trans-expr.c 210 KB
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/* Expression translation
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   Copyright (C) 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010,
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   2011, 2012
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   Free Software Foundation, Inc.
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   Contributed by Paul Brook <paul@nowt.org>
   and Steven Bosscher <s.bosscher@student.tudelft.nl>

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This file is part of GCC.
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GCC 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
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Software Foundation; either version 3, or (at your option) any later
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version.
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GCC 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.
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You should have received a copy of the GNU General Public License
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along with GCC; see the file COPYING3.  If not see
<http://www.gnu.org/licenses/>.  */
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/* trans-expr.c-- generate GENERIC trees for gfc_expr.  */

#include "config.h"
#include "system.h"
#include "coretypes.h"
#include "tree.h"
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#include "diagnostic-core.h"	/* For fatal_error.  */
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#include "langhooks.h"
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#include "flags.h"
#include "gfortran.h"
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#include "arith.h"
Jerry DeLisle committed
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#include "constructor.h"
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#include "trans.h"
#include "trans-const.h"
#include "trans-types.h"
#include "trans-array.h"
/* Only for gfc_trans_assign and gfc_trans_pointer_assign.  */
#include "trans-stmt.h"
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#include "dependency.h"
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/* This is the seed for an eventual trans-class.c

   The following parameters should not be used directly since they might
   in future implementations.  Use the corresponding APIs.  */
#define CLASS_DATA_FIELD 0
#define CLASS_VPTR_FIELD 1
#define VTABLE_HASH_FIELD 0
#define VTABLE_SIZE_FIELD 1
#define VTABLE_EXTENDS_FIELD 2
#define VTABLE_DEF_INIT_FIELD 3
#define VTABLE_COPY_FIELD 4


tree
gfc_class_data_get (tree decl)
{
  tree data;
  if (POINTER_TYPE_P (TREE_TYPE (decl)))
    decl = build_fold_indirect_ref_loc (input_location, decl);
  data = gfc_advance_chain (TYPE_FIELDS (TREE_TYPE (decl)),
			    CLASS_DATA_FIELD);
  return fold_build3_loc (input_location, COMPONENT_REF,
			  TREE_TYPE (data), decl, data,
			  NULL_TREE);
}


tree
gfc_class_vptr_get (tree decl)
{
  tree vptr;
  if (POINTER_TYPE_P (TREE_TYPE (decl)))
    decl = build_fold_indirect_ref_loc (input_location, decl);
  vptr = gfc_advance_chain (TYPE_FIELDS (TREE_TYPE (decl)),
			    CLASS_VPTR_FIELD);
  return fold_build3_loc (input_location, COMPONENT_REF,
			  TREE_TYPE (vptr), decl, vptr,
			  NULL_TREE);
}


static tree
gfc_vtable_field_get (tree decl, int field)
{
  tree size;
  tree vptr;
  vptr = gfc_class_vptr_get (decl);
  vptr = build_fold_indirect_ref_loc (input_location, vptr);
  size = gfc_advance_chain (TYPE_FIELDS (TREE_TYPE (vptr)),
			    field);
  size = fold_build3_loc (input_location, COMPONENT_REF,
			  TREE_TYPE (size), vptr, size,
			  NULL_TREE);
  /* Always return size as an array index type.  */
  if (field == VTABLE_SIZE_FIELD)
    size = fold_convert (gfc_array_index_type, size);
  gcc_assert (size);
  return size;
}


tree
gfc_vtable_hash_get (tree decl)
{
  return gfc_vtable_field_get (decl, VTABLE_HASH_FIELD);
}


tree
gfc_vtable_size_get (tree decl)
{
  return gfc_vtable_field_get (decl, VTABLE_SIZE_FIELD);
}


tree
gfc_vtable_extends_get (tree decl)
{
  return gfc_vtable_field_get (decl, VTABLE_EXTENDS_FIELD);
}


tree
gfc_vtable_def_init_get (tree decl)
{
  return gfc_vtable_field_get (decl, VTABLE_DEF_INIT_FIELD);
}


tree
gfc_vtable_copy_get (tree decl)
{
  return gfc_vtable_field_get (decl, VTABLE_COPY_FIELD);
}


#undef CLASS_DATA_FIELD
#undef CLASS_VPTR_FIELD
#undef VTABLE_HASH_FIELD
#undef VTABLE_SIZE_FIELD
#undef VTABLE_EXTENDS_FIELD
#undef VTABLE_DEF_INIT_FIELD
#undef VTABLE_COPY_FIELD


/* Takes a derived type expression and returns the address of a temporary
   class object of the 'declared' type.  */ 
static void
gfc_conv_derived_to_class (gfc_se *parmse, gfc_expr *e,
			   gfc_typespec class_ts)
{
  gfc_symbol *vtab;
  gfc_ss *ss;
  tree ctree;
  tree var;
  tree tmp;

  /* The derived type needs to be converted to a temporary
     CLASS object.  */
  tmp = gfc_typenode_for_spec (&class_ts);
  var = gfc_create_var (tmp, "class");

  /* Set the vptr.  */
  ctree =  gfc_class_vptr_get (var);

  /* Remember the vtab corresponds to the derived type
     not to the class declared type.  */
  vtab = gfc_find_derived_vtab (e->ts.u.derived);
  gcc_assert (vtab);
  tmp = gfc_build_addr_expr (NULL_TREE, gfc_get_symbol_decl (vtab));
  gfc_add_modify (&parmse->pre, ctree,
		  fold_convert (TREE_TYPE (ctree), tmp));

  /* Now set the data field.  */
  ctree =  gfc_class_data_get (var);

  if (parmse->ss && parmse->ss->info->useflags)
    {
      /* For an array reference in an elemental procedure call we need
	 to retain the ss to provide the scalarized array reference.  */
      gfc_conv_expr_reference (parmse, e);
      tmp = fold_convert (TREE_TYPE (ctree), parmse->expr);
      gfc_add_modify (&parmse->pre, ctree, tmp);
    }
  else
    {
      ss = gfc_walk_expr (e);
      if (ss == gfc_ss_terminator)
	{
	  parmse->ss = NULL;
	  gfc_conv_expr_reference (parmse, e);
	  tmp = fold_convert (TREE_TYPE (ctree), parmse->expr);
	  gfc_add_modify (&parmse->pre, ctree, tmp);
	}
      else
	{
	  parmse->ss = ss;
	  gfc_conv_expr_descriptor (parmse, e, ss);
	  gfc_add_modify (&parmse->pre, ctree, parmse->expr);
	}
    }

  /* Pass the address of the class object.  */
  parmse->expr = gfc_build_addr_expr (NULL_TREE, var);
}


/* Takes a scalarized class array expression and returns the
   address of a temporary scalar class object of the 'declared'
   type.  
   OOP-TODO: This could be improved by adding code that branched on
   the dynamic type being the same as the declared type. In this case
   the original class expression can be passed directly.  */ 
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void
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gfc_conv_class_to_class (gfc_se *parmse, gfc_expr *e,
			 gfc_typespec class_ts, bool elemental)
{
  tree ctree;
  tree var;
  tree tmp;
  tree vptr;
  gfc_ref *ref;
  gfc_ref *class_ref;
  bool full_array = false;

  class_ref = NULL;
  for (ref = e->ref; ref; ref = ref->next)
    {
      if (ref->type == REF_COMPONENT
	    && ref->u.c.component->ts.type == BT_CLASS)
	class_ref = ref;

      if (ref->next == NULL)
	break;
    }

  if (ref == NULL || class_ref == ref)
    return;

  /* Test for FULL_ARRAY.  */
  gfc_is_class_array_ref (e, &full_array);

  /* The derived type needs to be converted to a temporary
     CLASS object.  */
  tmp = gfc_typenode_for_spec (&class_ts);
  var = gfc_create_var (tmp, "class");

  /* Set the data.  */
  ctree = gfc_class_data_get (var);
  gfc_add_modify (&parmse->pre, ctree, parmse->expr);

  /* Return the data component, except in the case of scalarized array
     references, where nullification of the cannot occur and so there
     is no need.  */
  if (!elemental && full_array)
    gfc_add_modify (&parmse->post, parmse->expr, ctree);

  /* Set the vptr.  */
  ctree = gfc_class_vptr_get (var);

  /* The vptr is the second field of the actual argument.
     First we have to find the corresponding class reference. */

  tmp = NULL_TREE;
  if (class_ref == NULL
	&& e->symtree && e->symtree->n.sym->ts.type == BT_CLASS) 
    tmp = e->symtree->n.sym->backend_decl;
  else
    {
      /* Remove everything after the last class reference, convert the
	 expression and then recover its tailend once more.  */
      gfc_se tmpse;
      ref = class_ref->next;
      class_ref->next = NULL;
      gfc_init_se (&tmpse, NULL);
      gfc_conv_expr (&tmpse, e);
      class_ref->next = ref;
      tmp = tmpse.expr;
    }

  gcc_assert (tmp != NULL_TREE);

  /* Dereference if needs be.  */
  if (TREE_CODE (TREE_TYPE (tmp)) == REFERENCE_TYPE)
    tmp = build_fold_indirect_ref_loc (input_location, tmp);

  vptr = gfc_class_vptr_get (tmp);
  gfc_add_modify (&parmse->pre, ctree,
		  fold_convert (TREE_TYPE (ctree), vptr));

  /* Return the vptr component, except in the case of scalarized array
     references, where the dynamic type cannot change.  */
  if (!elemental && full_array)
    gfc_add_modify (&parmse->post, vptr,
		    fold_convert (TREE_TYPE (vptr), ctree));

  /* Pass the address of the class object.  */
  parmse->expr = gfc_build_addr_expr (NULL_TREE, var);
}

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/* Given a class array declaration and an index, returns the address
   of the referenced element.  */

tree
gfc_get_class_array_ref (tree index, tree class_decl)
{
  tree data = gfc_class_data_get (class_decl);
  tree size = gfc_vtable_size_get (class_decl);
  tree offset = fold_build2_loc (input_location, MULT_EXPR,
				 gfc_array_index_type,
				 index, size);
  tree ptr;
  data = gfc_conv_descriptor_data_get (data);
  ptr = fold_convert (pvoid_type_node, data);
  ptr = fold_build_pointer_plus_loc (input_location, ptr, offset);
  return fold_convert (TREE_TYPE (data), ptr);
}


/* Copies one class expression to another, assuming that if either
   'to' or 'from' are arrays they are packed.  Should 'from' be
   NULL_TREE, the inialization expression for 'to' is used, assuming
   that the _vptr is set.  */

tree
gfc_copy_class_to_class (tree from, tree to, tree nelems)
{
  tree fcn;
  tree fcn_type;
  tree from_data;
  tree to_data;
  tree to_ref;
  tree from_ref;
  VEC(tree,gc) *args;
  tree tmp;
  tree index;
  stmtblock_t loopbody;
  stmtblock_t body;
  gfc_loopinfo loop;

  args = NULL;

  if (from != NULL_TREE)
    fcn = gfc_vtable_copy_get (from);
  else
    fcn = gfc_vtable_copy_get (to);

  fcn_type = TREE_TYPE (TREE_TYPE (fcn));

  if (from != NULL_TREE)
    from_data = gfc_class_data_get (from);
  else
    from_data = gfc_vtable_def_init_get (to);

  to_data = gfc_class_data_get (to);

  if (GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (to_data)))
    {
      gfc_init_block (&body);
      tmp = fold_build2_loc (input_location, MINUS_EXPR,
			     gfc_array_index_type, nelems,
			     gfc_index_one_node);
      nelems = gfc_evaluate_now (tmp, &body);
      index = gfc_create_var (gfc_array_index_type, "S");

      if (GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (from_data)))
	{
	  from_ref = gfc_get_class_array_ref (index, from);
	  VEC_safe_push (tree, gc, args, from_ref);
	}
      else
        VEC_safe_push (tree, gc, args, from_data);

      to_ref = gfc_get_class_array_ref (index, to);
      VEC_safe_push (tree, gc, args, to_ref);

      tmp = build_call_vec (fcn_type, fcn, args);

      /* Build the body of the loop.  */
      gfc_init_block (&loopbody);
      gfc_add_expr_to_block (&loopbody, tmp);

      /* Build the loop and return.  */
      gfc_init_loopinfo (&loop);
      loop.dimen = 1;
      loop.from[0] = gfc_index_zero_node;
      loop.loopvar[0] = index;
      loop.to[0] = nelems;
      gfc_trans_scalarizing_loops (&loop, &loopbody);
      gfc_add_block_to_block (&body, &loop.pre);
      tmp = gfc_finish_block (&body);
    }
  else
    {
      gcc_assert (!GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (from_data)));
      VEC_safe_push (tree, gc, args, from_data);
      VEC_safe_push (tree, gc, args, to_data);
      tmp = build_call_vec (fcn_type, fcn, args);
    }

  return tmp;
}

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static tree
gfc_trans_class_array_init_assign (gfc_expr *rhs, gfc_expr *lhs, gfc_expr *obj)
{
  gfc_actual_arglist *actual;
  gfc_expr *ppc;
  gfc_code *ppc_code;
  tree res;

  actual = gfc_get_actual_arglist ();
  actual->expr = gfc_copy_expr (rhs);
  actual->next = gfc_get_actual_arglist ();
  actual->next->expr = gfc_copy_expr (lhs);
  ppc = gfc_copy_expr (obj);
  gfc_add_vptr_component (ppc);
  gfc_add_component_ref (ppc, "_copy");
  ppc_code = gfc_get_code ();
  ppc_code->resolved_sym = ppc->symtree->n.sym;
  /* Although '_copy' is set to be elemental in class.c, it is
     not staying that way.  Find out why, sometime....  */
  ppc_code->resolved_sym->attr.elemental = 1;
  ppc_code->ext.actual = actual;
  ppc_code->expr1 = ppc;
  ppc_code->op = EXEC_CALL;
  /* Since '_copy' is elemental, the scalarizer will take care
     of arrays in gfc_trans_call.  */
  res = gfc_trans_call (ppc_code, false, NULL, NULL, false);
  gfc_free_statements (ppc_code);
  return res;
}

/* Special case for initializing a polymorphic dummy with INTENT(OUT).
   A MEMCPY is needed to copy the full data from the default initializer
   of the dynamic type.  */

tree
gfc_trans_class_init_assign (gfc_code *code)
{
  stmtblock_t block;
  tree tmp;
  gfc_se dst,src,memsz;
  gfc_expr *lhs, *rhs, *sz;

  gfc_start_block (&block);

  lhs = gfc_copy_expr (code->expr1);
  gfc_add_data_component (lhs);

  rhs = gfc_copy_expr (code->expr1);
  gfc_add_vptr_component (rhs);

  /* Make sure that the component backend_decls have been built, which
     will not have happened if the derived types concerned have not
     been referenced.  */
  gfc_get_derived_type (rhs->ts.u.derived);
  gfc_add_def_init_component (rhs);

  if (code->expr1->ts.type == BT_CLASS
	&& CLASS_DATA (code->expr1)->attr.dimension)
    tmp = gfc_trans_class_array_init_assign (rhs, lhs, code->expr1);
  else
    {
      sz = gfc_copy_expr (code->expr1);
      gfc_add_vptr_component (sz);
      gfc_add_size_component (sz);

      gfc_init_se (&dst, NULL);
      gfc_init_se (&src, NULL);
      gfc_init_se (&memsz, NULL);
      gfc_conv_expr (&dst, lhs);
      gfc_conv_expr (&src, rhs);
      gfc_conv_expr (&memsz, sz);
      gfc_add_block_to_block (&block, &src.pre);
      tmp = gfc_build_memcpy_call (dst.expr, src.expr, memsz.expr);
    }
  gfc_add_expr_to_block (&block, tmp);
  
  return gfc_finish_block (&block);
}


/* Translate an assignment to a CLASS object
   (pointer or ordinary assignment).  */

tree
gfc_trans_class_assign (gfc_expr *expr1, gfc_expr *expr2, gfc_exec_op op)
{
  stmtblock_t block;
  tree tmp;
  gfc_expr *lhs;
  gfc_expr *rhs;
  gfc_ref *ref;

  gfc_start_block (&block);

  ref = expr1->ref;
  while (ref && ref->next)
     ref = ref->next;

  /* Class valued proc_pointer assignments do not need any further
     preparation.  */
  if (ref && ref->type == REF_COMPONENT
	&& ref->u.c.component->attr.proc_pointer
	&& expr2->expr_type == EXPR_VARIABLE
	&& expr2->symtree->n.sym->attr.flavor == FL_PROCEDURE
	&& op == EXEC_POINTER_ASSIGN)
    goto assign;

  if (expr2->ts.type != BT_CLASS)
    {
      /* Insert an additional assignment which sets the '_vptr' field.  */
      gfc_symbol *vtab = NULL;
      gfc_symtree *st;

      lhs = gfc_copy_expr (expr1);
      gfc_add_vptr_component (lhs);

      if (expr2->ts.type == BT_DERIVED)
	vtab = gfc_find_derived_vtab (expr2->ts.u.derived);
      else if (expr2->expr_type == EXPR_NULL)
	vtab = gfc_find_derived_vtab (expr1->ts.u.derived);
      gcc_assert (vtab);

      rhs = gfc_get_expr ();
      rhs->expr_type = EXPR_VARIABLE;
      gfc_find_sym_tree (vtab->name, vtab->ns, 1, &st);
      rhs->symtree = st;
      rhs->ts = vtab->ts;

      tmp = gfc_trans_pointer_assignment (lhs, rhs);
      gfc_add_expr_to_block (&block, tmp);

      gfc_free_expr (lhs);
      gfc_free_expr (rhs);
    }
  else if (CLASS_DATA (expr2)->attr.dimension)
    {
      /* Insert an additional assignment which sets the '_vptr' field.  */
      lhs = gfc_copy_expr (expr1);
      gfc_add_vptr_component (lhs);

      rhs = gfc_copy_expr (expr2);
      gfc_add_vptr_component (rhs);

      tmp = gfc_trans_pointer_assignment (lhs, rhs);
      gfc_add_expr_to_block (&block, tmp);

      gfc_free_expr (lhs);
      gfc_free_expr (rhs);
    }

  /* Do the actual CLASS assignment.  */
  if (expr2->ts.type == BT_CLASS
	&& !CLASS_DATA (expr2)->attr.dimension)
    op = EXEC_ASSIGN;
  else
    gfc_add_data_component (expr1);

assign:

  if (op == EXEC_ASSIGN)
    tmp = gfc_trans_assignment (expr1, expr2, false, true);
  else if (op == EXEC_POINTER_ASSIGN)
    tmp = gfc_trans_pointer_assignment (expr1, expr2);
  else
    gcc_unreachable();

  gfc_add_expr_to_block (&block, tmp);

  return gfc_finish_block (&block);
}


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/* End of prototype trans-class.c  */


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static tree gfc_trans_structure_assign (tree dest, gfc_expr * expr);
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static void gfc_apply_interface_mapping_to_expr (gfc_interface_mapping *,
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						 gfc_expr *);
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/* Copy the scalarization loop variables.  */

static void
gfc_copy_se_loopvars (gfc_se * dest, gfc_se * src)
{
  dest->ss = src->ss;
  dest->loop = src->loop;
}


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/* Initialize a simple expression holder.
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   Care must be taken when multiple se are created with the same parent.
   The child se must be kept in sync.  The easiest way is to delay creation
   of a child se until after after the previous se has been translated.  */

void
gfc_init_se (gfc_se * se, gfc_se * parent)
{
  memset (se, 0, sizeof (gfc_se));
  gfc_init_block (&se->pre);
  gfc_init_block (&se->post);

  se->parent = parent;

  if (parent)
    gfc_copy_se_loopvars (se, parent);
}


/* Advances to the next SS in the chain.  Use this rather than setting
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   se->ss = se->ss->next because all the parents needs to be kept in sync.
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   See gfc_init_se.  */

void
gfc_advance_se_ss_chain (gfc_se * se)
{
  gfc_se *p;
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  gfc_ss *ss;
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  gcc_assert (se != NULL && se->ss != NULL && se->ss != gfc_ss_terminator);
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  p = se;
  /* Walk down the parent chain.  */
  while (p != NULL)
    {
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      /* Simple consistency check.  */
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      gcc_assert (p->parent == NULL || p->parent->ss == p->ss
		  || p->parent->ss->nested_ss == p->ss);
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      /* If we were in a nested loop, the next scalarized expression can be
	 on the parent ss' next pointer.  Thus we should not take the next
	 pointer blindly, but rather go up one nest level as long as next
	 is the end of chain.  */
      ss = p->ss;
      while (ss->next == gfc_ss_terminator && ss->parent != NULL)
	ss = ss->parent;

      p->ss = ss->next;
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      p = p->parent;
    }
}


/* Ensures the result of the expression as either a temporary variable
   or a constant so that it can be used repeatedly.  */

void
gfc_make_safe_expr (gfc_se * se)
{
  tree var;

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  if (CONSTANT_CLASS_P (se->expr))
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    return;

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  /* We need a temporary for this result.  */
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  var = gfc_create_var (TREE_TYPE (se->expr), NULL);
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  gfc_add_modify (&se->pre, var, se->expr);
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  se->expr = var;
}


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/* Return an expression which determines if a dummy parameter is present.
   Also used for arguments to procedures with multiple entry points.  */
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tree
gfc_conv_expr_present (gfc_symbol * sym)
{
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  tree decl, cond;
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  gcc_assert (sym->attr.dummy);
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  decl = gfc_get_symbol_decl (sym);
  if (TREE_CODE (decl) != PARM_DECL)
    {
      /* Array parameters use a temporary descriptor, we want the real
         parameter.  */
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      gcc_assert (GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (decl))
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             || GFC_ARRAY_TYPE_P (TREE_TYPE (decl)));
      decl = GFC_DECL_SAVED_DESCRIPTOR (decl);
    }
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  cond = fold_build2_loc (input_location, NE_EXPR, boolean_type_node, decl,
			  fold_convert (TREE_TYPE (decl), null_pointer_node));
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  /* Fortran 2008 allows to pass null pointers and non-associated pointers
     as actual argument to denote absent dummies. For array descriptors,
     we thus also need to check the array descriptor.  */
  if (!sym->attr.pointer && !sym->attr.allocatable
      && sym->as && sym->as->type == AS_ASSUMED_SHAPE
      && (gfc_option.allow_std & GFC_STD_F2008) != 0)
    {
      tree tmp;
      tmp = build_fold_indirect_ref_loc (input_location, decl);
      tmp = gfc_conv_array_data (tmp);
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      tmp = fold_build2_loc (input_location, NE_EXPR, boolean_type_node, tmp,
			     fold_convert (TREE_TYPE (tmp), null_pointer_node));
      cond = fold_build2_loc (input_location, TRUTH_ANDIF_EXPR,
			      boolean_type_node, cond, tmp);
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    }

  return cond;
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}


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/* Converts a missing, dummy argument into a null or zero.  */

void
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gfc_conv_missing_dummy (gfc_se * se, gfc_expr * arg, gfc_typespec ts, int kind)
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{
  tree present;
  tree tmp;

  present = gfc_conv_expr_present (arg->symtree->n.sym);
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  if (kind > 0)
    {
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      /* Create a temporary and convert it to the correct type.  */
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      tmp = gfc_get_int_type (kind);
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      tmp = fold_convert (tmp, build_fold_indirect_ref_loc (input_location,
							se->expr));
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      /* Test for a NULL value.  */
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      tmp = build3_loc (input_location, COND_EXPR, TREE_TYPE (tmp), present,
			tmp, fold_convert (TREE_TYPE (tmp), integer_one_node));
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      tmp = gfc_evaluate_now (tmp, &se->pre);
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      se->expr = gfc_build_addr_expr (NULL_TREE, tmp);
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    }
  else
    {
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      tmp = build3_loc (input_location, COND_EXPR, TREE_TYPE (se->expr),
			present, se->expr,
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			build_zero_cst (TREE_TYPE (se->expr)));
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      tmp = gfc_evaluate_now (tmp, &se->pre);
      se->expr = tmp;
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    }
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  if (ts.type == BT_CHARACTER)
    {
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      tmp = build_int_cst (gfc_charlen_type_node, 0);
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      tmp = fold_build3_loc (input_location, COND_EXPR, gfc_charlen_type_node,
			     present, se->string_length, tmp);
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      tmp = gfc_evaluate_now (tmp, &se->pre);
      se->string_length = tmp;
    }
  return;
}


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/* Get the character length of an expression, looking through gfc_refs
   if necessary.  */

tree
gfc_get_expr_charlen (gfc_expr *e)
{
  gfc_ref *r;
  tree length;

  gcc_assert (e->expr_type == EXPR_VARIABLE 
	      && e->ts.type == BT_CHARACTER);
  
  length = NULL; /* To silence compiler warning.  */

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  if (is_subref_array (e) && e->ts.u.cl->length)
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    {
      gfc_se tmpse;
      gfc_init_se (&tmpse, NULL);
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      gfc_conv_expr_type (&tmpse, e->ts.u.cl->length, gfc_charlen_type_node);
      e->ts.u.cl->backend_decl = tmpse.expr;
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      return tmpse.expr;
    }

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  /* First candidate: if the variable is of type CHARACTER, the
     expression's length could be the length of the character
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     variable.  */
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  if (e->symtree->n.sym->ts.type == BT_CHARACTER)
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    length = e->symtree->n.sym->ts.u.cl->backend_decl;
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  /* Look through the reference chain for component references.  */
  for (r = e->ref; r; r = r->next)
    {
      switch (r->type)
	{
	case REF_COMPONENT:
	  if (r->u.c.component->ts.type == BT_CHARACTER)
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	    length = r->u.c.component->ts.u.cl->backend_decl;
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	  break;

	case REF_ARRAY:
	  /* Do nothing.  */
	  break;

	default:
	  /* We should never got substring references here.  These will be
	     broken down by the scalarizer.  */
	  gcc_unreachable ();
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	  break;
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	}
    }

  gcc_assert (length != NULL);
  return length;
}

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/* Return for an expression the backend decl of the coarray.  */

static tree
get_tree_for_caf_expr (gfc_expr *expr)
{
   tree caf_decl = NULL_TREE;
   gfc_ref *ref;

   gcc_assert (expr && expr->expr_type == EXPR_VARIABLE);
   if (expr->symtree->n.sym->attr.codimension)
     caf_decl = expr->symtree->n.sym->backend_decl;

   for (ref = expr->ref; ref; ref = ref->next)
     if (ref->type == REF_COMPONENT)
       {
	gfc_component *comp = ref->u.c.component;
        if (comp->attr.pointer || comp->attr.allocatable)
	  caf_decl = NULL_TREE;
	if (comp->attr.codimension)
	  caf_decl = comp->backend_decl;
       }

   gcc_assert (caf_decl != NULL_TREE);
   return caf_decl;
}


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/* For each character array constructor subexpression without a ts.u.cl->length,
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   replace it by its first element (if there aren't any elements, the length
   should already be set to zero).  */

static void
flatten_array_ctors_without_strlen (gfc_expr* e)
{
  gfc_actual_arglist* arg;
  gfc_constructor* c;

  if (!e)
    return;

  switch (e->expr_type)
    {

    case EXPR_OP:
      flatten_array_ctors_without_strlen (e->value.op.op1); 
      flatten_array_ctors_without_strlen (e->value.op.op2); 
      break;

    case EXPR_COMPCALL:
      /* TODO: Implement as with EXPR_FUNCTION when needed.  */
      gcc_unreachable ();

    case EXPR_FUNCTION:
      for (arg = e->value.function.actual; arg; arg = arg->next)
	flatten_array_ctors_without_strlen (arg->expr);
      break;

    case EXPR_ARRAY:

      /* We've found what we're looking for.  */
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      if (e->ts.type == BT_CHARACTER && !e->ts.u.cl->length)
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	{
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	  gfc_constructor *c;
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	  gfc_expr* new_expr;
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	  gcc_assert (e->value.constructor);

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	  c = gfc_constructor_first (e->value.constructor);
	  new_expr = c->expr;
	  c->expr = NULL;
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	  flatten_array_ctors_without_strlen (new_expr);
	  gfc_replace_expr (e, new_expr);
	  break;
	}

      /* Otherwise, fall through to handle constructor elements.  */
    case EXPR_STRUCTURE:
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      for (c = gfc_constructor_first (e->value.constructor);
	   c; c = gfc_constructor_next (c))
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	flatten_array_ctors_without_strlen (c->expr);
      break;

    default:
      break;

    }
}

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/* Generate code to initialize a string length variable. Returns the
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   value.  For array constructors, cl->length might be NULL and in this case,
   the first element of the constructor is needed.  expr is the original
   expression so we can access it but can be NULL if this is not needed.  */
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void
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gfc_conv_string_length (gfc_charlen * cl, gfc_expr * expr, stmtblock_t * pblock)
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{
  gfc_se se;

  gfc_init_se (&se, NULL);
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  if (!cl->length
	&& cl->backend_decl
	&& TREE_CODE (cl->backend_decl) == VAR_DECL)
    return;

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  /* If cl->length is NULL, use gfc_conv_expr to obtain the string length but
     "flatten" array constructors by taking their first element; all elements
     should be the same length or a cl->length should be present.  */
  if (!cl->length)
    {
      gfc_expr* expr_flat;
      gcc_assert (expr);
      expr_flat = gfc_copy_expr (expr);
      flatten_array_ctors_without_strlen (expr_flat);
      gfc_resolve_expr (expr_flat);

      gfc_conv_expr (&se, expr_flat);
      gfc_add_block_to_block (pblock, &se.pre);
      cl->backend_decl = convert (gfc_charlen_type_node, se.string_length);

      gfc_free_expr (expr_flat);
      return;
    }

  /* Convert cl->length.  */

  gcc_assert (cl->length);

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  gfc_conv_expr_type (&se, cl->length, gfc_charlen_type_node);
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  se.expr = fold_build2_loc (input_location, MAX_EXPR, gfc_charlen_type_node,
			     se.expr, build_int_cst (gfc_charlen_type_node, 0));
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  gfc_add_block_to_block (pblock, &se.pre);

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  if (cl->backend_decl)
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    gfc_add_modify (pblock, cl->backend_decl, se.expr);
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  else
    cl->backend_decl = gfc_evaluate_now (se.expr, pblock);
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}

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static void
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gfc_conv_substring (gfc_se * se, gfc_ref * ref, int kind,
		    const char *name, locus *where)
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{
  tree tmp;
  tree type;
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  tree fault;
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  gfc_se start;
  gfc_se end;
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  char *msg;
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  type = gfc_get_character_type (kind, ref->u.ss.length);
  type = build_pointer_type (type);

  gfc_init_se (&start, se);
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  gfc_conv_expr_type (&start, ref->u.ss.start, gfc_charlen_type_node);
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  gfc_add_block_to_block (&se->pre, &start.pre);

  if (integer_onep (start.expr))
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    gfc_conv_string_parameter (se);
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  else
    {
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      tmp = start.expr;
      STRIP_NOPS (tmp);
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      /* Avoid multiple evaluation of substring start.  */
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      if (!CONSTANT_CLASS_P (tmp) && !DECL_P (tmp))
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	start.expr = gfc_evaluate_now (start.expr, &se->pre);

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      /* Change the start of the string.  */
      if (TYPE_STRING_FLAG (TREE_TYPE (se->expr)))
	tmp = se->expr;
      else
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	tmp = build_fold_indirect_ref_loc (input_location,
				       se->expr);
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      tmp = gfc_build_array_ref (tmp, start.expr, NULL);
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      se->expr = gfc_build_addr_expr (type, tmp);
    }

  /* Length = end + 1 - start.  */
  gfc_init_se (&end, se);
  if (ref->u.ss.end == NULL)
    end.expr = se->string_length;
  else
    {
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      gfc_conv_expr_type (&end, ref->u.ss.end, gfc_charlen_type_node);
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      gfc_add_block_to_block (&se->pre, &end.pre);
    }
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  tmp = end.expr;
  STRIP_NOPS (tmp);
  if (!CONSTANT_CLASS_P (tmp) && !DECL_P (tmp))
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    end.expr = gfc_evaluate_now (end.expr, &se->pre);

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  if (gfc_option.rtcheck & GFC_RTCHECK_BOUNDS)
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    {
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      tree nonempty = fold_build2_loc (input_location, LE_EXPR,
				       boolean_type_node, start.expr,
				       end.expr);
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      /* Check lower bound.  */
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      fault = fold_build2_loc (input_location, LT_EXPR, boolean_type_node,
			       start.expr,
			       build_int_cst (gfc_charlen_type_node, 1));
      fault = fold_build2_loc (input_location, TRUTH_ANDIF_EXPR,
			       boolean_type_node, nonempty, fault);
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      if (name)
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	asprintf (&msg, "Substring out of bounds: lower bound (%%ld) of '%s' "
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		  "is less than one", name);
      else
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	asprintf (&msg, "Substring out of bounds: lower bound (%%ld)"
1025
		  "is less than one");
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      gfc_trans_runtime_check (true, false, fault, &se->pre, where, msg,
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			       fold_convert (long_integer_type_node,
					     start.expr));
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      free (msg);
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      /* Check upper bound.  */
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      fault = fold_build2_loc (input_location, GT_EXPR, boolean_type_node,
			       end.expr, se->string_length);
      fault = fold_build2_loc (input_location, TRUTH_ANDIF_EXPR,
			       boolean_type_node, nonempty, fault);
1036
      if (name)
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	asprintf (&msg, "Substring out of bounds: upper bound (%%ld) of '%s' "
		  "exceeds string length (%%ld)", name);
1039
      else
1040 1041
	asprintf (&msg, "Substring out of bounds: upper bound (%%ld) "
		  "exceeds string length (%%ld)");
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      gfc_trans_runtime_check (true, false, fault, &se->pre, where, msg,
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			       fold_convert (long_integer_type_node, end.expr),
			       fold_convert (long_integer_type_node,
					     se->string_length));
1046
      free (msg);
1047 1048
    }

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  /* If the start and end expressions are equal, the length is one.  */
  if (ref->u.ss.end
      && gfc_dep_compare_expr (ref->u.ss.start, ref->u.ss.end) == 0)
    tmp = build_int_cst (gfc_charlen_type_node, 1);
  else
    {
      tmp = fold_build2_loc (input_location, MINUS_EXPR, gfc_charlen_type_node,
			     end.expr, start.expr);
      tmp = fold_build2_loc (input_location, PLUS_EXPR, gfc_charlen_type_node,
			     build_int_cst (gfc_charlen_type_node, 1), tmp);
      tmp = fold_build2_loc (input_location, MAX_EXPR, gfc_charlen_type_node,
			     tmp, build_int_cst (gfc_charlen_type_node, 0));
    }

1063
  se->string_length = tmp;
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}


/* Convert a derived type component reference.  */

static void
gfc_conv_component_ref (gfc_se * se, gfc_ref * ref)
{
  gfc_component *c;
  tree tmp;
  tree decl;
  tree field;

  c = ref->u.c.component;

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  gcc_assert (c->backend_decl);
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  field = c->backend_decl;
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  gcc_assert (TREE_CODE (field) == FIELD_DECL);
1083
  decl = se->expr;
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  /* Components can correspond to fields of different containing
     types, as components are created without context, whereas
     a concrete use of a component has the type of decl as context.
     So, if the type doesn't match, we search the corresponding
     FIELD_DECL in the parent type.  To not waste too much time
     we cache this result in norestrict_decl.  */

  if (DECL_FIELD_CONTEXT (field) != TREE_TYPE (decl))
    {
      tree f2 = c->norestrict_decl;
      if (!f2 || DECL_FIELD_CONTEXT (f2) != TREE_TYPE (decl))
	for (f2 = TYPE_FIELDS (TREE_TYPE (decl)); f2; f2 = DECL_CHAIN (f2))
	  if (TREE_CODE (f2) == FIELD_DECL
	      && DECL_NAME (f2) == DECL_NAME (field))
	    break;
      gcc_assert (f2);
      c->norestrict_decl = f2;
      field = f2;
    }
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  tmp = fold_build3_loc (input_location, COMPONENT_REF, TREE_TYPE (field),
			 decl, field, NULL_TREE);
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  se->expr = tmp;

1109
  if (c->ts.type == BT_CHARACTER && !c->attr.proc_pointer)
1110
    {
1111
      tmp = c->ts.u.cl->backend_decl;
1112
      /* Components must always be constant length.  */
1113
      gcc_assert (tmp && INTEGER_CST_P (tmp));
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      se->string_length = tmp;
    }

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  if (((c->attr.pointer || c->attr.allocatable)
       && (!c->attr.dimension && !c->attr.codimension)
1119
       && c->ts.type != BT_CHARACTER)
1120
      || c->attr.proc_pointer)
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    se->expr = build_fold_indirect_ref_loc (input_location,
					se->expr);
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}


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/* This function deals with component references to components of the
   parent type for derived type extensons.  */
static void
conv_parent_component_references (gfc_se * se, gfc_ref * ref)
{
  gfc_component *c;
  gfc_component *cmp;
  gfc_symbol *dt;
  gfc_ref parent;

  dt = ref->u.c.sym;
  c = ref->u.c.component;

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  /* Return if the component is not in the parent type.  */
  for (cmp = dt->components; cmp; cmp = cmp->next)
    if (strcmp (c->name, cmp->name) == 0)
      return;

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  /* Build a gfc_ref to recursively call gfc_conv_component_ref.  */
  parent.type = REF_COMPONENT;
  parent.next = NULL;
  parent.u.c.sym = dt;
  parent.u.c.component = dt->components;

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  if (dt->backend_decl == NULL)
    gfc_get_derived_type (dt);

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  /* Build the reference and call self.  */
  gfc_conv_component_ref (se, &parent);
  parent.u.c.sym = dt->components->ts.u.derived;
  parent.u.c.component = c;
  conv_parent_component_references (se, &parent);
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}

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/* Return the contents of a variable. Also handles reference/pointer
   variables (all Fortran pointer references are implicit).  */

static void
gfc_conv_variable (gfc_se * se, gfc_expr * expr)
{
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  gfc_ss *ss;
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  gfc_ref *ref;
  gfc_symbol *sym;
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  tree parent_decl = NULL_TREE;
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  int parent_flag;
  bool return_value;
  bool alternate_entry;
  bool entry_master;
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  sym = expr->symtree->n.sym;
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  ss = se->ss;
  if (ss != NULL)
1178
    {
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      gfc_ss_info *ss_info = ss->info;

1181
      /* Check that something hasn't gone horribly wrong.  */
1182
      gcc_assert (ss != gfc_ss_terminator);
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      gcc_assert (ss_info->expr == expr);
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      /* A scalarized term.  We already know the descriptor.  */
1186
      se->expr = ss_info->data.array.descriptor;
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      se->string_length = ss_info->string_length;
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      for (ref = ss_info->data.array.ref; ref; ref = ref->next)
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	if (ref->type == REF_ARRAY && ref->u.ar.type != AR_ELEMENT)
	  break;
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    }
  else
    {
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      tree se_expr = NULL_TREE;

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      se->expr = gfc_get_symbol_decl (sym);
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      /* Deal with references to a parent results or entries by storing
	 the current_function_decl and moving to the parent_decl.  */
      return_value = sym->attr.function && sym->result == sym;
      alternate_entry = sym->attr.function && sym->attr.entry
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			&& sym->result == sym;
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      entry_master = sym->attr.result
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		     && sym->ns->proc_name->attr.entry_master
		     && !gfc_return_by_reference (sym->ns->proc_name);
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      if (current_function_decl)
	parent_decl = DECL_CONTEXT (current_function_decl);
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      if ((se->expr == parent_decl && return_value)
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	   || (sym->ns && sym->ns->proc_name
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	       && parent_decl
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	       && sym->ns->proc_name->backend_decl == parent_decl
	       && (alternate_entry || entry_master)))
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	parent_flag = 1;
      else
	parent_flag = 0;

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      /* Special case for assigning the return value of a function.
	 Self recursive functions must have an explicit return value.  */
1220
      if (return_value && (se->expr == current_function_decl || parent_flag))
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	se_expr = gfc_get_fake_result_decl (sym, parent_flag);
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      /* Similarly for alternate entry points.  */
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      else if (alternate_entry 
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	       && (sym->ns->proc_name->backend_decl == current_function_decl
		   || parent_flag))
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	{
	  gfc_entry_list *el = NULL;

	  for (el = sym->ns->entries; el; el = el->next)
	    if (sym == el->sym)
	      {
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		se_expr = gfc_get_fake_result_decl (sym, parent_flag);
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		break;
	      }
	}

1238
      else if (entry_master
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	       && (sym->ns->proc_name->backend_decl == current_function_decl
		   || parent_flag))
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	se_expr = gfc_get_fake_result_decl (sym, parent_flag);
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      if (se_expr)
	se->expr = se_expr;

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      /* Procedure actual arguments.  */
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      else if (sym->attr.flavor == FL_PROCEDURE
	       && se->expr != current_function_decl)
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	{
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	  if (!sym->attr.dummy && !sym->attr.proc_pointer)
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	    {
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	      gcc_assert (TREE_CODE (se->expr) == FUNCTION_DECL);
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	      se->expr = gfc_build_addr_expr (NULL_TREE, se->expr);
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	    }
	  return;
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	}


      /* Dereference the expression, where needed. Since characters
	 are entirely different from other types, they are treated 
	 separately.  */
      if (sym->ts.type == BT_CHARACTER)
	{
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	  /* Dereference character pointer dummy arguments
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	     or results.  */
1266
	  if ((sym->attr.pointer || sym->attr.allocatable)
1267 1268 1269
	      && (sym->attr.dummy
		  || sym->attr.function
		  || sym->attr.result))
1270 1271
	    se->expr = build_fold_indirect_ref_loc (input_location,
						se->expr);
1272

1273
	}
1274
      else if (!sym->attr.value)
1275
	{
1276 1277 1278
	  /* Dereference non-character scalar dummy arguments.  */
	  if (sym->attr.dummy && !sym->attr.dimension
	      && !(sym->attr.codimension && sym->attr.allocatable))
1279 1280
	    se->expr = build_fold_indirect_ref_loc (input_location,
						se->expr);
1281

1282
          /* Dereference scalar hidden result.  */
1283
	  if (gfc_option.flag_f2c && sym->ts.type == BT_COMPLEX
1284
	      && (sym->attr.function || sym->attr.result)
1285 1286
	      && !sym->attr.dimension && !sym->attr.pointer
	      && !sym->attr.always_explicit)
1287 1288
	    se->expr = build_fold_indirect_ref_loc (input_location,
						se->expr);
1289

1290
	  /* Dereference non-character pointer variables. 
1291
	     These must be dummies, results, or scalars.  */
1292 1293
	  if ((sym->attr.pointer || sym->attr.allocatable
	       || gfc_is_associate_pointer (sym))
1294 1295 1296
	      && (sym->attr.dummy
		  || sym->attr.function
		  || sym->attr.result
1297 1298
		  || (!sym->attr.dimension
		      && (!sym->attr.codimension || !sym->attr.allocatable))))
1299 1300
	    se->expr = build_fold_indirect_ref_loc (input_location,
						se->expr);
1301 1302
	}

1303 1304 1305 1306 1307 1308
      ref = expr->ref;
    }

  /* For character variables, also get the length.  */
  if (sym->ts.type == BT_CHARACTER)
    {
1309 1310
      /* If the character length of an entry isn't set, get the length from
         the master function instead.  */
1311 1312
      if (sym->attr.entry && !sym->ts.u.cl->backend_decl)
        se->string_length = sym->ns->proc_name->ts.u.cl->backend_decl;
1313
      else
1314
        se->string_length = sym->ts.u.cl->backend_decl;
1315
      gcc_assert (se->string_length);
1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332
    }

  while (ref)
    {
      switch (ref->type)
	{
	case REF_ARRAY:
	  /* Return the descriptor if that's what we want and this is an array
	     section reference.  */
	  if (se->descriptor_only && ref->u.ar.type != AR_ELEMENT)
	    return;
/* TODO: Pointers to single elements of array sections, eg elemental subs.  */
	  /* Return the descriptor for array pointers and allocations.  */
	  if (se->want_pointer
	      && ref->next == NULL && (se->descriptor_only))
	    return;

1333
	  gfc_conv_array_ref (se, &ref->u.ar, sym, &expr->where);
1334 1335 1336 1337
	  /* Return a pointer to an element.  */
	  break;

	case REF_COMPONENT:
1338 1339 1340
	  if (ref->u.c.sym->attr.extension)
	    conv_parent_component_references (se, ref);

1341
	  gfc_conv_component_ref (se, ref);
1342

1343 1344 1345
	  break;

	case REF_SUBSTRING:
1346 1347
	  gfc_conv_substring (se, ref, expr->ts.kind,
			      expr->symtree->name, &expr->where);
1348 1349 1350
	  break;

	default:
1351
	  gcc_unreachable ();
1352 1353 1354 1355 1356
	  break;
	}
      ref = ref->next;
    }
  /* Pointer assignment, allocation or pass by reference.  Arrays are handled
1357
     separately.  */
1358 1359
  if (se->want_pointer)
    {
1360
      if (expr->ts.type == BT_CHARACTER && !gfc_is_proc_ptr_comp (expr, NULL))
1361 1362
	gfc_conv_string_parameter (se);
      else 
1363
	se->expr = gfc_build_addr_expr (NULL_TREE, se->expr);
1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375
    }
}


/* Unary ops are easy... Or they would be if ! was a valid op.  */

static void
gfc_conv_unary_op (enum tree_code code, gfc_se * se, gfc_expr * expr)
{
  gfc_se operand;
  tree type;

1376
  gcc_assert (expr->ts.type != BT_CHARACTER);
1377 1378
  /* Initialize the operand.  */
  gfc_init_se (&operand, se);
1379
  gfc_conv_expr_val (&operand, expr->value.op.op1);
1380 1381 1382 1383 1384 1385
  gfc_add_block_to_block (&se->pre, &operand.pre);

  type = gfc_typenode_for_spec (&expr->ts);

  /* TRUTH_NOT_EXPR is not a "true" unary operator in GCC.
     We must convert it to a compare to 0 (e.g. EQ_EXPR (op1, 0)).
1386
     All other unary operators have an equivalent GIMPLE unary operator.  */
1387
  if (code == TRUTH_NOT_EXPR)
1388 1389
    se->expr = fold_build2_loc (input_location, EQ_EXPR, type, operand.expr,
				build_int_cst (type, 0));
1390
  else
1391
    se->expr = fold_build1_loc (input_location, code, type, operand.expr);
1392 1393 1394

}

1395
/* Expand power operator to optimal multiplications when a value is raised
1396
   to a constant integer n. See section 4.6.3, "Evaluation of Powers" of
1397 1398 1399 1400 1401 1402 1403 1404 1405 1406
   Donald E. Knuth, "Seminumerical Algorithms", Vol. 2, "The Art of Computer
   Programming", 3rd Edition, 1998.  */

/* This code is mostly duplicated from expand_powi in the backend.
   We establish the "optimal power tree" lookup table with the defined size.
   The items in the table are the exponents used to calculate the index
   exponents. Any integer n less than the value can get an "addition chain",
   with the first node being one.  */
#define POWI_TABLE_SIZE 256

1407
/* The table is from builtins.c.  */
1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443
static const unsigned char powi_table[POWI_TABLE_SIZE] =
  {
      0,   1,   1,   2,   2,   3,   3,   4,  /*   0 -   7 */
      4,   6,   5,   6,   6,  10,   7,   9,  /*   8 -  15 */
      8,  16,   9,  16,  10,  12,  11,  13,  /*  16 -  23 */
     12,  17,  13,  18,  14,  24,  15,  26,  /*  24 -  31 */
     16,  17,  17,  19,  18,  33,  19,  26,  /*  32 -  39 */
     20,  25,  21,  40,  22,  27,  23,  44,  /*  40 -  47 */
     24,  32,  25,  34,  26,  29,  27,  44,  /*  48 -  55 */
     28,  31,  29,  34,  30,  60,  31,  36,  /*  56 -  63 */
     32,  64,  33,  34,  34,  46,  35,  37,  /*  64 -  71 */
     36,  65,  37,  50,  38,  48,  39,  69,  /*  72 -  79 */
     40,  49,  41,  43,  42,  51,  43,  58,  /*  80 -  87 */
     44,  64,  45,  47,  46,  59,  47,  76,  /*  88 -  95 */
     48,  65,  49,  66,  50,  67,  51,  66,  /*  96 - 103 */
     52,  70,  53,  74,  54, 104,  55,  74,  /* 104 - 111 */
     56,  64,  57,  69,  58,  78,  59,  68,  /* 112 - 119 */
     60,  61,  61,  80,  62,  75,  63,  68,  /* 120 - 127 */
     64,  65,  65, 128,  66, 129,  67,  90,  /* 128 - 135 */
     68,  73,  69, 131,  70,  94,  71,  88,  /* 136 - 143 */
     72, 128,  73,  98,  74, 132,  75, 121,  /* 144 - 151 */
     76, 102,  77, 124,  78, 132,  79, 106,  /* 152 - 159 */
     80,  97,  81, 160,  82,  99,  83, 134,  /* 160 - 167 */
     84,  86,  85,  95,  86, 160,  87, 100,  /* 168 - 175 */
     88, 113,  89,  98,  90, 107,  91, 122,  /* 176 - 183 */
     92, 111,  93, 102,  94, 126,  95, 150,  /* 184 - 191 */
     96, 128,  97, 130,  98, 133,  99, 195,  /* 192 - 199 */
    100, 128, 101, 123, 102, 164, 103, 138,  /* 200 - 207 */
    104, 145, 105, 146, 106, 109, 107, 149,  /* 208 - 215 */
    108, 200, 109, 146, 110, 170, 111, 157,  /* 216 - 223 */
    112, 128, 113, 130, 114, 182, 115, 132,  /* 224 - 231 */
    116, 200, 117, 132, 118, 158, 119, 206,  /* 232 - 239 */
    120, 240, 121, 162, 122, 147, 123, 152,  /* 240 - 247 */
    124, 166, 125, 214, 126, 138, 127, 153,  /* 248 - 255 */
  };

1444 1445
/* If n is larger than lookup table's max index, we use the "window 
   method".  */
1446 1447
#define POWI_WINDOW_SIZE 3

1448 1449
/* Recursive function to expand the power operator. The temporary 
   values are put in tmpvar. The function returns tmpvar[1] ** n.  */
1450
static tree
1451
gfc_conv_powi (gfc_se * se, unsigned HOST_WIDE_INT n, tree * tmpvar)
1452
{
1453 1454
  tree op0;
  tree op1;
1455
  tree tmp;
1456
  int digit;
1457

1458
  if (n < POWI_TABLE_SIZE)
1459
    {
1460 1461
      if (tmpvar[n])
        return tmpvar[n];
1462

1463 1464 1465 1466 1467 1468 1469 1470
      op0 = gfc_conv_powi (se, n - powi_table[n], tmpvar);
      op1 = gfc_conv_powi (se, powi_table[n], tmpvar);
    }
  else if (n & 1)
    {
      digit = n & ((1 << POWI_WINDOW_SIZE) - 1);
      op0 = gfc_conv_powi (se, n - digit, tmpvar);
      op1 = gfc_conv_powi (se, digit, tmpvar);
1471 1472 1473
    }
  else
    {
1474 1475
      op0 = gfc_conv_powi (se, n >> 1, tmpvar);
      op1 = op0;
1476 1477
    }

1478
  tmp = fold_build2_loc (input_location, MULT_EXPR, TREE_TYPE (op0), op0, op1);
1479
  tmp = gfc_evaluate_now (tmp, &se->pre);
1480

1481 1482
  if (n < POWI_TABLE_SIZE)
    tmpvar[n] = tmp;
1483

1484 1485
  return tmp;
}
1486

1487 1488 1489 1490

/* Expand lhs ** rhs. rhs is a constant integer. If it expands successfully,
   return 1. Else return 0 and a call to runtime library functions
   will have to be built.  */
1491 1492 1493 1494 1495 1496 1497
static int
gfc_conv_cst_int_power (gfc_se * se, tree lhs, tree rhs)
{
  tree cond;
  tree tmp;
  tree type;
  tree vartmp[POWI_TABLE_SIZE];
1498 1499
  HOST_WIDE_INT m;
  unsigned HOST_WIDE_INT n;
1500
  int sgn;
1501

1502 1503 1504 1505 1506 1507 1508 1509 1510 1511
  /* If exponent is too large, we won't expand it anyway, so don't bother
     with large integer values.  */
  if (!double_int_fits_in_shwi_p (TREE_INT_CST (rhs)))
    return 0;

  m = double_int_to_shwi (TREE_INT_CST (rhs));
  /* There's no ABS for HOST_WIDE_INT, so here we go. It also takes care
     of the asymmetric range of the integer type.  */
  n = (unsigned HOST_WIDE_INT) (m < 0 ? -m : m);
  
1512 1513
  type = TREE_TYPE (lhs);
  sgn = tree_int_cst_sgn (rhs);
1514

1515 1516
  if (((FLOAT_TYPE_P (type) && !flag_unsafe_math_optimizations)
       || optimize_size) && (m > 2 || m < -1))
1517
    return 0;
1518

1519 1520 1521 1522 1523 1524
  /* rhs == 0  */
  if (sgn == 0)
    {
      se->expr = gfc_build_const (type, integer_one_node);
      return 1;
    }
1525

1526 1527 1528
  /* If rhs < 0 and lhs is an integer, the result is -1, 0 or 1.  */
  if ((sgn == -1) && (TREE_CODE (type) == INTEGER_TYPE))
    {
1529 1530 1531 1532
      tmp = fold_build2_loc (input_location, EQ_EXPR, boolean_type_node,
			     lhs, build_int_cst (TREE_TYPE (lhs), -1));
      cond = fold_build2_loc (input_location, EQ_EXPR, boolean_type_node,
			      lhs, build_int_cst (TREE_TYPE (lhs), 1));
1533

1534
      /* If rhs is even,
1535
	 result = (lhs == 1 || lhs == -1) ? 1 : 0.  */
1536 1537
      if ((n & 1) == 0)
        {
1538 1539 1540 1541 1542
	  tmp = fold_build2_loc (input_location, TRUTH_OR_EXPR,
				 boolean_type_node, tmp, cond);
	  se->expr = fold_build3_loc (input_location, COND_EXPR, type,
				      tmp, build_int_cst (type, 1),
				      build_int_cst (type, 0));
1543 1544
	  return 1;
	}
1545
      /* If rhs is odd,
1546
	 result = (lhs == 1) ? 1 : (lhs == -1) ? -1 : 0.  */
1547 1548 1549 1550 1551
      tmp = fold_build3_loc (input_location, COND_EXPR, type, tmp,
			     build_int_cst (type, -1),
			     build_int_cst (type, 0));
      se->expr = fold_build3_loc (input_location, COND_EXPR, type,
				  cond, build_int_cst (type, 1), tmp);
1552 1553
      return 1;
    }
1554

1555 1556 1557 1558 1559
  memset (vartmp, 0, sizeof (vartmp));
  vartmp[1] = lhs;
  if (sgn == -1)
    {
      tmp = gfc_build_const (type, integer_one_node);
1560 1561
      vartmp[1] = fold_build2_loc (input_location, RDIV_EXPR, type, tmp,
				   vartmp[1]);
1562
    }
1563 1564 1565

  se->expr = gfc_conv_powi (se, n, vartmp);

1566
  return 1;
1567 1568 1569
}


1570
/* Power op (**).  Constant integer exponent has special handling.  */
1571 1572 1573 1574

static void
gfc_conv_power_op (gfc_se * se, gfc_expr * expr)
{
1575
  tree gfc_int4_type_node;
1576
  int kind;
1577
  int ikind;
1578
  int res_ikind_1, res_ikind_2;
1579 1580
  gfc_se lse;
  gfc_se rse;
1581
  tree fndecl = NULL;
1582 1583

  gfc_init_se (&lse, se);
1584
  gfc_conv_expr_val (&lse, expr->value.op.op1);
Feng Wang committed
1585
  lse.expr = gfc_evaluate_now (lse.expr, &lse.pre);
1586 1587 1588
  gfc_add_block_to_block (&se->pre, &lse.pre);

  gfc_init_se (&rse, se);
1589
  gfc_conv_expr_val (&rse, expr->value.op.op2);
1590 1591
  gfc_add_block_to_block (&se->pre, &rse.pre);

1592
  if (expr->value.op.op2->ts.type == BT_INTEGER
1593
      && expr->value.op.op2->expr_type == EXPR_CONSTANT)
1594
    if (gfc_conv_cst_int_power (se, lse.expr, rse.expr))
1595
      return;
1596

1597 1598
  gfc_int4_type_node = gfc_get_int_type (4);

1599 1600 1601 1602 1603 1604 1605
  /* In case of integer operands with kinds 1 or 2, we call the integer kind 4
     library routine.  But in the end, we have to convert the result back
     if this case applies -- with res_ikind_K, we keep track whether operand K
     falls into this case.  */
  res_ikind_1 = -1;
  res_ikind_2 = -1;

1606 1607
  kind = expr->value.op.op1->ts.kind;
  switch (expr->value.op.op2->ts.type)
1608 1609
    {
    case BT_INTEGER:
1610
      ikind = expr->value.op.op2->ts.kind;
1611 1612 1613 1614 1615
      switch (ikind)
	{
	case 1:
	case 2:
	  rse.expr = convert (gfc_int4_type_node, rse.expr);
1616
	  res_ikind_2 = ikind;
1617 1618 1619 1620 1621 1622 1623 1624 1625 1626
	  /* Fall through.  */

	case 4:
	  ikind = 0;
	  break;
	  
	case 8:
	  ikind = 1;
	  break;

1627 1628 1629 1630
	case 16:
	  ikind = 2;
	  break;

1631
	default:
1632
	  gcc_unreachable ();
1633 1634 1635 1636 1637
	}
      switch (kind)
	{
	case 1:
	case 2:
1638
	  if (expr->value.op.op1->ts.type == BT_INTEGER)
1639 1640 1641 1642
	    {
	      lse.expr = convert (gfc_int4_type_node, lse.expr);
	      res_ikind_1 = kind;
	    }
1643
	  else
1644
	    gcc_unreachable ();
1645 1646 1647 1648 1649 1650 1651 1652 1653 1654
	  /* Fall through.  */

	case 4:
	  kind = 0;
	  break;
	  
	case 8:
	  kind = 1;
	  break;

1655 1656 1657 1658 1659 1660 1661 1662
	case 10:
	  kind = 2;
	  break;

	case 16:
	  kind = 3;
	  break;

1663
	default:
1664
	  gcc_unreachable ();
1665 1666
	}
      
1667
      switch (expr->value.op.op1->ts.type)
1668 1669
	{
	case BT_INTEGER:
1670 1671
	  if (kind == 3) /* Case 16 was not handled properly above.  */
	    kind = 2;
1672 1673 1674 1675
	  fndecl = gfor_fndecl_math_powi[kind][ikind].integer;
	  break;

	case BT_REAL:
1676 1677 1678 1679 1680 1681
	  /* Use builtins for real ** int4.  */
	  if (ikind == 0)
	    {
	      switch (kind)
		{
		case 0:
1682
		  fndecl = builtin_decl_explicit (BUILT_IN_POWIF);
1683 1684 1685
		  break;
		
		case 1:
1686
		  fndecl = builtin_decl_explicit (BUILT_IN_POWI);
1687 1688 1689
		  break;

		case 2:
1690
		  fndecl = builtin_decl_explicit (BUILT_IN_POWIL);
1691 1692
		  break;

1693 1694 1695 1696
		case 3:
		  /* Use the __builtin_powil() only if real(kind=16) is 
		     actually the C long double type.  */
		  if (!gfc_real16_is_float128)
1697
		    fndecl = builtin_decl_explicit (BUILT_IN_POWIL);
1698 1699
		  break;

1700 1701 1702 1703
		default:
		  gcc_unreachable ();
		}
	    }
1704 1705 1706 1707

	  /* If we don't have a good builtin for this, go for the 
	     library function.  */
	  if (!fndecl)
1708
	    fndecl = gfor_fndecl_math_powi[kind][ikind].real;
1709 1710 1711 1712 1713 1714 1715
	  break;

	case BT_COMPLEX:
	  fndecl = gfor_fndecl_math_powi[kind][ikind].cmplx;
	  break;

	default:
1716
	  gcc_unreachable ();
1717 1718
 	}
      break;
1719 1720

    case BT_REAL:
1721
      fndecl = gfc_builtin_decl_for_float_kind (BUILT_IN_POW, kind);
1722 1723 1724
      break;

    case BT_COMPLEX:
1725
      fndecl = gfc_builtin_decl_for_float_kind (BUILT_IN_CPOW, kind);
1726 1727 1728
      break;

    default:
1729
      gcc_unreachable ();
1730 1731 1732
      break;
    }

1733 1734
  se->expr = build_call_expr_loc (input_location,
			      fndecl, 2, lse.expr, rse.expr);
1735 1736 1737 1738 1739 1740 1741 1742 1743

  /* Convert the result back if it is of wrong integer kind.  */
  if (res_ikind_1 != -1 && res_ikind_2 != -1)
    {
      /* We want the maximum of both operand kinds as result.  */
      if (res_ikind_1 < res_ikind_2)
	res_ikind_1 = res_ikind_2;
      se->expr = convert (gfc_get_int_type (res_ikind_1), se->expr);
    }
1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757
}


/* Generate code to allocate a string temporary.  */

tree
gfc_conv_string_tmp (gfc_se * se, tree type, tree len)
{
  tree var;
  tree tmp;

  if (gfc_can_put_var_on_stack (len))
    {
      /* Create a temporary variable to hold the result.  */
1758 1759 1760
      tmp = fold_build2_loc (input_location, MINUS_EXPR,
			     gfc_charlen_type_node, len,
			     build_int_cst (gfc_charlen_type_node, 1));
1761
      tmp = build_range_type (gfc_array_index_type, gfc_index_zero_node, tmp);
1762 1763 1764 1765 1766 1767

      if (TREE_CODE (TREE_TYPE (type)) == ARRAY_TYPE)
	tmp = build_array_type (TREE_TYPE (TREE_TYPE (type)), tmp);
      else
	tmp = build_array_type (TREE_TYPE (type), tmp);

1768 1769 1770 1771 1772 1773 1774
      var = gfc_create_var (tmp, "str");
      var = gfc_build_addr_expr (type, var);
    }
  else
    {
      /* Allocate a temporary to hold the result.  */
      var = gfc_create_var (type, "pstr");
1775
      tmp = gfc_call_malloc (&se->pre, type,
1776 1777 1778 1779
			     fold_build2_loc (input_location, MULT_EXPR,
					      TREE_TYPE (len), len,
					      fold_convert (TREE_TYPE (len),
							    TYPE_SIZE (type))));
1780
      gfc_add_modify (&se->pre, var, tmp);
1781 1782

      /* Free the temporary afterwards.  */
1783
      tmp = gfc_call_free (convert (pvoid_type_node, var));
1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796
      gfc_add_expr_to_block (&se->post, tmp);
    }

  return var;
}


/* Handle a string concatenation operation.  A temporary will be allocated to
   hold the result.  */

static void
gfc_conv_concat_op (gfc_se * se, gfc_expr * expr)
{
1797 1798
  gfc_se lse, rse;
  tree len, type, var, tmp, fndecl;
1799

1800
  gcc_assert (expr->value.op.op1->ts.type == BT_CHARACTER
1801
	      && expr->value.op.op2->ts.type == BT_CHARACTER);
1802
  gcc_assert (expr->value.op.op1->ts.kind == expr->value.op.op2->ts.kind);
1803 1804

  gfc_init_se (&lse, se);
1805
  gfc_conv_expr (&lse, expr->value.op.op1);
1806 1807
  gfc_conv_string_parameter (&lse);
  gfc_init_se (&rse, se);
1808
  gfc_conv_expr (&rse, expr->value.op.op2);
1809 1810 1811 1812 1813
  gfc_conv_string_parameter (&rse);

  gfc_add_block_to_block (&se->pre, &lse.pre);
  gfc_add_block_to_block (&se->pre, &rse.pre);

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  type = gfc_get_character_type (expr->ts.kind, expr->ts.u.cl);
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  len = TYPE_MAX_VALUE (TYPE_DOMAIN (type));
  if (len == NULL_TREE)
    {
1818 1819 1820
      len = fold_build2_loc (input_location, PLUS_EXPR,
			     TREE_TYPE (lse.string_length),
			     lse.string_length, rse.string_length);
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    }

  type = build_pointer_type (type);

  var = gfc_conv_string_tmp (se, type, len);

  /* Do the actual concatenation.  */
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  if (expr->ts.kind == 1)
    fndecl = gfor_fndecl_concat_string;
  else if (expr->ts.kind == 4)
    fndecl = gfor_fndecl_concat_string_char4;
  else
    gcc_unreachable ();

1835 1836
  tmp = build_call_expr_loc (input_location,
			 fndecl, 6, len, var, lse.string_length, lse.expr,
1837
			 rse.string_length, rse.expr);
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  gfc_add_expr_to_block (&se->pre, tmp);

  /* Add the cleanup for the operands.  */
  gfc_add_block_to_block (&se->pre, &rse.post);
  gfc_add_block_to_block (&se->pre, &lse.post);

  se->expr = var;
  se->string_length = len;
}

/* Translates an op expression. Common (binary) cases are handled by this
   function, others are passed on. Recursion is used in either case.
   We use the fact that (op1.ts == op2.ts) (except for the power
1851
   operator **).
1852
   Operators need no special handling for scalarized expressions as long as
1853
   they call gfc_conv_simple_val to get their operands.
1854 1855 1856 1857 1858 1859 1860 1861
   Character strings get special handling.  */

static void
gfc_conv_expr_op (gfc_se * se, gfc_expr * expr)
{
  enum tree_code code;
  gfc_se lse;
  gfc_se rse;
1862
  tree tmp, type;
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  int lop;
  int checkstring;

  checkstring = 0;
  lop = 0;
1868
  switch (expr->value.op.op)
1869
    {
1870
    case INTRINSIC_PARENTHESES:
1871 1872 1873
      if ((expr->ts.type == BT_REAL
	   || expr->ts.type == BT_COMPLEX)
	  && gfc_option.flag_protect_parens)
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	{
	  gfc_conv_unary_op (PAREN_EXPR, se, expr);
	  gcc_assert (FLOAT_TYPE_P (TREE_TYPE (se->expr)));
	  return;
	}

      /* Fallthrough.  */
    case INTRINSIC_UPLUS:
1882
      gfc_conv_expr (se, expr->value.op.op1);
1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933
      return;

    case INTRINSIC_UMINUS:
      gfc_conv_unary_op (NEGATE_EXPR, se, expr);
      return;

    case INTRINSIC_NOT:
      gfc_conv_unary_op (TRUTH_NOT_EXPR, se, expr);
      return;

    case INTRINSIC_PLUS:
      code = PLUS_EXPR;
      break;

    case INTRINSIC_MINUS:
      code = MINUS_EXPR;
      break;

    case INTRINSIC_TIMES:
      code = MULT_EXPR;
      break;

    case INTRINSIC_DIVIDE:
      /* If expr is a real or complex expr, use an RDIV_EXPR. If op1 is
         an integer, we must round towards zero, so we use a
         TRUNC_DIV_EXPR.  */
      if (expr->ts.type == BT_INTEGER)
	code = TRUNC_DIV_EXPR;
      else
	code = RDIV_EXPR;
      break;

    case INTRINSIC_POWER:
      gfc_conv_power_op (se, expr);
      return;

    case INTRINSIC_CONCAT:
      gfc_conv_concat_op (se, expr);
      return;

    case INTRINSIC_AND:
      code = TRUTH_ANDIF_EXPR;
      lop = 1;
      break;

    case INTRINSIC_OR:
      code = TRUTH_ORIF_EXPR;
      lop = 1;
      break;

      /* EQV and NEQV only work on logicals, but since we represent them
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         as integers, we can use EQ_EXPR and NE_EXPR for them in GIMPLE.  */
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    case INTRINSIC_EQ:
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    case INTRINSIC_EQ_OS:
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    case INTRINSIC_EQV:
      code = EQ_EXPR;
      checkstring = 1;
      lop = 1;
      break;

    case INTRINSIC_NE:
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    case INTRINSIC_NE_OS:
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    case INTRINSIC_NEQV:
      code = NE_EXPR;
      checkstring = 1;
      lop = 1;
      break;

    case INTRINSIC_GT:
1952
    case INTRINSIC_GT_OS:
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      code = GT_EXPR;
      checkstring = 1;
      lop = 1;
      break;

    case INTRINSIC_GE:
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    case INTRINSIC_GE_OS:
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      code = GE_EXPR;
      checkstring = 1;
      lop = 1;
      break;

    case INTRINSIC_LT:
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    case INTRINSIC_LT_OS:
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      code = LT_EXPR;
      checkstring = 1;
      lop = 1;
      break;

    case INTRINSIC_LE:
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    case INTRINSIC_LE_OS:
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      code = LE_EXPR;
      checkstring = 1;
      lop = 1;
      break;

    case INTRINSIC_USER:
    case INTRINSIC_ASSIGN:
      /* These should be converted into function calls by the frontend.  */
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      gcc_unreachable ();
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    default:
      fatal_error ("Unknown intrinsic op");
      return;
    }

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  /* The only exception to this is **, which is handled separately anyway.  */
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  gcc_assert (expr->value.op.op1->ts.type == expr->value.op.op2->ts.type);
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1992
  if (checkstring && expr->value.op.op1->ts.type != BT_CHARACTER)
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    checkstring = 0;

  /* lhs */
  gfc_init_se (&lse, se);
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  gfc_conv_expr (&lse, expr->value.op.op1);
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  gfc_add_block_to_block (&se->pre, &lse.pre);

  /* rhs */
  gfc_init_se (&rse, se);
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  gfc_conv_expr (&rse, expr->value.op.op2);
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  gfc_add_block_to_block (&se->pre, &rse.pre);

  if (checkstring)
    {
      gfc_conv_string_parameter (&lse);
      gfc_conv_string_parameter (&rse);

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      lse.expr = gfc_build_compare_string (lse.string_length, lse.expr,
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					   rse.string_length, rse.expr,
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					   expr->value.op.op1->ts.kind,
					   code);
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      rse.expr = build_int_cst (TREE_TYPE (lse.expr), 0);
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      gfc_add_block_to_block (&lse.post, &rse.post);
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    }

  type = gfc_typenode_for_spec (&expr->ts);

  if (lop)
    {
      /* The result of logical ops is always boolean_type_node.  */
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      tmp = fold_build2_loc (input_location, code, boolean_type_node,
			     lse.expr, rse.expr);
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      se->expr = convert (type, tmp);
    }
  else
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    se->expr = fold_build2_loc (input_location, code, type, lse.expr, rse.expr);
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  /* Add the post blocks.  */
  gfc_add_block_to_block (&se->post, &rse.post);
  gfc_add_block_to_block (&se->post, &lse.post);
}

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/* If a string's length is one, we convert it to a single character.  */

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tree
gfc_string_to_single_character (tree len, tree str, int kind)
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{

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  if (!INTEGER_CST_P (len) || TREE_INT_CST_HIGH (len) != 0
      || !POINTER_TYPE_P (TREE_TYPE (str)))
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    return NULL_TREE;

  if (TREE_INT_CST_LOW (len) == 1)
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    {
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      str = fold_convert (gfc_get_pchar_type (kind), str);
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      return build_fold_indirect_ref_loc (input_location, str);
    }

  if (kind == 1
      && TREE_CODE (str) == ADDR_EXPR
      && TREE_CODE (TREE_OPERAND (str, 0)) == ARRAY_REF
      && TREE_CODE (TREE_OPERAND (TREE_OPERAND (str, 0), 0)) == STRING_CST
      && array_ref_low_bound (TREE_OPERAND (str, 0))
	 == TREE_OPERAND (TREE_OPERAND (str, 0), 1)
      && TREE_INT_CST_LOW (len) > 1
      && TREE_INT_CST_LOW (len)
	 == (unsigned HOST_WIDE_INT)
	    TREE_STRING_LENGTH (TREE_OPERAND (TREE_OPERAND (str, 0), 0)))
    {
      tree ret = fold_convert (gfc_get_pchar_type (kind), str);
      ret = build_fold_indirect_ref_loc (input_location, ret);
      if (TREE_CODE (ret) == INTEGER_CST)
	{
	  tree string_cst = TREE_OPERAND (TREE_OPERAND (str, 0), 0);
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	  int i, length = TREE_STRING_LENGTH (string_cst);
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	  const char *ptr = TREE_STRING_POINTER (string_cst);

2070
	  for (i = 1; i < length; i++)
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	    if (ptr[i] != ' ')
	      return NULL_TREE;

	  return ret;
	}
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    }

  return NULL_TREE;
}

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void
gfc_conv_scalar_char_value (gfc_symbol *sym, gfc_se *se, gfc_expr **expr)
{

  if (sym->backend_decl)
    {
      /* This becomes the nominal_type in
	 function.c:assign_parm_find_data_types.  */
      TREE_TYPE (sym->backend_decl) = unsigned_char_type_node;
      /* This becomes the passed_type in
	 function.c:assign_parm_find_data_types.  C promotes char to
	 integer for argument passing.  */
      DECL_ARG_TYPE (sym->backend_decl) = unsigned_type_node;

      DECL_BY_REFERENCE (sym->backend_decl) = 0;
    }

  if (expr != NULL)
    {
      /* If we have a constant character expression, make it into an
	 integer.  */
      if ((*expr)->expr_type == EXPR_CONSTANT)
        {
	  gfc_typespec ts;
2106
          gfc_clear_ts (&ts);
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	  *expr = gfc_get_int_expr (gfc_default_integer_kind, NULL,
				    (int)(*expr)->value.character.string[0]);
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	  if ((*expr)->ts.kind != gfc_c_int_kind)
	    {
  	      /* The expr needs to be compatible with a C int.  If the 
		 conversion fails, then the 2 causes an ICE.  */
	      ts.type = BT_INTEGER;
	      ts.kind = gfc_c_int_kind;
	      gfc_convert_type (*expr, &ts, 2);
	    }
	}
      else if (se != NULL && (*expr)->expr_type == EXPR_VARIABLE)
        {
	  if ((*expr)->ref == NULL)
	    {
2123
	      se->expr = gfc_string_to_single_character
2124
		(build_int_cst (integer_type_node, 1),
2125
		 gfc_build_addr_expr (gfc_get_pchar_type ((*expr)->ts.kind),
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				      gfc_get_symbol_decl
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				      ((*expr)->symtree->n.sym)),
		 (*expr)->ts.kind);
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	    }
	  else
	    {
	      gfc_conv_variable (se, *expr);
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	      se->expr = gfc_string_to_single_character
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		(build_int_cst (integer_type_node, 1),
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		 gfc_build_addr_expr (gfc_get_pchar_type ((*expr)->ts.kind),
				      se->expr),
		 (*expr)->ts.kind);
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	    }
	}
    }
}

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/* Helper function for gfc_build_compare_string.  Return LEN_TRIM value
   if STR is a string literal, otherwise return -1.  */

static int
gfc_optimize_len_trim (tree len, tree str, int kind)
{
  if (kind == 1
      && TREE_CODE (str) == ADDR_EXPR
      && TREE_CODE (TREE_OPERAND (str, 0)) == ARRAY_REF
      && TREE_CODE (TREE_OPERAND (TREE_OPERAND (str, 0), 0)) == STRING_CST
      && array_ref_low_bound (TREE_OPERAND (str, 0))
	 == TREE_OPERAND (TREE_OPERAND (str, 0), 1)
      && TREE_INT_CST_LOW (len) >= 1
      && TREE_INT_CST_LOW (len)
	 == (unsigned HOST_WIDE_INT)
	    TREE_STRING_LENGTH (TREE_OPERAND (TREE_OPERAND (str, 0), 0)))
    {
      tree folded = fold_convert (gfc_get_pchar_type (kind), str);
      folded = build_fold_indirect_ref_loc (input_location, folded);
      if (TREE_CODE (folded) == INTEGER_CST)
	{
	  tree string_cst = TREE_OPERAND (TREE_OPERAND (str, 0), 0);
	  int length = TREE_STRING_LENGTH (string_cst);
	  const char *ptr = TREE_STRING_POINTER (string_cst);

	  for (; length > 0; length--)
	    if (ptr[length - 1] != ' ')
	      break;

	  return length;
	}
    }
  return -1;
}
2177

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/* Compare two strings. If they are all single characters, the result is the
   subtraction of them. Otherwise, we build a library call.  */

tree
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gfc_build_compare_string (tree len1, tree str1, tree len2, tree str2, int kind,
			  enum tree_code code)
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{
  tree sc1;
  tree sc2;
2187
  tree fndecl;
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  gcc_assert (POINTER_TYPE_P (TREE_TYPE (str1)));
  gcc_assert (POINTER_TYPE_P (TREE_TYPE (str2)));

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  sc1 = gfc_string_to_single_character (len1, str1, kind);
  sc2 = gfc_string_to_single_character (len2, str2, kind);
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  if (sc1 != NULL_TREE && sc2 != NULL_TREE)
    {
2197
      /* Deal with single character specially.  */
2198 2199
      sc1 = fold_convert (integer_type_node, sc1);
      sc2 = fold_convert (integer_type_node, sc2);
2200 2201
      return fold_build2_loc (input_location, MINUS_EXPR, integer_type_node,
			      sc1, sc2);
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2202
    }
2203

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  if ((code == EQ_EXPR || code == NE_EXPR)
      && optimize
      && INTEGER_CST_P (len1) && INTEGER_CST_P (len2))
    {
      /* If one string is a string literal with LEN_TRIM longer
	 than the length of the second string, the strings
	 compare unequal.  */
      int len = gfc_optimize_len_trim (len1, str1, kind);
      if (len > 0 && compare_tree_int (len2, len) < 0)
	return integer_one_node;
      len = gfc_optimize_len_trim (len2, str2, kind);
      if (len > 0 && compare_tree_int (len1, len) < 0)
	return integer_one_node;
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    }

2219 2220 2221 2222 2223 2224 2225 2226 2227 2228
  /* Build a call for the comparison.  */
  if (kind == 1)
    fndecl = gfor_fndecl_compare_string;
  else if (kind == 4)
    fndecl = gfor_fndecl_compare_string_char4;
  else
    gcc_unreachable ();

  return build_call_expr_loc (input_location, fndecl, 4,
			      len1, str1, len2, str2);
Feng Wang committed
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}
2230

2231 2232 2233 2234 2235 2236 2237 2238

/* Return the backend_decl for a procedure pointer component.  */

static tree
get_proc_ptr_comp (gfc_expr *e)
{
  gfc_se comp_se;
  gfc_expr *e2;
2239 2240
  expr_t old_type;

2241 2242
  gfc_init_se (&comp_se, NULL);
  e2 = gfc_copy_expr (e);
2243 2244 2245 2246
  /* We have to restore the expr type later so that gfc_free_expr frees
     the exact same thing that was allocated.
     TODO: This is ugly.  */
  old_type = e2->expr_type;
2247 2248
  e2->expr_type = EXPR_VARIABLE;
  gfc_conv_expr (&comp_se, e2);
2249
  e2->expr_type = old_type;
2250
  gfc_free_expr (e2);
2251 2252 2253 2254
  return build_fold_addr_expr_loc (input_location, comp_se.expr);
}


2255 2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279
/* Convert a typebound function reference from a class object.  */
static void
conv_base_obj_fcn_val (gfc_se * se, tree base_object, gfc_expr * expr)
{
  gfc_ref *ref;
  tree var;

  if (TREE_CODE (base_object) != VAR_DECL)
    {
      var = gfc_create_var (TREE_TYPE (base_object), NULL);
      gfc_add_modify (&se->pre, var, base_object);
    }
  se->expr = gfc_class_vptr_get (base_object);
  se->expr = build_fold_indirect_ref_loc (input_location, se->expr);
  ref = expr->ref;
  while (ref && ref->next)
    ref = ref->next;
  gcc_assert (ref && ref->type == REF_COMPONENT);
  if (ref->u.c.sym->attr.extension)
    conv_parent_component_references (se, ref);
  gfc_conv_component_ref (se, ref);
  se->expr = build_fold_addr_expr_loc (input_location, se->expr);
}


2280
static void
2281
conv_function_val (gfc_se * se, gfc_symbol * sym, gfc_expr * expr)
2282 2283 2284
{
  tree tmp;

2285
  if (gfc_is_proc_ptr_comp (expr, NULL))
2286
    tmp = get_proc_ptr_comp (expr);
2287
  else if (sym->attr.dummy)
2288 2289
    {
      tmp = gfc_get_symbol_decl (sym);
2290
      if (sym->attr.proc_pointer)
2291 2292
        tmp = build_fold_indirect_ref_loc (input_location,
				       tmp);
2293
      gcc_assert (TREE_CODE (TREE_TYPE (tmp)) == POINTER_TYPE
2294 2295 2296 2297 2298 2299 2300 2301
	      && TREE_CODE (TREE_TYPE (TREE_TYPE (tmp))) == FUNCTION_TYPE);
    }
  else
    {
      if (!sym->backend_decl)
	sym->backend_decl = gfc_get_extern_function_decl (sym);

      tmp = sym->backend_decl;
2302

2303
      if (sym->attr.cray_pointee)
2304 2305 2306 2307 2308 2309 2310 2311 2312
	{
	  /* TODO - make the cray pointee a pointer to a procedure,
	     assign the pointer to it and use it for the call.  This
	     will do for now!  */
	  tmp = convert (build_pointer_type (TREE_TYPE (tmp)),
			 gfc_get_symbol_decl (sym->cp_pointer));
	  tmp = gfc_evaluate_now (tmp, &se->pre);
	}

2313 2314 2315
      if (!POINTER_TYPE_P (TREE_TYPE (tmp)))
	{
	  gcc_assert (TREE_CODE (tmp) == FUNCTION_DECL);
2316
	  tmp = gfc_build_addr_expr (NULL_TREE, tmp);
2317 2318 2319 2320 2321 2322 2323 2324
	}
    }
  se->expr = tmp;
}


/* Initialize MAPPING.  */

2325
void
2326 2327 2328 2329 2330 2331 2332 2333 2334
gfc_init_interface_mapping (gfc_interface_mapping * mapping)
{
  mapping->syms = NULL;
  mapping->charlens = NULL;
}


/* Free all memory held by MAPPING (but not MAPPING itself).  */

2335
void
2336 2337 2338 2339 2340 2341 2342 2343 2344 2345
gfc_free_interface_mapping (gfc_interface_mapping * mapping)
{
  gfc_interface_sym_mapping *sym;
  gfc_interface_sym_mapping *nextsym;
  gfc_charlen *cl;
  gfc_charlen *nextcl;

  for (sym = mapping->syms; sym; sym = nextsym)
    {
      nextsym = sym->next;
2346
      sym->new_sym->n.sym->formal = NULL;
2347
      gfc_free_symbol (sym->new_sym->n.sym);
2348
      gfc_free_expr (sym->expr);
2349 2350
      free (sym->new_sym);
      free (sym);
2351 2352 2353 2354 2355
    }
  for (cl = mapping->charlens; cl; cl = nextcl)
    {
      nextcl = cl->next;
      gfc_free_expr (cl->length);
2356
      free (cl);
2357 2358 2359 2360
    }
}


2361 2362 2363 2364 2365 2366 2367
/* Return a copy of gfc_charlen CL.  Add the returned structure to
   MAPPING so that it will be freed by gfc_free_interface_mapping.  */

static gfc_charlen *
gfc_get_interface_mapping_charlen (gfc_interface_mapping * mapping,
				   gfc_charlen * cl)
{
2368
  gfc_charlen *new_charlen;
2369

2370 2371 2372
  new_charlen = gfc_get_charlen ();
  new_charlen->next = mapping->charlens;
  new_charlen->length = gfc_copy_expr (cl->length);
2373

2374 2375
  mapping->charlens = new_charlen;
  return new_charlen;
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}


/* A subroutine of gfc_add_interface_mapping.  Return a descriptorless
   array variable that can be used as the actual argument for dummy
   argument SYM.  Add any initialization code to BLOCK.  PACKED is as
   for gfc_get_nodesc_array_type and DATA points to the first element
   in the passed array.  */

static tree
gfc_get_interface_mapping_array (stmtblock_t * block, gfc_symbol * sym,
2387
				 gfc_packed packed, tree data)
2388 2389 2390 2391 2392
{
  tree type;
  tree var;

  type = gfc_typenode_for_spec (&sym->ts);
2393 2394 2395
  type = gfc_get_nodesc_array_type (type, sym->as, packed,
				    !sym->attr.target && !sym->attr.pointer
				    && !sym->attr.proc_pointer);
2396

2397
  var = gfc_create_var (type, "ifm");
2398
  gfc_add_modify (block, var, fold_convert (type, data));
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  return var;
}


/* A subroutine of gfc_add_interface_mapping.  Set the stride, upper bounds
   and offset of descriptorless array type TYPE given that it has the same
   size as DESC.  Add any set-up code to BLOCK.  */

static void
gfc_set_interface_mapping_bounds (stmtblock_t * block, tree type, tree desc)
{
  int n;
  tree dim;
  tree offset;
  tree tmp;

  offset = gfc_index_zero_node;
  for (n = 0; n < GFC_TYPE_ARRAY_RANK (type); n++)
    {
2419
      dim = gfc_rank_cst[n];
2420
      GFC_TYPE_ARRAY_STRIDE (type, n) = gfc_conv_array_stride (desc, n);
2421 2422 2423
      if (GFC_TYPE_ARRAY_LBOUND (type, n) == NULL_TREE)
	{
	  GFC_TYPE_ARRAY_LBOUND (type, n)
2424
		= gfc_conv_descriptor_lbound_get (desc, dim);
2425
	  GFC_TYPE_ARRAY_UBOUND (type, n)
2426
		= gfc_conv_descriptor_ubound_get (desc, dim);
2427 2428
	}
      else if (GFC_TYPE_ARRAY_UBOUND (type, n) == NULL_TREE)
2429
	{
2430 2431 2432 2433 2434 2435 2436
	  tmp = fold_build2_loc (input_location, MINUS_EXPR,
				 gfc_array_index_type,
				 gfc_conv_descriptor_ubound_get (desc, dim),
				 gfc_conv_descriptor_lbound_get (desc, dim));
	  tmp = fold_build2_loc (input_location, PLUS_EXPR,
				 gfc_array_index_type,
				 GFC_TYPE_ARRAY_LBOUND (type, n), tmp);
2437 2438 2439
	  tmp = gfc_evaluate_now (tmp, block);
	  GFC_TYPE_ARRAY_UBOUND (type, n) = tmp;
	}
2440 2441 2442 2443 2444
      tmp = fold_build2_loc (input_location, MULT_EXPR, gfc_array_index_type,
			     GFC_TYPE_ARRAY_LBOUND (type, n),
			     GFC_TYPE_ARRAY_STRIDE (type, n));
      offset = fold_build2_loc (input_location, MINUS_EXPR,
				gfc_array_index_type, offset, tmp);
2445 2446 2447 2448 2449 2450 2451 2452 2453 2454
    }
  offset = gfc_evaluate_now (offset, block);
  GFC_TYPE_ARRAY_OFFSET (type) = offset;
}


/* Extend MAPPING so that it maps dummy argument SYM to the value stored
   in SE.  The caller may still use se->expr and se->string_length after
   calling this function.  */

2455
void
2456
gfc_add_interface_mapping (gfc_interface_mapping * mapping,
2457 2458
			   gfc_symbol * sym, gfc_se * se,
			   gfc_expr *expr)
2459 2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470
{
  gfc_interface_sym_mapping *sm;
  tree desc;
  tree tmp;
  tree value;
  gfc_symbol *new_sym;
  gfc_symtree *root;
  gfc_symtree *new_symtree;

  /* Create a new symbol to represent the actual argument.  */
  new_sym = gfc_new_symbol (sym->name, NULL);
  new_sym->ts = sym->ts;
2471
  new_sym->as = gfc_copy_array_spec (sym->as);
2472 2473
  new_sym->attr.referenced = 1;
  new_sym->attr.dimension = sym->attr.dimension;
2474
  new_sym->attr.contiguous = sym->attr.contiguous;
2475
  new_sym->attr.codimension = sym->attr.codimension;
2476
  new_sym->attr.pointer = sym->attr.pointer;
2477
  new_sym->attr.allocatable = sym->attr.allocatable;
2478
  new_sym->attr.flavor = sym->attr.flavor;
2479
  new_sym->attr.function = sym->attr.function;
2480

2481 2482 2483 2484
  /* Ensure that the interface is available and that
     descriptors are passed for array actual arguments.  */
  if (sym->attr.flavor == FL_PROCEDURE)
    {
2485
      new_sym->formal = expr->symtree->n.sym->formal;
2486 2487 2488 2489
      new_sym->attr.always_explicit
	    = expr->symtree->n.sym->attr.always_explicit;
    }

2490 2491 2492 2493 2494 2495 2496
  /* Create a fake symtree for it.  */
  root = NULL;
  new_symtree = gfc_new_symtree (&root, sym->name);
  new_symtree->n.sym = new_sym;
  gcc_assert (new_symtree == root);

  /* Create a dummy->actual mapping.  */
2497
  sm = XCNEW (gfc_interface_sym_mapping);
2498 2499
  sm->next = mapping->syms;
  sm->old = sym;
2500
  sm->new_sym = new_symtree;
2501
  sm->expr = gfc_copy_expr (expr);
2502 2503 2504
  mapping->syms = sm;

  /* Stabilize the argument's value.  */
2505 2506
  if (!sym->attr.function && se)
    se->expr = gfc_evaluate_now (se->expr, &se->pre);
2507 2508 2509 2510

  if (sym->ts.type == BT_CHARACTER)
    {
      /* Create a copy of the dummy argument's length.  */
2511 2512
      new_sym->ts.u.cl = gfc_get_interface_mapping_charlen (mapping, sym->ts.u.cl);
      sm->expr->ts.u.cl = new_sym->ts.u.cl;
2513 2514 2515 2516

      /* If the length is specified as "*", record the length that
	 the caller is passing.  We should use the callee's length
	 in all other cases.  */
2517
      if (!new_sym->ts.u.cl->length && se)
2518 2519
	{
	  se->string_length = gfc_evaluate_now (se->string_length, &se->pre);
2520
	  new_sym->ts.u.cl->backend_decl = se->string_length;
2521 2522 2523
	}
    }

2524 2525 2526
  if (!se)
    return;

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  /* Use the passed value as-is if the argument is a function.  */
  if (sym->attr.flavor == FL_PROCEDURE)
    value = se->expr;

  /* If the argument is either a string or a pointer to a string,
     convert it to a boundless character type.  */
  else if (!sym->attr.dimension && sym->ts.type == BT_CHARACTER)
    {
      tmp = gfc_get_character_type_len (sym->ts.kind, NULL);
      tmp = build_pointer_type (tmp);
      if (sym->attr.pointer)
2538 2539
        value = build_fold_indirect_ref_loc (input_location,
					 se->expr);
2540 2541 2542
      else
        value = se->expr;
      value = fold_convert (tmp, value);
2543 2544
    }

2545 2546 2547
  /* If the argument is a scalar, a pointer to an array or an allocatable,
     dereference it.  */
  else if (!sym->attr.dimension || sym->attr.pointer || sym->attr.allocatable)
2548 2549
    value = build_fold_indirect_ref_loc (input_location,
				     se->expr);
2550 2551
  
  /* For character(*), use the actual argument's descriptor.  */  
2552
  else if (sym->ts.type == BT_CHARACTER && !new_sym->ts.u.cl->length)
2553 2554
    value = build_fold_indirect_ref_loc (input_location,
				     se->expr);
2555 2556 2557 2558 2559 2560 2561

  /* If the argument is an array descriptor, use it to determine
     information about the actual argument's shape.  */
  else if (POINTER_TYPE_P (TREE_TYPE (se->expr))
	   && GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (TREE_TYPE (se->expr))))
    {
      /* Get the actual argument's descriptor.  */
2562 2563
      desc = build_fold_indirect_ref_loc (input_location,
				      se->expr);
2564 2565 2566

      /* Create the replacement variable.  */
      tmp = gfc_conv_descriptor_data_get (desc);
2567 2568
      value = gfc_get_interface_mapping_array (&se->pre, sym,
					       PACKED_NO, tmp);
2569 2570 2571 2572 2573 2574

      /* Use DESC to work out the upper bounds, strides and offset.  */
      gfc_set_interface_mapping_bounds (&se->pre, TREE_TYPE (value), desc);
    }
  else
    /* Otherwise we have a packed array.  */
2575 2576
    value = gfc_get_interface_mapping_array (&se->pre, sym,
					     PACKED_FULL, se->expr);
2577 2578 2579 2580 2581 2582 2583 2584 2585 2586

  new_sym->backend_decl = value;
}


/* Called once all dummy argument mappings have been added to MAPPING,
   but before the mapping is used to evaluate expressions.  Pre-evaluate
   the length of each argument, adding any initialization code to PRE and
   any finalization code to POST.  */

2587
void
2588 2589 2590 2591 2592 2593 2594 2595
gfc_finish_interface_mapping (gfc_interface_mapping * mapping,
			      stmtblock_t * pre, stmtblock_t * post)
{
  gfc_interface_sym_mapping *sym;
  gfc_expr *expr;
  gfc_se se;

  for (sym = mapping->syms; sym; sym = sym->next)
2596
    if (sym->new_sym->n.sym->ts.type == BT_CHARACTER
2597
	&& !sym->new_sym->n.sym->ts.u.cl->backend_decl)
2598
      {
2599
	expr = sym->new_sym->n.sym->ts.u.cl->length;
2600 2601 2602
	gfc_apply_interface_mapping_to_expr (mapping, expr);
	gfc_init_se (&se, NULL);
	gfc_conv_expr (&se, expr);
2603
	se.expr = fold_convert (gfc_charlen_type_node, se.expr);
2604 2605 2606 2607
	se.expr = gfc_evaluate_now (se.expr, &se.pre);
	gfc_add_block_to_block (pre, &se.pre);
	gfc_add_block_to_block (post, &se.post);

2608
	sym->new_sym->n.sym->ts.u.cl->backend_decl = se.expr;
2609 2610 2611 2612 2613 2614 2615 2616 2617
      }
}


/* Like gfc_apply_interface_mapping_to_expr, but applied to
   constructor C.  */

static void
gfc_apply_interface_mapping_to_cons (gfc_interface_mapping * mapping,
Jerry DeLisle committed
2618
				     gfc_constructor_base base)
2619
{
Jerry DeLisle committed
2620 2621
  gfc_constructor *c;
  for (c = gfc_constructor_first (base); c; c = gfc_constructor_next (c))
2622 2623 2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666
    {
      gfc_apply_interface_mapping_to_expr (mapping, c->expr);
      if (c->iterator)
	{
	  gfc_apply_interface_mapping_to_expr (mapping, c->iterator->start);
	  gfc_apply_interface_mapping_to_expr (mapping, c->iterator->end);
	  gfc_apply_interface_mapping_to_expr (mapping, c->iterator->step);
	}
    }
}


/* Like gfc_apply_interface_mapping_to_expr, but applied to
   reference REF.  */

static void
gfc_apply_interface_mapping_to_ref (gfc_interface_mapping * mapping,
				    gfc_ref * ref)
{
  int n;

  for (; ref; ref = ref->next)
    switch (ref->type)
      {
      case REF_ARRAY:
	for (n = 0; n < ref->u.ar.dimen; n++)
	  {
	    gfc_apply_interface_mapping_to_expr (mapping, ref->u.ar.start[n]);
	    gfc_apply_interface_mapping_to_expr (mapping, ref->u.ar.end[n]);
	    gfc_apply_interface_mapping_to_expr (mapping, ref->u.ar.stride[n]);
	  }
	gfc_apply_interface_mapping_to_expr (mapping, ref->u.ar.offset);
	break;

      case REF_COMPONENT:
	break;

      case REF_SUBSTRING:
	gfc_apply_interface_mapping_to_expr (mapping, ref->u.ss.start);
	gfc_apply_interface_mapping_to_expr (mapping, ref->u.ss.end);
	break;
      }
}


2667
/* Convert intrinsic function calls into result expressions.  */
2668

2669
static bool
2670
gfc_map_intrinsic_function (gfc_expr *expr, gfc_interface_mapping *mapping)
2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683
{
  gfc_symbol *sym;
  gfc_expr *new_expr;
  gfc_expr *arg1;
  gfc_expr *arg2;
  int d, dup;

  arg1 = expr->value.function.actual->expr;
  if (expr->value.function.actual->next)
    arg2 = expr->value.function.actual->next->expr;
  else
    arg2 = NULL;

2684
  sym = arg1->symtree->n.sym;
2685 2686 2687 2688 2689 2690 2691 2692 2693 2694 2695

  if (sym->attr.dummy)
    return false;

  new_expr = NULL;

  switch (expr->value.function.isym->id)
    {
    case GFC_ISYM_LEN:
      /* TODO figure out why this condition is necessary.  */
      if (sym->attr.function
2696 2697 2698
	  && (arg1->ts.u.cl->length == NULL
	      || (arg1->ts.u.cl->length->expr_type != EXPR_CONSTANT
		  && arg1->ts.u.cl->length->expr_type != EXPR_VARIABLE)))
2699 2700
	return false;

2701
      new_expr = gfc_copy_expr (arg1->ts.u.cl->length);
2702 2703 2704
      break;

    case GFC_ISYM_SIZE:
2705
      if (!sym->as || sym->as->rank == 0)
2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718 2719 2720 2721
	return false;

      if (arg2 && arg2->expr_type == EXPR_CONSTANT)
	{
	  dup = mpz_get_si (arg2->value.integer);
	  d = dup - 1;
	}
      else
	{
	  dup = sym->as->rank;
	  d = 0;
	}

      for (; d < dup; d++)
	{
	  gfc_expr *tmp;
2722 2723 2724 2725 2726 2727 2728

	  if (!sym->as->upper[d] || !sym->as->lower[d])
	    {
	      gfc_free_expr (new_expr);
	      return false;
	    }

Jerry DeLisle committed
2729 2730 2731
	  tmp = gfc_add (gfc_copy_expr (sym->as->upper[d]),
					gfc_get_int_expr (gfc_default_integer_kind,
							  NULL, 1));
2732 2733 2734 2735 2736 2737 2738 2739 2740 2741 2742 2743 2744
	  tmp = gfc_subtract (tmp, gfc_copy_expr (sym->as->lower[d]));
	  if (new_expr)
	    new_expr = gfc_multiply (new_expr, tmp);
	  else
	    new_expr = tmp;
	}
      break;

    case GFC_ISYM_LBOUND:
    case GFC_ISYM_UBOUND:
	/* TODO These implementations of lbound and ubound do not limit if
	   the size < 0, according to F95's 13.14.53 and 13.14.113.  */

2745
      if (!sym->as || sym->as->rank == 0)
2746 2747 2748 2749 2750 2751 2752 2753 2754 2755
	return false;

      if (arg2 && arg2->expr_type == EXPR_CONSTANT)
	d = mpz_get_si (arg2->value.integer) - 1;
      else
	/* TODO: If the need arises, this could produce an array of
	   ubound/lbounds.  */
	gcc_unreachable ();

      if (expr->value.function.isym->id == GFC_ISYM_LBOUND)
2756 2757 2758 2759
	{
	  if (sym->as->lower[d])
	    new_expr = gfc_copy_expr (sym->as->lower[d]);
	}
2760
      else
2761 2762 2763 2764
	{
	  if (sym->as->upper[d])
	    new_expr = gfc_copy_expr (sym->as->upper[d]);
	}
2765 2766 2767 2768 2769 2770 2771 2772 2773 2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784 2785 2786 2787 2788 2789 2790 2791 2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803 2804 2805 2806 2807 2808 2809 2810 2811 2812 2813 2814 2815
      break;

    default:
      break;
    }

  gfc_apply_interface_mapping_to_expr (mapping, new_expr);
  if (!new_expr)
    return false;

  gfc_replace_expr (expr, new_expr);
  return true;
}


static void
gfc_map_fcn_formal_to_actual (gfc_expr *expr, gfc_expr *map_expr,
			      gfc_interface_mapping * mapping)
{
  gfc_formal_arglist *f;
  gfc_actual_arglist *actual;

  actual = expr->value.function.actual;
  f = map_expr->symtree->n.sym->formal;

  for (; f && actual; f = f->next, actual = actual->next)
    {
      if (!actual->expr)
	continue;

      gfc_add_interface_mapping (mapping, f->sym, NULL, actual->expr);
    }

  if (map_expr->symtree->n.sym->attr.dimension)
    {
      int d;
      gfc_array_spec *as;

      as = gfc_copy_array_spec (map_expr->symtree->n.sym->as);

      for (d = 0; d < as->rank; d++)
	{
	  gfc_apply_interface_mapping_to_expr (mapping, as->lower[d]);
	  gfc_apply_interface_mapping_to_expr (mapping, as->upper[d]);
	}

      expr->value.function.esym->as = as;
    }

  if (map_expr->symtree->n.sym->ts.type == BT_CHARACTER)
    {
2816 2817
      expr->value.function.esym->ts.u.cl->length
	= gfc_copy_expr (map_expr->symtree->n.sym->ts.u.cl->length);
2818 2819

      gfc_apply_interface_mapping_to_expr (mapping,
2820
			expr->value.function.esym->ts.u.cl->length);
2821 2822 2823 2824
    }
}


2825 2826 2827 2828 2829
/* EXPR is a copy of an expression that appeared in the interface
   associated with MAPPING.  Walk it recursively looking for references to
   dummy arguments that MAPPING maps to actual arguments.  Replace each such
   reference with a reference to the associated actual argument.  */

2830
static void
2831 2832 2833 2834 2835 2836 2837
gfc_apply_interface_mapping_to_expr (gfc_interface_mapping * mapping,
				     gfc_expr * expr)
{
  gfc_interface_sym_mapping *sym;
  gfc_actual_arglist *actual;

  if (!expr)
2838
    return;
2839 2840

  /* Copying an expression does not copy its length, so do that here.  */
2841
  if (expr->ts.type == BT_CHARACTER && expr->ts.u.cl)
2842
    {
2843 2844
      expr->ts.u.cl = gfc_get_interface_mapping_charlen (mapping, expr->ts.u.cl);
      gfc_apply_interface_mapping_to_expr (mapping, expr->ts.u.cl->length);
2845 2846 2847 2848 2849 2850
    }

  /* Apply the mapping to any references.  */
  gfc_apply_interface_mapping_to_ref (mapping, expr->ref);

  /* ...and to the expression's symbol, if it has one.  */
2851
  /* TODO Find out why the condition on expr->symtree had to be moved into
2852
     the loop rather than being outside it, as originally.  */
2853 2854 2855
  for (sym = mapping->syms; sym; sym = sym->next)
    if (expr->symtree && sym->old == expr->symtree->n.sym)
      {
2856 2857
	if (sym->new_sym->n.sym->backend_decl)
	  expr->symtree = sym->new_sym;
2858 2859
	else if (sym->expr)
	  gfc_replace_expr (expr, gfc_copy_expr (sym->expr));
2860 2861 2862 2863
	/* Replace base type for polymorphic arguments.  */
	if (expr->ref && expr->ref->type == REF_COMPONENT
	    && sym->expr && sym->expr->ts.type == BT_CLASS)
	  expr->ref->u.c.sym = sym->expr->ts.u.derived;
2864
      }
2865

2866
      /* ...and to subexpressions in expr->value.  */
2867 2868 2869 2870 2871 2872 2873 2874 2875 2876 2877 2878 2879 2880
  switch (expr->expr_type)
    {
    case EXPR_VARIABLE:
    case EXPR_CONSTANT:
    case EXPR_NULL:
    case EXPR_SUBSTRING:
      break;

    case EXPR_OP:
      gfc_apply_interface_mapping_to_expr (mapping, expr->value.op.op1);
      gfc_apply_interface_mapping_to_expr (mapping, expr->value.op.op2);
      break;

    case EXPR_FUNCTION:
2881 2882 2883
      for (actual = expr->value.function.actual; actual; actual = actual->next)
	gfc_apply_interface_mapping_to_expr (mapping, actual->expr);

2884
      if (expr->value.function.esym == NULL
2885
	    && expr->value.function.isym != NULL
2886 2887 2888
	    && expr->value.function.actual->expr->symtree
	    && gfc_map_intrinsic_function (expr, mapping))
	break;
2889

2890 2891
      for (sym = mapping->syms; sym; sym = sym->next)
	if (sym->old == expr->value.function.esym)
2892
	  {
2893
	    expr->value.function.esym = sym->new_sym->n.sym;
2894
	    gfc_map_fcn_formal_to_actual (expr, sym->expr, mapping);
2895
	    expr->value.function.esym->result = sym->new_sym->n.sym;
2896
	  }
2897 2898 2899 2900 2901 2902
      break;

    case EXPR_ARRAY:
    case EXPR_STRUCTURE:
      gfc_apply_interface_mapping_to_cons (mapping, expr->value.constructor);
      break;
2903 2904

    case EXPR_COMPCALL:
2905
    case EXPR_PPC:
2906 2907
      gcc_unreachable ();
      break;
2908
    }
2909 2910

  return;
2911 2912 2913 2914 2915 2916
}


/* Evaluate interface expression EXPR using MAPPING.  Store the result
   in SE.  */

2917
void
2918 2919 2920 2921 2922 2923 2924 2925 2926 2927
gfc_apply_interface_mapping (gfc_interface_mapping * mapping,
			     gfc_se * se, gfc_expr * expr)
{
  expr = gfc_copy_expr (expr);
  gfc_apply_interface_mapping_to_expr (mapping, expr);
  gfc_conv_expr (se, expr);
  se->expr = gfc_evaluate_now (se->expr, &se->pre);
  gfc_free_expr (expr);
}

2928

2929 2930
/* Returns a reference to a temporary array into which a component of
   an actual argument derived type array is copied and then returned
2931
   after the function call.  */
2932
void
2933 2934
gfc_conv_subref_array_arg (gfc_se * parmse, gfc_expr * expr, int g77,
			   sym_intent intent, bool formal_ptr)
2935 2936 2937 2938 2939 2940 2941
{
  gfc_se lse;
  gfc_se rse;
  gfc_ss *lss;
  gfc_ss *rss;
  gfc_loopinfo loop;
  gfc_loopinfo loop2;
2942
  gfc_array_info *info;
2943 2944 2945 2946
  tree offset;
  tree tmp_index;
  tree tmp;
  tree base_type;
2947
  tree size;
2948 2949
  stmtblock_t body;
  int n;
2950
  int dimen;
2951 2952 2953 2954 2955 2956 2957 2958 2959 2960 2961 2962 2963 2964 2965 2966 2967 2968 2969

  gcc_assert (expr->expr_type == EXPR_VARIABLE);

  gfc_init_se (&lse, NULL);
  gfc_init_se (&rse, NULL);

  /* Walk the argument expression.  */
  rss = gfc_walk_expr (expr);

  gcc_assert (rss != gfc_ss_terminator);
 
  /* Initialize the scalarizer.  */
  gfc_init_loopinfo (&loop);
  gfc_add_ss_to_loop (&loop, rss);

  /* Calculate the bounds of the scalarization.  */
  gfc_conv_ss_startstride (&loop);

  /* Build an ss for the temporary.  */
2970 2971
  if (expr->ts.type == BT_CHARACTER && !expr->ts.u.cl->backend_decl)
    gfc_conv_string_length (expr->ts.u.cl, expr, &parmse->pre);
2972

2973 2974 2975 2976 2977
  base_type = gfc_typenode_for_spec (&expr->ts);
  if (GFC_ARRAY_TYPE_P (base_type)
		|| GFC_DESCRIPTOR_TYPE_P (base_type))
    base_type = gfc_get_element_type (base_type);

2978 2979 2980
  if (expr->ts.type == BT_CLASS)
    base_type = gfc_typenode_for_spec (&CLASS_DATA (expr)->ts);

2981 2982 2983 2984
  loop.temp_ss = gfc_get_temp_ss (base_type, ((expr->ts.type == BT_CHARACTER)
					      ? expr->ts.u.cl->backend_decl
					      : NULL),
				  loop.dimen);
2985

2986
  parmse->string_length = loop.temp_ss->info->string_length;
2987 2988 2989 2990 2991

  /* Associate the SS with the loop.  */
  gfc_add_ss_to_loop (&loop, loop.temp_ss);

  /* Setup the scalarizing loops.  */
2992
  gfc_conv_loop_setup (&loop, &expr->where);
2993 2994

  /* Pass the temporary descriptor back to the caller.  */
2995
  info = &loop.temp_ss->info->data.array;
2996 2997 2998 2999 3000 3001 3002 3003 3004 3005 3006 3007 3008 3009 3010 3011 3012 3013 3014
  parmse->expr = info->descriptor;

  /* Setup the gfc_se structures.  */
  gfc_copy_loopinfo_to_se (&lse, &loop);
  gfc_copy_loopinfo_to_se (&rse, &loop);

  rse.ss = rss;
  lse.ss = loop.temp_ss;
  gfc_mark_ss_chain_used (rss, 1);
  gfc_mark_ss_chain_used (loop.temp_ss, 1);

  /* Start the scalarized loop body.  */
  gfc_start_scalarized_body (&loop, &body);

  /* Translate the expression.  */
  gfc_conv_expr (&rse, expr);

  gfc_conv_tmp_array_ref (&lse);

3015 3016
  if (intent != INTENT_OUT)
    {
3017
      tmp = gfc_trans_scalar_assign (&lse, &rse, expr->ts, true, false, true);
3018 3019 3020 3021
      gfc_add_expr_to_block (&body, tmp);
      gcc_assert (rse.ss == gfc_ss_terminator);
      gfc_trans_scalarizing_loops (&loop, &body);
    }
3022 3023
  else
    {
3024 3025 3026 3027 3028 3029 3030 3031
      /* Make sure that the temporary declaration survives by merging
       all the loop declarations into the current context.  */
      for (n = 0; n < loop.dimen; n++)
	{
	  gfc_merge_block_scope (&body);
	  body = loop.code[loop.order[n]];
	}
      gfc_merge_block_scope (&body);
3032
    }
3033 3034 3035 3036 3037 3038 3039 3040 3041 3042 3043 3044 3045 3046 3047 3048 3049 3050 3051 3052 3053 3054 3055

  /* Add the post block after the second loop, so that any
     freeing of allocated memory is done at the right time.  */
  gfc_add_block_to_block (&parmse->pre, &loop.pre);

  /**********Copy the temporary back again.*********/

  gfc_init_se (&lse, NULL);
  gfc_init_se (&rse, NULL);

  /* Walk the argument expression.  */
  lss = gfc_walk_expr (expr);
  rse.ss = loop.temp_ss;
  lse.ss = lss;

  /* Initialize the scalarizer.  */
  gfc_init_loopinfo (&loop2);
  gfc_add_ss_to_loop (&loop2, lss);

  /* Calculate the bounds of the scalarization.  */
  gfc_conv_ss_startstride (&loop2);

  /* Setup the scalarizing loops.  */
3056
  gfc_conv_loop_setup (&loop2, &expr->where);
3057 3058 3059 3060 3061 3062 3063 3064 3065 3066 3067 3068 3069 3070 3071 3072

  gfc_copy_loopinfo_to_se (&lse, &loop2);
  gfc_copy_loopinfo_to_se (&rse, &loop2);

  gfc_mark_ss_chain_used (lss, 1);
  gfc_mark_ss_chain_used (loop.temp_ss, 1);

  /* Declare the variable to hold the temporary offset and start the
     scalarized loop body.  */
  offset = gfc_create_var (gfc_array_index_type, NULL);
  gfc_start_scalarized_body (&loop2, &body);

  /* Build the offsets for the temporary from the loop variables.  The
     temporary array has lbounds of zero and strides of one in all
     dimensions, so this is very simple.  The offset is only computed
     outside the innermost loop, so the overall transfer could be
Kazu Hirata committed
3073
     optimized further.  */
3074
  info = &rse.ss->info->data.array;
3075
  dimen = rse.ss->dimen;
3076 3077

  tmp_index = gfc_index_zero_node;
3078
  for (n = dimen - 1; n > 0; n--)
3079 3080 3081
    {
      tree tmp_str;
      tmp = rse.loop->loopvar[n];
3082 3083 3084 3085 3086 3087 3088 3089 3090 3091 3092 3093 3094 3095
      tmp = fold_build2_loc (input_location, MINUS_EXPR, gfc_array_index_type,
			     tmp, rse.loop->from[n]);
      tmp = fold_build2_loc (input_location, PLUS_EXPR, gfc_array_index_type,
			     tmp, tmp_index);

      tmp_str = fold_build2_loc (input_location, MINUS_EXPR,
				 gfc_array_index_type,
				 rse.loop->to[n-1], rse.loop->from[n-1]);
      tmp_str = fold_build2_loc (input_location, PLUS_EXPR,
				 gfc_array_index_type,
				 tmp_str, gfc_index_one_node);

      tmp_index = fold_build2_loc (input_location, MULT_EXPR,
				   gfc_array_index_type, tmp, tmp_str);
3096 3097
    }

3098 3099 3100
  tmp_index = fold_build2_loc (input_location, MINUS_EXPR,
			       gfc_array_index_type,
			       tmp_index, rse.loop->from[0]);
3101
  gfc_add_modify (&rse.loop->code[0], offset, tmp_index);
3102

3103 3104 3105
  tmp_index = fold_build2_loc (input_location, PLUS_EXPR,
			       gfc_array_index_type,
			       rse.loop->loopvar[0], offset);
3106 3107

  /* Now use the offset for the reference.  */
3108 3109
  tmp = build_fold_indirect_ref_loc (input_location,
				 info->data);
3110
  rse.expr = gfc_build_array_ref (tmp, tmp_index, NULL);
3111 3112

  if (expr->ts.type == BT_CHARACTER)
3113
    rse.string_length = expr->ts.u.cl->backend_decl;
3114 3115 3116 3117 3118

  gfc_conv_expr (&lse, expr);

  gcc_assert (lse.ss == gfc_ss_terminator);

3119
  tmp = gfc_trans_scalar_assign (&lse, &rse, expr->ts, false, false, true);
3120 3121 3122 3123 3124 3125
  gfc_add_expr_to_block (&body, tmp);
  
  /* Generate the copying loops.  */
  gfc_trans_scalarizing_loops (&loop2, &body);

  /* Wrap the whole thing up by adding the second loop to the post-block
3126
     and following it by the post-block of the first loop.  In this way,
3127
     if the temporary needs freeing, it is done after use!  */
3128 3129 3130 3131 3132
  if (intent != INTENT_IN)
    {
      gfc_add_block_to_block (&parmse->post, &loop2.pre);
      gfc_add_block_to_block (&parmse->post, &loop2.post);
    }
3133 3134 3135 3136 3137 3138 3139 3140

  gfc_add_block_to_block (&parmse->post, &loop.post);

  gfc_cleanup_loop (&loop);
  gfc_cleanup_loop (&loop2);

  /* Pass the string length to the argument expression.  */
  if (expr->ts.type == BT_CHARACTER)
3141
    parmse->string_length = expr->ts.u.cl->backend_decl;
3142

3143 3144 3145 3146 3147 3148
  /* Determine the offset for pointer formal arguments and set the
     lbounds to one.  */
  if (formal_ptr)
    {
      size = gfc_index_one_node;
      offset = gfc_index_zero_node;  
3149
      for (n = 0; n < dimen; n++)
3150 3151 3152
	{
	  tmp = gfc_conv_descriptor_ubound_get (parmse->expr,
						gfc_rank_cst[n]);
3153 3154 3155
	  tmp = fold_build2_loc (input_location, PLUS_EXPR,
				 gfc_array_index_type, tmp,
				 gfc_index_one_node);
3156 3157 3158 3159 3160 3161 3162 3163 3164
	  gfc_conv_descriptor_ubound_set (&parmse->pre,
					  parmse->expr,
					  gfc_rank_cst[n],
					  tmp);
	  gfc_conv_descriptor_lbound_set (&parmse->pre,
					  parmse->expr,
					  gfc_rank_cst[n],
					  gfc_index_one_node);
	  size = gfc_evaluate_now (size, &parmse->pre);
3165 3166 3167
	  offset = fold_build2_loc (input_location, MINUS_EXPR,
				    gfc_array_index_type,
				    offset, size);
3168
	  offset = gfc_evaluate_now (offset, &parmse->pre);
3169 3170 3171 3172 3173 3174 3175 3176
	  tmp = fold_build2_loc (input_location, MINUS_EXPR,
				 gfc_array_index_type,
				 rse.loop->to[n], rse.loop->from[n]);
	  tmp = fold_build2_loc (input_location, PLUS_EXPR,
				 gfc_array_index_type,
				 tmp, gfc_index_one_node);
	  size = fold_build2_loc (input_location, MULT_EXPR,
				  gfc_array_index_type, size, tmp);
3177 3178 3179 3180 3181 3182
	}

      gfc_conv_descriptor_offset_set (&parmse->pre, parmse->expr,
				      offset);
    }

3183 3184 3185 3186 3187
  /* We want either the address for the data or the address of the descriptor,
     depending on the mode of passing array arguments.  */
  if (g77)
    parmse->expr = gfc_conv_descriptor_data_get (parmse->expr);
  else
3188
    parmse->expr = gfc_build_addr_expr (NULL_TREE, parmse->expr);
3189 3190 3191 3192

  return;
}

3193

3194 3195 3196 3197 3198 3199 3200 3201 3202 3203
/* Generate the code for argument list functions.  */

static void
conv_arglist_function (gfc_se *se, gfc_expr *expr, const char *name)
{
  /* Pass by value for g77 %VAL(arg), pass the address
     indirectly for %LOC, else by reference.  Thus %REF
     is a "do-nothing" and %LOC is the same as an F95
     pointer.  */
  if (strncmp (name, "%VAL", 4) == 0)
3204
    gfc_conv_expr (se, expr);
3205 3206 3207 3208 3209 3210 3211 3212 3213 3214 3215 3216
  else if (strncmp (name, "%LOC", 4) == 0)
    {
      gfc_conv_expr_reference (se, expr);
      se->expr = gfc_build_addr_expr (NULL, se->expr);
    }
  else if (strncmp (name, "%REF", 4) == 0)
    gfc_conv_expr_reference (se, expr);
  else
    gfc_error ("Unknown argument list function at %L", &expr->where);
}


3217 3218 3219 3220 3221 3222 3223 3224 3225 3226 3227 3228 3229 3230 3231 3232 3233 3234 3235 3236 3237 3238 3239 3240 3241 3242 3243 3244 3245 3246 3247 3248 3249 3250 3251 3252 3253 3254 3255 3256 3257 3258 3259 3260 3261 3262 3263 3264 3265 3266 3267 3268 3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279 3280 3281 3282 3283 3284 3285 3286 3287 3288 3289 3290 3291 3292 3293 3294 3295 3296 3297 3298 3299 3300 3301
/* The following routine generates code for the intrinsic
   procedures from the ISO_C_BINDING module:
    * C_LOC           (function)
    * C_FUNLOC        (function)
    * C_F_POINTER     (subroutine)
    * C_F_PROCPOINTER (subroutine)
    * C_ASSOCIATED    (function)
   One exception which is not handled here is C_F_POINTER with non-scalar
   arguments. Returns 1 if the call was replaced by inline code (else: 0).  */

static int
conv_isocbinding_procedure (gfc_se * se, gfc_symbol * sym,
			    gfc_actual_arglist * arg)
{
  gfc_symbol *fsym;
  gfc_ss *argss;
    
  if (sym->intmod_sym_id == ISOCBINDING_LOC)
    {
      if (arg->expr->rank == 0)
	gfc_conv_expr_reference (se, arg->expr);
      else
	{
	  int f;
	  /* This is really the actual arg because no formal arglist is
	     created for C_LOC.	 */
	  fsym = arg->expr->symtree->n.sym;

	  /* We should want it to do g77 calling convention.  */
	  f = (fsym != NULL)
	    && !(fsym->attr.pointer || fsym->attr.allocatable)
	    && fsym->as->type != AS_ASSUMED_SHAPE;
	  f = f || !sym->attr.always_explicit;
      
	  argss = gfc_walk_expr (arg->expr);
	  gfc_conv_array_parameter (se, arg->expr, argss, f,
				    NULL, NULL, NULL);
	}

      /* TODO -- the following two lines shouldn't be necessary, but if
	 they're removed, a bug is exposed later in the code path.
	 This workaround was thus introduced, but will have to be
	 removed; please see PR 35150 for details about the issue.  */
      se->expr = convert (pvoid_type_node, se->expr);
      se->expr = gfc_evaluate_now (se->expr, &se->pre);

      return 1;
    }
  else if (sym->intmod_sym_id == ISOCBINDING_FUNLOC)
    {
      arg->expr->ts.type = sym->ts.u.derived->ts.type;
      arg->expr->ts.f90_type = sym->ts.u.derived->ts.f90_type;
      arg->expr->ts.kind = sym->ts.u.derived->ts.kind;
      gfc_conv_expr_reference (se, arg->expr);
  
      return 1;
    }
  else if ((sym->intmod_sym_id == ISOCBINDING_F_POINTER
	    && arg->next->expr->rank == 0)
	   || sym->intmod_sym_id == ISOCBINDING_F_PROCPOINTER)
    {
      /* Convert c_f_pointer if fptr is a scalar
	 and convert c_f_procpointer.  */
      gfc_se cptrse;
      gfc_se fptrse;

      gfc_init_se (&cptrse, NULL);
      gfc_conv_expr (&cptrse, arg->expr);
      gfc_add_block_to_block (&se->pre, &cptrse.pre);
      gfc_add_block_to_block (&se->post, &cptrse.post);

      gfc_init_se (&fptrse, NULL);
      if (sym->intmod_sym_id == ISOCBINDING_F_POINTER
	  || gfc_is_proc_ptr_comp (arg->next->expr, NULL))
	fptrse.want_pointer = 1;

      gfc_conv_expr (&fptrse, arg->next->expr);
      gfc_add_block_to_block (&se->pre, &fptrse.pre);
      gfc_add_block_to_block (&se->post, &fptrse.post);
      
      if (arg->next->expr->symtree->n.sym->attr.proc_pointer
	  && arg->next->expr->symtree->n.sym->attr.dummy)
	fptrse.expr = build_fold_indirect_ref_loc (input_location,
						   fptrse.expr);
      
3302 3303 3304 3305 3306
      se->expr = fold_build2_loc (input_location, MODIFY_EXPR,
				  TREE_TYPE (fptrse.expr),
				  fptrse.expr,
				  fold_convert (TREE_TYPE (fptrse.expr),
						cptrse.expr));
3307 3308 3309 3310 3311 3312 3313 3314 3315 3316 3317 3318 3319 3320 3321 3322 3323 3324 3325 3326

      return 1;
    }
  else if (sym->intmod_sym_id == ISOCBINDING_ASSOCIATED)
    {
      gfc_se arg1se;
      gfc_se arg2se;

      /* Build the addr_expr for the first argument.  The argument is
	 already an *address* so we don't need to set want_pointer in
	 the gfc_se.  */
      gfc_init_se (&arg1se, NULL);
      gfc_conv_expr (&arg1se, arg->expr);
      gfc_add_block_to_block (&se->pre, &arg1se.pre);
      gfc_add_block_to_block (&se->post, &arg1se.post);

      /* See if we were given two arguments.  */
      if (arg->next == NULL)
	/* Only given one arg so generate a null and do a
	   not-equal comparison against the first arg.  */
3327 3328 3329 3330
	se->expr = fold_build2_loc (input_location, NE_EXPR, boolean_type_node,
				    arg1se.expr,
				    fold_convert (TREE_TYPE (arg1se.expr),
						  null_pointer_node));
3331 3332 3333 3334 3335 3336 3337 3338 3339 3340 3341 3342
      else
	{
	  tree eq_expr;
	  tree not_null_expr;
	  
	  /* Given two arguments so build the arg2se from second arg.  */
	  gfc_init_se (&arg2se, NULL);
	  gfc_conv_expr (&arg2se, arg->next->expr);
	  gfc_add_block_to_block (&se->pre, &arg2se.pre);
	  gfc_add_block_to_block (&se->post, &arg2se.post);

	  /* Generate test to compare that the two args are equal.  */
3343 3344
	  eq_expr = fold_build2_loc (input_location, EQ_EXPR, boolean_type_node,
				     arg1se.expr, arg2se.expr);
3345
	  /* Generate test to ensure that the first arg is not null.  */
3346 3347 3348
	  not_null_expr = fold_build2_loc (input_location, NE_EXPR,
					   boolean_type_node,
					   arg1se.expr, null_pointer_node);
3349 3350 3351

	  /* Finally, the generated test must check that both arg1 is not
	     NULL and that it is equal to the second arg.  */
3352 3353 3354
	  se->expr = fold_build2_loc (input_location, TRUTH_AND_EXPR,
				      boolean_type_node,
				      not_null_expr, eq_expr);
3355 3356 3357 3358 3359 3360 3361 3362 3363
	}

      return 1;
    }
    
  /* Nothing was done.  */
  return 0;
}

3364

3365
/* Generate code for a procedure call.  Note can return se->post != NULL.
3366
   If se->direct_byref is set then se->expr contains the return parameter.
3367 3368
   Return nonzero, if the call has alternate specifiers.
   'expr' is only needed for procedure pointer components.  */
3369

3370
int
3371
gfc_conv_procedure_call (gfc_se * se, gfc_symbol * sym,
3372
			 gfc_actual_arglist * args, gfc_expr * expr,
3373
			 VEC(tree,gc) *append_args)
3374
{
3375
  gfc_interface_mapping mapping;
3376 3377
  VEC(tree,gc) *arglist;
  VEC(tree,gc) *retargs;
3378 3379 3380 3381
  tree tmp;
  tree fntype;
  gfc_se parmse;
  gfc_ss *argss;
3382
  gfc_array_info *info;
3383
  int byref;
Paul Thomas committed
3384
  int parm_kind;
3385 3386 3387
  tree type;
  tree var;
  tree len;
3388
  tree base_object;
3389
  VEC(tree,gc) *stringargs;
3390
  tree result = NULL;
3391
  gfc_formal_arglist *formal;
3392
  gfc_actual_arglist *arg;
3393
  int has_alternate_specifier = 0;
3394
  bool need_interface_mapping;
3395
  bool callee_alloc;
3396 3397
  gfc_typespec ts;
  gfc_charlen cl;
3398 3399
  gfc_expr *e;
  gfc_symbol *fsym;
3400
  stmtblock_t post;
Paul Thomas committed
3401
  enum {MISSING = 0, ELEMENTAL, SCALAR, SCALAR_POINTER, ARRAY};
3402
  gfc_component *comp = NULL;
3403
  int arglen;
3404

3405 3406 3407
  arglist = NULL;
  retargs = NULL;
  stringargs = NULL;
3408 3409
  var = NULL_TREE;
  len = NULL_TREE;
3410
  gfc_clear_ts (&ts);
3411

3412
  if (sym->from_intmod == INTMOD_ISO_C_BINDING
3413
      && conv_isocbinding_procedure (se, sym, args))
3414
    return 0;
3415 3416 3417

  gfc_is_proc_ptr_comp (expr, &comp);

3418 3419
  if (se->ss != NULL)
    {
3420
      if (!sym->attr.elemental && !(comp && comp->attr.elemental))
3421
	{
3422
	  gcc_assert (se->ss->info->type == GFC_SS_FUNCTION);
3423
	  if (se->ss->info->useflags)
3424
	    {
3425 3426 3427
	      gcc_assert ((!comp && gfc_return_by_reference (sym)
			   && sym->result->attr.dimension)
			  || (comp && comp->attr.dimension));
3428
	      gcc_assert (se->loop != NULL);
3429

3430 3431 3432 3433
	      /* Access the previously obtained result.  */
	      gfc_conv_tmp_array_ref (se);
	      return 0;
	    }
3434
	}
3435
      info = &se->ss->info->data.array;
3436 3437 3438 3439
    }
  else
    info = NULL;

3440
  gfc_init_block (&post);
3441
  gfc_init_interface_mapping (&mapping);
3442 3443 3444 3445 3446 3447 3448 3449 3450
  if (!comp)
    {
      formal = sym->formal;
      need_interface_mapping = sym->attr.dimension ||
			       (sym->ts.type == BT_CHARACTER
				&& sym->ts.u.cl->length
				&& sym->ts.u.cl->length->expr_type
				   != EXPR_CONSTANT);
    }
3451
  else
3452 3453 3454 3455 3456 3457 3458 3459 3460
    {
      formal = comp->formal;
      need_interface_mapping = comp->attr.dimension ||
			       (comp->ts.type == BT_CHARACTER
				&& comp->ts.u.cl->length
				&& comp->ts.u.cl->length->expr_type
				   != EXPR_CONSTANT);
    }

3461 3462
  base_object = NULL_TREE;

3463
  /* Evaluate the arguments.  */
3464 3465
  for (arg = args; arg != NULL;
       arg = arg->next, formal = formal ? formal->next : NULL)
3466
    {
3467 3468
      e = arg->expr;
      fsym = formal ? formal->sym : NULL;
Paul Thomas committed
3469
      parm_kind = MISSING;
3470

3471 3472 3473 3474 3475 3476 3477 3478 3479 3480 3481 3482 3483
      /* Class array expressions are sometimes coming completely unadorned
	 with either arrayspec or _data component.  Correct that here.
	 OOP-TODO: Move this to the frontend.  */
      if (e && e->expr_type == EXPR_VARIABLE
	    && !e->ref
	    && e->ts.type == BT_CLASS
	    && CLASS_DATA (e)->attr.dimension)
	{
	  gfc_typespec temp_ts = e->ts;
	  gfc_add_class_array_ref (e);
	  e->ts = temp_ts;
	}

3484
      if (e == NULL)
3485 3486 3487 3488 3489 3490 3491 3492 3493
	{
	  if (se->ignore_optional)
	    {
	      /* Some intrinsics have already been resolved to the correct
	         parameters.  */
	      continue;
	    }
	  else if (arg->label)
	    {
3494 3495
	      has_alternate_specifier = 1;
	      continue;
3496 3497 3498 3499 3500 3501
	    }
	  else
	    {
	      /* Pass a NULL pointer for an absent arg.  */
	      gfc_init_se (&parmse, NULL);
	      parmse.expr = null_pointer_node;
3502
	      if (arg->missing_arg_type == BT_CHARACTER)
3503
		parmse.string_length = build_int_cst (gfc_charlen_type_node, 0);
3504 3505
	    }
	}
3506 3507 3508 3509 3510 3511 3512 3513 3514
      else if (arg->expr->expr_type == EXPR_NULL && fsym && !fsym->attr.pointer)
	{
	  /* Pass a NULL pointer to denote an absent arg.  */
	  gcc_assert (fsym->attr.optional && !fsym->attr.allocatable);
	  gfc_init_se (&parmse, NULL);
	  parmse.expr = null_pointer_node;
	  if (arg->missing_arg_type == BT_CHARACTER)
	    parmse.string_length = build_int_cst (gfc_charlen_type_node, 0);
	}
3515 3516 3517 3518 3519 3520
      else if (fsym && fsym->ts.type == BT_CLASS
		 && e->ts.type == BT_DERIVED)
	{
	  /* The derived type needs to be converted to a temporary
	     CLASS object.  */
	  gfc_init_se (&parmse, se);
3521
	  gfc_conv_derived_to_class (&parmse, e, fsym->ts);
3522
	}
3523
      else if (se->ss && se->ss->info->useflags)
3524
	{
3525 3526 3527 3528
	  gfc_ss *ss;

	  ss = se->ss;

3529
	  /* An elemental function inside a scalarized loop.  */
3530
	  gfc_init_se (&parmse, se);
Paul Thomas committed
3531
	  parm_kind = ELEMENTAL;
3532

3533 3534
	  if (ss->dimen > 0 && e->expr_type == EXPR_VARIABLE
	      && ss->info->data.array.ref == NULL)
3535 3536 3537 3538 3539 3540 3541 3542 3543
	    {
	      gfc_conv_tmp_array_ref (&parmse);
	      if (e->ts.type == BT_CHARACTER)
		gfc_conv_string_parameter (&parmse);
	      else
		parmse.expr = gfc_build_addr_expr (NULL_TREE, parmse.expr);
	    }
	  else
	    gfc_conv_expr_reference (&parmse, e);
3544

3545 3546 3547 3548
	  if (fsym && fsym->ts.type == BT_DERIVED
	      && gfc_is_class_container_ref (e))
	    parmse.expr = gfc_class_data_get (parmse.expr);

3549 3550 3551 3552 3553 3554 3555 3556 3557 3558 3559 3560 3561 3562 3563 3564 3565 3566 3567 3568 3569 3570 3571
	  /* If we are passing an absent array as optional dummy to an
	     elemental procedure, make sure that we pass NULL when the data
	     pointer is NULL.  We need this extra conditional because of
	     scalarization which passes arrays elements to the procedure,
	     ignoring the fact that the array can be absent/unallocated/...  */
	  if (ss->info->can_be_null_ref && ss->info->type != GFC_SS_REFERENCE)
	    {
	      tree descriptor_data;

	      descriptor_data = ss->info->data.array.data;
	      tmp = fold_build2_loc (input_location, EQ_EXPR, boolean_type_node,
				     descriptor_data,
				     fold_convert (TREE_TYPE (descriptor_data),
						   null_pointer_node));
	      parmse.expr
		= fold_build3_loc (input_location, COND_EXPR,
				   TREE_TYPE (parmse.expr),
				   gfc_unlikely (tmp),
				   fold_convert (TREE_TYPE (parmse.expr), 
						 null_pointer_node),
				   parmse.expr);
	    }

3572 3573 3574 3575
	  /* The scalarizer does not repackage the reference to a class
	     array - instead it returns a pointer to the data element.  */
	  if (fsym && fsym->ts.type == BT_CLASS && e->ts.type == BT_CLASS)
	    gfc_conv_class_to_class (&parmse, e, fsym->ts, true);
3576 3577 3578 3579 3580
	}
      else
	{
	  /* A scalar or transformational function.  */
	  gfc_init_se (&parmse, NULL);
3581
	  argss = gfc_walk_expr (e);
3582 3583

	  if (argss == gfc_ss_terminator)
3584
	    {
3585 3586 3587 3588 3589 3590 3591 3592 3593 3594 3595 3596
	      if (e->expr_type == EXPR_VARIABLE
		    && e->symtree->n.sym->attr.cray_pointee
		    && fsym && fsym->attr.flavor == FL_PROCEDURE)
		{
		    /* The Cray pointer needs to be converted to a pointer to
		       a type given by the expression.  */
		    gfc_conv_expr (&parmse, e);
		    type = build_pointer_type (TREE_TYPE (parmse.expr));
		    tmp = gfc_get_symbol_decl (e->symtree->n.sym->cp_pointer);
		    parmse.expr = convert (type, tmp);
		}
 	      else if (fsym && fsym->attr.value)
3597
		{
3598 3599 3600 3601 3602 3603 3604 3605 3606 3607 3608 3609
		  if (fsym->ts.type == BT_CHARACTER
		      && fsym->ts.is_c_interop
		      && fsym->ns->proc_name != NULL
		      && fsym->ns->proc_name->attr.is_bind_c)
		    {
		      parmse.expr = NULL;
		      gfc_conv_scalar_char_value (fsym, &parmse, &e);
		      if (parmse.expr == NULL)
			gfc_conv_expr (&parmse, e);
		    }
		  else
		    gfc_conv_expr (&parmse, e);
3610
		}
3611 3612 3613 3614
	      else if (arg->name && arg->name[0] == '%')
		/* Argument list functions %VAL, %LOC and %REF are signalled
		   through arg->name.  */
		conv_arglist_function (&parmse, arg->expr, arg->name);
3615
	      else if ((e->expr_type == EXPR_FUNCTION)
3616 3617 3618 3619 3620
			&& ((e->value.function.esym
			     && e->value.function.esym->result->attr.pointer)
			    || (!e->value.function.esym
				&& e->symtree->n.sym->attr.pointer))
			&& fsym && fsym->attr.target)
3621 3622
		{
		  gfc_conv_expr (&parmse, e);
3623
		  parmse.expr = gfc_build_addr_expr (NULL_TREE, parmse.expr);
3624
		}
3625 3626
	      else if (e->expr_type == EXPR_FUNCTION
		       && e->symtree->n.sym->result
3627
		       && e->symtree->n.sym->result != e->symtree->n.sym
3628 3629 3630 3631 3632 3633 3634
		       && e->symtree->n.sym->result->attr.proc_pointer)
		{
		  /* Functions returning procedure pointers.  */
		  gfc_conv_expr (&parmse, e);
		  if (fsym && fsym->attr.proc_pointer)
		    parmse.expr = gfc_build_addr_expr (NULL_TREE, parmse.expr);
		}
3635 3636 3637
	      else
		{
		  gfc_conv_expr_reference (&parmse, e);
Tobias Burnus committed
3638

3639 3640 3641 3642 3643 3644 3645
		  /* Catch base objects that are not variables.  */
		  if (e->ts.type == BT_CLASS
			&& e->expr_type != EXPR_VARIABLE
			&& expr && e == expr->base_expr)
		    base_object = build_fold_indirect_ref_loc (input_location,
							       parmse.expr);

3646 3647 3648 3649 3650 3651 3652
		  /* A class array element needs converting back to be a
		     class object, if the formal argument is a class object.  */
		  if (fsym && fsym->ts.type == BT_CLASS
			&& e->ts.type == BT_CLASS
			&& CLASS_DATA (e)->attr.dimension)
		    gfc_conv_class_to_class (&parmse, e, fsym->ts, false);

3653 3654
		  if (fsym && (fsym->ts.type == BT_DERIVED
			       || fsym->ts.type == BT_ASSUMED)
3655 3656 3657 3658 3659
		      && e->ts.type == BT_CLASS
		      && !CLASS_DATA (e)->attr.dimension
		      && !CLASS_DATA (e)->attr.codimension)
		    parmse.expr = gfc_class_data_get (parmse.expr);

Tobias Burnus committed
3660 3661 3662 3663 3664 3665 3666 3667 3668
		  /* If an ALLOCATABLE dummy argument has INTENT(OUT) and is 
		     allocated on entry, it must be deallocated.  */
		  if (fsym && fsym->attr.allocatable
		      && fsym->attr.intent == INTENT_OUT)
		    {
		      stmtblock_t block;

		      gfc_init_block  (&block);
		      tmp = gfc_deallocate_with_status (parmse.expr, NULL_TREE,
3669 3670 3671
							NULL_TREE, NULL_TREE,
							NULL_TREE, true, NULL,
							false);
Tobias Burnus committed
3672
		      gfc_add_expr_to_block (&block, tmp);
3673 3674 3675
		      tmp = fold_build2_loc (input_location, MODIFY_EXPR,
					     void_type_node, parmse.expr,
					     null_pointer_node);
Tobias Burnus committed
3676 3677 3678 3679 3680 3681
		      gfc_add_expr_to_block (&block, tmp);

		      if (fsym->attr.optional
			  && e->expr_type == EXPR_VARIABLE
			  && e->symtree->n.sym->attr.optional)
			{
3682 3683
			  tmp = fold_build3_loc (input_location, COND_EXPR,
				     void_type_node,
Tobias Burnus committed
3684 3685 3686 3687 3688 3689 3690 3691 3692 3693
				     gfc_conv_expr_present (e->symtree->n.sym),
					    gfc_finish_block (&block),
					    build_empty_stmt (input_location));
			}
		      else
			tmp = gfc_finish_block (&block);

		      gfc_add_expr_to_block (&se->pre, tmp);
		    }

3694 3695 3696
		  if (fsym && e->expr_type != EXPR_NULL
		      && ((fsym->attr.pointer
			   && fsym->attr.flavor != FL_PROCEDURE)
3697 3698
			  || (fsym->attr.proc_pointer
			      && !(e->expr_type == EXPR_VARIABLE
3699 3700 3701
				   && e->symtree->n.sym->attr.dummy))
			  || (fsym->attr.proc_pointer
			      && e->expr_type == EXPR_VARIABLE
Tobias Burnus committed
3702
			      && gfc_is_proc_ptr_comp (e, NULL))
3703 3704
			  || (fsym->attr.allocatable
			      && fsym->attr.flavor != FL_PROCEDURE)))
3705 3706 3707 3708 3709
		    {
		      /* Scalar pointer dummy args require an extra level of
			 indirection. The null pointer already contains
			 this level of indirection.  */
		      parm_kind = SCALAR_POINTER;
3710
		      parmse.expr = gfc_build_addr_expr (NULL_TREE, parmse.expr);
3711 3712 3713
		    }
		}
	    }
3714 3715 3716 3717 3718 3719 3720 3721 3722 3723 3724
	  else if (e->ts.type == BT_CLASS
		    && fsym && fsym->ts.type == BT_CLASS
		    && CLASS_DATA (fsym)->attr.dimension)
	    {
	      /* Pass a class array.  */
	      gfc_init_se (&parmse, se);
	      gfc_conv_expr_descriptor (&parmse, e, argss);
	      /* The conversion does not repackage the reference to a class
	         array - _data descriptor.  */
	      gfc_conv_class_to_class (&parmse, e, fsym->ts, false);
	    }
3725 3726
	  else
	    {
3727 3728 3729 3730 3731 3732
              /* If the procedure requires an explicit interface, the actual
                 argument is passed according to the corresponding formal
                 argument.  If the corresponding formal argument is a POINTER,
                 ALLOCATABLE or assumed shape, we do not use g77's calling
                 convention, and pass the address of the array descriptor
                 instead. Otherwise we use g77's calling convention.  */
3733
	      bool f;
3734 3735
	      f = (fsym != NULL)
		  && !(fsym->attr.pointer || fsym->attr.allocatable)
3736
		  && fsym->as && fsym->as->type != AS_ASSUMED_SHAPE;
3737 3738 3739 3740
	      if (comp)
		f = f || !comp->attr.always_explicit;
	      else
		f = f || !sym->attr.always_explicit;
3741

3742 3743 3744 3745 3746 3747
	      /* If the argument is a function call that may not create
		 a temporary for the result, we have to check that we
		 can do it, i.e. that there is no alias between this 
		 argument and another one.  */
	      if (gfc_get_noncopying_intrinsic_argument (e) != NULL)
		{
3748
		  gfc_expr *iarg;
3749 3750 3751 3752 3753 3754 3755 3756 3757 3758
		  sym_intent intent;

		  if (fsym != NULL)
		    intent = fsym->attr.intent;
		  else
		    intent = INTENT_UNKNOWN;

		  if (gfc_check_fncall_dependency (e, intent, sym, args,
						   NOT_ELEMENTAL))
		    parmse.force_tmp = 1;
3759 3760 3761 3762 3763 3764 3765 3766 3767 3768 3769 3770 3771 3772 3773 3774 3775 3776 3777

		  iarg = e->value.function.actual->expr;

		  /* Temporary needed if aliasing due to host association.  */
		  if (sym->attr.contained
			&& !sym->attr.pure
			&& !sym->attr.implicit_pure
			&& !sym->attr.use_assoc
			&& iarg->expr_type == EXPR_VARIABLE
			&& sym->ns == iarg->symtree->n.sym->ns)
		    parmse.force_tmp = 1;

		  /* Ditto within module.  */
		  if (sym->attr.use_assoc
			&& !sym->attr.pure
			&& !sym->attr.implicit_pure
			&& iarg->expr_type == EXPR_VARIABLE
			&& sym->module == iarg->symtree->n.sym->module)
		    parmse.force_tmp = 1;
3778 3779
		}

3780
	      if (e->expr_type == EXPR_VARIABLE
3781
		    && is_subref_array (e))
3782 3783 3784 3785
		/* The actual argument is a component reference to an
		   array of derived types.  In this case, the argument
		   is converted to a temporary, which is passed and then
		   written back after the procedure call.  */
3786
		gfc_conv_subref_array_arg (&parmse, e, f,
3787 3788
				fsym ? fsym->attr.intent : INTENT_INOUT,
				fsym && fsym->attr.pointer);
3789 3790 3791 3792 3793 3794 3795 3796 3797 3798 3799 3800
	      else if (gfc_is_class_array_ref (e, NULL)
			 && fsym && fsym->ts.type == BT_DERIVED)
		/* The actual argument is a component reference to an
		   array of derived types.  In this case, the argument
		   is converted to a temporary, which is passed and then
		   written back after the procedure call.
		   OOP-TODO: Insert code so that if the dynamic type is
		   the same as the declared type, copy-in/copy-out does
		   not occur.  */
		gfc_conv_subref_array_arg (&parmse, e, f,
				fsym ? fsym->attr.intent : INTENT_INOUT,
				fsym && fsym->attr.pointer);
3801
	      else
3802
	        gfc_conv_array_parameter (&parmse, e, argss, f, fsym,
3803
					  sym->name, NULL);
3804

3805 3806 3807 3808 3809 3810 3811
	      /* If an ALLOCATABLE dummy argument has INTENT(OUT) and is 
		 allocated on entry, it must be deallocated.  */
	      if (fsym && fsym->attr.allocatable
		  && fsym->attr.intent == INTENT_OUT)
		{
		  tmp = build_fold_indirect_ref_loc (input_location,
						     parmse.expr);
3812
		  tmp = gfc_trans_dealloc_allocated (tmp, false);
3813 3814 3815
		  if (fsym->attr.optional
		      && e->expr_type == EXPR_VARIABLE
		      && e->symtree->n.sym->attr.optional)
3816 3817
		    tmp = fold_build3_loc (input_location, COND_EXPR,
				     void_type_node,
3818 3819 3820 3821
				     gfc_conv_expr_present (e->symtree->n.sym),
				       tmp, build_empty_stmt (input_location));
		  gfc_add_expr_to_block (&se->pre, tmp);
		}
3822 3823 3824
	    } 
	}

3825 3826 3827 3828 3829 3830
      /* The case with fsym->attr.optional is that of a user subroutine
	 with an interface indicating an optional argument.  When we call
	 an intrinsic subroutine, however, fsym is NULL, but we might still
	 have an optional argument, so we proceed to the substitution
	 just in case.  */
      if (e && (fsym == NULL || fsym->attr.optional))
3831
	{
3832
	  /* If an optional argument is itself an optional dummy argument,
3833 3834 3835 3836
	     check its presence and substitute a null if absent.  This is
	     only needed when passing an array to an elemental procedure
	     as then array elements are accessed - or no NULL pointer is
	     allowed and a "1" or "0" should be passed if not present.
3837 3838 3839 3840 3841 3842
	     When passing a non-array-descriptor full array to a
	     non-array-descriptor dummy, no check is needed. For
	     array-descriptor actual to array-descriptor dummy, see
	     PR 41911 for why a check has to be inserted.
	     fsym == NULL is checked as intrinsics required the descriptor
	     but do not always set fsym.  */
3843
	  if (e->expr_type == EXPR_VARIABLE
3844 3845 3846
	      && e->symtree->n.sym->attr.optional
	      && ((e->rank > 0 && sym->attr.elemental)
		  || e->representation.length || e->ts.type == BT_CHARACTER
3847
		  || (e->rank > 0
3848 3849 3850 3851
		      && (fsym == NULL 
			  || (fsym-> as
			      && (fsym->as->type == AS_ASSUMED_SHAPE
			      	  || fsym->as->type == AS_DEFERRED))))))
3852 3853
	    gfc_conv_missing_dummy (&parmse, e, fsym ? fsym->ts : e->ts,
				    e->representation.length);
3854 3855 3856 3857 3858 3859 3860 3861 3862 3863
	}

      if (fsym && e)
	{
	  /* Obtain the character length of an assumed character length
	     length procedure from the typespec.  */
	  if (fsym->ts.type == BT_CHARACTER
	      && parmse.string_length == NULL_TREE
	      && e->ts.type == BT_PROCEDURE
	      && e->symtree->n.sym->ts.type == BT_CHARACTER
3864 3865
	      && e->symtree->n.sym->ts.u.cl->length != NULL
	      && e->symtree->n.sym->ts.u.cl->length->expr_type == EXPR_CONSTANT)
3866
	    {
3867 3868
	      gfc_conv_const_charlen (e->symtree->n.sym->ts.u.cl);
	      parmse.string_length = e->symtree->n.sym->ts.u.cl->backend_decl;
3869 3870
	    }
	}
3871

3872
      if (fsym && need_interface_mapping && e)
3873
	gfc_add_interface_mapping (&mapping, fsym, &parmse, e);
3874

3875
      gfc_add_block_to_block (&se->pre, &parmse.pre);
3876
      gfc_add_block_to_block (&post, &parmse.post);
3877

Paul Thomas committed
3878
      /* Allocated allocatable components of derived types must be
3879 3880
	 deallocated for non-variable scalars.  Non-variable arrays are
	 dealt with in trans-array.c(gfc_conv_array_parameter).  */
3881
      if (e && (e->ts.type == BT_DERIVED || e->ts.type == BT_CLASS)
3882
	    && e->ts.u.derived->attr.alloc_comp
3883
	    && !(e->symtree && e->symtree->n.sym->attr.pointer)
3884
	    && (e->expr_type != EXPR_VARIABLE && !e->rank))
Paul Thomas committed
3885 3886
        {
	  int parm_rank;
3887 3888
	  tmp = build_fold_indirect_ref_loc (input_location,
					 parmse.expr);
Paul Thomas committed
3889 3890 3891 3892 3893 3894 3895 3896 3897
	  parm_rank = e->rank;
	  switch (parm_kind)
	    {
	    case (ELEMENTAL):
	    case (SCALAR):
	      parm_rank = 0;
	      break;

	    case (SCALAR_POINTER):
3898 3899
              tmp = build_fold_indirect_ref_loc (input_location,
					     tmp);
Paul Thomas committed
3900 3901 3902
	      break;
	    }

3903 3904 3905 3906 3907 3908
	  if (e->expr_type == EXPR_OP
		&& e->value.op.op == INTRINSIC_PARENTHESES
		&& e->value.op.op1->expr_type == EXPR_VARIABLE)
	    {
	      tree local_tmp;
	      local_tmp = gfc_evaluate_now (tmp, &se->pre);
3909
	      local_tmp = gfc_copy_alloc_comp (e->ts.u.derived, local_tmp, tmp, parm_rank);
3910 3911 3912
	      gfc_add_expr_to_block (&se->post, local_tmp);
	    }

3913 3914 3915 3916 3917 3918 3919 3920 3921 3922
	  if (e->ts.type == BT_DERIVED && fsym && fsym->ts.type == BT_CLASS)
	    {
	      /* The derived type is passed to gfc_deallocate_alloc_comp.
		 Therefore, class actuals can handled correctly but derived
		 types passed to class formals need the _data component.  */
	      tmp = gfc_class_data_get (tmp);
	      if (!CLASS_DATA (fsym)->attr.dimension)
		tmp = build_fold_indirect_ref_loc (input_location, tmp);
	    }

3923
	  tmp = gfc_deallocate_alloc_comp (e->ts.u.derived, tmp, parm_rank);
3924

3925
	  gfc_add_expr_to_block (&se->post, tmp);
Paul Thomas committed
3926 3927
        }

3928 3929 3930
      /* Add argument checking of passing an unallocated/NULL actual to
         a nonallocatable/nonpointer dummy.  */

3931
      if (gfc_option.rtcheck & GFC_RTCHECK_POINTER && e != NULL)
3932
        {
3933
	  symbol_attribute attr;
3934 3935 3936
	  char *msg;
	  tree cond;

3937 3938
	  if (e->expr_type == EXPR_VARIABLE || e->expr_type == EXPR_FUNCTION)
	    attr = gfc_expr_attr (e);
3939 3940 3941
	  else
	    goto end_pointer_check;

3942 3943 3944 3945 3946 3947
	  /*  In Fortran 2008 it's allowed to pass a NULL pointer/nonallocated
	      allocatable to an optional dummy, cf. 12.5.2.12.  */
	  if (fsym != NULL && fsym->attr.optional && !attr.proc_pointer
	      && (gfc_option.allow_std & GFC_STD_F2008) != 0)
	    goto end_pointer_check;

3948
          if (attr.optional)
3949 3950 3951 3952 3953 3954
	    {
              /* If the actual argument is an optional pointer/allocatable and
		 the formal argument takes an nonpointer optional value,
		 it is invalid to pass a non-present argument on, even
		 though there is no technical reason for this in gfortran.
		 See Fortran 2003, Section 12.4.1.6 item (7)+(8).  */
3955
	      tree present, null_ptr, type;
3956

3957
	      if (attr.allocatable
3958 3959 3960
		  && (fsym == NULL || !fsym->attr.allocatable))
		asprintf (&msg, "Allocatable actual argument '%s' is not "
			  "allocated or not present", e->symtree->n.sym->name);
3961
	      else if (attr.pointer
3962 3963 3964 3965
		       && (fsym == NULL || !fsym->attr.pointer))
		asprintf (&msg, "Pointer actual argument '%s' is not "
			  "associated or not present",
			  e->symtree->n.sym->name);
3966
	      else if (attr.proc_pointer
3967 3968 3969 3970 3971 3972 3973 3974 3975
		       && (fsym == NULL || !fsym->attr.proc_pointer))
		asprintf (&msg, "Proc-pointer actual argument '%s' is not "
			  "associated or not present",
			  e->symtree->n.sym->name);
	      else
		goto end_pointer_check;

	      present = gfc_conv_expr_present (e->symtree->n.sym);
	      type = TREE_TYPE (present);
3976 3977 3978 3979
	      present = fold_build2_loc (input_location, EQ_EXPR,
					 boolean_type_node, present,
					 fold_convert (type,
						       null_pointer_node));
3980
	      type = TREE_TYPE (parmse.expr);
3981 3982 3983 3984 3985 3986
	      null_ptr = fold_build2_loc (input_location, EQ_EXPR,
					  boolean_type_node, parmse.expr,
					  fold_convert (type,
							null_pointer_node));
	      cond = fold_build2_loc (input_location, TRUTH_ORIF_EXPR,
				      boolean_type_node, present, null_ptr);
3987 3988 3989
	    }
          else
	    {
3990
	      if (attr.allocatable
3991 3992 3993
		  && (fsym == NULL || !fsym->attr.allocatable))
		asprintf (&msg, "Allocatable actual argument '%s' is not "
		      "allocated", e->symtree->n.sym->name);
3994
	      else if (attr.pointer
3995 3996 3997
		       && (fsym == NULL || !fsym->attr.pointer))
		asprintf (&msg, "Pointer actual argument '%s' is not "
		      "associated", e->symtree->n.sym->name);
3998
	      else if (attr.proc_pointer
3999 4000 4001 4002 4003 4004
		       && (fsym == NULL || !fsym->attr.proc_pointer))
		asprintf (&msg, "Proc-pointer actual argument '%s' is not "
		      "associated", e->symtree->n.sym->name);
	      else
		goto end_pointer_check;

4005 4006 4007 4008 4009 4010
	      tmp = parmse.expr;

	      /* If the argument is passed by value, we need to strip the
		 INDIRECT_REF.  */
	      if (!POINTER_TYPE_P (TREE_TYPE (parmse.expr)))
		tmp = gfc_build_addr_expr (NULL_TREE, tmp);
4011

4012
	      cond = fold_build2_loc (input_location, EQ_EXPR,
4013 4014
				      boolean_type_node, tmp,
				      fold_convert (TREE_TYPE (tmp),
4015
						    null_pointer_node));
4016
	    }
4017 4018 4019
 
	  gfc_trans_runtime_check (true, false, cond, &se->pre, &e->where,
				   msg);
4020
	  free (msg);
4021 4022 4023
        }
      end_pointer_check:

4024 4025 4026 4027 4028 4029 4030 4031 4032
      /* Deferred length dummies pass the character length by reference
	 so that the value can be returned.  */
      if (parmse.string_length && fsym && fsym->ts.deferred)
	{
	  tmp = parmse.string_length;
	  if (TREE_CODE (tmp) != VAR_DECL)
	    tmp = gfc_evaluate_now (parmse.string_length, &se->pre);
	  parmse.string_length = gfc_build_addr_expr (NULL_TREE, tmp);
	}
4033

4034
      /* Character strings are passed as two parameters, a length and a
4035 4036
         pointer - except for Bind(c) which only passes the pointer.  */
      if (parmse.string_length != NULL_TREE && !sym->attr.is_bind_c)
4037
	VEC_safe_push (tree, gc, stringargs, parmse.string_length);
4038

4039 4040
      /* For descriptorless coarrays and assumed-shape coarray dummies, we
	 pass the token and the offset as additional arguments.  */
4041 4042
      if (fsym && fsym->attr.codimension
	  && gfc_option.coarray == GFC_FCOARRAY_LIB
4043
	  && !fsym->attr.allocatable
4044
	  && e == NULL)
4045 4046 4047 4048 4049
	{
	  /* Token and offset. */
	  VEC_safe_push (tree, gc, stringargs, null_pointer_node);
	  VEC_safe_push (tree, gc, stringargs,
			 build_int_cst (gfc_array_index_type, 0));
4050
	  gcc_assert (fsym->attr.optional);
4051 4052
	}
      else if (fsym && fsym->attr.codimension
4053
	       && !fsym->attr.allocatable
4054 4055 4056
	       && gfc_option.coarray == GFC_FCOARRAY_LIB)
	{
	  tree caf_decl, caf_type;
4057
	  tree offset, tmp2;
4058

4059
	  caf_decl = get_tree_for_caf_expr (e);
4060 4061
	  caf_type = TREE_TYPE (caf_decl);

4062 4063
	  if (GFC_DESCRIPTOR_TYPE_P (caf_type)
	      && GFC_TYPE_ARRAY_AKIND (caf_type) == GFC_ARRAY_ALLOCATABLE)
4064
	    tmp = gfc_conv_descriptor_token (caf_decl);
4065 4066 4067
	  else if (DECL_LANG_SPECIFIC (caf_decl)
		   && GFC_DECL_TOKEN (caf_decl) != NULL_TREE)
	    tmp = GFC_DECL_TOKEN (caf_decl);
4068 4069 4070 4071 4072 4073
	  else
	    {
	      gcc_assert (GFC_ARRAY_TYPE_P (caf_type)
			  && GFC_TYPE_ARRAY_CAF_TOKEN (caf_type) != NULL_TREE);
	      tmp = GFC_TYPE_ARRAY_CAF_TOKEN (caf_type);
	    }
4074
	  
4075
	  VEC_safe_push (tree, gc, stringargs, tmp);
4076

4077 4078
	  if (GFC_DESCRIPTOR_TYPE_P (caf_type)
	      && GFC_TYPE_ARRAY_AKIND (caf_type) == GFC_ARRAY_ALLOCATABLE)
4079
	    offset = build_int_cst (gfc_array_index_type, 0);
4080 4081 4082
	  else if (DECL_LANG_SPECIFIC (caf_decl)
		   && GFC_DECL_CAF_OFFSET (caf_decl) != NULL_TREE)
	    offset = GFC_DECL_CAF_OFFSET (caf_decl);
4083
	  else if (GFC_TYPE_ARRAY_CAF_OFFSET (caf_type) != NULL_TREE)
4084 4085 4086 4087
	    offset = GFC_TYPE_ARRAY_CAF_OFFSET (caf_type);
	  else
	    offset = build_int_cst (gfc_array_index_type, 0);

4088 4089 4090 4091 4092 4093 4094 4095
	  if (GFC_DESCRIPTOR_TYPE_P (caf_type))
	    tmp = gfc_conv_descriptor_data_get (caf_decl);
	  else
	    {
	      gcc_assert (POINTER_TYPE_P (caf_type));
	      tmp = caf_decl;
	    }

4096 4097 4098 4099 4100 4101 4102 4103 4104
          if (fsym->as->type == AS_ASSUMED_SHAPE)
	    {
	      gcc_assert (POINTER_TYPE_P (TREE_TYPE (parmse.expr)));
	      gcc_assert (GFC_DESCRIPTOR_TYPE_P (TREE_TYPE
						   (TREE_TYPE (parmse.expr))));
	      tmp2 = build_fold_indirect_ref_loc (input_location, parmse.expr);
	      tmp2 = gfc_conv_descriptor_data_get (tmp2);
	    }
	  else if (GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (parmse.expr)))
4105 4106 4107 4108 4109 4110
	    tmp2 = gfc_conv_descriptor_data_get (parmse.expr);
	  else
	    {
	      gcc_assert (POINTER_TYPE_P (TREE_TYPE (parmse.expr)));
	      tmp2 = parmse.expr;
	    }
4111 4112 4113

	  tmp = fold_build2_loc (input_location, MINUS_EXPR,
                                 gfc_array_index_type,
4114 4115
                                 fold_convert (gfc_array_index_type, tmp2),
                                 fold_convert (gfc_array_index_type, tmp));
4116 4117 4118 4119 4120 4121
	  offset = fold_build2_loc (input_location, PLUS_EXPR,
				    gfc_array_index_type, offset, tmp);

	  VEC_safe_push (tree, gc, stringargs, offset);
	}

4122
      VEC_safe_push (tree, gc, arglist, parmse.expr);
4123
    }
4124 4125
  gfc_finish_interface_mapping (&mapping, &se->pre, &se->post);

4126 4127 4128 4129 4130
  if (comp)
    ts = comp->ts;
  else
   ts = sym->ts;

4131 4132 4133
  if (ts.type == BT_CHARACTER && sym->attr.is_bind_c)
    se->string_length = build_int_cst (gfc_charlen_type_node, 1);
  else if (ts.type == BT_CHARACTER)
4134
    {
4135
      if (ts.u.cl->length == NULL)
4136 4137 4138
	{
	  /* Assumed character length results are not allowed by 5.1.1.5 of the
	     standard and are trapped in resolve.c; except in the case of SPREAD
4139 4140 4141 4142
	     (and other intrinsics?) and dummy functions.  In the case of SPREAD,
	     we take the character length of the first argument for the result.
	     For dummies, we have to look through the formal argument list for
	     this function and use the character length found there.*/
4143 4144 4145
	  if (ts.deferred && (sym->attr.allocatable || sym->attr.pointer))
	    cl.backend_decl = gfc_create_var (gfc_charlen_type_node, "slen");
	  else if (!sym->attr.dummy)
4146
	    cl.backend_decl = VEC_index (tree, stringargs, 0);
4147 4148 4149 4150 4151
	  else
	    {
	      formal = sym->ns->proc_name->formal;
	      for (; formal; formal = formal->next)
		if (strcmp (formal->sym->name, sym->name) == 0)
4152
		  cl.backend_decl = formal->sym->ts.u.cl->backend_decl;
4153 4154
	    }
        }
Tobias Burnus committed
4155
      else
4156
        {
4157 4158
	  tree tmp;

4159 4160 4161
	  /* Calculate the length of the returned string.  */
	  gfc_init_se (&parmse, NULL);
	  if (need_interface_mapping)
4162
	    gfc_apply_interface_mapping (&mapping, &parmse, ts.u.cl->length);
4163
	  else
4164
	    gfc_conv_expr (&parmse, ts.u.cl->length);
4165 4166
	  gfc_add_block_to_block (&se->pre, &parmse.pre);
	  gfc_add_block_to_block (&se->post, &parmse.post);
4167 4168
	  
	  tmp = fold_convert (gfc_charlen_type_node, parmse.expr);
4169 4170 4171
	  tmp = fold_build2_loc (input_location, MAX_EXPR,
				 gfc_charlen_type_node, tmp,
				 build_int_cst (gfc_charlen_type_node, 0));
4172
	  cl.backend_decl = tmp;
4173
	}
4174 4175 4176 4177

      /* Set up a charlen structure for it.  */
      cl.next = NULL;
      cl.length = NULL;
4178
      ts.u.cl = &cl;
4179 4180 4181 4182

      len = cl.backend_decl;
    }

4183
  byref = (comp && (comp->attr.dimension || comp->ts.type == BT_CHARACTER))
4184
	  || (!comp && gfc_return_by_reference (sym));
4185 4186 4187
  if (byref)
    {
      if (se->direct_byref)
4188
	{
4189
	  /* Sometimes, too much indirection can be applied; e.g. for
4190 4191 4192 4193 4194
	     function_result = array_valued_recursive_function.  */
	  if (TREE_TYPE (TREE_TYPE (se->expr))
		&& TREE_TYPE (TREE_TYPE (TREE_TYPE (se->expr)))
		&& GFC_DESCRIPTOR_TYPE_P
			(TREE_TYPE (TREE_TYPE (TREE_TYPE (se->expr)))))
4195 4196
	    se->expr = build_fold_indirect_ref_loc (input_location,
						se->expr);
4197

4198 4199
	  /* If the lhs of an assignment x = f(..) is allocatable and
	     f2003 is allowed, we must do the automatic reallocation.
4200
	     TODO - deal with intrinsics, without using a temporary.  */
4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211 4212 4213 4214 4215 4216 4217 4218 4219 4220 4221
	  if (gfc_option.flag_realloc_lhs
		&& se->ss && se->ss->loop_chain
		&& se->ss->loop_chain->is_alloc_lhs
		&& !expr->value.function.isym
		&& sym->result->as != NULL)
	    {
	      /* Evaluate the bounds of the result, if known.  */
	      gfc_set_loop_bounds_from_array_spec (&mapping, se,
						   sym->result->as);

	      /* Perform the automatic reallocation.  */
	      tmp = gfc_alloc_allocatable_for_assignment (se->loop,
							  expr, NULL);
	      gfc_add_expr_to_block (&se->pre, tmp);

	      /* Pass the temporary as the first argument.  */
	      result = info->descriptor;
	    }
	  else
	    result = build_fold_indirect_ref_loc (input_location,
						  se->expr);
4222
	  VEC_safe_push (tree, gc, retargs, se->expr);
4223
	}
4224 4225 4226 4227 4228 4229
      else if (comp && comp->attr.dimension)
	{
	  gcc_assert (se->loop && info);

	  /* Set the type of the array.  */
	  tmp = gfc_typenode_for_spec (&comp->ts);
4230
	  gcc_assert (se->ss->dimen == se->loop->dimen);
4231 4232 4233 4234

	  /* Evaluate the bounds of the result, if known.  */
	  gfc_set_loop_bounds_from_array_spec (&mapping, se, comp->as);

4235 4236 4237 4238 4239 4240 4241 4242 4243 4244 4245
	  /* If the lhs of an assignment x = f(..) is allocatable and
	     f2003 is allowed, we must not generate the function call
	     here but should just send back the results of the mapping.
	     This is signalled by the function ss being flagged.  */
	  if (gfc_option.flag_realloc_lhs
		&& se->ss && se->ss->is_alloc_lhs)
	    {
	      gfc_free_interface_mapping (&mapping);
	      return has_alternate_specifier;
	    }

4246 4247 4248 4249
	  /* Create a temporary to store the result.  In case the function
	     returns a pointer, the temporary will be a shallow copy and
	     mustn't be deallocated.  */
	  callee_alloc = comp->attr.allocatable || comp->attr.pointer;
4250
	  gfc_trans_create_temp_array (&se->pre, &se->post, se->ss,
4251
				       tmp, NULL_TREE, false,
4252 4253
				       !comp->attr.pointer, callee_alloc,
				       &se->ss->info->expr->where);
4254 4255

	  /* Pass the temporary as the first argument.  */
4256 4257
	  result = info->descriptor;
	  tmp = gfc_build_addr_expr (NULL_TREE, result);
4258
	  VEC_safe_push (tree, gc, retargs, tmp);
4259
	}
4260
      else if (!comp && sym->result->attr.dimension)
4261 4262 4263 4264 4265
	{
	  gcc_assert (se->loop && info);

	  /* Set the type of the array.  */
	  tmp = gfc_typenode_for_spec (&ts);
4266
	  gcc_assert (se->ss->dimen == se->loop->dimen);
4267

4268 4269 4270
	  /* Evaluate the bounds of the result, if known.  */
	  gfc_set_loop_bounds_from_array_spec (&mapping, se, sym->result->as);

4271 4272 4273 4274 4275 4276 4277 4278 4279 4280 4281
	  /* If the lhs of an assignment x = f(..) is allocatable and
	     f2003 is allowed, we must not generate the function call
	     here but should just send back the results of the mapping.
	     This is signalled by the function ss being flagged.  */
	  if (gfc_option.flag_realloc_lhs
		&& se->ss && se->ss->is_alloc_lhs)
	    {
	      gfc_free_interface_mapping (&mapping);
	      return has_alternate_specifier;
	    }

4282 4283 4284 4285
	  /* Create a temporary to store the result.  In case the function
	     returns a pointer, the temporary will be a shallow copy and
	     mustn't be deallocated.  */
	  callee_alloc = sym->attr.allocatable || sym->attr.pointer;
4286
	  gfc_trans_create_temp_array (&se->pre, &se->post, se->ss,
4287
				       tmp, NULL_TREE, false,
4288 4289
				       !sym->attr.pointer, callee_alloc,
				       &se->ss->info->expr->where);
4290 4291

	  /* Pass the temporary as the first argument.  */
4292 4293
	  result = info->descriptor;
	  tmp = gfc_build_addr_expr (NULL_TREE, result);
4294
	  VEC_safe_push (tree, gc, retargs, tmp);
4295 4296 4297 4298
	}
      else if (ts.type == BT_CHARACTER)
	{
	  /* Pass the string length.  */
4299
	  type = gfc_get_character_type (ts.kind, ts.u.cl);
4300 4301 4302 4303
	  type = build_pointer_type (type);

	  /* Return an address to a char[0:len-1]* temporary for
	     character pointers.  */
4304 4305
	  if ((!comp && (sym->attr.pointer || sym->attr.allocatable))
	       || (comp && (comp->attr.pointer || comp->attr.allocatable)))
4306
	    {
4307
	      var = gfc_create_var (type, "pstr");
4308

4309 4310 4311 4312 4313 4314
	      if ((!comp && sym->attr.allocatable)
		  || (comp && comp->attr.allocatable))
		gfc_add_modify (&se->pre, var,
				fold_convert (TREE_TYPE (var),
					      null_pointer_node));

4315
	      /* Provide an address expression for the function arguments.  */
4316
	      var = gfc_build_addr_expr (NULL_TREE, var);
4317 4318 4319 4320
	    }
	  else
	    var = gfc_conv_string_tmp (se, type, len);

4321
	  VEC_safe_push (tree, gc, retargs, var);
4322 4323 4324 4325 4326 4327
	}
      else
	{
	  gcc_assert (gfc_option.flag_f2c && ts.type == BT_COMPLEX);

	  type = gfc_get_complex_type (ts.kind);
4328
	  var = gfc_build_addr_expr (NULL_TREE, gfc_create_var (type, "cmplx"));
4329
	  VEC_safe_push (tree, gc, retargs, var);
4330 4331
	}

4332 4333 4334 4335 4336 4337 4338 4339 4340
      if (ts.type == BT_CHARACTER && ts.deferred
	    && (sym->attr.allocatable || sym->attr.pointer))
	{
	  tmp = len;
	  if (TREE_CODE (tmp) != VAR_DECL)
	    tmp = gfc_evaluate_now (len, &se->pre);
	  len = gfc_build_addr_expr (NULL_TREE, tmp);
	}

4341 4342
      /* Add the string length to the argument list.  */
      if (ts.type == BT_CHARACTER)
4343
	VEC_safe_push (tree, gc, retargs, len);
4344
    }
4345
  gfc_free_interface_mapping (&mapping);
4346

4347 4348 4349 4350 4351
  /* We need to glom RETARGS + ARGLIST + STRINGARGS + APPEND_ARGS.  */
  arglen = (VEC_length (tree, arglist)
	    + VEC_length (tree, stringargs) + VEC_length (tree, append_args));
  VEC_reserve_exact (tree, gc, retargs, arglen);

4352
  /* Add the return arguments.  */
4353
  VEC_splice (tree, retargs, arglist);
4354 4355

  /* Add the hidden string length parameters to the arguments.  */
4356
  VEC_splice (tree, retargs, stringargs);
4357

4358 4359
  /* We may want to append extra arguments here.  This is used e.g. for
     calls to libgfortran_matmul_??, which need extra information.  */
4360 4361 4362
  if (!VEC_empty (tree, append_args))
    VEC_splice (tree, retargs, append_args);
  arglist = retargs;
4363

4364
  /* Generate the actual call.  */
4365 4366 4367 4368
  if (base_object == NULL_TREE)
    conv_function_val (se, sym, expr);
  else
    conv_base_obj_fcn_val (se, base_object, expr);
4369

4370
  /* If there are alternate return labels, function type should be
4371
     integer.  Can't modify the type in place though, since it can be shared
4372
     with other functions.  For dummy arguments, the typing is done to
Mike Stump committed
4373
     this result, even if it has to be repeated for each call.  */
4374 4375 4376
  if (has_alternate_specifier
      && TREE_TYPE (TREE_TYPE (TREE_TYPE (se->expr))) != integer_type_node)
    {
4377 4378 4379 4380 4381
      if (!sym->attr.dummy)
	{
	  TREE_TYPE (sym->backend_decl)
		= build_function_type (integer_type_node,
		      TYPE_ARG_TYPES (TREE_TYPE (sym->backend_decl)));
4382
	  se->expr = gfc_build_addr_expr (NULL_TREE, sym->backend_decl);
4383 4384 4385
	}
      else
	TREE_TYPE (TREE_TYPE (TREE_TYPE (se->expr))) = integer_type_node;
4386
    }
4387 4388

  fntype = TREE_TYPE (TREE_TYPE (se->expr));
4389
  se->expr = build_call_vec (TREE_TYPE (fntype), se->expr, arglist);
4390

4391 4392 4393 4394
  /* If we have a pointer function, but we don't want a pointer, e.g.
     something like
        x = f()
     where f is pointer valued, we have to dereference the result.  */
4395
  if (!se->want_pointer && !byref
4396 4397 4398
      && ((!comp && (sym->attr.pointer || sym->attr.allocatable))
	  || (comp && (comp->attr.pointer || comp->attr.allocatable))))
    se->expr = build_fold_indirect_ref_loc (input_location, se->expr);
4399

4400 4401 4402 4403 4404 4405 4406 4407 4408
  /* f2c calling conventions require a scalar default real function to
     return a double precision result.  Convert this back to default
     real.  We only care about the cases that can happen in Fortran 77.
  */
  if (gfc_option.flag_f2c && sym->ts.type == BT_REAL
      && sym->ts.kind == gfc_default_real_kind
      && !sym->attr.always_explicit)
    se->expr = fold_convert (gfc_get_real_type (sym->ts.kind), se->expr);

4409 4410
  /* A pure function may still have side-effects - it may modify its
     parameters.  */
4411 4412 4413 4414 4415 4416
  TREE_SIDE_EFFECTS (se->expr) = 1;
#if 0
  if (!sym->attr.pure)
    TREE_SIDE_EFFECTS (se->expr) = 1;
#endif

4417
  if (byref)
4418
    {
4419
      /* Add the function call to the pre chain.  There is no expression.  */
4420
      gfc_add_expr_to_block (&se->pre, se->expr);
4421
      se->expr = NULL_TREE;
4422

4423
      if (!se->direct_byref)
4424
	{
4425
	  if ((sym->attr.dimension && !comp) || (comp && comp->attr.dimension))
4426
	    {
4427
	      if (gfc_option.rtcheck & GFC_RTCHECK_BOUNDS)
4428 4429 4430
		{
		  /* Check the data pointer hasn't been modified.  This would
		     happen in a function returning a pointer.  */
4431
		  tmp = gfc_conv_descriptor_data_get (info->descriptor);
4432 4433 4434
		  tmp = fold_build2_loc (input_location, NE_EXPR,
					 boolean_type_node,
					 tmp, info->data);
4435 4436
		  gfc_trans_runtime_check (true, false, tmp, &se->pre, NULL,
					   gfc_msg_fault);
4437 4438
		}
	      se->expr = info->descriptor;
4439 4440
	      /* Bundle in the string length.  */
	      se->string_length = len;
4441
	    }
4442
	  else if (ts.type == BT_CHARACTER)
4443
	    {
4444
	      /* Dereference for character pointer results.  */
4445 4446 4447
	      if ((!comp && (sym->attr.pointer || sym->attr.allocatable))
		  || (comp && (comp->attr.pointer || comp->attr.allocatable)))
		se->expr = build_fold_indirect_ref_loc (input_location, var);
4448
	      else
4449 4450
	        se->expr = var;

4451 4452 4453 4454
	      if (!ts.deferred)
		se->string_length = len;
	      else if (sym->attr.allocatable || sym->attr.pointer)
		se->string_length = cl.backend_decl;
4455 4456
	    }
	  else
4457
	    {
4458 4459
	      gcc_assert (ts.type == BT_COMPLEX && gfc_option.flag_f2c);
	      se->expr = build_fold_indirect_ref_loc (input_location, var);
4460
	    }
4461 4462
	}
    }
4463

4464 4465
  /* Follow the function call with the argument post block.  */
  if (byref)
4466 4467 4468 4469 4470 4471 4472 4473 4474 4475 4476 4477 4478 4479 4480 4481 4482 4483 4484 4485 4486 4487 4488 4489 4490 4491
    {
      gfc_add_block_to_block (&se->pre, &post);

      /* Transformational functions of derived types with allocatable
         components must have the result allocatable components copied.  */
      arg = expr->value.function.actual;
      if (result && arg && expr->rank
	    && expr->value.function.isym
	    && expr->value.function.isym->transformational
	    && arg->expr->ts.type == BT_DERIVED
	    && arg->expr->ts.u.derived->attr.alloc_comp)
	{
	  tree tmp2;
	  /* Copy the allocatable components.  We have to use a
	     temporary here to prevent source allocatable components
	     from being corrupted.  */
	  tmp2 = gfc_evaluate_now (result, &se->pre);
	  tmp = gfc_copy_alloc_comp (arg->expr->ts.u.derived,
				     result, tmp2, expr->rank);
	  gfc_add_expr_to_block (&se->pre, tmp);
	  tmp = gfc_copy_allocatable_data (result, tmp2, TREE_TYPE(tmp2),
				           expr->rank);
	  gfc_add_expr_to_block (&se->pre, tmp);

	  /* Finally free the temporary's data field.  */
	  tmp = gfc_conv_descriptor_data_get (tmp2);
4492 4493 4494
	  tmp = gfc_deallocate_with_status (tmp, NULL_TREE, NULL_TREE,
					    NULL_TREE, NULL_TREE, true,
					    NULL, false);
4495 4496 4497
	  gfc_add_expr_to_block (&se->pre, tmp);
	}
    }
4498 4499 4500
  else
    gfc_add_block_to_block (&se->post, &post);

4501
  return has_alternate_specifier;
4502 4503 4504
}


4505 4506 4507 4508 4509 4510 4511 4512 4513 4514
/* Fill a character string with spaces.  */

static tree
fill_with_spaces (tree start, tree type, tree size)
{
  stmtblock_t block, loop;
  tree i, el, exit_label, cond, tmp;

  /* For a simple char type, we can call memset().  */
  if (compare_tree_int (TYPE_SIZE_UNIT (type), 1) == 0)
4515
    return build_call_expr_loc (input_location,
4516 4517
			    builtin_decl_explicit (BUILT_IN_MEMSET),
			    3, start,
4518 4519 4520 4521 4522 4523 4524 4525 4526 4527 4528 4529
			    build_int_cst (gfc_get_int_type (gfc_c_int_kind),
					   lang_hooks.to_target_charset (' ')),
			    size);

  /* Otherwise, we use a loop:
	for (el = start, i = size; i > 0; el--, i+= TYPE_SIZE_UNIT (type))
	  *el = (type) ' ';
   */

  /* Initialize variables.  */
  gfc_init_block (&block);
  i = gfc_create_var (sizetype, "i");
4530
  gfc_add_modify (&block, i, fold_convert (sizetype, size));
4531
  el = gfc_create_var (build_pointer_type (type), "el");
4532
  gfc_add_modify (&block, el, fold_convert (TREE_TYPE (el), start));
4533 4534 4535 4536 4537 4538 4539 4540
  exit_label = gfc_build_label_decl (NULL_TREE);
  TREE_USED (exit_label) = 1;


  /* Loop body.  */
  gfc_init_block (&loop);

  /* Exit condition.  */
4541
  cond = fold_build2_loc (input_location, LE_EXPR, boolean_type_node, i,
4542
			  build_zero_cst (sizetype));
4543
  tmp = build1_v (GOTO_EXPR, exit_label);
4544 4545
  tmp = fold_build3_loc (input_location, COND_EXPR, void_type_node, cond, tmp,
			 build_empty_stmt (input_location));
4546 4547 4548
  gfc_add_expr_to_block (&loop, tmp);

  /* Assignment.  */
4549 4550 4551
  gfc_add_modify (&loop,
		  fold_build1_loc (input_location, INDIRECT_REF, type, el),
		  build_int_cst (type, lang_hooks.to_target_charset (' ')));
4552 4553

  /* Increment loop variables.  */
4554 4555 4556 4557
  gfc_add_modify (&loop, i,
		  fold_build2_loc (input_location, MINUS_EXPR, sizetype, i,
				   TYPE_SIZE_UNIT (type)));
  gfc_add_modify (&loop, el,
4558 4559
		  fold_build_pointer_plus_loc (input_location,
					       el, TYPE_SIZE_UNIT (type)));
4560 4561 4562 4563 4564 4565 4566 4567 4568 4569 4570 4571 4572 4573 4574

  /* Making the loop... actually loop!  */
  tmp = gfc_finish_block (&loop);
  tmp = build1_v (LOOP_EXPR, tmp);
  gfc_add_expr_to_block (&block, tmp);

  /* The exit label.  */
  tmp = build1_v (LABEL_EXPR, exit_label);
  gfc_add_expr_to_block (&block, tmp);


  return gfc_finish_block (&block);
}


4575 4576
/* Generate code to copy a string.  */

4577
void
4578
gfc_trans_string_copy (stmtblock_t * block, tree dlength, tree dest,
4579
		       int dkind, tree slength, tree src, int skind)
4580
{
4581
  tree tmp, dlen, slen;
Feng Wang committed
4582 4583
  tree dsc;
  tree ssc;
4584
  tree cond;
4585 4586 4587 4588
  tree cond2;
  tree tmp2;
  tree tmp3;
  tree tmp4;
4589
  tree chartype;
4590
  stmtblock_t tempblock;
Feng Wang committed
4591

4592 4593
  gcc_assert (dkind == skind);

4594 4595 4596
  if (slength != NULL_TREE)
    {
      slen = fold_convert (size_type_node, gfc_evaluate_now (slength, block));
4597
      ssc = gfc_string_to_single_character (slen, src, skind);
4598 4599 4600 4601 4602 4603 4604 4605 4606 4607
    }
  else
    {
      slen = build_int_cst (size_type_node, 1);
      ssc =  src;
    }

  if (dlength != NULL_TREE)
    {
      dlen = fold_convert (size_type_node, gfc_evaluate_now (dlength, block));
4608
      dsc = gfc_string_to_single_character (dlen, dest, dkind);
4609 4610 4611 4612 4613 4614 4615
    }
  else
    {
      dlen = build_int_cst (size_type_node, 1);
      dsc =  dest;
    }

4616 4617
  /* Assign directly if the types are compatible.  */
  if (dsc != NULL_TREE && ssc != NULL_TREE
4618
      && TREE_TYPE (dsc) == TREE_TYPE (ssc))
Feng Wang committed
4619
    {
4620
      gfc_add_modify (block, dsc, ssc);
Feng Wang committed
4621 4622
      return;
    }
4623

4624
  /* Do nothing if the destination length is zero.  */
4625 4626
  cond = fold_build2_loc (input_location, GT_EXPR, boolean_type_node, dlen,
			  build_int_cst (size_type_node, 0));
4627

4628 4629 4630 4631 4632 4633 4634 4635 4636 4637 4638 4639 4640 4641 4642 4643 4644 4645 4646 4647 4648 4649
  /* The following code was previously in _gfortran_copy_string:

       // The two strings may overlap so we use memmove.
       void
       copy_string (GFC_INTEGER_4 destlen, char * dest,
                    GFC_INTEGER_4 srclen, const char * src)
       {
         if (srclen >= destlen)
           {
             // This will truncate if too long.
             memmove (dest, src, destlen);
           }
         else
           {
             memmove (dest, src, srclen);
             // Pad with spaces.
             memset (&dest[srclen], ' ', destlen - srclen);
           }
       }

     We're now doing it here for better optimization, but the logic
     is the same.  */
4650

4651 4652 4653
  /* For non-default character kinds, we have to multiply the string
     length by the base type size.  */
  chartype = gfc_get_char_type (dkind);
4654 4655 4656 4657 4658 4659 4660 4661
  slen = fold_build2_loc (input_location, MULT_EXPR, size_type_node,
			  fold_convert (size_type_node, slen),
			  fold_convert (size_type_node,
					TYPE_SIZE_UNIT (chartype)));
  dlen = fold_build2_loc (input_location, MULT_EXPR, size_type_node,
			  fold_convert (size_type_node, dlen),
			  fold_convert (size_type_node,
					TYPE_SIZE_UNIT (chartype)));
4662

4663
  if (dlength && POINTER_TYPE_P (TREE_TYPE (dest)))
4664 4665 4666 4667
    dest = fold_convert (pvoid_type_node, dest);
  else
    dest = gfc_build_addr_expr (pvoid_type_node, dest);

4668
  if (slength && POINTER_TYPE_P (TREE_TYPE (src)))
4669 4670 4671
    src = fold_convert (pvoid_type_node, src);
  else
    src = gfc_build_addr_expr (pvoid_type_node, src);
4672

4673
  /* Truncate string if source is too long.  */
4674 4675
  cond2 = fold_build2_loc (input_location, GE_EXPR, boolean_type_node, slen,
			   dlen);
4676
  tmp2 = build_call_expr_loc (input_location,
4677 4678
			      builtin_decl_explicit (BUILT_IN_MEMMOVE),
			      3, dest, src, dlen);
4679 4680

  /* Else copy and pad with spaces.  */
4681
  tmp3 = build_call_expr_loc (input_location,
4682 4683
			      builtin_decl_explicit (BUILT_IN_MEMMOVE),
			      3, dest, src, slen);
4684

4685
  tmp4 = fold_build_pointer_plus_loc (input_location, dest, slen);
4686
  tmp4 = fill_with_spaces (tmp4, chartype,
4687 4688
			   fold_build2_loc (input_location, MINUS_EXPR,
					    TREE_TYPE(dlen), dlen, slen));
4689 4690 4691 4692 4693 4694 4695

  gfc_init_block (&tempblock);
  gfc_add_expr_to_block (&tempblock, tmp3);
  gfc_add_expr_to_block (&tempblock, tmp4);
  tmp3 = gfc_finish_block (&tempblock);

  /* The whole copy_string function is there.  */
4696 4697 4698 4699
  tmp = fold_build3_loc (input_location, COND_EXPR, void_type_node, cond2,
			 tmp2, tmp3);
  tmp = fold_build3_loc (input_location, COND_EXPR, void_type_node, cond, tmp,
			 build_empty_stmt (input_location));
4700 4701 4702 4703
  gfc_add_expr_to_block (block, tmp);
}


4704 4705 4706 4707 4708 4709 4710 4711 4712 4713 4714 4715 4716 4717
/* Translate a statement function.
   The value of a statement function reference is obtained by evaluating the
   expression using the values of the actual arguments for the values of the
   corresponding dummy arguments.  */

static void
gfc_conv_statement_function (gfc_se * se, gfc_expr * expr)
{
  gfc_symbol *sym;
  gfc_symbol *fsym;
  gfc_formal_arglist *fargs;
  gfc_actual_arglist *args;
  gfc_se lse;
  gfc_se rse;
4718 4719 4720 4721 4722
  gfc_saved_var *saved_vars;
  tree *temp_vars;
  tree type;
  tree tmp;
  int n;
4723 4724 4725 4726 4727 4728

  sym = expr->symtree->n.sym;
  args = expr->value.function.actual;
  gfc_init_se (&lse, NULL);
  gfc_init_se (&rse, NULL);

4729
  n = 0;
4730
  for (fargs = sym->formal; fargs; fargs = fargs->next)
4731
    n++;
4732 4733
  saved_vars = XCNEWVEC (gfc_saved_var, n);
  temp_vars = XCNEWVEC (tree, n);
4734 4735

  for (fargs = sym->formal, n = 0; fargs; fargs = fargs->next, n++)
4736 4737 4738
    {
      /* Each dummy shall be specified, explicitly or implicitly, to be
         scalar.  */
4739
      gcc_assert (fargs->sym->attr.dimension == 0);
4740 4741
      fsym = fargs->sym;

4742
      if (fsym->ts.type == BT_CHARACTER)
4743
        {
4744
	  /* Copy string arguments.  */
4745
	  tree arglen;
4746

4747
	  gcc_assert (fsym->ts.u.cl && fsym->ts.u.cl->length
4748
		      && fsym->ts.u.cl->length->expr_type == EXPR_CONSTANT);
4749

4750 4751 4752 4753
	  /* Create a temporary to hold the value.  */
          if (fsym->ts.u.cl->backend_decl == NULL_TREE)
	     fsym->ts.u.cl->backend_decl
		= gfc_conv_constant_to_tree (fsym->ts.u.cl->length);
4754

4755 4756 4757 4758 4759 4760 4761 4762 4763
	  type = gfc_get_character_type (fsym->ts.kind, fsym->ts.u.cl);
	  temp_vars[n] = gfc_create_var (type, fsym->name);

	  arglen = TYPE_MAX_VALUE (TYPE_DOMAIN (type));

	  gfc_conv_expr (&rse, args->expr);
	  gfc_conv_string_parameter (&rse);
	  gfc_add_block_to_block (&se->pre, &lse.pre);
	  gfc_add_block_to_block (&se->pre, &rse.pre);
4764

4765
	  gfc_trans_string_copy (&se->pre, arglen, temp_vars[n], fsym->ts.kind,
4766
				 rse.string_length, rse.expr, fsym->ts.kind);
4767 4768
	  gfc_add_block_to_block (&se->pre, &lse.post);
	  gfc_add_block_to_block (&se->pre, &rse.post);
4769 4770 4771 4772
        }
      else
        {
          /* For everything else, just evaluate the expression.  */
4773 4774 4775 4776 4777

	  /* Create a temporary to hold the value.  */
	  type = gfc_typenode_for_spec (&fsym->ts);
	  temp_vars[n] = gfc_create_var (type, fsym->name);

4778 4779 4780
          gfc_conv_expr (&lse, args->expr);

          gfc_add_block_to_block (&se->pre, &lse.pre);
4781
          gfc_add_modify (&se->pre, temp_vars[n], lse.expr);
4782 4783
          gfc_add_block_to_block (&se->pre, &lse.post);
        }
4784

4785 4786
      args = args->next;
    }
4787 4788 4789 4790 4791

  /* Use the temporary variables in place of the real ones.  */
  for (fargs = sym->formal, n = 0; fargs; fargs = fargs->next, n++)
    gfc_shadow_sym (fargs->sym, temp_vars[n], &saved_vars[n]);

4792
  gfc_conv_expr (se, sym->value);
4793 4794 4795

  if (sym->ts.type == BT_CHARACTER)
    {
4796
      gfc_conv_const_charlen (sym->ts.u.cl);
4797 4798 4799 4800

      /* Force the expression to the correct length.  */
      if (!INTEGER_CST_P (se->string_length)
	  || tree_int_cst_lt (se->string_length,
4801
			      sym->ts.u.cl->backend_decl))
4802
	{
4803
	  type = gfc_get_character_type (sym->ts.kind, sym->ts.u.cl);
4804 4805
	  tmp = gfc_create_var (type, sym->name);
	  tmp = gfc_build_addr_expr (build_pointer_type (type), tmp);
4806
	  gfc_trans_string_copy (&se->pre, sym->ts.u.cl->backend_decl, tmp,
4807 4808
				 sym->ts.kind, se->string_length, se->expr,
				 sym->ts.kind);
4809 4810
	  se->expr = tmp;
	}
4811
      se->string_length = sym->ts.u.cl->backend_decl;
4812 4813
    }

4814
  /* Restore the original variables.  */
4815 4816
  for (fargs = sym->formal, n = 0; fargs; fargs = fargs->next, n++)
    gfc_restore_sym (fargs->sym, &saved_vars[n]);
4817
  free (saved_vars);
4818 4819 4820 4821 4822 4823 4824 4825 4826 4827 4828 4829 4830 4831 4832 4833
}


/* Translate a function expression.  */

static void
gfc_conv_function_expr (gfc_se * se, gfc_expr * expr)
{
  gfc_symbol *sym;

  if (expr->value.function.isym)
    {
      gfc_conv_intrinsic_function (se, expr);
      return;
    }

4834
  /* We distinguish statement functions from general functions to improve
4835 4836 4837 4838 4839 4840 4841 4842 4843 4844 4845 4846
     runtime performance.  */
  if (expr->symtree->n.sym->attr.proc == PROC_ST_FUNCTION)
    {
      gfc_conv_statement_function (se, expr);
      return;
    }

  /* expr.value.function.esym is the resolved (specific) function symbol for
     most functions.  However this isn't set for dummy procedures.  */
  sym = expr->value.function.esym;
  if (!sym)
    sym = expr->symtree->n.sym;
4847

4848
  gfc_conv_procedure_call (se, sym, expr->value.function.actual, expr, NULL);
4849 4850
}

4851

4852 4853 4854 4855 4856 4857 4858 4859 4860 4861 4862 4863 4864 4865 4866 4867 4868 4869 4870 4871 4872 4873 4874 4875 4876 4877 4878 4879 4880 4881 4882 4883 4884 4885 4886 4887 4888
/* Determine whether the given EXPR_CONSTANT is a zero initializer.  */

static bool
is_zero_initializer_p (gfc_expr * expr)
{
  if (expr->expr_type != EXPR_CONSTANT)
    return false;

  /* We ignore constants with prescribed memory representations for now.  */
  if (expr->representation.string)
    return false;

  switch (expr->ts.type)
    {
    case BT_INTEGER:
      return mpz_cmp_si (expr->value.integer, 0) == 0;

    case BT_REAL:
      return mpfr_zero_p (expr->value.real)
	     && MPFR_SIGN (expr->value.real) >= 0;

    case BT_LOGICAL:
      return expr->value.logical == 0;

    case BT_COMPLEX:
      return mpfr_zero_p (mpc_realref (expr->value.complex))
	     && MPFR_SIGN (mpc_realref (expr->value.complex)) >= 0
             && mpfr_zero_p (mpc_imagref (expr->value.complex))
	     && MPFR_SIGN (mpc_imagref (expr->value.complex)) >= 0;

    default:
      break;
    }
  return false;
}


4889 4890 4891
static void
gfc_conv_array_constructor_expr (gfc_se * se, gfc_expr * expr)
{
4892 4893 4894 4895
  gfc_ss *ss;

  ss = se->ss;
  gcc_assert (ss != NULL && ss != gfc_ss_terminator);
4896
  gcc_assert (ss->info->expr == expr && ss->info->type == GFC_SS_CONSTRUCTOR);
4897 4898 4899 4900 4901

  gfc_conv_tmp_array_ref (se);
}


4902
/* Build a static initializer.  EXPR is the expression for the initial value.
4903 4904
   The other parameters describe the variable of the component being 
   initialized. EXPR may be null.  */
4905

4906 4907
tree
gfc_conv_initializer (gfc_expr * expr, gfc_typespec * ts, tree type,
4908
		      bool array, bool pointer, bool procptr)
4909 4910 4911
{
  gfc_se se;

4912
  if (!(expr || pointer || procptr))
4913 4914
    return NULL_TREE;

4915 4916 4917 4918
  /* Check if we have ISOCBINDING_NULL_PTR or ISOCBINDING_NULL_FUNPTR
     (these are the only two iso_c_binding derived types that can be
     used as initialization expressions).  If so, we need to modify
     the 'expr' to be that for a (void *).  */
4919
  if (expr != NULL && expr->ts.type == BT_DERIVED
4920
      && expr->ts.is_iso_c && expr->ts.u.derived)
4921
    {
4922
      gfc_symbol *derived = expr->ts.u.derived;
4923 4924 4925

      /* The derived symbol has already been converted to a (void *).  Use
	 its kind.  */
Jerry DeLisle committed
4926
      expr = gfc_get_int_expr (derived->ts.kind, NULL, 0);
4927
      expr->ts.f90_type = derived->ts.f90_type;
Tobias Burnus committed
4928 4929 4930

      gfc_init_se (&se, NULL);
      gfc_conv_constant (&se, expr);
4931
      gcc_assert (TREE_CODE (se.expr) != CONSTRUCTOR);
Tobias Burnus committed
4932
      return se.expr;
4933
    }
4934
  
4935
  if (array && !procptr)
4936
    {
4937
      tree ctor;
4938 4939
      /* Arrays need special handling.  */
      if (pointer)
4940
	ctor = gfc_build_null_descriptor (type);
4941 4942
      /* Special case assigning an array to zero.  */
      else if (is_zero_initializer_p (expr))
4943
        ctor = build_constructor (type, NULL);
4944
      else
4945 4946 4947
	ctor = gfc_conv_array_initializer (type, expr);
      TREE_STATIC (ctor) = 1;
      return ctor;
4948
    }
4949
  else if (pointer || procptr)
4950 4951 4952 4953 4954 4955 4956 4957
    {
      if (!expr || expr->expr_type == EXPR_NULL)
	return fold_convert (type, null_pointer_node);
      else
	{
	  gfc_init_se (&se, NULL);
	  se.want_pointer = 1;
	  gfc_conv_expr (&se, expr);
4958
          gcc_assert (TREE_CODE (se.expr) != CONSTRUCTOR);
4959 4960 4961
	  return se.expr;
	}
    }
4962 4963 4964 4965 4966
  else
    {
      switch (ts->type)
	{
	case BT_DERIVED:
4967
	case BT_CLASS:
4968
	  gfc_init_se (&se, NULL);
4969 4970 4971 4972
	  if (ts->type == BT_CLASS && expr->expr_type == EXPR_NULL)
	    gfc_conv_structure (&se, gfc_class_null_initializer(ts), 1);
	  else
	    gfc_conv_structure (&se, expr, 1);
4973 4974
	  gcc_assert (TREE_CODE (se.expr) == CONSTRUCTOR);
	  TREE_STATIC (se.expr) = 1;
4975 4976 4977
	  return se.expr;

	case BT_CHARACTER:
4978 4979 4980 4981 4982
	  {
	    tree ctor = gfc_conv_string_init (ts->u.cl->backend_decl,expr);
	    TREE_STATIC (ctor) = 1;
	    return ctor;
	  }
4983 4984 4985 4986

	default:
	  gfc_init_se (&se, NULL);
	  gfc_conv_constant (&se, expr);
4987
	  gcc_assert (TREE_CODE (se.expr) != CONSTRUCTOR);
4988 4989 4990 4991 4992
	  return se.expr;
	}
    }
}
  
4993 4994 4995 4996 4997 4998 4999
static tree
gfc_trans_subarray_assign (tree dest, gfc_component * cm, gfc_expr * expr)
{
  gfc_se rse;
  gfc_se lse;
  gfc_ss *rss;
  gfc_ss *lss;
5000
  gfc_array_info *lss_array;
5001 5002 5003 5004 5005 5006 5007 5008 5009 5010 5011 5012 5013 5014 5015 5016 5017
  stmtblock_t body;
  stmtblock_t block;
  gfc_loopinfo loop;
  int n;
  tree tmp;

  gfc_start_block (&block);

  /* Initialize the scalarizer.  */
  gfc_init_loopinfo (&loop);

  gfc_init_se (&lse, NULL);
  gfc_init_se (&rse, NULL);

  /* Walk the rhs.  */
  rss = gfc_walk_expr (expr);
  if (rss == gfc_ss_terminator)
5018 5019
    /* The rhs is scalar.  Add a ss for the expression.  */
    rss = gfc_get_scalar_ss (gfc_ss_terminator, expr);
5020 5021

  /* Create a SS for the destination.  */
5022 5023
  lss = gfc_get_array_ss (gfc_ss_terminator, NULL, cm->as->rank,
			  GFC_SS_COMPONENT);
5024
  lss_array = &lss->info->data.array;
5025 5026 5027 5028
  lss_array->shape = gfc_get_shape (cm->as->rank);
  lss_array->descriptor = dest;
  lss_array->data = gfc_conv_array_data (dest);
  lss_array->offset = gfc_conv_array_offset (dest);
5029 5030
  for (n = 0; n < cm->as->rank; n++)
    {
5031 5032
      lss_array->start[n] = gfc_conv_array_lbound (dest, n);
      lss_array->stride[n] = gfc_index_one_node;
5033

5034 5035
      mpz_init (lss_array->shape[n]);
      mpz_sub (lss_array->shape[n], cm->as->upper[n]->value.integer,
5036
	       cm->as->lower[n]->value.integer);
5037
      mpz_add_ui (lss_array->shape[n], lss_array->shape[n], 1);
5038 5039 5040 5041 5042 5043 5044 5045 5046 5047
    }
  
  /* Associate the SS with the loop.  */
  gfc_add_ss_to_loop (&loop, lss);
  gfc_add_ss_to_loop (&loop, rss);

  /* Calculate the bounds of the scalarization.  */
  gfc_conv_ss_startstride (&loop);

  /* Setup the scalarizing loops.  */
5048
  gfc_conv_loop_setup (&loop, &expr->where);
5049 5050 5051 5052 5053 5054 5055 5056 5057 5058 5059 5060 5061 5062

  /* Setup the gfc_se structures.  */
  gfc_copy_loopinfo_to_se (&lse, &loop);
  gfc_copy_loopinfo_to_se (&rse, &loop);

  rse.ss = rss;
  gfc_mark_ss_chain_used (rss, 1);
  lse.ss = lss;
  gfc_mark_ss_chain_used (lss, 1);

  /* Start the scalarized loop body.  */
  gfc_start_scalarized_body (&loop, &body);

  gfc_conv_tmp_array_ref (&lse);
5063
  if (cm->ts.type == BT_CHARACTER)
5064
    lse.string_length = cm->ts.u.cl->backend_decl;
5065

5066 5067
  gfc_conv_expr (&rse, expr);

5068
  tmp = gfc_trans_scalar_assign (&lse, &rse, cm->ts, true, false, true);
5069 5070
  gfc_add_expr_to_block (&body, tmp);

5071
  gcc_assert (rse.ss == gfc_ss_terminator);
5072 5073 5074 5075 5076 5077 5078 5079

  /* Generate the copying loops.  */
  gfc_trans_scalarizing_loops (&loop, &body);

  /* Wrap the whole thing up.  */
  gfc_add_block_to_block (&block, &loop.pre);
  gfc_add_block_to_block (&block, &loop.post);

5080 5081
  gcc_assert (lss_array->shape != NULL);
  gfc_free_shape (&lss_array->shape, cm->as->rank);
5082 5083
  gfc_cleanup_loop (&loop);

5084 5085 5086
  return gfc_finish_block (&block);
}

Paul Thomas committed
5087

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static tree
gfc_trans_alloc_subarray_assign (tree dest, gfc_component * cm,
				 gfc_expr * expr)
{
  gfc_se se;
  gfc_ss *rss;
  stmtblock_t block;
  tree offset;
  int n;
  tree tmp;
  tree tmp2;
  gfc_array_spec *as;
  gfc_expr *arg = NULL;

  gfc_start_block (&block);
  gfc_init_se (&se, NULL);

  /* Get the descriptor for the expressions.  */ 
  rss = gfc_walk_expr (expr);
  se.want_pointer = 0;
  gfc_conv_expr_descriptor (&se, expr, rss);
  gfc_add_block_to_block (&block, &se.pre);
  gfc_add_modify (&block, dest, se.expr);

  /* Deal with arrays of derived types with allocatable components.  */
  if (cm->ts.type == BT_DERIVED
	&& cm->ts.u.derived->attr.alloc_comp)
    tmp = gfc_copy_alloc_comp (cm->ts.u.derived,
			       se.expr, dest,
			       cm->as->rank);
  else
    tmp = gfc_duplicate_allocatable (dest, se.expr,
				     TREE_TYPE(cm->backend_decl),
				     cm->as->rank);

  gfc_add_expr_to_block (&block, tmp);
  gfc_add_block_to_block (&block, &se.post);

  if (expr->expr_type != EXPR_VARIABLE)
    gfc_conv_descriptor_data_set (&block, se.expr,
				  null_pointer_node);

  /* We need to know if the argument of a conversion function is a
     variable, so that the correct lower bound can be used.  */
  if (expr->expr_type == EXPR_FUNCTION
	&& expr->value.function.isym
	&& expr->value.function.isym->conversion
	&& expr->value.function.actual->expr
	&& expr->value.function.actual->expr->expr_type == EXPR_VARIABLE)
    arg = expr->value.function.actual->expr;

  /* Obtain the array spec of full array references.  */
  if (arg)
    as = gfc_get_full_arrayspec_from_expr (arg);
  else
    as = gfc_get_full_arrayspec_from_expr (expr);

  /* Shift the lbound and ubound of temporaries to being unity,
     rather than zero, based. Always calculate the offset.  */
  offset = gfc_conv_descriptor_offset_get (dest);
  gfc_add_modify (&block, offset, gfc_index_zero_node);
  tmp2 =gfc_create_var (gfc_array_index_type, NULL);

  for (n = 0; n < expr->rank; n++)
    {
      tree span;
      tree lbound;

      /* Obtain the correct lbound - ISO/IEC TR 15581:2001 page 9.
	 TODO It looks as if gfc_conv_expr_descriptor should return
	 the correct bounds and that the following should not be
	 necessary.  This would simplify gfc_conv_intrinsic_bound
	 as well.  */
      if (as && as->lower[n])
	{
	  gfc_se lbse;
	  gfc_init_se (&lbse, NULL);
	  gfc_conv_expr (&lbse, as->lower[n]);
	  gfc_add_block_to_block (&block, &lbse.pre);
	  lbound = gfc_evaluate_now (lbse.expr, &block);
	}
      else if (as && arg)
	{
	  tmp = gfc_get_symbol_decl (arg->symtree->n.sym);
	  lbound = gfc_conv_descriptor_lbound_get (tmp,
					gfc_rank_cst[n]);
	}
      else if (as)
	lbound = gfc_conv_descriptor_lbound_get (dest,
						gfc_rank_cst[n]);
      else
	lbound = gfc_index_one_node;

      lbound = fold_convert (gfc_array_index_type, lbound);

      /* Shift the bounds and set the offset accordingly.  */
      tmp = gfc_conv_descriptor_ubound_get (dest, gfc_rank_cst[n]);
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      span = fold_build2_loc (input_location, MINUS_EXPR, gfc_array_index_type,
		tmp, gfc_conv_descriptor_lbound_get (dest, gfc_rank_cst[n]));
      tmp = fold_build2_loc (input_location, PLUS_EXPR, gfc_array_index_type,
			     span, lbound);
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      gfc_conv_descriptor_ubound_set (&block, dest,
				      gfc_rank_cst[n], tmp);
      gfc_conv_descriptor_lbound_set (&block, dest,
				      gfc_rank_cst[n], lbound);

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      tmp = fold_build2_loc (input_location, MULT_EXPR, gfc_array_index_type,
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			 gfc_conv_descriptor_lbound_get (dest,
							 gfc_rank_cst[n]),
			 gfc_conv_descriptor_stride_get (dest,
							 gfc_rank_cst[n]));
      gfc_add_modify (&block, tmp2, tmp);
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      tmp = fold_build2_loc (input_location, MINUS_EXPR, gfc_array_index_type,
			     offset, tmp2);
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      gfc_conv_descriptor_offset_set (&block, dest, tmp);
    }

  if (arg)
    {
      /* If a conversion expression has a null data pointer
	 argument, nullify the allocatable component.  */
      tree non_null_expr;
      tree null_expr;

      if (arg->symtree->n.sym->attr.allocatable
	    || arg->symtree->n.sym->attr.pointer)
	{
	  non_null_expr = gfc_finish_block (&block);
	  gfc_start_block (&block);
	  gfc_conv_descriptor_data_set (&block, dest,
					null_pointer_node);
	  null_expr = gfc_finish_block (&block);
	  tmp = gfc_conv_descriptor_data_get (arg->symtree->n.sym->backend_decl);
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	  tmp = build2_loc (input_location, EQ_EXPR, boolean_type_node, tmp,
			    fold_convert (TREE_TYPE (tmp), null_pointer_node));
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	  return build3_v (COND_EXPR, tmp,
			   null_expr, non_null_expr);
	}
    }

  return gfc_finish_block (&block);
}


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/* Assign a single component of a derived type constructor.  */

static tree
gfc_trans_subcomponent_assign (tree dest, gfc_component * cm, gfc_expr * expr)
{
  gfc_se se;
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  gfc_se lse;
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  gfc_ss *rss;
  stmtblock_t block;
  tree tmp;

  gfc_start_block (&block);
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5244

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  if (cm->attr.pointer)
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    {
      gfc_init_se (&se, NULL);
      /* Pointer component.  */
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      if (cm->attr.dimension)
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	{
	  /* Array pointer.  */
	  if (expr->expr_type == EXPR_NULL)
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	    gfc_conv_descriptor_data_set (&block, dest, null_pointer_node);
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	  else
	    {
	      rss = gfc_walk_expr (expr);
	      se.direct_byref = 1;
	      se.expr = dest;
	      gfc_conv_expr_descriptor (&se, expr, rss);
	      gfc_add_block_to_block (&block, &se.pre);
	      gfc_add_block_to_block (&block, &se.post);
	    }
	}
      else
	{
	  /* Scalar pointers.  */
	  se.want_pointer = 1;
	  gfc_conv_expr (&se, expr);
	  gfc_add_block_to_block (&block, &se.pre);
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	  gfc_add_modify (&block, dest,
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			       fold_convert (TREE_TYPE (dest), se.expr));
	  gfc_add_block_to_block (&block, &se.post);
	}
    }
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  else if (cm->ts.type == BT_CLASS && expr->expr_type == EXPR_NULL)
    {
      /* NULL initialization for CLASS components.  */
      tmp = gfc_trans_structure_assign (dest,
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					gfc_class_null_initializer (&cm->ts));
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      gfc_add_expr_to_block (&block, tmp);
    }
5282
  else if (cm->attr.dimension && !cm->attr.proc_pointer)
5283
    {
5284
      if (cm->attr.allocatable && expr->expr_type == EXPR_NULL)
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 	gfc_conv_descriptor_data_set (&block, dest, null_pointer_node);
5286
      else if (cm->attr.allocatable)
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	{
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	  tmp = gfc_trans_alloc_subarray_assign (dest, cm, expr);
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	  gfc_add_expr_to_block (&block, tmp);
	}
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      else
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	{
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	  tmp = gfc_trans_subarray_assign (dest, cm, expr);
	  gfc_add_expr_to_block (&block, tmp);
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	}
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    }
  else if (expr->ts.type == BT_DERIVED)
    {
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      if (expr->expr_type != EXPR_STRUCTURE)
	{
	  gfc_init_se (&se, NULL);
	  gfc_conv_expr (&se, expr);
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	  gfc_add_block_to_block (&block, &se.pre);
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	  gfc_add_modify (&block, dest,
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			       fold_convert (TREE_TYPE (dest), se.expr));
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	  gfc_add_block_to_block (&block, &se.post);
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	}
      else
	{
	  /* Nested constructors.  */
	  tmp = gfc_trans_structure_assign (dest, expr);
	  gfc_add_expr_to_block (&block, tmp);
	}
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    }
  else
    {
      /* Scalar component.  */
      gfc_init_se (&se, NULL);
      gfc_init_se (&lse, NULL);

      gfc_conv_expr (&se, expr);
      if (cm->ts.type == BT_CHARACTER)
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	lse.string_length = cm->ts.u.cl->backend_decl;
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      lse.expr = dest;
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      tmp = gfc_trans_scalar_assign (&lse, &se, cm->ts, true, false, true);
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      gfc_add_expr_to_block (&block, tmp);
    }
  return gfc_finish_block (&block);
}

5331
/* Assign a derived type constructor to a variable.  */
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static tree
gfc_trans_structure_assign (tree dest, gfc_expr * expr)
{
  gfc_constructor *c;
  gfc_component *cm;
  stmtblock_t block;
  tree field;
  tree tmp;

  gfc_start_block (&block);
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  cm = expr->ts.u.derived->components;
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  if (expr->ts.u.derived->from_intmod == INTMOD_ISO_C_BINDING
      && (expr->ts.u.derived->intmod_sym_id == ISOCBINDING_PTR
          || expr->ts.u.derived->intmod_sym_id == ISOCBINDING_FUNPTR))
    {
      gfc_se se, lse;

      gcc_assert (cm->backend_decl == NULL);
      gfc_init_se (&se, NULL);
      gfc_init_se (&lse, NULL);
      gfc_conv_expr (&se, gfc_constructor_first (expr->value.constructor)->expr);
      lse.expr = dest;
      gfc_add_modify (&block, lse.expr,
		      fold_convert (TREE_TYPE (lse.expr), se.expr));

      return gfc_finish_block (&block);
    } 

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  for (c = gfc_constructor_first (expr->value.constructor);
       c; c = gfc_constructor_next (c), cm = cm->next)
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    {
      /* Skip absent members in default initializers.  */
      if (!c->expr)
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	continue;

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      field = cm->backend_decl;
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      tmp = fold_build3_loc (input_location, COMPONENT_REF, TREE_TYPE (field),
			     dest, field, NULL_TREE);
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      tmp = gfc_trans_subcomponent_assign (tmp, cm, c->expr);
      gfc_add_expr_to_block (&block, tmp);
    }
  return gfc_finish_block (&block);
}

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/* Build an expression for a constructor. If init is nonzero then
   this is part of a static variable initializer.  */

void
gfc_conv_structure (gfc_se * se, gfc_expr * expr, int init)
{
  gfc_constructor *c;
  gfc_component *cm;
  tree val;
  tree type;
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  tree tmp;
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  VEC(constructor_elt,gc) *v = NULL;
5390

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  gcc_assert (se->ss == NULL);
  gcc_assert (expr->expr_type == EXPR_STRUCTURE);
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  type = gfc_typenode_for_spec (&expr->ts);
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  if (!init)
    {
      /* Create a temporary variable and fill it in.  */
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      se->expr = gfc_create_var (type, expr->ts.u.derived->name);
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      tmp = gfc_trans_structure_assign (se->expr, expr);
      gfc_add_expr_to_block (&se->pre, tmp);
      return;
    }

5404
  cm = expr->ts.u.derived->components;
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5405

Jerry DeLisle committed
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  for (c = gfc_constructor_first (expr->value.constructor);
       c; c = gfc_constructor_next (c), cm = cm->next)
5408
    {
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      /* Skip absent members in default initializers and allocatable
	 components.  Although the latter have a default initializer
	 of EXPR_NULL,... by default, the static nullify is not needed
	 since this is done every time we come into scope.  */
5413
      if (!c->expr || (cm->attr.allocatable && cm->attr.flavor != FL_PROCEDURE))
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        continue;

5416
      if (strcmp (cm->name, "_size") == 0)
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	{
	  val = TYPE_SIZE_UNIT (gfc_get_derived_type (cm->ts.u.derived));
	  CONSTRUCTOR_APPEND_ELT (v, cm->backend_decl, val);
	}
      else if (cm->initializer && cm->initializer->expr_type != EXPR_NULL
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	       && strcmp (cm->name, "_extends") == 0)
5423
	{
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	  tree vtab;
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	  gfc_symbol *vtabs;
	  vtabs = cm->initializer->symtree->n.sym;
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	  vtab = gfc_build_addr_expr (NULL_TREE, gfc_get_symbol_decl (vtabs));
	  CONSTRUCTOR_APPEND_ELT (v, cm->backend_decl, vtab);
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	}
      else
	{
	  val = gfc_conv_initializer (c->expr, &cm->ts,
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				      TREE_TYPE (cm->backend_decl),
				      cm->attr.dimension, cm->attr.pointer,
				      cm->attr.proc_pointer);
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	  /* Append it to the constructor list.  */
	  CONSTRUCTOR_APPEND_ELT (v, cm->backend_decl, val);
	}
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    }
5441
  se->expr = build_constructor (type, v);
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5442
  if (init) 
5443
    TREE_CONSTANT (se->expr) = 1;
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}


5447
/* Translate a substring expression.  */
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static void
gfc_conv_substring_expr (gfc_se * se, gfc_expr * expr)
{
  gfc_ref *ref;

  ref = expr->ref;

5456
  gcc_assert (ref == NULL || ref->type == REF_SUBSTRING);
5457

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  se->expr = gfc_build_wide_string_const (expr->ts.kind,
					  expr->value.character.length,
					  expr->value.character.string);
5461

5462
  se->string_length = TYPE_MAX_VALUE (TYPE_DOMAIN (TREE_TYPE (se->expr)));
5463
  TYPE_STRING_FLAG (TREE_TYPE (se->expr)) = 1;
5464

5465 5466
  if (ref)
    gfc_conv_substring (se, ref, expr->ts.kind, NULL, &expr->where);
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}


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/* Entry point for expression translation.  Evaluates a scalar quantity.
   EXPR is the expression to be translated, and SE is the state structure if
   called from within the scalarized.  */
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void
gfc_conv_expr (gfc_se * se, gfc_expr * expr)
{
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  gfc_ss *ss;

  ss = se->ss;
5480
  if (ss && ss->info->expr == expr
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      && (ss->info->type == GFC_SS_SCALAR
	  || ss->info->type == GFC_SS_REFERENCE))
5483
    {
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      gfc_ss_info *ss_info;

      ss_info = ss->info;
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      /* Substitute a scalar expression evaluated outside the scalarization
5488
         loop.  */
5489
      se->expr = ss_info->data.scalar.value;
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      /* If the reference can be NULL, the value field contains the reference,
	 not the value the reference points to (see gfc_add_loop_ss_code).  */
5492
      if (ss_info->can_be_null_ref)
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	se->expr = build_fold_indirect_ref_loc (input_location, se->expr);

5495
      se->string_length = ss_info->string_length;
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      gfc_advance_se_ss_chain (se);
      return;
    }

5500 5501 5502 5503 5504
  /* We need to convert the expressions for the iso_c_binding derived types.
     C_NULL_PTR and C_NULL_FUNPTR will be made EXPR_NULL, which evaluates to
     null_pointer_node.  C_PTR and C_FUNPTR are converted to match the
     typespec for the C_PTR and C_FUNPTR symbols, which has already been
     updated to be an integer with a kind equal to the size of a (void *).  */
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  if (expr->ts.type == BT_DERIVED && expr->ts.u.derived
      && expr->ts.u.derived->attr.is_iso_c)
5507
    {
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      if (expr->expr_type == EXPR_VARIABLE
	  && (expr->symtree->n.sym->intmod_sym_id == ISOCBINDING_NULL_PTR
	      || expr->symtree->n.sym->intmod_sym_id
		 == ISOCBINDING_NULL_FUNPTR))
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        {
	  /* Set expr_type to EXPR_NULL, which will result in
	     null_pointer_node being used below.  */
          expr->expr_type = EXPR_NULL;
        }
      else
        {
          /* Update the type/kind of the expression to be what the new
             type/kind are for the updated symbols of C_PTR/C_FUNPTR.  */
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          expr->ts.type = expr->ts.u.derived->ts.type;
          expr->ts.f90_type = expr->ts.u.derived->ts.f90_type;
          expr->ts.kind = expr->ts.u.derived->ts.kind;
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        }
    }
5526

5527
  gfc_fix_class_refs (expr);
5528

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  switch (expr->expr_type)
    {
    case EXPR_OP:
      gfc_conv_expr_op (se, expr);
      break;

    case EXPR_FUNCTION:
      gfc_conv_function_expr (se, expr);
      break;

    case EXPR_CONSTANT:
      gfc_conv_constant (se, expr);
      break;

    case EXPR_VARIABLE:
      gfc_conv_variable (se, expr);
      break;

    case EXPR_NULL:
      se->expr = null_pointer_node;
      break;

    case EXPR_SUBSTRING:
      gfc_conv_substring_expr (se, expr);
      break;

    case EXPR_STRUCTURE:
      gfc_conv_structure (se, expr, 0);
      break;

    case EXPR_ARRAY:
      gfc_conv_array_constructor_expr (se, expr);
      break;

    default:
5564
      gcc_unreachable ();
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      break;
    }
}

5569 5570
/* Like gfc_conv_expr_val, but the value is also suitable for use in the lhs
   of an assignment.  */
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void
gfc_conv_expr_lhs (gfc_se * se, gfc_expr * expr)
{
  gfc_conv_expr (se, expr);
5575
  /* All numeric lvalues should have empty post chains.  If not we need to
5576
     figure out a way of rewriting an lvalue so that it has no post chain.  */
5577
  gcc_assert (expr->ts.type == BT_CHARACTER || !se->post.head);
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}

5580
/* Like gfc_conv_expr, but the POST block is guaranteed to be empty for
5581
   numeric expressions.  Used for scalar values where inserting cleanup code
5582
   is inconvenient.  */
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void
gfc_conv_expr_val (gfc_se * se, gfc_expr * expr)
{
  tree val;

5588
  gcc_assert (expr->ts.type != BT_CHARACTER);
5589 5590 5591 5592
  gfc_conv_expr (se, expr);
  if (se->post.head)
    {
      val = gfc_create_var (TREE_TYPE (se->expr), NULL);
5593
      gfc_add_modify (&se->pre, val, se->expr);
5594 5595
      se->expr = val;
      gfc_add_block_to_block (&se->pre, &se->post);
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    }
}

5599
/* Helper to translate an expression and convert it to a particular type.  */
5600 5601 5602 5603 5604 5605 5606 5607
void
gfc_conv_expr_type (gfc_se * se, gfc_expr * expr, tree type)
{
  gfc_conv_expr_val (se, expr);
  se->expr = convert (type, se->expr);
}


5608
/* Converts an expression so that it can be passed by reference.  Scalar
5609 5610 5611 5612 5613
   values only.  */

void
gfc_conv_expr_reference (gfc_se * se, gfc_expr * expr)
{
5614
  gfc_ss *ss;
5615 5616
  tree var;

5617
  ss = se->ss;
5618
  if (ss && ss->info->expr == expr
5619
      && ss->info->type == GFC_SS_REFERENCE)
5620
    {
5621 5622 5623
      /* Returns a reference to the scalar evaluated outside the loop
	 for this case.  */
      gfc_conv_expr (se, expr);
5624
      se->expr = gfc_build_addr_expr (NULL_TREE, se->expr);
5625 5626 5627 5628 5629 5630 5631 5632 5633 5634 5635 5636 5637 5638 5639 5640 5641
      return;
    }

  if (expr->ts.type == BT_CHARACTER)
    {
      gfc_conv_expr (se, expr);
      gfc_conv_string_parameter (se);
      return;
    }

  if (expr->expr_type == EXPR_VARIABLE)
    {
      se->want_pointer = 1;
      gfc_conv_expr (se, expr);
      if (se->post.head)
	{
	  var = gfc_create_var (TREE_TYPE (se->expr), NULL);
5642
	  gfc_add_modify (&se->pre, var, se->expr);
5643 5644 5645 5646 5647 5648
	  gfc_add_block_to_block (&se->pre, &se->post);
	  se->expr = var;
	}
      return;
    }

5649
  if (expr->expr_type == EXPR_FUNCTION
5650 5651 5652 5653 5654 5655
      && ((expr->value.function.esym
	   && expr->value.function.esym->result->attr.pointer
	   && !expr->value.function.esym->result->attr.dimension)
	  || (!expr->value.function.esym
	      && expr->symtree->n.sym->attr.pointer
	      && !expr->symtree->n.sym->attr.dimension)))
5656 5657 5658 5659
    {
      se->want_pointer = 1;
      gfc_conv_expr (se, expr);
      var = gfc_create_var (TREE_TYPE (se->expr), NULL);
5660
      gfc_add_modify (&se->pre, var, se->expr);
5661 5662 5663 5664
      se->expr = var;
      return;
    }

5665 5666 5667
  gfc_conv_expr (se, expr);

  /* Create a temporary var to hold the value.  */
5668 5669
  if (TREE_CONSTANT (se->expr))
    {
5670 5671
      tree tmp = se->expr;
      STRIP_TYPE_NOPS (tmp);
5672 5673
      var = build_decl (input_location,
			CONST_DECL, NULL, TREE_TYPE (tmp));
5674
      DECL_INITIAL (var) = tmp;
5675
      TREE_STATIC (var) = 1;
5676 5677 5678 5679 5680
      pushdecl (var);
    }
  else
    {
      var = gfc_create_var (TREE_TYPE (se->expr), NULL);
5681
      gfc_add_modify (&se->pre, var, se->expr);
5682
    }
5683 5684 5685
  gfc_add_block_to_block (&se->pre, &se->post);

  /* Take the address of that value.  */
5686
  se->expr = gfc_build_addr_expr (NULL_TREE, var);
5687 5688 5689 5690 5691 5692
}


tree
gfc_trans_pointer_assign (gfc_code * code)
{
5693
  return gfc_trans_pointer_assignment (code->expr1, code->expr2);
5694 5695 5696
}


5697 5698
/* Generate code for a pointer assignment.  */

5699 5700 5701 5702 5703 5704 5705 5706
tree
gfc_trans_pointer_assignment (gfc_expr * expr1, gfc_expr * expr2)
{
  gfc_se lse;
  gfc_se rse;
  gfc_ss *lss;
  gfc_ss *rss;
  stmtblock_t block;
5707 5708
  tree desc;
  tree tmp;
5709 5710
  tree decl;

5711 5712 5713 5714 5715 5716 5717 5718
  gfc_start_block (&block);

  gfc_init_se (&lse, NULL);

  lss = gfc_walk_expr (expr1);
  rss = gfc_walk_expr (expr2);
  if (lss == gfc_ss_terminator)
    {
5719
      /* Scalar pointers.  */
5720 5721
      lse.want_pointer = 1;
      gfc_conv_expr (&lse, expr1);
5722
      gcc_assert (rss == gfc_ss_terminator);
5723 5724 5725
      gfc_init_se (&rse, NULL);
      rse.want_pointer = 1;
      gfc_conv_expr (&rse, expr2);
5726 5727 5728

      if (expr1->symtree->n.sym->attr.proc_pointer
	  && expr1->symtree->n.sym->attr.dummy)
5729 5730
	lse.expr = build_fold_indirect_ref_loc (input_location,
					    lse.expr);
5731

5732 5733
      if (expr2->symtree && expr2->symtree->n.sym->attr.proc_pointer
	  && expr2->symtree->n.sym->attr.dummy)
5734 5735
	rse.expr = build_fold_indirect_ref_loc (input_location,
					    rse.expr);
5736

5737 5738
      gfc_add_block_to_block (&block, &lse.pre);
      gfc_add_block_to_block (&block, &rse.pre);
5739 5740

      /* Check character lengths if character expression.  The test is only
5741 5742
	 really added if -fbounds-check is enabled.  Exclude deferred
	 character length lefthand sides.  */
5743
      if (expr1->ts.type == BT_CHARACTER && expr2->expr_type != EXPR_NULL
5744 5745
	  && !(expr1->ts.deferred
			&& (TREE_CODE (lse.string_length) == VAR_DECL))
5746 5747
	  && !expr1->symtree->n.sym->attr.proc_pointer
	  && !gfc_is_proc_ptr_comp (expr1, NULL))
5748 5749 5750 5751 5752 5753 5754 5755
	{
	  gcc_assert (expr2->ts.type == BT_CHARACTER);
	  gcc_assert (lse.string_length && rse.string_length);
	  gfc_trans_same_strlen_check ("pointer assignment", &expr1->where,
				       lse.string_length, rse.string_length,
				       &block);
	}

5756 5757 5758 5759 5760 5761 5762 5763 5764 5765 5766
      /* The assignment to an deferred character length sets the string
	 length to that of the rhs.  */
      if (expr1->ts.deferred && (TREE_CODE (lse.string_length) == VAR_DECL))
	{
	  if (expr2->expr_type != EXPR_NULL)
	    gfc_add_modify (&block, lse.string_length, rse.string_length);
	  else
	    gfc_add_modify (&block, lse.string_length,
			    build_int_cst (gfc_charlen_type_node, 0));
	}

5767
      gfc_add_modify (&block, lse.expr,
5768
			   fold_convert (TREE_TYPE (lse.expr), rse.expr));
5769

5770 5771 5772 5773 5774
      gfc_add_block_to_block (&block, &rse.post);
      gfc_add_block_to_block (&block, &lse.post);
    }
  else
    {
5775 5776
      gfc_ref* remap;
      bool rank_remap;
5777 5778 5779
      tree strlen_lhs;
      tree strlen_rhs = NULL_TREE;

5780 5781 5782 5783 5784 5785 5786 5787 5788 5789 5790 5791 5792
      /* Array pointer.  Find the last reference on the LHS and if it is an
	 array section ref, we're dealing with bounds remapping.  In this case,
	 set it to AR_FULL so that gfc_conv_expr_descriptor does
	 not see it and process the bounds remapping afterwards explicitely.  */
      for (remap = expr1->ref; remap; remap = remap->next)
	if (!remap->next && remap->type == REF_ARRAY
	    && remap->u.ar.type == AR_SECTION)
	  {  
	    remap->u.ar.type = AR_FULL;
	    break;
	  }
      rank_remap = (remap && remap->u.ar.end[0]);

5793
      gfc_conv_expr_descriptor (&lse, expr1, lss);
5794
      strlen_lhs = lse.string_length;
5795 5796 5797
      desc = lse.expr;

      if (expr2->expr_type == EXPR_NULL)
5798 5799
	{
	  /* Just set the data pointer to null.  */
5800
	  gfc_conv_descriptor_data_set (&lse.pre, lse.expr, null_pointer_node);
5801 5802 5803 5804 5805 5806 5807 5808 5809 5810 5811 5812 5813 5814
	}
      else if (rank_remap)
	{
	  /* If we are rank-remapping, just get the RHS's descriptor and
	     process this later on.  */
	  gfc_init_se (&rse, NULL);
	  rse.direct_byref = 1;
	  rse.byref_noassign = 1;
	  gfc_conv_expr_descriptor (&rse, expr2, rss);
	  strlen_rhs = rse.string_length;
	}
      else if (expr2->expr_type == EXPR_VARIABLE)
	{
	  /* Assign directly to the LHS's descriptor.  */
5815
	  lse.direct_byref = 1;
5816
	  gfc_conv_expr_descriptor (&lse, expr2, rss);
5817
	  strlen_rhs = lse.string_length;
5818 5819

	  /* If this is a subreference array pointer assignment, use the rhs
5820
	     descriptor element size for the lhs span.  */
5821 5822 5823
	  if (expr1->symtree->n.sym->attr.subref_array_pointer)
	    {
	      decl = expr1->symtree->n.sym->backend_decl;
5824 5825 5826 5827 5828 5829
	      gfc_init_se (&rse, NULL);
	      rse.descriptor_only = 1;
	      gfc_conv_expr (&rse, expr2);
	      tmp = gfc_get_element_type (TREE_TYPE (rse.expr));
	      tmp = fold_convert (gfc_array_index_type, size_in_bytes (tmp));
	      if (!INTEGER_CST_P (tmp))
5830
		gfc_add_block_to_block (&lse.post, &rse.pre);
5831
	      gfc_add_modify (&lse.post, GFC_DECL_SPAN(decl), tmp);
5832
	    }
5833 5834 5835
	}
      else
	{
5836 5837 5838 5839 5840 5841 5842
	  /* Assign to a temporary descriptor and then copy that
	     temporary to the pointer.  */
	  tmp = gfc_create_var (TREE_TYPE (desc), "ptrtemp");

	  lse.expr = tmp;
	  lse.direct_byref = 1;
	  gfc_conv_expr_descriptor (&lse, expr2, rss);
5843
	  strlen_rhs = lse.string_length;
5844
	  gfc_add_modify (&lse.pre, desc, tmp);
5845 5846
	}

5847
      gfc_add_block_to_block (&block, &lse.pre);
5848 5849 5850 5851 5852 5853 5854 5855 5856 5857 5858 5859 5860 5861 5862 5863 5864 5865 5866 5867 5868 5869 5870 5871 5872 5873 5874 5875 5876 5877 5878 5879 5880 5881 5882 5883 5884
      if (rank_remap)
	gfc_add_block_to_block (&block, &rse.pre);

      /* If we do bounds remapping, update LHS descriptor accordingly.  */
      if (remap)
	{
	  int dim;
	  gcc_assert (remap->u.ar.dimen == expr1->rank);

	  if (rank_remap)
	    {
	      /* Do rank remapping.  We already have the RHS's descriptor
		 converted in rse and now have to build the correct LHS
		 descriptor for it.  */

	      tree dtype, data;
	      tree offs, stride;
	      tree lbound, ubound;

	      /* Set dtype.  */
	      dtype = gfc_conv_descriptor_dtype (desc);
	      tmp = gfc_get_dtype (TREE_TYPE (desc));
	      gfc_add_modify (&block, dtype, tmp);

	      /* Copy data pointer.  */
	      data = gfc_conv_descriptor_data_get (rse.expr);
	      gfc_conv_descriptor_data_set (&block, desc, data);

	      /* Copy offset but adjust it such that it would correspond
		 to a lbound of zero.  */
	      offs = gfc_conv_descriptor_offset_get (rse.expr);
	      for (dim = 0; dim < expr2->rank; ++dim)
		{
		  stride = gfc_conv_descriptor_stride_get (rse.expr,
							   gfc_rank_cst[dim]);
		  lbound = gfc_conv_descriptor_lbound_get (rse.expr,
							   gfc_rank_cst[dim]);
5885 5886 5887 5888
		  tmp = fold_build2_loc (input_location, MULT_EXPR,
					 gfc_array_index_type, stride, lbound);
		  offs = fold_build2_loc (input_location, PLUS_EXPR,
					  gfc_array_index_type, offs, tmp);
5889 5890 5891 5892 5893 5894 5895 5896 5897 5898 5899 5900 5901 5902 5903 5904 5905 5906 5907 5908 5909 5910 5911 5912 5913 5914 5915 5916 5917 5918 5919 5920 5921 5922 5923 5924 5925 5926 5927 5928 5929 5930 5931 5932 5933
		}
	      gfc_conv_descriptor_offset_set (&block, desc, offs);

	      /* Set the bounds as declared for the LHS and calculate strides as
		 well as another offset update accordingly.  */
	      stride = gfc_conv_descriptor_stride_get (rse.expr,
						       gfc_rank_cst[0]);
	      for (dim = 0; dim < expr1->rank; ++dim)
		{
		  gfc_se lower_se;
		  gfc_se upper_se;

		  gcc_assert (remap->u.ar.start[dim] && remap->u.ar.end[dim]);

		  /* Convert declared bounds.  */
		  gfc_init_se (&lower_se, NULL);
		  gfc_init_se (&upper_se, NULL);
		  gfc_conv_expr (&lower_se, remap->u.ar.start[dim]);
		  gfc_conv_expr (&upper_se, remap->u.ar.end[dim]);

		  gfc_add_block_to_block (&block, &lower_se.pre);
		  gfc_add_block_to_block (&block, &upper_se.pre);

		  lbound = fold_convert (gfc_array_index_type, lower_se.expr);
		  ubound = fold_convert (gfc_array_index_type, upper_se.expr);

		  lbound = gfc_evaluate_now (lbound, &block);
		  ubound = gfc_evaluate_now (ubound, &block);

		  gfc_add_block_to_block (&block, &lower_se.post);
		  gfc_add_block_to_block (&block, &upper_se.post);

		  /* Set bounds in descriptor.  */
		  gfc_conv_descriptor_lbound_set (&block, desc,
						  gfc_rank_cst[dim], lbound);
		  gfc_conv_descriptor_ubound_set (&block, desc,
						  gfc_rank_cst[dim], ubound);

		  /* Set stride.  */
		  stride = gfc_evaluate_now (stride, &block);
		  gfc_conv_descriptor_stride_set (&block, desc,
						  gfc_rank_cst[dim], stride);

		  /* Update offset.  */
		  offs = gfc_conv_descriptor_offset_get (desc);
5934 5935 5936 5937
		  tmp = fold_build2_loc (input_location, MULT_EXPR,
					 gfc_array_index_type, lbound, stride);
		  offs = fold_build2_loc (input_location, MINUS_EXPR,
					  gfc_array_index_type, offs, tmp);
5938 5939 5940 5941 5942
		  offs = gfc_evaluate_now (offs, &block);
		  gfc_conv_descriptor_offset_set (&block, desc, offs);

		  /* Update stride.  */
		  tmp = gfc_conv_array_extent_dim (lbound, ubound, NULL);
5943 5944
		  stride = fold_build2_loc (input_location, MULT_EXPR,
					    gfc_array_index_type, stride, tmp);
5945 5946 5947 5948 5949 5950 5951 5952 5953 5954 5955 5956 5957 5958 5959 5960 5961 5962 5963 5964 5965 5966 5967 5968
		}
	    }
	  else
	    {
	      /* Bounds remapping.  Just shift the lower bounds.  */

	      gcc_assert (expr1->rank == expr2->rank);

	      for (dim = 0; dim < remap->u.ar.dimen; ++dim)
		{
		  gfc_se lbound_se;

		  gcc_assert (remap->u.ar.start[dim]);
		  gcc_assert (!remap->u.ar.end[dim]);
		  gfc_init_se (&lbound_se, NULL);
		  gfc_conv_expr (&lbound_se, remap->u.ar.start[dim]);

		  gfc_add_block_to_block (&block, &lbound_se.pre);
		  gfc_conv_shift_descriptor_lbound (&block, desc,
						    dim, lbound_se.expr);
		  gfc_add_block_to_block (&block, &lbound_se.post);
		}
	    }
	}
5969 5970 5971 5972 5973 5974 5975 5976 5977 5978 5979

      /* Check string lengths if applicable.  The check is only really added
	 to the output code if -fbounds-check is enabled.  */
      if (expr1->ts.type == BT_CHARACTER && expr2->expr_type != EXPR_NULL)
	{
	  gcc_assert (expr2->ts.type == BT_CHARACTER);
	  gcc_assert (strlen_lhs && strlen_rhs);
	  gfc_trans_same_strlen_check ("pointer assignment", &expr1->where,
				       strlen_lhs, strlen_rhs, &block);
	}

5980 5981 5982 5983 5984 5985 5986 5987 5988 5989 5990 5991 5992
      /* If rank remapping was done, check with -fcheck=bounds that
	 the target is at least as large as the pointer.  */
      if (rank_remap && (gfc_option.rtcheck & GFC_RTCHECK_BOUNDS))
	{
	  tree lsize, rsize;
	  tree fault;
	  const char* msg;

	  lsize = gfc_conv_descriptor_size (lse.expr, expr1->rank);
	  rsize = gfc_conv_descriptor_size (rse.expr, expr2->rank);

	  lsize = gfc_evaluate_now (lsize, &block);
	  rsize = gfc_evaluate_now (rsize, &block);
5993 5994
	  fault = fold_build2_loc (input_location, LT_EXPR, boolean_type_node,
				   rsize, lsize);
5995 5996 5997 5998 5999 6000

	  msg = _("Target of rank remapping is too small (%ld < %ld)");
	  gfc_trans_runtime_check (true, false, fault, &block, &expr2->where,
				   msg, rsize, lsize);
	}

6001
      gfc_add_block_to_block (&block, &lse.post);
6002 6003
      if (rank_remap)
	gfc_add_block_to_block (&block, &rse.post);
6004
    }
6005

6006 6007 6008 6009 6010
  return gfc_finish_block (&block);
}


/* Makes sure se is suitable for passing as a function string parameter.  */
6011
/* TODO: Need to check all callers of this function.  It may be abused.  */
6012 6013 6014 6015 6016 6017 6018 6019

void
gfc_conv_string_parameter (gfc_se * se)
{
  tree type;

  if (TREE_CODE (se->expr) == STRING_CST)
    {
6020 6021
      type = TREE_TYPE (TREE_TYPE (se->expr));
      se->expr = gfc_build_addr_expr (build_pointer_type (type), se->expr);
6022 6023 6024
      return;
    }

6025
  if (TYPE_STRING_FLAG (TREE_TYPE (se->expr)))
6026
    {
6027
      if (TREE_CODE (se->expr) != INDIRECT_REF)
6028 6029 6030 6031
	{
	  type = TREE_TYPE (se->expr);
          se->expr = gfc_build_addr_expr (build_pointer_type (type), se->expr);
	}
6032 6033 6034 6035 6036 6037 6038
      else
	{
	  type = gfc_get_character_type_len (gfc_default_character_kind,
					     se->string_length);
	  type = build_pointer_type (type);
	  se->expr = gfc_build_addr_expr (type, se->expr);
	}
6039 6040
    }

6041
  gcc_assert (POINTER_TYPE_P (TREE_TYPE (se->expr)));
6042 6043 6044 6045
}


/* Generate code for assignment of scalar variables.  Includes character
6046 6047
   strings and derived types with allocatable components.
   If you know that the LHS has no allocations, set dealloc to false.  */
6048 6049

tree
Paul Thomas committed
6050
gfc_trans_scalar_assign (gfc_se * lse, gfc_se * rse, gfc_typespec ts,
6051
			 bool l_is_temp, bool r_is_var, bool dealloc)
6052 6053
{
  stmtblock_t block;
Paul Thomas committed
6054 6055
  tree tmp;
  tree cond;
6056 6057 6058

  gfc_init_block (&block);

Paul Thomas committed
6059
  if (ts.type == BT_CHARACTER)
6060
    {
6061 6062
      tree rlen = NULL;
      tree llen = NULL;
6063

6064 6065 6066 6067 6068 6069
      if (lse->string_length != NULL_TREE)
	{
	  gfc_conv_string_parameter (lse);
	  gfc_add_block_to_block (&block, &lse->pre);
	  llen = lse->string_length;
	}
6070

6071 6072 6073 6074 6075 6076 6077
      if (rse->string_length != NULL_TREE)
	{
	  gcc_assert (rse->string_length != NULL_TREE);
	  gfc_conv_string_parameter (rse);
	  gfc_add_block_to_block (&block, &rse->pre);
	  rlen = rse->string_length;
	}
6078

6079 6080
      gfc_trans_string_copy (&block, llen, lse->expr, ts.kind, rlen,
			     rse->expr, ts.kind);
6081
    }
6082
  else if (ts.type == BT_DERIVED && ts.u.derived->attr.alloc_comp)
Paul Thomas committed
6083 6084 6085 6086 6087 6088
    {
      cond = NULL_TREE;
	
      /* Are the rhs and the lhs the same?  */
      if (r_is_var)
	{
6089 6090 6091
	  cond = fold_build2_loc (input_location, EQ_EXPR, boolean_type_node,
				  gfc_build_addr_expr (NULL_TREE, lse->expr),
				  gfc_build_addr_expr (NULL_TREE, rse->expr));
Paul Thomas committed
6092 6093 6094 6095
	  cond = gfc_evaluate_now (cond, &lse->pre);
	}

      /* Deallocate the lhs allocated components as long as it is not
6096 6097 6098
	 the same as the rhs.  This must be done following the assignment
	 to prevent deallocating data that could be used in the rhs
	 expression.  */
6099
      if (!l_is_temp && dealloc)
Paul Thomas committed
6100
	{
6101
	  tmp = gfc_evaluate_now (lse->expr, &lse->pre);
6102
	  tmp = gfc_deallocate_alloc_comp (ts.u.derived, tmp, 0);
Paul Thomas committed
6103
	  if (r_is_var)
6104 6105
	    tmp = build3_v (COND_EXPR, cond, build_empty_stmt (input_location),
			    tmp);
6106
	  gfc_add_expr_to_block (&lse->post, tmp);
Paul Thomas committed
6107
	}
6108

6109 6110
      gfc_add_block_to_block (&block, &rse->pre);
      gfc_add_block_to_block (&block, &lse->pre);
Paul Thomas committed
6111

6112
      gfc_add_modify (&block, lse->expr,
Paul Thomas committed
6113 6114 6115
			   fold_convert (TREE_TYPE (lse->expr), rse->expr));

      /* Do a deep copy if the rhs is a variable, if it is not the
6116
	 same as the lhs.  */
Paul Thomas committed
6117 6118
      if (r_is_var)
	{
6119
	  tmp = gfc_copy_alloc_comp (ts.u.derived, rse->expr, lse->expr, 0);
6120 6121
	  tmp = build3_v (COND_EXPR, cond, build_empty_stmt (input_location),
			  tmp);
Paul Thomas committed
6122 6123 6124
	  gfc_add_expr_to_block (&block, tmp);
	}
    }
6125
  else if (ts.type == BT_DERIVED || ts.type == BT_CLASS)
6126 6127 6128
    {
      gfc_add_block_to_block (&block, &lse->pre);
      gfc_add_block_to_block (&block, &rse->pre);
6129 6130
      tmp = fold_build1_loc (input_location, VIEW_CONVERT_EXPR,
			     TREE_TYPE (lse->expr), rse->expr);
6131 6132
      gfc_add_modify (&block, lse->expr, tmp);
    }
6133 6134 6135 6136 6137
  else
    {
      gfc_add_block_to_block (&block, &lse->pre);
      gfc_add_block_to_block (&block, &rse->pre);

6138
      gfc_add_modify (&block, lse->expr,
6139
		      fold_convert (TREE_TYPE (lse->expr), rse->expr));
6140 6141 6142 6143 6144 6145 6146 6147 6148
    }

  gfc_add_block_to_block (&block, &lse->post);
  gfc_add_block_to_block (&block, &rse->post);

  return gfc_finish_block (&block);
}


6149 6150
/* There are quite a lot of restrictions on the optimisation in using an
   array function assign without a temporary.  */
6151

6152 6153
static bool
arrayfunc_assign_needs_temporary (gfc_expr * expr1, gfc_expr * expr2)
6154
{
6155 6156
  gfc_ref * ref;
  bool seen_array_ref;
6157
  bool c = false;
6158
  gfc_symbol *sym = expr1->symtree->n.sym;
6159 6160 6161

  /* The caller has already checked rank>0 and expr_type == EXPR_FUNCTION.  */
  if (expr2->value.function.isym && !gfc_is_intrinsic_libcall (expr2))
6162
    return true;
6163

6164 6165 6166
  /* Elemental functions are scalarized so that they don't need a
     temporary in gfc_trans_assignment_1, so return a true.  Otherwise,
     they would need special treatment in gfc_trans_arrayfunc_assign.  */
6167 6168
  if (expr2->value.function.esym != NULL
      && expr2->value.function.esym->attr.elemental)
6169
    return true;
6170

6171
  /* Need a temporary if rhs is not FULL or a contiguous section.  */
6172
  if (expr1->ref && !(gfc_full_array_ref_p (expr1->ref, &c) || c))
6173
    return true;
6174

6175
  /* Need a temporary if EXPR1 can't be expressed as a descriptor.  */
6176
  if (gfc_ref_needs_temporary_p (expr1->ref))
6177
    return true;
6178

Tobias Burnus committed
6179 6180 6181 6182 6183 6184 6185
  /* Functions returning pointers or allocatables need temporaries.  */
  c = expr2->value.function.esym
      ? (expr2->value.function.esym->attr.pointer 
	 || expr2->value.function.esym->attr.allocatable)
      : (expr2->symtree->n.sym->attr.pointer
	 || expr2->symtree->n.sym->attr.allocatable);
  if (c)
6186
    return true;
6187

6188 6189 6190 6191
  /* Character array functions need temporaries unless the
     character lengths are the same.  */
  if (expr2->ts.type == BT_CHARACTER && expr2->rank > 0)
    {
6192 6193
      if (expr1->ts.u.cl->length == NULL
	    || expr1->ts.u.cl->length->expr_type != EXPR_CONSTANT)
6194
	return true;
6195

6196 6197
      if (expr2->ts.u.cl->length == NULL
	    || expr2->ts.u.cl->length->expr_type != EXPR_CONSTANT)
6198
	return true;
6199

6200 6201
      if (mpz_cmp (expr1->ts.u.cl->length->value.integer,
		     expr2->ts.u.cl->length->value.integer) != 0)
6202
	return true;
6203 6204
    }

6205 6206 6207 6208 6209 6210 6211 6212 6213 6214 6215
  /* Check that no LHS component references appear during an array
     reference. This is needed because we do not have the means to
     span any arbitrary stride with an array descriptor. This check
     is not needed for the rhs because the function result has to be
     a complete type.  */
  seen_array_ref = false;
  for (ref = expr1->ref; ref; ref = ref->next)
    {
      if (ref->type == REF_ARRAY)
	seen_array_ref= true;
      else if (ref->type == REF_COMPONENT && seen_array_ref)
6216
	return true;
6217 6218
    }

6219
  /* Check for a dependency.  */
6220 6221
  if (gfc_check_fncall_dependency (expr1, INTENT_OUT,
				   expr2->value.function.esym,
6222 6223
				   expr2->value.function.actual,
				   NOT_ELEMENTAL))
6224 6225 6226
    return true;

  /* If we have reached here with an intrinsic function, we do not
6227 6228
     need a temporary except in the particular case that reallocation
     on assignment is active and the lhs is allocatable and a target.  */
6229
  if (expr2->value.function.isym)
6230 6231 6232
    return (gfc_option.flag_realloc_lhs
	      && sym->attr.allocatable
	      && sym->attr.target);
6233 6234 6235 6236 6237 6238

  /* If the LHS is a dummy, we need a temporary if it is not
     INTENT(OUT).  */
  if (sym->attr.dummy && sym->attr.intent != INTENT_OUT)
    return true;

6239 6240 6241 6242 6243 6244 6245 6246 6247 6248 6249 6250
  /* If the lhs has been host_associated, is in common, a pointer or is
     a target and the function is not using a RESULT variable, aliasing
     can occur and a temporary is needed.  */
  if ((sym->attr.host_assoc
	   || sym->attr.in_common
	   || sym->attr.pointer
	   || sym->attr.cray_pointee
	   || sym->attr.target)
	&& expr2->symtree != NULL
	&& expr2->symtree->n.sym == expr2->symtree->n.sym->result)
    return true;

6251 6252 6253 6254 6255
  /* A PURE function can unconditionally be called without a temporary.  */
  if (expr2->value.function.esym != NULL
      && expr2->value.function.esym->attr.pure)
    return false;

6256 6257 6258 6259 6260
  /* Implicit_pure functions are those which could legally be declared
     to be PURE.  */
  if (expr2->value.function.esym != NULL
      && expr2->value.function.esym->attr.implicit_pure)
    return false;
6261 6262 6263 6264 6265

  if (!sym->attr.use_assoc
	&& !sym->attr.in_common
	&& !sym->attr.pointer
	&& !sym->attr.target
6266
	&& !sym->attr.cray_pointee
6267 6268 6269 6270 6271 6272 6273 6274
	&& expr2->value.function.esym)
    {
      /* A temporary is not needed if the function is not contained and
	 the variable is local or host associated and not a pointer or
	 a target. */
      if (!expr2->value.function.esym->attr.contained)
	return false;

6275 6276 6277 6278 6279
      /* A temporary is not needed if the lhs has never been host
	 associated and the procedure is contained.  */
      else if (!sym->attr.host_assoc)
	return false;

6280 6281 6282 6283 6284 6285 6286 6287 6288 6289 6290 6291
      /* A temporary is not needed if the variable is local and not
	 a pointer, a target or a result.  */
      if (sym->ns->parent
	    && expr2->value.function.esym->ns == sym->ns->parent)
	return false;
    }

  /* Default to temporary use.  */
  return true;
}


6292 6293 6294 6295
/* Provide the loop info so that the lhs descriptor can be built for
   reallocatable assignments from extrinsic function calls.  */

static void
6296 6297
realloc_lhs_loop_for_fcn_call (gfc_se *se, locus *where, gfc_ss **ss,
			       gfc_loopinfo *loop)
6298 6299 6300 6301
{
  /* Signal that the function call should not be made by
     gfc_conv_loop_setup. */
  se->ss->is_alloc_lhs = 1;
6302 6303 6304 6305 6306 6307 6308 6309
  gfc_init_loopinfo (loop);
  gfc_add_ss_to_loop (loop, *ss);
  gfc_add_ss_to_loop (loop, se->ss);
  gfc_conv_ss_startstride (loop);
  gfc_conv_loop_setup (loop, where);
  gfc_copy_loopinfo_to_se (se, loop);
  gfc_add_block_to_block (&se->pre, &loop->pre);
  gfc_add_block_to_block (&se->pre, &loop->post);
6310 6311 6312 6313
  se->ss->is_alloc_lhs = 0;
}


6314
/* For assignment to a reallocatable lhs from intrinsic functions,
6315 6316 6317 6318 6319 6320
   replace the se.expr (ie. the result) with a temporary descriptor.
   Null the data field so that the library allocates space for the
   result. Free the data of the original descriptor after the function,
   in case it appears in an argument expression and transfer the
   result to the original descriptor.  */

6321
static void
6322
fcncall_realloc_result (gfc_se *se, int rank)
6323 6324
{
  tree desc;
6325
  tree res_desc;
6326
  tree tmp;
6327
  tree offset;
6328
  tree zero_cond;
6329
  int n;
6330

6331 6332
  /* Use the allocation done by the library.  Substitute the lhs
     descriptor with a copy, whose data field is nulled.*/
6333
  desc = build_fold_indirect_ref_loc (input_location, se->expr);
6334 6335
  if (POINTER_TYPE_P (TREE_TYPE (desc)))
    desc = build_fold_indirect_ref_loc (input_location, desc);
6336

6337 6338 6339
  /* Unallocated, the descriptor does not have a dtype.  */
  tmp = gfc_conv_descriptor_dtype (desc);
  gfc_add_modify (&se->pre, tmp, gfc_get_dtype (TREE_TYPE (desc)));
6340

6341 6342 6343 6344
  res_desc = gfc_evaluate_now (desc, &se->pre);
  gfc_conv_descriptor_data_set (&se->pre, res_desc, null_pointer_node);
  se->expr = gfc_build_addr_expr (TREE_TYPE (se->expr), res_desc);

6345
  /* Free the lhs after the function call and copy the result data to
6346
     the lhs descriptor.  */
6347
  tmp = gfc_conv_descriptor_data_get (desc);
6348 6349 6350 6351
  zero_cond = fold_build2_loc (input_location, EQ_EXPR,
			       boolean_type_node, tmp,
			       build_int_cst (TREE_TYPE (tmp), 0));
  zero_cond = gfc_evaluate_now (zero_cond, &se->post);
6352
  tmp = gfc_call_free (fold_convert (pvoid_type_node, tmp));
6353
  gfc_add_expr_to_block (&se->post, tmp);
6354

6355 6356
  tmp = gfc_conv_descriptor_data_get (res_desc);
  gfc_conv_descriptor_data_set (&se->post, desc, tmp);
6357

6358 6359 6360 6361 6362 6363 6364 6365 6366 6367 6368 6369 6370 6371 6372 6373 6374 6375 6376 6377 6378 6379 6380 6381 6382 6383 6384 6385 6386 6387 6388
  /* Check that the shapes are the same between lhs and expression.  */
  for (n = 0 ; n < rank; n++)
    {
      tree tmp1;
      tmp = gfc_conv_descriptor_lbound_get (desc, gfc_rank_cst[n]);
      tmp1 = gfc_conv_descriptor_lbound_get (res_desc, gfc_rank_cst[n]);
      tmp = fold_build2_loc (input_location, MINUS_EXPR,
			     gfc_array_index_type, tmp, tmp1);
      tmp1 = gfc_conv_descriptor_ubound_get (desc, gfc_rank_cst[n]);
      tmp = fold_build2_loc (input_location, MINUS_EXPR,
			     gfc_array_index_type, tmp, tmp1);
      tmp1 = gfc_conv_descriptor_ubound_get (res_desc, gfc_rank_cst[n]);
      tmp = fold_build2_loc (input_location, PLUS_EXPR,
			     gfc_array_index_type, tmp, tmp1);
      tmp = fold_build2_loc (input_location, NE_EXPR,
			     boolean_type_node, tmp,
			     gfc_index_zero_node);
      tmp = gfc_evaluate_now (tmp, &se->post);
      zero_cond = fold_build2_loc (input_location, TRUTH_OR_EXPR,
				   boolean_type_node, tmp,
				   zero_cond);
    }

  /* 'zero_cond' being true is equal to lhs not being allocated or the
     shapes being different.  */
  zero_cond = gfc_evaluate_now (zero_cond, &se->post);

  /* Now reset the bounds returned from the function call to bounds based
     on the lhs lbounds, except where the lhs is not allocated or the shapes
     of 'variable and 'expr' are different. Set the offset accordingly.  */
  offset = gfc_index_zero_node;
6389 6390
  for (n = 0 ; n < rank; n++)
    {
6391 6392 6393 6394 6395 6396 6397 6398 6399
      tree lbound;

      lbound = gfc_conv_descriptor_lbound_get (desc, gfc_rank_cst[n]);
      lbound = fold_build3_loc (input_location, COND_EXPR,
				gfc_array_index_type, zero_cond,
				gfc_index_one_node, lbound);
      lbound = gfc_evaluate_now (lbound, &se->post);

      tmp = gfc_conv_descriptor_ubound_get (res_desc, gfc_rank_cst[n]);
6400
      tmp = fold_build2_loc (input_location, PLUS_EXPR,
6401
			     gfc_array_index_type, tmp, lbound);
6402
      gfc_conv_descriptor_lbound_set (&se->post, desc,
6403
				      gfc_rank_cst[n], lbound);
6404 6405 6406
      gfc_conv_descriptor_ubound_set (&se->post, desc,
				      gfc_rank_cst[n], tmp);

6407 6408 6409 6410
      /* Set stride and accumulate the offset.  */
      tmp = gfc_conv_descriptor_stride_get (res_desc, gfc_rank_cst[n]);
      gfc_conv_descriptor_stride_set (&se->post, desc,
				      gfc_rank_cst[n], tmp);
6411
      tmp = fold_build2_loc (input_location, MULT_EXPR,
6412
			     gfc_array_index_type, lbound, tmp);
6413
      offset = fold_build2_loc (input_location, MINUS_EXPR,
6414
				gfc_array_index_type, offset, tmp);
6415
      offset = gfc_evaluate_now (offset, &se->post);
6416
    }
6417

6418
  gfc_conv_descriptor_offset_set (&se->post, desc, offset);
6419 6420 6421 6422
}



6423 6424 6425 6426 6427 6428 6429 6430 6431 6432
/* Try to translate array(:) = func (...), where func is a transformational
   array function, without using a temporary.  Returns NULL if this isn't the
   case.  */

static tree
gfc_trans_arrayfunc_assign (gfc_expr * expr1, gfc_expr * expr2)
{
  gfc_se se;
  gfc_ss *ss;
  gfc_component *comp = NULL;
6433
  gfc_loopinfo loop;
6434 6435

  if (arrayfunc_assign_needs_temporary (expr1, expr2))
6436 6437 6438 6439
    return NULL;

  /* The frontend doesn't seem to bother filling in expr->symtree for intrinsic
     functions.  */
6440
  gcc_assert (expr2->value.function.isym
6441
	      || (gfc_is_proc_ptr_comp (expr2, &comp)
6442
		  && comp && comp->attr.dimension)
6443
	      || (!comp && gfc_return_by_reference (expr2->value.function.esym)
6444
		  && expr2->value.function.esym->result->attr.dimension));
6445 6446

  ss = gfc_walk_expr (expr1);
6447
  gcc_assert (ss != gfc_ss_terminator);
6448 6449 6450 6451
  gfc_init_se (&se, NULL);
  gfc_start_block (&se.pre);
  se.want_pointer = 1;

6452
  gfc_conv_array_parameter (&se, expr1, ss, false, NULL, NULL, NULL);
6453

6454 6455 6456 6457 6458 6459 6460 6461 6462
  if (expr1->ts.type == BT_DERIVED
	&& expr1->ts.u.derived->attr.alloc_comp)
    {
      tree tmp;
      tmp = gfc_deallocate_alloc_comp (expr1->ts.u.derived, se.expr,
				       expr1->rank);
      gfc_add_expr_to_block (&se.pre, tmp);
    }

6463 6464
  se.direct_byref = 1;
  se.ss = gfc_walk_expr (expr2);
6465
  gcc_assert (se.ss != gfc_ss_terminator);
6466 6467 6468 6469 6470 6471 6472 6473 6474 6475 6476 6477 6478 6479 6480 6481 6482 6483

  /* Reallocate on assignment needs the loopinfo for extrinsic functions.
     This is signalled to gfc_conv_procedure_call by setting is_alloc_lhs.
     Clearly, this cannot be done for an allocatable function result, since
     the shape of the result is unknown and, in any case, the function must
     correctly take care of the reallocation internally. For intrinsic
     calls, the array data is freed and the library takes care of allocation.
     TODO: Add logic of trans-array.c: gfc_alloc_allocatable_for_assignment
     to the library.  */    
  if (gfc_option.flag_realloc_lhs
	&& gfc_is_reallocatable_lhs (expr1)
	&& !gfc_expr_attr (expr1).codimension
	&& !gfc_is_coindexed (expr1)
	&& !(expr2->value.function.esym
	    && expr2->value.function.esym->result->attr.allocatable))
    {
      if (!expr2->value.function.isym)
	{
6484
	  realloc_lhs_loop_for_fcn_call (&se, &expr1->where, &ss, &loop);
6485 6486 6487
	  ss->is_alloc_lhs = 1;
	}
      else
6488
	fcncall_realloc_result (&se, expr1->rank);
6489 6490
    }

6491 6492 6493 6494 6495 6496
  gfc_conv_function_expr (&se, expr2);
  gfc_add_block_to_block (&se.pre, &se.post);

  return gfc_finish_block (&se.pre);
}

6497 6498 6499 6500 6501 6502 6503 6504

/* Try to efficiently translate array(:) = 0.  Return NULL if this
   can't be done.  */

static tree
gfc_trans_zero_assign (gfc_expr * expr)
{
  tree dest, len, type;
6505
  tree tmp;
6506 6507 6508 6509 6510 6511 6512 6513 6514 6515 6516 6517 6518 6519 6520 6521
  gfc_symbol *sym;

  sym = expr->symtree->n.sym;
  dest = gfc_get_symbol_decl (sym);

  type = TREE_TYPE (dest);
  if (POINTER_TYPE_P (type))
    type = TREE_TYPE (type);
  if (!GFC_ARRAY_TYPE_P (type))
    return NULL_TREE;

  /* Determine the length of the array.  */
  len = GFC_TYPE_ARRAY_SIZE (type);
  if (!len || TREE_CODE (len) != INTEGER_CST)
    return NULL_TREE;

6522
  tmp = TYPE_SIZE_UNIT (gfc_get_element_type (type));
6523 6524
  len = fold_build2_loc (input_location, MULT_EXPR, gfc_array_index_type, len,
			 fold_convert (gfc_array_index_type, tmp));
6525

6526 6527
  /* If we are zeroing a local array avoid taking its address by emitting
     a = {} instead.  */
6528
  if (!POINTER_TYPE_P (TREE_TYPE (dest)))
6529 6530
    return build2_loc (input_location, MODIFY_EXPR, void_type_node,
		       dest, build_constructor (TREE_TYPE (dest), NULL));
6531 6532 6533

  /* Convert arguments to the correct types.  */
  dest = fold_convert (pvoid_type_node, dest);
6534 6535 6536
  len = fold_convert (size_type_node, len);

  /* Construct call to __builtin_memset.  */
6537
  tmp = build_call_expr_loc (input_location,
6538 6539
			     builtin_decl_explicit (BUILT_IN_MEMSET),
			     3, dest, integer_zero_node, len);
6540 6541
  return fold_convert (void_type_node, tmp);
}
6542

6543 6544 6545 6546

/* Helper for gfc_trans_array_copy and gfc_trans_array_constructor_copy
   that constructs the call to __builtin_memcpy.  */

6547
tree
6548 6549
gfc_build_memcpy_call (tree dst, tree src, tree len)
{
6550
  tree tmp;
6551 6552 6553 6554 6555 6556 6557 6558 6559 6560 6561 6562 6563 6564 6565

  /* Convert arguments to the correct types.  */
  if (!POINTER_TYPE_P (TREE_TYPE (dst)))
    dst = gfc_build_addr_expr (pvoid_type_node, dst);
  else
    dst = fold_convert (pvoid_type_node, dst);

  if (!POINTER_TYPE_P (TREE_TYPE (src)))
    src = gfc_build_addr_expr (pvoid_type_node, src);
  else
    src = fold_convert (pvoid_type_node, src);

  len = fold_convert (size_type_node, len);

  /* Construct call to __builtin_memcpy.  */
6566
  tmp = build_call_expr_loc (input_location,
6567 6568
			     builtin_decl_explicit (BUILT_IN_MEMCPY),
			     3, dst, src, len);
6569 6570 6571 6572
  return fold_convert (void_type_node, tmp);
}


6573 6574 6575 6576
/* Try to efficiently translate dst(:) = src(:).  Return NULL if this
   can't be done.  EXPR1 is the destination/lhs and EXPR2 is the
   source/rhs, both are gfc_full_array_ref_p which have been checked for
   dependencies.  */
6577

6578 6579 6580 6581 6582
static tree
gfc_trans_array_copy (gfc_expr * expr1, gfc_expr * expr2)
{
  tree dst, dlen, dtype;
  tree src, slen, stype;
6583
  tree tmp;
6584 6585 6586 6587 6588 6589 6590 6591 6592 6593 6594 6595 6596 6597 6598 6599 6600 6601

  dst = gfc_get_symbol_decl (expr1->symtree->n.sym);
  src = gfc_get_symbol_decl (expr2->symtree->n.sym);

  dtype = TREE_TYPE (dst);
  if (POINTER_TYPE_P (dtype))
    dtype = TREE_TYPE (dtype);
  stype = TREE_TYPE (src);
  if (POINTER_TYPE_P (stype))
    stype = TREE_TYPE (stype);

  if (!GFC_ARRAY_TYPE_P (dtype) || !GFC_ARRAY_TYPE_P (stype))
    return NULL_TREE;

  /* Determine the lengths of the arrays.  */
  dlen = GFC_TYPE_ARRAY_SIZE (dtype);
  if (!dlen || TREE_CODE (dlen) != INTEGER_CST)
    return NULL_TREE;
6602
  tmp = TYPE_SIZE_UNIT (gfc_get_element_type (dtype));
6603 6604
  dlen = fold_build2_loc (input_location, MULT_EXPR, gfc_array_index_type,
			  dlen, fold_convert (gfc_array_index_type, tmp));
6605 6606 6607 6608

  slen = GFC_TYPE_ARRAY_SIZE (stype);
  if (!slen || TREE_CODE (slen) != INTEGER_CST)
    return NULL_TREE;
6609
  tmp = TYPE_SIZE_UNIT (gfc_get_element_type (stype));
6610 6611
  slen = fold_build2_loc (input_location, MULT_EXPR, gfc_array_index_type,
			  slen, fold_convert (gfc_array_index_type, tmp));
6612 6613 6614 6615 6616 6617

  /* Sanity check that they are the same.  This should always be
     the case, as we should already have checked for conformance.  */
  if (!tree_int_cst_equal (slen, dlen))
    return NULL_TREE;

6618 6619
  return gfc_build_memcpy_call (dst, src, dlen);
}
6620 6621


6622 6623 6624
/* Try to efficiently translate array(:) = (/ ... /).  Return NULL if
   this can't be done.  EXPR1 is the destination/lhs for which
   gfc_full_array_ref_p is true, and EXPR2 is the source/rhs.  */
6625

6626 6627 6628 6629 6630 6631 6632
static tree
gfc_trans_array_constructor_copy (gfc_expr * expr1, gfc_expr * expr2)
{
  unsigned HOST_WIDE_INT nelem;
  tree dst, dtype;
  tree src, stype;
  tree len;
6633
  tree tmp;
6634 6635 6636 6637 6638 6639 6640 6641 6642 6643 6644 6645 6646 6647 6648 6649 6650 6651 6652 6653 6654

  nelem = gfc_constant_array_constructor_p (expr2->value.constructor);
  if (nelem == 0)
    return NULL_TREE;

  dst = gfc_get_symbol_decl (expr1->symtree->n.sym);
  dtype = TREE_TYPE (dst);
  if (POINTER_TYPE_P (dtype))
    dtype = TREE_TYPE (dtype);
  if (!GFC_ARRAY_TYPE_P (dtype))
    return NULL_TREE;

  /* Determine the lengths of the array.  */
  len = GFC_TYPE_ARRAY_SIZE (dtype);
  if (!len || TREE_CODE (len) != INTEGER_CST)
    return NULL_TREE;

  /* Confirm that the constructor is the same size.  */
  if (compare_tree_int (len, nelem) != 0)
    return NULL_TREE;

6655
  tmp = TYPE_SIZE_UNIT (gfc_get_element_type (dtype));
6656 6657
  len = fold_build2_loc (input_location, MULT_EXPR, gfc_array_index_type, len,
			 fold_convert (gfc_array_index_type, tmp));
6658 6659 6660 6661 6662 6663 6664 6665 6666

  stype = gfc_typenode_for_spec (&expr2->ts);
  src = gfc_build_constant_array_constructor (expr2, stype);

  stype = TREE_TYPE (src);
  if (POINTER_TYPE_P (stype))
    stype = TREE_TYPE (stype);

  return gfc_build_memcpy_call (dst, src, len);
6667 6668 6669
}


6670 6671 6672 6673 6674 6675 6676 6677 6678 6679 6680 6681 6682 6683 6684 6685 6686 6687 6688 6689 6690
/* Tells whether the expression is to be treated as a variable reference.  */

static bool
expr_is_variable (gfc_expr *expr)
{
  gfc_expr *arg;

  if (expr->expr_type == EXPR_VARIABLE)
    return true;

  arg = gfc_get_noncopying_intrinsic_argument (expr);
  if (arg)
    {
      gcc_assert (expr->value.function.isym->id == GFC_ISYM_TRANSPOSE);
      return expr_is_variable (arg);
    }

  return false;
}


6691 6692 6693 6694 6695 6696 6697 6698 6699 6700 6701 6702 6703 6704 6705 6706 6707 6708 6709 6710 6711 6712 6713 6714 6715 6716 6717 6718 6719 6720 6721 6722 6723 6724 6725 6726 6727 6728 6729 6730 6731 6732 6733 6734 6735 6736 6737 6738 6739 6740 6741 6742 6743 6744 6745 6746 6747 6748 6749 6750 6751 6752 6753 6754 6755 6756 6757 6758 6759 6760 6761 6762 6763 6764 6765 6766 6767 6768 6769 6770 6771 6772 6773 6774 6775 6776 6777
/* Is the lhs OK for automatic reallocation?  */

static bool
is_scalar_reallocatable_lhs (gfc_expr *expr)
{
  gfc_ref * ref;

  /* An allocatable variable with no reference.  */
  if (expr->symtree->n.sym->attr.allocatable
	&& !expr->ref)
    return true;

  /* All that can be left are allocatable components.  */
  if ((expr->symtree->n.sym->ts.type != BT_DERIVED
	&& expr->symtree->n.sym->ts.type != BT_CLASS)
	|| !expr->symtree->n.sym->ts.u.derived->attr.alloc_comp)
    return false;

  /* Find an allocatable component ref last.  */
  for (ref = expr->ref; ref; ref = ref->next)
    if (ref->type == REF_COMPONENT
	  && !ref->next
	  && ref->u.c.component->attr.allocatable)
      return true;

  return false;
}


/* Allocate or reallocate scalar lhs, as necessary.  */

static void
alloc_scalar_allocatable_for_assignment (stmtblock_t *block,
					 tree string_length,
					 gfc_expr *expr1,
					 gfc_expr *expr2)

{
  tree cond;
  tree tmp;
  tree size;
  tree size_in_bytes;
  tree jump_label1;
  tree jump_label2;
  gfc_se lse;

  if (!expr1 || expr1->rank)
    return;

  if (!expr2 || expr2->rank)
    return;

  /* Since this is a scalar lhs, we can afford to do this.  That is,
     there is no risk of side effects being repeated.  */
  gfc_init_se (&lse, NULL);
  lse.want_pointer = 1;
  gfc_conv_expr (&lse, expr1);
  
  jump_label1 = gfc_build_label_decl (NULL_TREE);
  jump_label2 = gfc_build_label_decl (NULL_TREE);

  /* Do the allocation if the lhs is NULL. Otherwise go to label 1.  */
  tmp = build_int_cst (TREE_TYPE (lse.expr), 0);
  cond = fold_build2_loc (input_location, NE_EXPR, boolean_type_node,
			  lse.expr, tmp);
  tmp = build3_v (COND_EXPR, cond,
		  build1_v (GOTO_EXPR, jump_label1),
		  build_empty_stmt (input_location));
  gfc_add_expr_to_block (block, tmp);

  if (expr1->ts.type == BT_CHARACTER && expr1->ts.deferred)
    {
      /* Use the rhs string length and the lhs element size.  */
      size = string_length;
      tmp = TREE_TYPE (gfc_typenode_for_spec (&expr1->ts));
      tmp = TYPE_SIZE_UNIT (tmp);
      size_in_bytes = fold_build2_loc (input_location, MULT_EXPR,
				       TREE_TYPE (tmp), tmp,
				       fold_convert (TREE_TYPE (tmp), size));
    }
  else
    {
      /* Otherwise use the length in bytes of the rhs.  */
      size = TYPE_SIZE_UNIT (gfc_typenode_for_spec (&expr1->ts));
      size_in_bytes = size;
    }

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  if (expr1->ts.type == BT_DERIVED && expr1->ts.u.derived->attr.alloc_comp)
    {
      tmp = build_call_expr_loc (input_location,
				 builtin_decl_explicit (BUILT_IN_CALLOC),
				 2, build_one_cst (size_type_node),
				 size_in_bytes);
      tmp = fold_convert (TREE_TYPE (lse.expr), tmp);
      gfc_add_modify (block, lse.expr, tmp);
    }
  else
    {
      tmp = build_call_expr_loc (input_location,
				 builtin_decl_explicit (BUILT_IN_MALLOC),
				 1, size_in_bytes);
      tmp = fold_convert (TREE_TYPE (lse.expr), tmp);
      gfc_add_modify (block, lse.expr, tmp);
    }

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  if (expr1->ts.type == BT_CHARACTER && expr1->ts.deferred)
    {
      /* Deferred characters need checking for lhs and rhs string
	 length.  Other deferred parameter variables will have to
	 come here too.  */
      tmp = build1_v (GOTO_EXPR, jump_label2);
      gfc_add_expr_to_block (block, tmp);
    }
  tmp = build1_v (LABEL_EXPR, jump_label1);
  gfc_add_expr_to_block (block, tmp);

  /* For a deferred length character, reallocate if lengths of lhs and
     rhs are different.  */
  if (expr1->ts.type == BT_CHARACTER && expr1->ts.deferred)
    {
      cond = fold_build2_loc (input_location, EQ_EXPR, boolean_type_node,
			      expr1->ts.u.cl->backend_decl, size);
      /* Jump past the realloc if the lengths are the same.  */
      tmp = build3_v (COND_EXPR, cond,
		      build1_v (GOTO_EXPR, jump_label2),
		      build_empty_stmt (input_location));
      gfc_add_expr_to_block (block, tmp);
      tmp = build_call_expr_loc (input_location,
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				 builtin_decl_explicit (BUILT_IN_REALLOC),
				 2, fold_convert (pvoid_type_node, lse.expr),
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				 size_in_bytes);
      tmp = fold_convert (TREE_TYPE (lse.expr), tmp);
      gfc_add_modify (block, lse.expr, tmp);
      tmp = build1_v (LABEL_EXPR, jump_label2);
      gfc_add_expr_to_block (block, tmp);

      /* Update the lhs character length.  */
      size = string_length;
      gfc_add_modify (block, expr1->ts.u.cl->backend_decl, size);
    }
}


6834
/* Subroutine of gfc_trans_assignment that actually scalarizes the
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   assignment.  EXPR1 is the destination/LHS and EXPR2 is the source/RHS.
   init_flag indicates initialization expressions and dealloc that no
   deallocate prior assignment is needed (if in doubt, set true).  */
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static tree
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gfc_trans_assignment_1 (gfc_expr * expr1, gfc_expr * expr2, bool init_flag,
			bool dealloc)
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{
  gfc_se lse;
  gfc_se rse;
  gfc_ss *lss;
  gfc_ss *lss_section;
  gfc_ss *rss;
  gfc_loopinfo loop;
  tree tmp;
  stmtblock_t block;
  stmtblock_t body;
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6852
  bool l_is_temp;
6853
  bool scalar_to_array;
6854
  bool def_clen_func;
6855
  tree string_length;
6856
  int n;
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  /* Assignment of the form lhs = rhs.  */
  gfc_start_block (&block);

  gfc_init_se (&lse, NULL);
  gfc_init_se (&rse, NULL);

  /* Walk the lhs.  */
  lss = gfc_walk_expr (expr1);
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  if (gfc_is_reallocatable_lhs (expr1)
	&& !(expr2->expr_type == EXPR_FUNCTION
	     && expr2->value.function.isym != NULL))
    lss->is_alloc_lhs = 1;
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  rss = NULL;
  if (lss != gfc_ss_terminator)
    {
      /* The assignment needs scalarization.  */
      lss_section = lss;

      /* Find a non-scalar SS from the lhs.  */
      while (lss_section != gfc_ss_terminator
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	     && lss_section->info->type != GFC_SS_SECTION)
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	lss_section = lss_section->next;

6881
      gcc_assert (lss_section != gfc_ss_terminator);
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      /* Initialize the scalarizer.  */
      gfc_init_loopinfo (&loop);

      /* Walk the rhs.  */
      rss = gfc_walk_expr (expr2);
      if (rss == gfc_ss_terminator)
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	/* The rhs is scalar.  Add a ss for the expression.  */
	rss = gfc_get_scalar_ss (gfc_ss_terminator, expr2);

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      /* Associate the SS with the loop.  */
      gfc_add_ss_to_loop (&loop, lss);
      gfc_add_ss_to_loop (&loop, rss);

      /* Calculate the bounds of the scalarization.  */
      gfc_conv_ss_startstride (&loop);
6898
      /* Enable loop reversal.  */
Paul Thomas committed
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      for (n = 0; n < GFC_MAX_DIMENSIONS; n++)
	loop.reverse[n] = GFC_ENABLE_REVERSE;
6901
      /* Resolve any data dependencies in the statement.  */
6902
      gfc_conv_resolve_dependencies (&loop, lss, rss);
6903
      /* Setup the scalarizing loops.  */
6904
      gfc_conv_loop_setup (&loop, &expr2->where);
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      /* Setup the gfc_se structures.  */
      gfc_copy_loopinfo_to_se (&lse, &loop);
      gfc_copy_loopinfo_to_se (&rse, &loop);

      rse.ss = rss;
      gfc_mark_ss_chain_used (rss, 1);
      if (loop.temp_ss == NULL)
	{
	  lse.ss = lss;
	  gfc_mark_ss_chain_used (lss, 1);
	}
      else
	{
	  lse.ss = loop.temp_ss;
	  gfc_mark_ss_chain_used (lss, 3);
	  gfc_mark_ss_chain_used (loop.temp_ss, 3);
	}

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      /* Allow the scalarizer to workshare array assignments.  */
      if ((ompws_flags & OMPWS_WORKSHARE_FLAG) && loop.temp_ss == NULL)
	ompws_flags |= OMPWS_SCALARIZER_WS;

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      /* Start the scalarized loop body.  */
      gfc_start_scalarized_body (&loop, &body);
    }
  else
    gfc_init_block (&body);

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  l_is_temp = (lss != gfc_ss_terminator && loop.temp_ss != NULL);

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  /* Translate the expression.  */
  gfc_conv_expr (&rse, expr2);

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  /* Stabilize a string length for temporaries.  */
  if (expr2->ts.type == BT_CHARACTER)
    string_length = gfc_evaluate_now (rse.string_length, &rse.pre);
  else
    string_length = NULL_TREE;

Paul Thomas committed
6945
  if (l_is_temp)
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    {
      gfc_conv_tmp_array_ref (&lse);
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      if (expr2->ts.type == BT_CHARACTER)
	lse.string_length = string_length;
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    }
  else
    gfc_conv_expr (&lse, expr1);
6953

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  /* Assignments of scalar derived types with allocatable components
     to arrays must be done with a deep copy and the rhs temporary
     must have its components deallocated afterwards.  */
  scalar_to_array = (expr2->ts.type == BT_DERIVED
6958
		       && expr2->ts.u.derived->attr.alloc_comp
6959
		       && !expr_is_variable (expr2)
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		       && !gfc_is_constant_expr (expr2)
		       && expr1->rank && !expr2->rank);
6962
  if (scalar_to_array && dealloc)
6963
    {
6964
      tmp = gfc_deallocate_alloc_comp (expr2->ts.u.derived, rse.expr, 0);
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      gfc_add_expr_to_block (&loop.post, tmp);
    }

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  /* For a deferred character length function, the function call must
     happen before the (re)allocation of the lhs, otherwise the character
     length of the result is not known.  */
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  def_clen_func = (((expr2->expr_type == EXPR_FUNCTION)
			   || (expr2->expr_type == EXPR_COMPCALL)
			   || (expr2->expr_type == EXPR_PPC))
		       && expr2->ts.deferred);
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  if (gfc_option.flag_realloc_lhs
	&& expr2->ts.type == BT_CHARACTER
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	&& (def_clen_func || expr2->expr_type == EXPR_OP)
	&& expr1->ts.deferred)
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    gfc_add_block_to_block (&block, &rse.pre);

Paul Thomas committed
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  tmp = gfc_trans_scalar_assign (&lse, &rse, expr1->ts,
				 l_is_temp || init_flag,
Tobias Burnus committed
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				 expr_is_variable (expr2) || scalar_to_array
				 || expr2->expr_type == EXPR_ARRAY, dealloc);
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  gfc_add_expr_to_block (&body, tmp);

  if (lss == gfc_ss_terminator)
    {
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      /* F2003: Add the code for reallocation on assignment.  */
      if (gfc_option.flag_realloc_lhs
	    && is_scalar_reallocatable_lhs (expr1))
	alloc_scalar_allocatable_for_assignment (&block, rse.string_length,
						 expr1, expr2);

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      /* Use the scalar assignment as is.  */
      gfc_add_block_to_block (&block, &body);
    }
  else
    {
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      gcc_assert (lse.ss == gfc_ss_terminator
		  && rse.ss == gfc_ss_terminator);
7002

Paul Thomas committed
7003
      if (l_is_temp)
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	{
	  gfc_trans_scalarized_loop_boundary (&loop, &body);

	  /* We need to copy the temporary to the actual lhs.  */
	  gfc_init_se (&lse, NULL);
	  gfc_init_se (&rse, NULL);
	  gfc_copy_loopinfo_to_se (&lse, &loop);
	  gfc_copy_loopinfo_to_se (&rse, &loop);

	  rse.ss = loop.temp_ss;
	  lse.ss = lss;

	  gfc_conv_tmp_array_ref (&rse);
	  gfc_conv_expr (&lse, expr1);

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	  gcc_assert (lse.ss == gfc_ss_terminator
		      && rse.ss == gfc_ss_terminator);
7021

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	  if (expr2->ts.type == BT_CHARACTER)
	    rse.string_length = string_length;

Paul Thomas committed
7025
	  tmp = gfc_trans_scalar_assign (&lse, &rse, expr1->ts,
7026
					 false, false, dealloc);
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	  gfc_add_expr_to_block (&body, tmp);
	}
Paul Thomas committed
7029

7030
      /* F2003: Allocate or reallocate lhs of allocatable array.  */
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      if (gfc_option.flag_realloc_lhs
	    && gfc_is_reallocatable_lhs (expr1)
	    && !gfc_expr_attr (expr1).codimension
	    && !gfc_is_coindexed (expr1))
	{
7036
	  ompws_flags &= ~OMPWS_SCALARIZER_WS;
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	  tmp = gfc_alloc_allocatable_for_assignment (&loop, expr1, expr2);
	  if (tmp != NULL_TREE)
	    gfc_add_expr_to_block (&loop.code[expr1->rank - 1], tmp);
	}

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      /* Generate the copying loops.  */
      gfc_trans_scalarizing_loops (&loop, &body);

      /* Wrap the whole thing up.  */
      gfc_add_block_to_block (&block, &loop.pre);
      gfc_add_block_to_block (&block, &loop.post);

      gfc_cleanup_loop (&loop);
    }

  return gfc_finish_block (&block);
}

7055

7056
/* Check whether EXPR is a copyable array.  */
7057 7058 7059 7060

static bool
copyable_array_p (gfc_expr * expr)
{
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  if (expr->expr_type != EXPR_VARIABLE)
    return false;

7064
  /* First check it's an array.  */
7065 7066 7067
  if (expr->rank < 1 || !expr->ref || expr->ref->next)
    return false;

7068
  if (!gfc_full_array_ref_p (expr->ref, NULL))
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    return false;

  /* Next check that it's of a simple enough type.  */
  switch (expr->ts.type)
    {
    case BT_INTEGER:
    case BT_REAL:
    case BT_COMPLEX:
    case BT_LOGICAL:
      return true;

7080 7081 7082 7083
    case BT_CHARACTER:
      return false;

    case BT_DERIVED:
7084
      return !expr->ts.u.derived->attr.alloc_comp;
7085

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    default:
      break;
    }

  return false;
}

/* Translate an assignment.  */

tree
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gfc_trans_assignment (gfc_expr * expr1, gfc_expr * expr2, bool init_flag,
		      bool dealloc)
7098 7099
{
  tree tmp;
7100

7101 7102 7103 7104 7105 7106 7107 7108 7109
  /* Special case a single function returning an array.  */
  if (expr2->expr_type == EXPR_FUNCTION && expr2->rank > 0)
    {
      tmp = gfc_trans_arrayfunc_assign (expr1, expr2);
      if (tmp)
	return tmp;
    }

  /* Special case assigning an array to zero.  */
7110
  if (copyable_array_p (expr1)
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      && is_zero_initializer_p (expr2))
    {
      tmp = gfc_trans_zero_assign (expr1);
      if (tmp)
        return tmp;
    }

  /* Special case copying one array to another.  */
7119
  if (copyable_array_p (expr1)
7120 7121 7122 7123 7124 7125 7126 7127 7128
      && copyable_array_p (expr2)
      && gfc_compare_types (&expr1->ts, &expr2->ts)
      && !gfc_check_dependency (expr1, expr2, 0))
    {
      tmp = gfc_trans_array_copy (expr1, expr2);
      if (tmp)
        return tmp;
    }

7129
  /* Special case initializing an array from a constant array constructor.  */
7130
  if (copyable_array_p (expr1)
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      && expr2->expr_type == EXPR_ARRAY
      && gfc_compare_types (&expr1->ts, &expr2->ts))
    {
      tmp = gfc_trans_array_constructor_copy (expr1, expr2);
      if (tmp)
	return tmp;
    }

7139
  /* Fallback to the scalarizer to generate explicit loops.  */
7140
  return gfc_trans_assignment_1 (expr1, expr2, init_flag, dealloc);
7141 7142
}

7143
tree
Paul Thomas committed
7144 7145
gfc_trans_init_assign (gfc_code * code)
{
7146
  return gfc_trans_assignment (code->expr1, code->expr2, true, false);
Paul Thomas committed
7147 7148 7149
}

tree
7150 7151
gfc_trans_assign (gfc_code * code)
{
7152
  return gfc_trans_assignment (code->expr1, code->expr2, false, true);
7153
}