8643
      if (unify (tparms, targs, TYPE_OFFSET_BASETYPE (parm),
8644
		 TYPE_OFFSET_BASETYPE (arg), UNIFY_ALLOW_NONE))
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8645
	return 1;
8646
      return unify (tparms, targs, TREE_TYPE (parm), TREE_TYPE (arg),
8647
		    strict);
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8648

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merge  
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8649
    case CONST_DECL:
8650
      if (arg != decl_constant_value (parm)) 
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merge  
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8651 8652 8653
	return 1;
      return 0;

8654 8655 8656 8657
    case TEMPLATE_DECL:
      /* Matched cases are handled by the ARG == PARM test above.  */
      return 1;

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    case MINUS_EXPR:
      if (TREE_CODE (TREE_OPERAND (parm, 1)) == INTEGER_CST)
	{
	  /* We handle this case specially, since it comes up with
	     arrays.  In particular, something like:

	     template <int N> void f(int (&x)[N]);

	     Here, we are trying to unify the range type, which
	     looks like [0 ... (N - 1)].  */
	  tree t, t1, t2;
	  t1 = TREE_OPERAND (parm, 0);
	  t2 = TREE_OPERAND (parm, 1);

	  /* Should this be a regular fold?  */
	  t = maybe_fold_nontype_arg (build (PLUS_EXPR,
					     integer_type_node,
					     arg, t2));

8677
	  return unify (tparms, targs, t1, t, strict);
8678 8679 8680
	}
      /* else fall through */

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8681
    default:
8682
      if (IS_EXPR_CODE_CLASS (TREE_CODE_CLASS (TREE_CODE (parm))))
8683 8684 8685 8686 8687
	/* We're looking at an expression.  This can happen with
	   something like: 
	   
	     template <int I>
	     void foo(S<I>, S<I + 2>);
8688

8689
	   This is a "nondeduced context":
8690

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	     [deduct.type]
	   
	     The nondeduced contexts are:
8694

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	     --A type that is a template-id in which one or more of
	       the template-arguments is an expression that references
	       a template-parameter.  
8698

8699 8700 8701
	   In these cases, we assume deduction succeeded, but don't
	   actually infer any unifications.  */
	return 0;
8702
      else
8703 8704
	sorry ("use of `%s' in template type unification",
	       tree_code_name [(int) TREE_CODE (parm)]);
8705

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      return 1;
    }
}

8710 8711 8712 8713
/* Called if RESULT is explicitly instantiated, or is a member of an
   explicitly instantiated class, or if using -frepo and the
   instantiation of RESULT has been assigned to this file.  */

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8714
void
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8715
mark_decl_instantiated (result, extern_p)
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8716 8717 8718
     tree result;
     int extern_p;
{
8719 8720 8721 8722
  if (TREE_CODE (result) != FUNCTION_DECL)
    /* The TREE_PUBLIC flag for function declarations will have been
       set correctly by tsubst.  */
    TREE_PUBLIC (result) = 1;
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8723 8724 8725 8726 8727

  if (! extern_p)
    {
      DECL_INTERFACE_KNOWN (result) = 1;
      DECL_NOT_REALLY_EXTERN (result) = 1;
8728

8729 8730 8731
      /* Always make artificials weak.  */
      if (DECL_ARTIFICIAL (result) && flag_weak)
	comdat_linkage (result);
8732 8733
      /* For WIN32 we also want to put explicit instantiations in
	 linkonce sections.  */
8734
      else if (TREE_PUBLIC (result))
8735
	maybe_make_one_only (result);
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8736
    }
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8737 8738
  else if (TREE_CODE (result) == FUNCTION_DECL)
    mark_inline_for_output (result);
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8739 8740
}

8741 8742
/* Given two function templates PAT1 and PAT2, and explicit template
   arguments EXPLICIT_ARGS return:
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8743 8744 8745 8746 8747 8748

   1 if PAT1 is more specialized than PAT2 as described in [temp.func.order].
   -1 if PAT2 is more specialized than PAT1.
   0 if neither is more specialized.  */
   
int
8749 8750
more_specialized (pat1, pat2, explicit_args)
     tree pat1, pat2, explicit_args;
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8751
{
8752
  tree targs;
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8753
  int winner = 0;
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8754

8755
  targs = get_bindings_overload (pat1, DECL_RESULT (pat2), explicit_args);
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8756
  if (targs)
8757
    --winner;
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8758

8759
  targs = get_bindings_overload (pat2, DECL_RESULT (pat1), explicit_args);
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8760
  if (targs)
8761
    ++winner;
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8762

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8763 8764
  return winner;
}
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8765

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8766
/* Given two class template specialization list nodes PAT1 and PAT2, return:
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8767

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8768 8769 8770 8771 8772 8773 8774 8775 8776 8777 8778
   1 if PAT1 is more specialized than PAT2 as described in [temp.class.order].
   -1 if PAT2 is more specialized than PAT1.
   0 if neither is more specialized.  */
   
int
more_specialized_class (pat1, pat2)
     tree pat1, pat2;
{
  tree targs;
  int winner = 0;

8779 8780
  targs = get_class_bindings (TREE_VALUE (pat1), TREE_PURPOSE (pat1),
			      TREE_PURPOSE (pat2));
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  if (targs)
    --winner;

8784 8785
  targs = get_class_bindings (TREE_VALUE (pat2), TREE_PURPOSE (pat2),
			      TREE_PURPOSE (pat1));
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8786
  if (targs)
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    ++winner;

  return winner;
}
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8791 8792

/* Return the template arguments that will produce the function signature
8793
   DECL from the function template FN, with the explicit template
8794
   arguments EXPLICIT_ARGS.  If CHECK_RETTYPE is 1, the return type must
8795 8796
   also match.  Return NULL_TREE if no satisfactory arguments could be
   found.  */
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8797

8798 8799
static tree
get_bindings_real (fn, decl, explicit_args, check_rettype)
8800
     tree fn, decl, explicit_args;
8801
     int check_rettype;
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8802
{
8803
  int ntparms = DECL_NTPARMS (fn);
8804
  tree targs = make_tree_vec (ntparms);
8805
  tree decl_type;
8806
  tree decl_arg_types;
8807 8808
  int i;

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  /* Substitute the explicit template arguments into the type of DECL.
     The call to fn_type_unification will handle substitution into the
     FN.  */
  decl_type = TREE_TYPE (decl);
  if (explicit_args && uses_template_parms (decl_type))
    {
      tree tmpl;
      tree converted_args;

      if (DECL_TEMPLATE_INFO (decl))
	tmpl = DECL_TI_TEMPLATE (decl);
      else
	/* We can get here for some illegal specializations.  */
	return NULL_TREE;

      converted_args
	= (coerce_template_parms (DECL_INNERMOST_TEMPLATE_PARMS (tmpl),
				  explicit_args, NULL_TREE,
				  /*complain=*/0, 
				  /*require_all_arguments=*/0));
      if (converted_args == error_mark_node)
	return NULL_TREE;
      
      decl_type = tsubst (decl_type, converted_args, /*complain=*/0, 
			  NULL_TREE); 
      if (decl_type == error_mark_node)
	return NULL_TREE;
    }

8838 8839
  /* If FN is a static member function, adjust the type of DECL
     appropriately.  */
8840
  decl_arg_types = TYPE_ARG_TYPES (decl_type);
8841 8842
  if (DECL_STATIC_FUNCTION_P (fn) 
      && DECL_NONSTATIC_MEMBER_FUNCTION_P (decl))
8843
    decl_arg_types = TREE_CHAIN (decl_arg_types);
8844

8845
  i = fn_type_unification (fn, explicit_args, targs, 
8846 8847 8848
			   decl_arg_types,
			   TREE_TYPE (decl_type),
			   DEDUCE_EXACT);
8849

8850 8851 8852 8853
  if (i != 0)
    return NULL_TREE;

  if (check_rettype)
8854 8855
    {
      /* Check to see that the resulting return type is also OK.  */
8856
      tree t = tsubst (TREE_TYPE (TREE_TYPE (fn)), targs,
8857
		       /*complain=*/0, NULL_TREE);
8858

8859
      if (!same_type_p (t, TREE_TYPE (TREE_TYPE (decl))))
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	return NULL_TREE;
    }

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  return targs;
}

/* For most uses, we want to check the return type.  */

tree 
get_bindings (fn, decl, explicit_args)
     tree fn, decl, explicit_args;
{
  return get_bindings_real (fn, decl, explicit_args, 1);
}

/* But for more_specialized, we only care about the parameter types.  */

static tree
get_bindings_overload (fn, decl, explicit_args)
     tree fn, decl, explicit_args;
{
  return get_bindings_real (fn, decl, explicit_args, 0);
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}

8884 8885 8886 8887 8888 8889 8890 8891 8892 8893 8894 8895 8896 8897 8898
/* Return the innermost template arguments that, when applied to a
   template specialization whose innermost template parameters are
   TPARMS, and whose specialization arguments are ARGS, yield the
   ARGS.  

   For example, suppose we have:

     template <class T, class U> struct S {};
     template <class T> struct S<T*, int> {};

   Then, suppose we want to get `S<double*, int>'.  The TPARMS will be
   {T}, the PARMS will be {T*, int} and the ARGS will be {double*,
   int}.  The resulting vector will be {double}, indicating that `T'
   is bound to `double'.  */

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8899
static tree
8900 8901
get_class_bindings (tparms, parms, args)
     tree tparms, parms, args;
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8902
{
8903
  int i, ntparms = TREE_VEC_LENGTH (tparms);
8904
  tree vec = make_tree_vec (ntparms);
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8905

8906
  args = innermost_args (args);
8907

8908
  if (unify (tparms, vec, parms, args, UNIFY_ALLOW_NONE))
8909
    return NULL_TREE;
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  for (i =  0; i < ntparms; ++i)
    if (! TREE_VEC_ELT (vec, i))
      return NULL_TREE;

  return vec;
}

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/* In INSTANTIATIONS is a list of <INSTANTIATION, TEMPLATE> pairs.
   Pick the most specialized template, and return the corresponding
   instantiation, or if there is no corresponding instantiation, the
   template itself.  EXPLICIT_ARGS is any template arguments explicity
   mentioned in a template-id.  If there is no most specialized
   tempalte, error_mark_node is returned.  If there are no templates
   at all, NULL_TREE is returned.  */
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tree
8927 8928 8929
most_specialized_instantiation (instantiations, explicit_args)
     tree instantiations;
     tree explicit_args;
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8930
{
8931
  tree fn, champ;
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8932 8933
  int fate;

8934
  if (!instantiations)
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8935 8936
    return NULL_TREE;

8937 8938
  champ = instantiations;
  for (fn = TREE_CHAIN (instantiations); fn; fn = TREE_CHAIN (fn))
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    {
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      fate = more_specialized (TREE_VALUE (champ), 
			       TREE_VALUE (fn), explicit_args);
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      if (fate == 1)
	;
      else
	{
	  if (fate == 0)
	    {
	      fn = TREE_CHAIN (fn);
	      if (! fn)
		return error_mark_node;
	    }
8952
	  champ = fn;
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	}
    }

8956
  for (fn = instantiations; fn && fn != champ; fn = TREE_CHAIN (fn))
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    {
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      fate = more_specialized (TREE_VALUE (champ), 
			       TREE_VALUE (fn), explicit_args);
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      if (fate != 1)
	return error_mark_node;
    }

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  return TREE_PURPOSE (champ) ? TREE_PURPOSE (champ) : TREE_VALUE (champ);
}

/* Return the most specialized of the list of templates in FNS that can
   produce an instantiation matching DECL, given the explicit template
   arguments EXPLICIT_ARGS.  */

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static tree
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most_specialized (fns, decl, explicit_args)
     tree fns, decl, explicit_args;
{
  tree candidates = NULL_TREE;
  tree fn, args;

  for (fn = fns; fn; fn = TREE_CHAIN (fn))
    {
      tree candidate = TREE_VALUE (fn);

      args = get_bindings (candidate, decl, explicit_args);
      if (args)
8984
	candidates = tree_cons (NULL_TREE, candidate, candidates);
8985 8986 8987
    }

  return most_specialized_instantiation (candidates, explicit_args);
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}

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/* If DECL is a specialization of some template, return the most
   general such template.  For example, given:

     template <class T> struct S { template <class U> void f(U); };

   if TMPL is `template <class U> void S<int>::f(U)' this will return
   the full template.  This function will not trace past partial
   specializations, however.  For example, given in addition:

     template <class T> struct S<T*> { template <class U> void f(U); };

   if TMPL is `template <class U> void S<int*>::f(U)' this will return
   `template <class T> template <class U> S<T*>::f(U)'.  */
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9003

9004
tree
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most_general_template (decl)
     tree decl;
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9007
{
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  while (DECL_TEMPLATE_INFO (decl)
	 /* The DECL_TI_TEMPLATE can be a LOOKUP_EXPR or
	    IDENTIFIER_NODE in some cases.  (See cp-tree.h for
	    details.)  */
	 && TREE_CODE (DECL_TI_TEMPLATE (decl)) == TEMPLATE_DECL)
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    decl = DECL_TI_TEMPLATE (decl);

  return decl;
}

/* Return the most specialized of the class template specializations
   of TMPL which can produce an instantiation matching ARGS, or
   error_mark_node if the choice is ambiguous.  */

9022
static tree
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most_specialized_class (tmpl, args)
     tree tmpl;
     tree args;
{
  tree list = NULL_TREE;
  tree t;
  tree champ;
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  int fate;

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  tmpl = most_general_template (tmpl);
  for (t = DECL_TEMPLATE_SPECIALIZATIONS (tmpl); t; t = TREE_CHAIN (t))
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    {
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      tree spec_args 
	= get_class_bindings (TREE_VALUE (t), TREE_PURPOSE (t), args);
      if (spec_args)
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	{
	  list = decl_tree_cons (TREE_PURPOSE (t), TREE_VALUE (t), list);
	  TREE_TYPE (list) = TREE_TYPE (t);
	}
    }

  if (! list)
    return NULL_TREE;

  t = list;
  champ = t;
  t = TREE_CHAIN (t);
  for (; t; t = TREE_CHAIN (t))
    {
      fate = more_specialized_class (champ, t);
      if (fate == 1)
	;
      else
	{
	  if (fate == 0)
	    {
	      t = TREE_CHAIN (t);
	      if (! t)
		return error_mark_node;
	    }
	  champ = t;
	}
    }

  for (t = list; t && t != champ; t = TREE_CHAIN (t))
    {
9069
      fate = more_specialized_class (champ, t);
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      if (fate != 1)
	return error_mark_node;
    }

  return champ;
}

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/* called from the parser.  */
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9078

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void
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do_decl_instantiation (declspecs, declarator, storage)
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     tree declspecs, declarator, storage;
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{
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  tree decl = grokdeclarator (declarator, declspecs, NORMAL, 0, NULL_TREE);
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  tree result = NULL_TREE;
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  int extern_p = 0;
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  if (!decl)
    /* An error ocurred, for which grokdeclarator has already issued
       an appropriate message.  */
    return;
  else if (! DECL_LANG_SPECIFIC (decl))
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9092
    {
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      cp_error ("explicit instantiation of non-template `%#D'", decl);
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      return;
    }
9096
  else if (TREE_CODE (decl) == VAR_DECL)
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    {
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      /* There is an asymmetry here in the way VAR_DECLs and
	 FUNCTION_DECLs are handled by grokdeclarator.  In the case of
	 the latter, the DECL we get back will be marked as a
	 template instantiation, and the appropriate
	 DECL_TEMPLATE_INFO will be set up.  This does not happen for
	 VAR_DECLs so we do the lookup here.  Probably, grokdeclarator
	 should handle VAR_DECLs as it currently handles
	 FUNCTION_DECLs.  */
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      result = lookup_field (DECL_CONTEXT (decl), DECL_NAME (decl), 0, 0);
      if (result && TREE_CODE (result) != VAR_DECL)
9108
	{
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9109
	  cp_error ("no matching template for `%D' found", result);
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	  return;
	}
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    }
  else if (TREE_CODE (decl) != FUNCTION_DECL)
    {
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9115
      cp_error ("explicit instantiation of `%#D'", decl);
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      return;
    }
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  else
    result = decl;
9120

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  /* Check for various error cases.  Note that if the explicit
     instantiation is legal the RESULT will currently be marked as an
     *implicit* instantiation; DECL_EXPLICIT_INSTANTIATION is not set
     until we get here.  */

  if (DECL_TEMPLATE_SPECIALIZATION (result))
9127
    {
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      /* [temp.spec]

	 No program shall both explicitly instantiate and explicitly
	 specialize a template.  */
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      cp_pedwarn ("explicit instantiation of `%#D' after", result);
      cp_pedwarn_at ("explicit specialization here", result);
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      return;
    }
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  else if (DECL_EXPLICIT_INSTANTIATION (result))
    {
      /* [temp.spec]
9139

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	 No program shall explicitly instantiate any template more
	 than once.  

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	 We check DECL_INTERFACE_KNOWN so as not to complain when the first
	 instantiation was `extern' and the second is not, and EXTERN_P for
	 the opposite case.  If -frepo, chances are we already got marked
	 as an explicit instantion because of the repo file.  */
      if (DECL_INTERFACE_KNOWN (result) && !extern_p && !flag_use_repository)
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	cp_pedwarn ("duplicate explicit instantiation of `%#D'", result);
9149 9150 9151 9152 9153 9154

      /* If we've already instantiated the template, just return now.  */
      if (DECL_INTERFACE_KNOWN (result))
	return;
    }
  else if (!DECL_IMPLICIT_INSTANTIATION (result))
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    {
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      cp_error ("no matching template for `%D' found", result);
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      return;
    }
9159
  else if (!DECL_TEMPLATE_INFO (result))
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    {
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      cp_pedwarn ("explicit instantiation of non-template `%#D'", result);
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      return;
    }

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  if (flag_external_templates)
    return;

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  if (storage == NULL_TREE)
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    ;
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  else if (storage == ridpointers[(int) RID_EXTERN])
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    {
      if (pedantic)
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	cp_pedwarn ("ANSI C++ forbids the use of `extern' on explicit instantiations");
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      extern_p = 1;
    }
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  else
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    cp_error ("storage class `%D' applied to template instantiation",
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	      storage);
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9179

9180
  SET_DECL_EXPLICIT_INSTANTIATION (result);
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  mark_decl_instantiated (result, extern_p);
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9182
  repo_template_instantiated (result, extern_p);
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  if (! extern_p)
    instantiate_decl (result);
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}

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void
mark_class_instantiated (t, extern_p)
     tree t;
     int extern_p;
{
  SET_CLASSTYPE_EXPLICIT_INSTANTIATION (t);
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  SET_CLASSTYPE_INTERFACE_KNOWN (t);
  CLASSTYPE_INTERFACE_ONLY (t) = extern_p;
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  CLASSTYPE_VTABLE_NEEDS_WRITING (t) = ! extern_p;
  TYPE_DECL_SUPPRESS_DEBUG (TYPE_NAME (t)) = extern_p;
  if (! extern_p)
    {
      CLASSTYPE_DEBUG_REQUESTED (t) = 1;
      rest_of_type_compilation (t, 1);
    }
}     
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9203

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9204
void
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do_type_instantiation (t, storage)
     tree t, storage;
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9207
{
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  int extern_p = 0;
  int nomem_p = 0;
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  int static_p = 0;

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  if (TREE_CODE (t) == TYPE_DECL)
    t = TREE_TYPE (t);

9215
  if (! CLASS_TYPE_P (t) || ! CLASSTYPE_TEMPLATE_INFO (t))
9216
    {
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      cp_error ("explicit instantiation of non-template type `%T'", t);
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      return;
    }

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  complete_type (t);
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  /* With -fexternal-templates, explicit instantiations are treated the same
     as implicit ones.  */
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  if (flag_external_templates)
    return;

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  if (TYPE_SIZE (t) == NULL_TREE)
    {
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      cp_error ("explicit instantiation of `%#T' before definition of template",
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		t);
      return;
    }

9235
  if (storage != NULL_TREE)
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    {
9237
      if (pedantic)
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	cp_pedwarn("ANSI C++ forbids the use of `%s' on explicit instantiations", 
		   IDENTIFIER_POINTER (storage));
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      if (storage == ridpointers[(int) RID_INLINE])
	nomem_p = 1;
      else if (storage == ridpointers[(int) RID_EXTERN])
	extern_p = 1;
      else if (storage == ridpointers[(int) RID_STATIC])
	static_p = 1;
      else
	{
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9249
	  cp_error ("storage class `%D' applied to template instantiation",
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		    storage);
	  extern_p = 0;
	}
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    }

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  if (CLASSTYPE_TEMPLATE_SPECIALIZATION (t))
    {
      /* [temp.spec]
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9258

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	 No program shall both explicitly instantiate and explicitly
	 specialize a template.  */
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      cp_error ("explicit instantiation of `%#T' after", t);
      cp_error_at ("explicit specialization here", t);
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      return;
    }
  else if (CLASSTYPE_EXPLICIT_INSTANTIATION (t))
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9266
    {
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      /* [temp.spec]

	 No program shall explicitly instantiate any template more
	 than once.  

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         If CLASSTYPE_INTERFACE_ONLY, then the first explicit instantiation
	 was `extern'.  If EXTERN_P then the second is.  If -frepo, chances
	 are we already got marked as an explicit instantion because of the
	 repo file.  All these cases are OK.  */
      if (!CLASSTYPE_INTERFACE_ONLY (t) && !extern_p && !flag_use_repository)
	cp_pedwarn ("duplicate explicit instantiation of `%#T'", t);
9278 9279 9280 9281
      
      /* If we've already instantiated the template, just return now.  */
      if (!CLASSTYPE_INTERFACE_ONLY (t))
	return;
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9282
    }
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9283

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  mark_class_instantiated (t, extern_p);
  repo_template_instantiated (t, extern_p);

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  if (nomem_p)
    return;

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9290
  {
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9291
    tree tmp;
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9292

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    /* In contrast to implicit instantiation, where only the
       declarations, and not the definitions, of members are
       instantiated, we have here:

         [temp.explicit]

	 The explicit instantiation of a class template specialization
	 implies the instantiation of all of its members not
	 previously explicitly specialized in the translation unit
	 containing the explicit instantiation.  

       Of course, we can't instantiate member template classes, since
       we don't have any arguments for them.  Note that the standard
       is unclear on whether the instatiation of the members are
       *explicit* instantiations or not.  We choose to be generous,
       and not set DECL_EXPLICIT_INSTANTIATION.  Therefore, we allow
       the explicit instantiation of a class where some of the members
       have no definition in the current translation unit.  */

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    if (! static_p)
      for (tmp = TYPE_METHODS (t); tmp; tmp = TREE_CHAIN (tmp))
9314
	if (TREE_CODE (tmp) == FUNCTION_DECL
9315
	    && DECL_TEMPLATE_INSTANTIATION (tmp))
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	  {
	    mark_decl_instantiated (tmp, extern_p);
	    repo_template_instantiated (tmp, extern_p);
	    if (! extern_p)
	      instantiate_decl (tmp);
	  }

    for (tmp = TYPE_FIELDS (t); tmp; tmp = TREE_CHAIN (tmp))
      if (TREE_CODE (tmp) == VAR_DECL && DECL_TEMPLATE_INSTANTIATION (tmp))
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	{
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9326
	  mark_decl_instantiated (tmp, extern_p);
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9327
	  repo_template_instantiated (tmp, extern_p);
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	  if (! extern_p)
	    instantiate_decl (tmp);
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	}
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9331

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9332
    for (tmp = CLASSTYPE_TAGS (t); tmp; tmp = TREE_CHAIN (tmp))
9333 9334
      if (IS_AGGR_TYPE (TREE_VALUE (tmp))
	  && !uses_template_parms (CLASSTYPE_TI_ARGS (TREE_VALUE (tmp))))
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9335
	do_type_instantiation (TYPE_MAIN_DECL (TREE_VALUE (tmp)), storage);
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9336
  }
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9337
}
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9338

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/* Given a function DECL, which is a specialization of TMPL, modify
   DECL to be a re-instantiation of TMPL with the same template
   arguments.  TMPL should be the template into which tsubst'ing
   should occur for DECL, not the most general template.
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   One reason for doing this is a scenario like this:

     template <class T>
     void f(const T&, int i);

     void g() { f(3, 7); }

     template <class T>
     void f(const T& t, const int i) { }

   Note that when the template is first instantiated, with
   instantiate_template, the resulting DECL will have no name for the
   first parameter, and the wrong type for the second.  So, when we go
   to instantiate the DECL, we regenerate it.  */

9359
static void
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regenerate_decl_from_template (decl, tmpl)
     tree decl;
     tree tmpl;
{
  tree args;
  tree code_pattern;
  tree new_decl;
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  tree gen_tmpl;
  int unregistered;
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  args = DECL_TI_ARGS (decl);
  code_pattern = DECL_TEMPLATE_RESULT (tmpl);

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  /* Unregister the specialization so that when we tsubst we will not
     just return DECL.  We don't have to unregister DECL from TMPL
     because if would only be registered there if it were a partial
     instantiation of a specialization, which it isn't: it's a full
     instantiation.  */
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  gen_tmpl = most_general_template (tmpl);
  unregistered = unregister_specialization (decl, gen_tmpl);

  /* If the DECL was not unregistered then something peculiar is
     happening: we created a specialization but did not call
     register_specialization for it.  */
  my_friendly_assert (unregistered, 0);

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  if (TREE_CODE (decl) == VAR_DECL)
    /* Make sure that we can see identifiers, and compute access
       correctly, for the class members used in the declaration of
       this static variable.  */
    pushclass (DECL_CONTEXT (decl), 2);

9392
  /* Do the substitution to get the new declaration.  */
9393
  new_decl = tsubst (code_pattern, args, /*complain=*/1, NULL_TREE);
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  if (TREE_CODE (decl) == VAR_DECL)
    {
      /* Set up DECL_INITIAL, since tsubst doesn't.  */
      DECL_INITIAL (new_decl) = 
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	tsubst_expr (DECL_INITIAL (code_pattern), args, 
9400
		     /*complain=*/1, DECL_TI_TEMPLATE (decl));
9401
      /* Pop the class context we pushed above.  */
9402
      popclass ();
9403
    }
9404
  else if (TREE_CODE (decl) == FUNCTION_DECL)
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    {
      /* Convince duplicate_decls to use the DECL_ARGUMENTS from the
	 new decl.  */ 
      DECL_INITIAL (new_decl) = error_mark_node;
      /* And don't complain about a duplicate definition.  */
      DECL_INITIAL (decl) = NULL_TREE;
    }
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  /* The immediate parent of the new template is still whatever it was
     before, even though tsubst sets DECL_TI_TEMPLATE up as the most
     general template.  We also reset the DECL_ASSEMBLER_NAME since
     tsubst always calculates the name as if the function in question
     were really a template instance, and sometimes, with friend
     functions, this is not so.  See tsubst_friend_function for
     details.  */
  DECL_TI_TEMPLATE (new_decl) = DECL_TI_TEMPLATE (decl);
  DECL_ASSEMBLER_NAME (new_decl) = DECL_ASSEMBLER_NAME (decl);
  DECL_RTL (new_decl) = DECL_RTL (decl);

  /* Call duplicate decls to merge the old and new declarations.  */
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  duplicate_decls (new_decl, decl);

9427 9428
  /* Now, re-register the specialization.  */
  register_specialization (decl, gen_tmpl, args);
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}

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9431 9432
/* Produce the definition of D, a _DECL generated from a template.  */

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9433
tree
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instantiate_decl (d)
     tree d;
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9436
{
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  tree tmpl = DECL_TI_TEMPLATE (d);
  tree args = DECL_TI_ARGS (d);
9439
  tree td;
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  tree code_pattern;
  tree spec;
  tree gen_tmpl;
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9443 9444
  int nested = in_function_p ();
  int pattern_defined;
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  int line = lineno;
  char *file = input_filename;
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9447

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  /* This function should only be used to instantiate templates for
     functions and static member variables.  */
  my_friendly_assert (TREE_CODE (d) == FUNCTION_DECL
		      || TREE_CODE (d) == VAR_DECL, 0);

9453
  if (DECL_TEMPLATE_INSTANTIATED (d))
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    /* D has already been instantiated.  It might seem reasonable to
       check whether or not D is an explict instantiation, and, if so,
       stop here.  But when an explicit instantiation is deferred
       until the end of the compilation, DECL_EXPLICIT_INSTANTIATION
       is set, even though we still need to do the instantiation.  */
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    return d;

  /* If we already have a specialization of this declaration, then
     there's no reason to instantiate it.  Note that
     retrieve_specialization gives us both instantiations and
     specializations, so we must explicitly check
     DECL_TEMPLATE_SPECIALIZATION.  */
  gen_tmpl = most_general_template (tmpl);
  spec = retrieve_specialization (gen_tmpl, args);
  if (spec != NULL_TREE && DECL_TEMPLATE_SPECIALIZATION (spec))
    return spec;

  /* This needs to happen before any tsubsting.  */
  if (! push_tinst_level (d))
    return d;

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  /* Set TD to the template whose DECL_TEMPLATE_RESULT is the pattern
     for the instantiation.  This is not always the most general
     template.  Consider, for example:

        template <class T>
	struct S { template <class U> void f();
	           template <> void f<int>(); };

     and an instantiation of S<double>::f<int>.  We want TD to be the
     specialization S<T>::f<int>, not the more general S<T>::f<U>.  */
  td = tmpl;
  for (td = tmpl;
       /* An instantiation cannot have a definition, so we need a
	  more general template.  */
       DECL_TEMPLATE_INSTANTIATION (td)
	 /* We must also deal with friend templates.  Given:

	      template <class T> struct S { 
		template <class U> friend void f() {};
	      };
	 
	    S<int>::f<U> say, is not an instantiation of S<T>::f<U>,
	    so far as the language is concerned, but that's still
	    where we get the pattern for the instantiation from.  On
	    ther hand, if the definition comes outside the class, say:

 	      template <class T> struct S { 
	        template <class U> friend void f();
              };
	      template <class U> friend void f() {}

	    we don't need to look any further.  That's what the check for
	    DECL_INITIAL is for.  */
	|| (TREE_CODE (d) == FUNCTION_DECL
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	    && DECL_FRIEND_PSEUDO_TEMPLATE_INSTANTIATION (td)
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	    && !DECL_INITIAL (DECL_TEMPLATE_RESULT (td)));
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       )
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    {
      /* The present template, TD, should not be a definition.  If it
	 were a definition, we should be using it!  Note that we
	 cannot restructure the loop to just keep going until we find
	 a template with a definition, since that might go too far if
	 a specialization was declared, but not defined.  */
      my_friendly_assert (!(TREE_CODE (d) == VAR_DECL
			    && !DECL_IN_AGGR_P (DECL_TEMPLATE_RESULT (td))), 
			  0); 
      
      /* Fetch the more general template.  */
      td = DECL_TI_TEMPLATE (td);
    }
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  code_pattern = DECL_TEMPLATE_RESULT (td);
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  if (TREE_CODE (d) == FUNCTION_DECL)
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    pattern_defined = (DECL_SAVED_TREE (code_pattern) != NULL_TREE);
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  else
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    pattern_defined = ! DECL_IN_AGGR_P (code_pattern);
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  push_to_top_level ();
  lineno = DECL_SOURCE_LINE (d);
  input_filename = DECL_SOURCE_FILE (d);

  if (pattern_defined)
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    {
      repo_template_used (d);

      if (flag_external_templates && ! DECL_INTERFACE_KNOWN (d))
	{
	  if (flag_alt_external_templates)
	    {
	      if (interface_unknown)
		warn_if_unknown_interface (d);
	    }
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	  else if (DECL_INTERFACE_KNOWN (code_pattern))
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	    {
	      DECL_INTERFACE_KNOWN (d) = 1;
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	      DECL_NOT_REALLY_EXTERN (d) = ! DECL_EXTERNAL (code_pattern);
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	    }
	  else
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	    warn_if_unknown_interface (code_pattern);
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	}

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      if (at_eof)
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	import_export_decl (d);
    }

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  /* Reject all external templates except inline functions.  */
  if (DECL_INTERFACE_KNOWN (d)
      && ! DECL_NOT_REALLY_EXTERN (d)
      && ! (TREE_CODE (d) == FUNCTION_DECL && DECL_INLINE (d)))
    goto out;

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  if (TREE_CODE (d) == VAR_DECL 
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      && TREE_READONLY (d)
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      && DECL_INITIAL (d) == NULL_TREE
      && DECL_INITIAL (code_pattern) != NULL_TREE)
    /* We need to set up DECL_INITIAL regardless of pattern_defined if
	 the variable is a static const initialized in the class body.  */;
  else if (! pattern_defined
	   || (! (TREE_CODE (d) == FUNCTION_DECL && DECL_INLINE (d) && nested)
	       && ! at_eof))
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    {
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      /* Defer all templates except inline functions used in another
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         function.  We restore the source position here because it's used
         by add_pending_template.  */
      lineno = line;
      input_filename = file;

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      if (at_eof && !pattern_defined 
	  && DECL_EXPLICIT_INSTANTIATION (d))
	/* [temp.explicit]

	   The definition of a non-exported function template, a
	   non-exported member function template, or a non-exported
	   member function or static data member of a class template
	   shall be present in every translation unit in which it is
	   explicitly instantiated.  */
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	cp_error ("explicit instantiation of `%D' but no definition available",
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		  d);

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      add_pending_template (d);
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      goto out;
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    }

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  /* We're now committed to instantiating this template.  Mark it as
     instantiated so that recursive calls to instantiate_decl do not
     try to instantiate it again.  */
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  DECL_TEMPLATE_INSTANTIATED (d) = 1;
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  /* Regenerate the declaration in case the template has been modified
     by a subsequent redeclaration.  */
  regenerate_decl_from_template (d, td);

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  /* We already set the file and line above.  Reset them now in case
     they changed as a result of calling regenerate_decl_from_template.  */
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  lineno = DECL_SOURCE_LINE (d);
  input_filename = DECL_SOURCE_FILE (d);

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  if (TREE_CODE (d) == VAR_DECL)
    {
      DECL_IN_AGGR_P (d) = 0;
      if (DECL_INTERFACE_KNOWN (d))
	DECL_EXTERNAL (d) = ! DECL_NOT_REALLY_EXTERN (d);
      else
	{
	  DECL_EXTERNAL (d) = 1;
	  DECL_NOT_REALLY_EXTERN (d) = 1;
	}
      cp_finish_decl (d, DECL_INITIAL (d), NULL_TREE, 0, 0);
    }
  else if (TREE_CODE (d) == FUNCTION_DECL)
    {
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      /* Set up context.  */
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      start_function (NULL_TREE, d, NULL_TREE, SF_PRE_PARSED);
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      store_parm_decls ();

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      /* Substitute into the body of the function.  */
      tsubst_expr (DECL_SAVED_TREE (code_pattern), args,
		   /*complain=*/1, tmpl);

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      /* Finish the function.  */
      expand_body (finish_function (lineno, 0));
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    }

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out:
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  lineno = line;
  input_filename = file;

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  pop_from_top_level ();
  pop_tinst_level ();
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  return d;
}
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/* Run through the list of templates that we wish we could
   instantiate, and instantiate any we can.  */

int
instantiate_pending_templates ()
{
  tree *t;
  int instantiated_something = 0;
  int reconsider;
  
  do 
    {
      reconsider = 0;

      t = &pending_templates;
      while (*t)
	{
	  tree srcloc = TREE_PURPOSE (*t);
	  tree instantiation = TREE_VALUE (*t);

	  input_filename = SRCLOC_FILE (srcloc);
	  lineno = SRCLOC_LINE (srcloc);

	  if (TREE_CODE_CLASS (TREE_CODE (instantiation)) == 't')
	    {
	      tree fn;

	      if (!TYPE_SIZE (instantiation))
		{
		  instantiate_class_template (instantiation);
		  if (CLASSTYPE_TEMPLATE_INSTANTIATION (instantiation))
		    for (fn = TYPE_METHODS (instantiation); 
			 fn;
			 fn = TREE_CHAIN (fn))
		      if (! DECL_ARTIFICIAL (fn))
			instantiate_decl (fn);
		  if (TYPE_SIZE (instantiation))
		    {
		      instantiated_something = 1;
		      reconsider = 1;
		    }
		}

	      if (TYPE_SIZE (instantiation))
		/* If INSTANTIATION has been instantiated, then we don't
		   need to consider it again in the future.  */
		*t = TREE_CHAIN (*t);
	      else 
		t = &TREE_CHAIN (*t);
	    }
	  else
	    {
	      if (DECL_TEMPLATE_INSTANTIATION (instantiation)
		  && !DECL_TEMPLATE_INSTANTIATED (instantiation))
		{
		  instantiation = instantiate_decl (instantiation);
		  if (DECL_TEMPLATE_INSTANTIATED (instantiation))
		    {
		      instantiated_something = 1;
		      reconsider = 1;
		    }
		}

	      if (!DECL_TEMPLATE_INSTANTIATION (instantiation)
		  || DECL_TEMPLATE_INSTANTIATED (instantiation))
		/* If INSTANTIATION has been instantiated, then we don't
		   need to consider it again in the future.  */
		*t = TREE_CHAIN (*t);
	      else 
		t = &TREE_CHAIN (*t);
	    }
	}
      template_tail = t;

      /* Go through the things that are template instantiations if we are
	 using guiding declarations.  */
      t = &maybe_templates;
      while (*t)
	{
	  tree template;
	  tree fn;
	  tree args;

	  fn = TREE_VALUE (*t);

	  if (DECL_INITIAL (fn))
	    /* If the FN is already defined, then it was either already
	       instantiated or, even though guiding declarations were
	       allowed, a non-template definition was provided.  */
	    ;
	  else
	    {
	      template = TREE_PURPOSE (*t);
	      args = get_bindings (template, fn, NULL_TREE);
	      fn = instantiate_template (template, args);
	      instantiate_decl (fn);
	      reconsider = 1;
	    }
	
	  /* Remove this entry from the chain.  */
	  *t = TREE_CHAIN (*t);
	}
      maybe_template_tail = t;
    } 
  while (reconsider);

  return instantiated_something;
}

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/* Substitute ARGVEC into T, which is a TREE_LIST.  In particular, it
   is an initializer list: the TREE_PURPOSEs are DECLs, and the
   TREE_VALUEs are initializer values.  Used by instantiate_decl.  */

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static tree
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tsubst_expr_values (t, argvec)
     tree t, argvec;
{
  tree first = NULL_TREE;
  tree *p = &first;

  for (; t; t = TREE_CHAIN (t))
    {
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      tree pur = tsubst_copy (TREE_PURPOSE (t), argvec,
			      /*complain=*/1, NULL_TREE);
      tree val = tsubst_expr (TREE_VALUE (t), argvec, /*complain=*/1, 
			      NULL_TREE);
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      *p = build_tree_list (pur, val);
      p = &TREE_CHAIN (*p);
    }
  return first;
}

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/* D is an undefined function declaration in the presence of templates with
   the same name, listed in FNS.  If one of them can produce D as an
   instantiation, remember this so we can instantiate it at EOF if D has
   not been defined by that time.  */

void
add_maybe_template (d, fns)
     tree d, fns;
{
  tree t;

  if (DECL_MAYBE_TEMPLATE (d))
    return;

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  t = most_specialized (fns, d, NULL_TREE);
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  if (! t)
    return;
  if (t == error_mark_node)
    {
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      cp_error ("ambiguous template instantiation for `%D'", d);
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      return;
    }

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  *maybe_template_tail = tree_cons (t, d, NULL_TREE);
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  maybe_template_tail = &TREE_CHAIN (*maybe_template_tail);
  DECL_MAYBE_TEMPLATE (d) = 1;
}
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/* Set CURRENT_ACCESS_SPECIFIER based on the protection of DECL.  */

static void
set_current_access_from_decl (decl)
     tree decl;
{
  if (TREE_PRIVATE (decl))
    current_access_specifier = access_private_node;
  else if (TREE_PROTECTED (decl))
    current_access_specifier = access_protected_node;
  else
    current_access_specifier = access_public_node;
}

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/* Instantiate an enumerated type.  TAG is the template type, NEWTAG
   is the instantiation (which should have been created with
   start_enum) and ARGS are the template arguments to use.  */
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static void
tsubst_enum (tag, newtag, args)
     tree tag;
     tree newtag;
     tree args;
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{
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  tree e;
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  for (e = TYPE_VALUES (tag); e; e = TREE_CHAIN (e))
    {
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      tree value;
      tree elt;

      /* Note that in a template enum, the TREE_VALUE is the
	 CONST_DECL, not the corresponding INTEGER_CST.  */
      value = tsubst_expr (DECL_INITIAL (TREE_VALUE (e)), 
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			   args, /*complain=*/1,
			   NULL_TREE);
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      /* Give this enumeration constant the correct access.  */
      set_current_access_from_decl (TREE_VALUE (e));

      /* Actually build the enumerator itself.  */
      elt = build_enumerator (TREE_PURPOSE (e), value, newtag); 
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      /* We save the enumerators we have built so far in the
	 TYPE_VALUES so that if the enumeration constants for
	 subsequent enumerators involve those for previous ones,
	 tsubst_copy will be able to find them.  */
      TREE_CHAIN (elt) = TYPE_VALUES (newtag);
      TYPE_VALUES (newtag) = elt;
    }
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  finish_enum (newtag);
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}
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/* Set the DECL_ASSEMBLER_NAME for DECL, which is a FUNCTION_DECL that
   is either an instantiation or specialization of a template
   function.  */

static void
set_mangled_name_for_template_decl (decl)
     tree decl;
{
  tree saved_namespace;
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  tree context = NULL_TREE;
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  tree fn_type;
  tree ret_type;
  tree parm_types;
  tree tparms;
  tree targs;
  tree tmpl;
  int parm_depth;

  my_friendly_assert (TREE_CODE (decl) == FUNCTION_DECL, 0);
  my_friendly_assert (DECL_TEMPLATE_INFO (decl) != NULL_TREE, 0);

  /* The names of template functions must be mangled so as to indicate
     what template is being specialized with what template arguments.
     For example, each of the following three functions must get
     different mangled names:

       void f(int);                  
       template <> void f<7>(int);
       template <> void f<8>(int);  */

  targs = DECL_TI_ARGS (decl);
  if (uses_template_parms (targs))
    /* This DECL is for a partial instantiation.  There's no need to
       mangle the name of such an entity.  */
    return;

  tmpl = most_general_template (DECL_TI_TEMPLATE (decl));
  tparms = DECL_TEMPLATE_PARMS (tmpl);
  parm_depth = TMPL_PARMS_DEPTH (tparms);

  /* There should be as many levels of arguments as there are levels
     of parameters.  */
  my_friendly_assert (parm_depth == TMPL_ARGS_DEPTH (targs), 0);

  /* We now compute the PARMS and RET_TYPE to give to
     build_decl_overload_real.  The PARMS and RET_TYPE are the
     parameter and return types of the template, after all but the
     innermost template arguments have been substituted, not the
     parameter and return types of the function DECL.  For example,
     given:

       template <class T> T f(T);

     both PARMS and RET_TYPE should be `T' even if DECL is `int f(int)'.  
     A more subtle example is:

       template <class T> struct S { template <class U> void f(T, U); }

     Here, if DECL is `void S<int>::f(int, double)', PARMS should be
     {int, U}.  Thus, the args that we want to subsitute into the
     return and parameter type for the function are those in TARGS,
     with the innermost level omitted.  */
  fn_type = TREE_TYPE (tmpl);
  if (DECL_STATIC_FUNCTION_P (decl))
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    context = DECL_CLASS_CONTEXT (decl);
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  if (parm_depth == 1)
    /* No substitution is necessary.  */
    ;
  else
    {
      int i;
      tree partial_args;

      /* Replace the innermost level of the TARGS with NULL_TREEs to
	 let tsubst know not to subsitute for those parameters.  */
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      partial_args = make_tree_vec (TREE_VEC_LENGTH (targs));
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      for (i = 1; i < TMPL_ARGS_DEPTH (targs); ++i)
	SET_TMPL_ARGS_LEVEL (partial_args, i,
			     TMPL_ARGS_LEVEL (targs, i));
      SET_TMPL_ARGS_LEVEL (partial_args,
			   TMPL_ARGS_DEPTH (targs),
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			   make_tree_vec (DECL_NTPARMS (tmpl)));
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      /* Now, do the (partial) substitution to figure out the
	 appropriate function type.  */
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      fn_type = tsubst (fn_type, partial_args, /*complain=*/1, NULL_TREE);
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      if (DECL_STATIC_FUNCTION_P (decl))
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	context = tsubst (context, partial_args, /*complain=*/1, NULL_TREE);
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      /* Substitute into the template parameters to obtain the real
	 innermost set of parameters.  This step is important if the
	 innermost set of template parameters contains value
	 parameters whose types depend on outer template parameters.  */
      TREE_VEC_LENGTH (partial_args)--;
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      tparms = tsubst_template_parms (tparms, partial_args, /*complain=*/1);
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    }

  /* Now, get the innermost parameters and arguments, and figure out
     the parameter and return types.  */
  tparms = INNERMOST_TEMPLATE_PARMS (tparms);
  targs = innermost_args (targs);
  ret_type = TREE_TYPE (fn_type);
  parm_types = TYPE_ARG_TYPES (fn_type);

  /* For a static member function, we generate a fake `this' pointer,
     for the purposes of mangling.  This indicates of which class the
     function is a member.  Because of:

       [class.static] 

       There shall not be a static and a nonstatic member function
       with the same name and the same parameter types

     we don't have to worry that this will result in a clash with a
     non-static member function.  */
  if (DECL_STATIC_FUNCTION_P (decl))
    parm_types = hash_tree_chain (build_pointer_type (context), parm_types);

  /* There should be the same number of template parameters as
     template arguments.  */
  my_friendly_assert (TREE_VEC_LENGTH (tparms) == TREE_VEC_LENGTH (targs),
		      0);

  /* If the template is in a namespace, we need to put that into the
     mangled name. Unfortunately, build_decl_overload_real does not
     get the decl to mangle, so it relies on the current
     namespace. Therefore, we set that here temporarily. */
  my_friendly_assert (TREE_CODE_CLASS (TREE_CODE (decl)) == 'd', 980702);
  saved_namespace = current_namespace;
  current_namespace = CP_DECL_CONTEXT (decl);  

  /* Actually set the DCL_ASSEMBLER_NAME.  */
  DECL_ASSEMBLER_NAME (decl)
    = build_decl_overload_real (DECL_NAME (decl), parm_types, ret_type,
				tparms, targs, 
				DECL_FUNCTION_MEMBER_P (decl) 
				+ DECL_CONSTRUCTOR_P (decl));

  /* Restore the previously active namespace.  */
  current_namespace = saved_namespace;
}