1 /* Expression translation
2 Copyright (C) 2002, 2003, 2004 Free Software Foundation, Inc.
3 Contributed by Paul Brook <paul@nowt.org>
4 and Steven Bosscher <s.bosscher@student.tudelft.nl>
6 This file is part of GCC.
8 GCC is free software; you can redistribute it and/or modify it under
9 the terms of the GNU General Public License as published by the Free
10 Software Foundation; either version 2, or (at your option) any later
13 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14 WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING. If not, write to the Free
20 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
23 /* trans-expr.c-- generate GENERIC trees for gfc_expr. */
27 #include "coretypes.h"
34 #include "tree-gimple.h"
39 #include "trans-const.h"
40 #include "trans-types.h"
41 #include "trans-array.h"
42 /* Only for gfc_trans_assign and gfc_trans_pointer_assign. */
43 #include "trans-stmt.h"
45 static tree
gfc_trans_structure_assign (tree dest
, gfc_expr
* expr
);
47 /* Copy the scalarization loop variables. */
50 gfc_copy_se_loopvars (gfc_se
* dest
, gfc_se
* src
)
53 dest
->loop
= src
->loop
;
57 /* Initialize a simple expression holder.
59 Care must be taken when multiple se are created with the same parent.
60 The child se must be kept in sync. The easiest way is to delay creation
61 of a child se until after after the previous se has been translated. */
64 gfc_init_se (gfc_se
* se
, gfc_se
* parent
)
66 memset (se
, 0, sizeof (gfc_se
));
67 gfc_init_block (&se
->pre
);
68 gfc_init_block (&se
->post
);
73 gfc_copy_se_loopvars (se
, parent
);
77 /* Advances to the next SS in the chain. Use this rather than setting
78 se->ss = se->ss->next because all the parents needs to be kept in sync.
82 gfc_advance_se_ss_chain (gfc_se
* se
)
86 gcc_assert (se
!= NULL
&& se
->ss
!= NULL
&& se
->ss
!= gfc_ss_terminator
);
89 /* Walk down the parent chain. */
92 /* Simple consistency check. */
93 gcc_assert (p
->parent
== NULL
|| p
->parent
->ss
== p
->ss
);
102 /* Ensures the result of the expression as either a temporary variable
103 or a constant so that it can be used repeatedly. */
106 gfc_make_safe_expr (gfc_se
* se
)
110 if (CONSTANT_CLASS_P (se
->expr
))
113 /* We need a temporary for this result. */
114 var
= gfc_create_var (TREE_TYPE (se
->expr
), NULL
);
115 gfc_add_modify_expr (&se
->pre
, var
, se
->expr
);
120 /* Return an expression which determines if a dummy parameter is present. */
123 gfc_conv_expr_present (gfc_symbol
* sym
)
127 gcc_assert (sym
->attr
.dummy
&& sym
->attr
.optional
);
129 decl
= gfc_get_symbol_decl (sym
);
130 if (TREE_CODE (decl
) != PARM_DECL
)
132 /* Array parameters use a temporary descriptor, we want the real
134 gcc_assert (GFC_DESCRIPTOR_TYPE_P (TREE_TYPE (decl
))
135 || GFC_ARRAY_TYPE_P (TREE_TYPE (decl
)));
136 decl
= GFC_DECL_SAVED_DESCRIPTOR (decl
);
138 return build2 (NE_EXPR
, boolean_type_node
, decl
,
139 fold_convert (TREE_TYPE (decl
), null_pointer_node
));
143 /* Get the character length of an expression, looking through gfc_refs
147 gfc_get_expr_charlen (gfc_expr
*e
)
152 gcc_assert (e
->expr_type
== EXPR_VARIABLE
153 && e
->ts
.type
== BT_CHARACTER
);
155 length
= NULL
; /* To silence compiler warning. */
157 /* First candidate: if the variable is of type CHARACTER, the
158 expression's length could be the length of the character
160 if (e
->symtree
->n
.sym
->ts
.type
== BT_CHARACTER
)
161 length
= e
->symtree
->n
.sym
->ts
.cl
->backend_decl
;
163 /* Look through the reference chain for component references. */
164 for (r
= e
->ref
; r
; r
= r
->next
)
169 if (r
->u
.c
.component
->ts
.type
== BT_CHARACTER
)
170 length
= r
->u
.c
.component
->ts
.cl
->backend_decl
;
178 /* We should never got substring references here. These will be
179 broken down by the scalarizer. */
184 gcc_assert (length
!= NULL
);
190 /* Generate code to initialize a string length variable. Returns the
194 gfc_trans_init_string_length (gfc_charlen
* cl
, stmtblock_t
* pblock
)
199 gfc_init_se (&se
, NULL
);
200 gfc_conv_expr_type (&se
, cl
->length
, gfc_charlen_type_node
);
201 gfc_add_block_to_block (pblock
, &se
.pre
);
203 tmp
= cl
->backend_decl
;
204 gfc_add_modify_expr (pblock
, tmp
, se
.expr
);
209 gfc_conv_substring (gfc_se
* se
, gfc_ref
* ref
, int kind
)
217 type
= gfc_get_character_type (kind
, ref
->u
.ss
.length
);
218 type
= build_pointer_type (type
);
221 gfc_init_se (&start
, se
);
222 gfc_conv_expr_type (&start
, ref
->u
.ss
.start
, gfc_charlen_type_node
);
223 gfc_add_block_to_block (&se
->pre
, &start
.pre
);
225 if (integer_onep (start
.expr
))
226 gfc_conv_string_parameter (se
);
229 /* Change the start of the string. */
230 if (TYPE_STRING_FLAG (TREE_TYPE (se
->expr
)))
233 tmp
= gfc_build_indirect_ref (se
->expr
);
234 tmp
= gfc_build_array_ref (tmp
, start
.expr
);
235 se
->expr
= gfc_build_addr_expr (type
, tmp
);
238 /* Length = end + 1 - start. */
239 gfc_init_se (&end
, se
);
240 if (ref
->u
.ss
.end
== NULL
)
241 end
.expr
= se
->string_length
;
244 gfc_conv_expr_type (&end
, ref
->u
.ss
.end
, gfc_charlen_type_node
);
245 gfc_add_block_to_block (&se
->pre
, &end
.pre
);
248 build2 (MINUS_EXPR
, gfc_charlen_type_node
,
249 fold_convert (gfc_charlen_type_node
, integer_one_node
),
251 tmp
= build2 (PLUS_EXPR
, gfc_charlen_type_node
, end
.expr
, tmp
);
252 se
->string_length
= fold (tmp
);
256 /* Convert a derived type component reference. */
259 gfc_conv_component_ref (gfc_se
* se
, gfc_ref
* ref
)
266 c
= ref
->u
.c
.component
;
268 gcc_assert (c
->backend_decl
);
270 field
= c
->backend_decl
;
271 gcc_assert (TREE_CODE (field
) == FIELD_DECL
);
273 tmp
= build3 (COMPONENT_REF
, TREE_TYPE (field
), decl
, field
, NULL_TREE
);
277 if (c
->ts
.type
== BT_CHARACTER
)
279 tmp
= c
->ts
.cl
->backend_decl
;
280 /* Components must always be constant length. */
281 gcc_assert (tmp
&& INTEGER_CST_P (tmp
));
282 se
->string_length
= tmp
;
285 if (c
->pointer
&& c
->dimension
== 0)
286 se
->expr
= gfc_build_indirect_ref (se
->expr
);
290 /* Return the contents of a variable. Also handles reference/pointer
291 variables (all Fortran pointer references are implicit). */
294 gfc_conv_variable (gfc_se
* se
, gfc_expr
* expr
)
299 sym
= expr
->symtree
->n
.sym
;
302 /* Check that something hasn't gone horribly wrong. */
303 gcc_assert (se
->ss
!= gfc_ss_terminator
);
304 gcc_assert (se
->ss
->expr
== expr
);
306 /* A scalarized term. We already know the descriptor. */
307 se
->expr
= se
->ss
->data
.info
.descriptor
;
308 se
->string_length
= se
->ss
->string_length
;
309 ref
= se
->ss
->data
.info
.ref
;
313 se
->expr
= gfc_get_symbol_decl (sym
);
315 /* Procedure actual arguments. */
316 if (sym
->attr
.flavor
== FL_PROCEDURE
317 && se
->expr
!= current_function_decl
)
319 gcc_assert (se
->want_pointer
);
320 if (!sym
->attr
.dummy
)
322 gcc_assert (TREE_CODE (se
->expr
) == FUNCTION_DECL
);
323 se
->expr
= gfc_build_addr_expr (NULL
, se
->expr
);
328 /* Special case for assigning the return value of a function.
329 Self recursive functions must have an explicit return value. */
330 if (se
->expr
== current_function_decl
&& sym
->attr
.function
331 && (sym
->result
== sym
))
333 se
->expr
= gfc_get_fake_result_decl (sym
);
336 /* Dereference scalar dummy variables. */
338 && sym
->ts
.type
!= BT_CHARACTER
339 && !sym
->attr
.dimension
)
340 se
->expr
= gfc_build_indirect_ref (se
->expr
);
342 /* Dereference pointer variables. */
343 if ((sym
->attr
.pointer
|| sym
->attr
.allocatable
)
346 || sym
->attr
.function
347 || !sym
->attr
.dimension
)
348 && sym
->ts
.type
!= BT_CHARACTER
)
349 se
->expr
= gfc_build_indirect_ref (se
->expr
);
354 /* For character variables, also get the length. */
355 if (sym
->ts
.type
== BT_CHARACTER
)
357 se
->string_length
= sym
->ts
.cl
->backend_decl
;
358 gcc_assert (se
->string_length
);
366 /* Return the descriptor if that's what we want and this is an array
367 section reference. */
368 if (se
->descriptor_only
&& ref
->u
.ar
.type
!= AR_ELEMENT
)
370 /* TODO: Pointers to single elements of array sections, eg elemental subs. */
371 /* Return the descriptor for array pointers and allocations. */
373 && ref
->next
== NULL
&& (se
->descriptor_only
))
376 gfc_conv_array_ref (se
, &ref
->u
.ar
);
377 /* Return a pointer to an element. */
381 gfc_conv_component_ref (se
, ref
);
385 gfc_conv_substring (se
, ref
, expr
->ts
.kind
);
394 /* Pointer assignment, allocation or pass by reference. Arrays are handled
396 if (se
->want_pointer
)
398 if (expr
->ts
.type
== BT_CHARACTER
)
399 gfc_conv_string_parameter (se
);
401 se
->expr
= gfc_build_addr_expr (NULL
, se
->expr
);
404 gfc_advance_se_ss_chain (se
);
408 /* Unary ops are easy... Or they would be if ! was a valid op. */
411 gfc_conv_unary_op (enum tree_code code
, gfc_se
* se
, gfc_expr
* expr
)
416 gcc_assert (expr
->ts
.type
!= BT_CHARACTER
);
417 /* Initialize the operand. */
418 gfc_init_se (&operand
, se
);
419 gfc_conv_expr_val (&operand
, expr
->op1
);
420 gfc_add_block_to_block (&se
->pre
, &operand
.pre
);
422 type
= gfc_typenode_for_spec (&expr
->ts
);
424 /* TRUTH_NOT_EXPR is not a "true" unary operator in GCC.
425 We must convert it to a compare to 0 (e.g. EQ_EXPR (op1, 0)).
426 All other unary operators have an equivalent GIMPLE unary operator. */
427 if (code
== TRUTH_NOT_EXPR
)
428 se
->expr
= build2 (EQ_EXPR
, type
, operand
.expr
,
429 convert (type
, integer_zero_node
));
431 se
->expr
= build1 (code
, type
, operand
.expr
);
435 /* Expand power operator to optimal multiplications when a value is raised
436 to a constant integer n. See section 4.6.3, "Evaluation of Powers" of
437 Donald E. Knuth, "Seminumerical Algorithms", Vol. 2, "The Art of Computer
438 Programming", 3rd Edition, 1998. */
440 /* This code is mostly duplicated from expand_powi in the backend.
441 We establish the "optimal power tree" lookup table with the defined size.
442 The items in the table are the exponents used to calculate the index
443 exponents. Any integer n less than the value can get an "addition chain",
444 with the first node being one. */
445 #define POWI_TABLE_SIZE 256
447 /* The table is from builtins.c. */
448 static const unsigned char powi_table
[POWI_TABLE_SIZE
] =
450 0, 1, 1, 2, 2, 3, 3, 4, /* 0 - 7 */
451 4, 6, 5, 6, 6, 10, 7, 9, /* 8 - 15 */
452 8, 16, 9, 16, 10, 12, 11, 13, /* 16 - 23 */
453 12, 17, 13, 18, 14, 24, 15, 26, /* 24 - 31 */
454 16, 17, 17, 19, 18, 33, 19, 26, /* 32 - 39 */
455 20, 25, 21, 40, 22, 27, 23, 44, /* 40 - 47 */
456 24, 32, 25, 34, 26, 29, 27, 44, /* 48 - 55 */
457 28, 31, 29, 34, 30, 60, 31, 36, /* 56 - 63 */
458 32, 64, 33, 34, 34, 46, 35, 37, /* 64 - 71 */
459 36, 65, 37, 50, 38, 48, 39, 69, /* 72 - 79 */
460 40, 49, 41, 43, 42, 51, 43, 58, /* 80 - 87 */
461 44, 64, 45, 47, 46, 59, 47, 76, /* 88 - 95 */
462 48, 65, 49, 66, 50, 67, 51, 66, /* 96 - 103 */
463 52, 70, 53, 74, 54, 104, 55, 74, /* 104 - 111 */
464 56, 64, 57, 69, 58, 78, 59, 68, /* 112 - 119 */
465 60, 61, 61, 80, 62, 75, 63, 68, /* 120 - 127 */
466 64, 65, 65, 128, 66, 129, 67, 90, /* 128 - 135 */
467 68, 73, 69, 131, 70, 94, 71, 88, /* 136 - 143 */
468 72, 128, 73, 98, 74, 132, 75, 121, /* 144 - 151 */
469 76, 102, 77, 124, 78, 132, 79, 106, /* 152 - 159 */
470 80, 97, 81, 160, 82, 99, 83, 134, /* 160 - 167 */
471 84, 86, 85, 95, 86, 160, 87, 100, /* 168 - 175 */
472 88, 113, 89, 98, 90, 107, 91, 122, /* 176 - 183 */
473 92, 111, 93, 102, 94, 126, 95, 150, /* 184 - 191 */
474 96, 128, 97, 130, 98, 133, 99, 195, /* 192 - 199 */
475 100, 128, 101, 123, 102, 164, 103, 138, /* 200 - 207 */
476 104, 145, 105, 146, 106, 109, 107, 149, /* 208 - 215 */
477 108, 200, 109, 146, 110, 170, 111, 157, /* 216 - 223 */
478 112, 128, 113, 130, 114, 182, 115, 132, /* 224 - 231 */
479 116, 200, 117, 132, 118, 158, 119, 206, /* 232 - 239 */
480 120, 240, 121, 162, 122, 147, 123, 152, /* 240 - 247 */
481 124, 166, 125, 214, 126, 138, 127, 153, /* 248 - 255 */
484 /* If n is larger than lookup table's max index, we use the "window
486 #define POWI_WINDOW_SIZE 3
488 /* Recursive function to expand the power operator. The temporary
489 values are put in tmpvar. The function returns tmpvar[1] ** n. */
491 gfc_conv_powi (gfc_se
* se
, int n
, tree
* tmpvar
)
498 if (n
< POWI_TABLE_SIZE
)
503 op0
= gfc_conv_powi (se
, n
- powi_table
[n
], tmpvar
);
504 op1
= gfc_conv_powi (se
, powi_table
[n
], tmpvar
);
508 digit
= n
& ((1 << POWI_WINDOW_SIZE
) - 1);
509 op0
= gfc_conv_powi (se
, n
- digit
, tmpvar
);
510 op1
= gfc_conv_powi (se
, digit
, tmpvar
);
514 op0
= gfc_conv_powi (se
, n
>> 1, tmpvar
);
518 tmp
= fold (build2 (MULT_EXPR
, TREE_TYPE (op0
), op0
, op1
));
519 tmp
= gfc_evaluate_now (tmp
, &se
->pre
);
521 if (n
< POWI_TABLE_SIZE
)
528 /* Expand lhs ** rhs. rhs is a constant integer. If it expands successfully,
529 return 1. Else return 0 and a call to runtime library functions
530 will have to be built. */
532 gfc_conv_cst_int_power (gfc_se
* se
, tree lhs
, tree rhs
)
537 tree vartmp
[POWI_TABLE_SIZE
];
541 type
= TREE_TYPE (lhs
);
542 n
= abs (TREE_INT_CST_LOW (rhs
));
543 sgn
= tree_int_cst_sgn (rhs
);
545 if ((!flag_unsafe_math_optimizations
|| optimize_size
) && (n
> 2 || n
< -1))
551 se
->expr
= gfc_build_const (type
, integer_one_node
);
554 /* If rhs < 0 and lhs is an integer, the result is -1, 0 or 1. */
555 if ((sgn
== -1) && (TREE_CODE (type
) == INTEGER_TYPE
))
557 tmp
= build2 (EQ_EXPR
, boolean_type_node
, lhs
,
558 fold_convert (TREE_TYPE (lhs
), integer_minus_one_node
));
559 cond
= build2 (EQ_EXPR
, boolean_type_node
, lhs
,
560 convert (TREE_TYPE (lhs
), integer_one_node
));
563 result = (lhs == 1 || lhs == -1) ? 1 : 0. */
566 tmp
= build2 (TRUTH_OR_EXPR
, boolean_type_node
, tmp
, cond
);
567 se
->expr
= build3 (COND_EXPR
, type
, tmp
,
568 convert (type
, integer_one_node
),
569 convert (type
, integer_zero_node
));
573 result = (lhs == 1) ? 1 : (lhs == -1) ? -1 : 0. */
574 tmp
= build3 (COND_EXPR
, type
, tmp
,
575 convert (type
, integer_minus_one_node
),
576 convert (type
, integer_zero_node
));
577 se
->expr
= build3 (COND_EXPR
, type
, cond
,
578 convert (type
, integer_one_node
),
583 memset (vartmp
, 0, sizeof (vartmp
));
587 tmp
= gfc_build_const (type
, integer_one_node
);
588 vartmp
[1] = build2 (RDIV_EXPR
, type
, tmp
, vartmp
[1]);
591 se
->expr
= gfc_conv_powi (se
, n
, vartmp
);
597 /* Power op (**). Constant integer exponent has special handling. */
600 gfc_conv_power_op (gfc_se
* se
, gfc_expr
* expr
)
602 tree gfc_int4_type_node
;
610 gfc_init_se (&lse
, se
);
611 gfc_conv_expr_val (&lse
, expr
->op1
);
612 gfc_add_block_to_block (&se
->pre
, &lse
.pre
);
614 gfc_init_se (&rse
, se
);
615 gfc_conv_expr_val (&rse
, expr
->op2
);
616 gfc_add_block_to_block (&se
->pre
, &rse
.pre
);
618 if (expr
->op2
->ts
.type
== BT_INTEGER
619 && expr
->op2
->expr_type
== EXPR_CONSTANT
)
620 if (gfc_conv_cst_int_power (se
, lse
.expr
, rse
.expr
))
623 gfc_int4_type_node
= gfc_get_int_type (4);
625 kind
= expr
->op1
->ts
.kind
;
626 switch (expr
->op2
->ts
.type
)
629 ikind
= expr
->op2
->ts
.kind
;
634 rse
.expr
= convert (gfc_int4_type_node
, rse
.expr
);
652 if (expr
->op1
->ts
.type
== BT_INTEGER
)
653 lse
.expr
= convert (gfc_int4_type_node
, lse
.expr
);
670 switch (expr
->op1
->ts
.type
)
673 fndecl
= gfor_fndecl_math_powi
[kind
][ikind
].integer
;
677 fndecl
= gfor_fndecl_math_powi
[kind
][ikind
].real
;
681 fndecl
= gfor_fndecl_math_powi
[kind
][ikind
].cmplx
;
693 fndecl
= built_in_decls
[BUILT_IN_POWF
];
696 fndecl
= built_in_decls
[BUILT_IN_POW
];
707 fndecl
= gfor_fndecl_math_cpowf
;
710 fndecl
= gfor_fndecl_math_cpow
;
722 tmp
= gfc_chainon_list (NULL_TREE
, lse
.expr
);
723 tmp
= gfc_chainon_list (tmp
, rse
.expr
);
724 se
->expr
= fold (gfc_build_function_call (fndecl
, tmp
));
728 /* Generate code to allocate a string temporary. */
731 gfc_conv_string_tmp (gfc_se
* se
, tree type
, tree len
)
737 gcc_assert (TREE_TYPE (len
) == gfc_charlen_type_node
);
739 if (gfc_can_put_var_on_stack (len
))
741 /* Create a temporary variable to hold the result. */
742 tmp
= fold (build2 (MINUS_EXPR
, gfc_charlen_type_node
, len
,
743 convert (gfc_charlen_type_node
,
745 tmp
= build_range_type (gfc_array_index_type
, gfc_index_zero_node
, tmp
);
746 tmp
= build_array_type (gfc_character1_type_node
, tmp
);
747 var
= gfc_create_var (tmp
, "str");
748 var
= gfc_build_addr_expr (type
, var
);
752 /* Allocate a temporary to hold the result. */
753 var
= gfc_create_var (type
, "pstr");
754 args
= gfc_chainon_list (NULL_TREE
, len
);
755 tmp
= gfc_build_function_call (gfor_fndecl_internal_malloc
, args
);
756 tmp
= convert (type
, tmp
);
757 gfc_add_modify_expr (&se
->pre
, var
, tmp
);
759 /* Free the temporary afterwards. */
760 tmp
= convert (pvoid_type_node
, var
);
761 args
= gfc_chainon_list (NULL_TREE
, tmp
);
762 tmp
= gfc_build_function_call (gfor_fndecl_internal_free
, args
);
763 gfc_add_expr_to_block (&se
->post
, tmp
);
770 /* Handle a string concatenation operation. A temporary will be allocated to
774 gfc_conv_concat_op (gfc_se
* se
, gfc_expr
* expr
)
784 gcc_assert (expr
->op1
->ts
.type
== BT_CHARACTER
785 && expr
->op2
->ts
.type
== BT_CHARACTER
);
787 gfc_init_se (&lse
, se
);
788 gfc_conv_expr (&lse
, expr
->op1
);
789 gfc_conv_string_parameter (&lse
);
790 gfc_init_se (&rse
, se
);
791 gfc_conv_expr (&rse
, expr
->op2
);
792 gfc_conv_string_parameter (&rse
);
794 gfc_add_block_to_block (&se
->pre
, &lse
.pre
);
795 gfc_add_block_to_block (&se
->pre
, &rse
.pre
);
797 type
= gfc_get_character_type (expr
->ts
.kind
, expr
->ts
.cl
);
798 len
= TYPE_MAX_VALUE (TYPE_DOMAIN (type
));
799 if (len
== NULL_TREE
)
801 len
= fold (build2 (PLUS_EXPR
, TREE_TYPE (lse
.string_length
),
802 lse
.string_length
, rse
.string_length
));
805 type
= build_pointer_type (type
);
807 var
= gfc_conv_string_tmp (se
, type
, len
);
809 /* Do the actual concatenation. */
811 args
= gfc_chainon_list (args
, len
);
812 args
= gfc_chainon_list (args
, var
);
813 args
= gfc_chainon_list (args
, lse
.string_length
);
814 args
= gfc_chainon_list (args
, lse
.expr
);
815 args
= gfc_chainon_list (args
, rse
.string_length
);
816 args
= gfc_chainon_list (args
, rse
.expr
);
817 tmp
= gfc_build_function_call (gfor_fndecl_concat_string
, args
);
818 gfc_add_expr_to_block (&se
->pre
, tmp
);
820 /* Add the cleanup for the operands. */
821 gfc_add_block_to_block (&se
->pre
, &rse
.post
);
822 gfc_add_block_to_block (&se
->pre
, &lse
.post
);
825 se
->string_length
= len
;
829 /* Translates an op expression. Common (binary) cases are handled by this
830 function, others are passed on. Recursion is used in either case.
831 We use the fact that (op1.ts == op2.ts) (except for the power
833 Operators need no special handling for scalarized expressions as long as
834 they call gfc_conv_simple_val to get their operands.
835 Character strings get special handling. */
838 gfc_conv_expr_op (gfc_se
* se
, gfc_expr
* expr
)
850 switch (expr
->operator)
852 case INTRINSIC_UPLUS
:
853 gfc_conv_expr (se
, expr
->op1
);
856 case INTRINSIC_UMINUS
:
857 gfc_conv_unary_op (NEGATE_EXPR
, se
, expr
);
861 gfc_conv_unary_op (TRUTH_NOT_EXPR
, se
, expr
);
868 case INTRINSIC_MINUS
:
872 case INTRINSIC_TIMES
:
876 case INTRINSIC_DIVIDE
:
877 /* If expr is a real or complex expr, use an RDIV_EXPR. If op1 is
878 an integer, we must round towards zero, so we use a
880 if (expr
->ts
.type
== BT_INTEGER
)
881 code
= TRUNC_DIV_EXPR
;
886 case INTRINSIC_POWER
:
887 gfc_conv_power_op (se
, expr
);
890 case INTRINSIC_CONCAT
:
891 gfc_conv_concat_op (se
, expr
);
895 code
= TRUTH_ANDIF_EXPR
;
900 code
= TRUTH_ORIF_EXPR
;
904 /* EQV and NEQV only work on logicals, but since we represent them
905 as integers, we can use EQ_EXPR and NE_EXPR for them in GIMPLE. */
945 case INTRINSIC_ASSIGN
:
946 /* These should be converted into function calls by the frontend. */
950 fatal_error ("Unknown intrinsic op");
954 /* The only exception to this is **, which is handled separately anyway. */
955 gcc_assert (expr
->op1
->ts
.type
== expr
->op2
->ts
.type
);
957 if (checkstring
&& expr
->op1
->ts
.type
!= BT_CHARACTER
)
961 gfc_init_se (&lse
, se
);
962 gfc_conv_expr (&lse
, expr
->op1
);
963 gfc_add_block_to_block (&se
->pre
, &lse
.pre
);
966 gfc_init_se (&rse
, se
);
967 gfc_conv_expr (&rse
, expr
->op2
);
968 gfc_add_block_to_block (&se
->pre
, &rse
.pre
);
970 /* For string comparisons we generate a library call, and compare the return
974 gfc_conv_string_parameter (&lse
);
975 gfc_conv_string_parameter (&rse
);
977 tmp
= gfc_chainon_list (tmp
, lse
.string_length
);
978 tmp
= gfc_chainon_list (tmp
, lse
.expr
);
979 tmp
= gfc_chainon_list (tmp
, rse
.string_length
);
980 tmp
= gfc_chainon_list (tmp
, rse
.expr
);
982 /* Build a call for the comparison. */
983 lse
.expr
= gfc_build_function_call (gfor_fndecl_compare_string
, tmp
);
984 gfc_add_block_to_block (&lse
.post
, &rse
.post
);
986 rse
.expr
= integer_zero_node
;
989 type
= gfc_typenode_for_spec (&expr
->ts
);
993 /* The result of logical ops is always boolean_type_node. */
994 tmp
= fold (build2 (code
, type
, lse
.expr
, rse
.expr
));
995 se
->expr
= convert (type
, tmp
);
998 se
->expr
= fold (build2 (code
, type
, lse
.expr
, rse
.expr
));
1000 /* Add the post blocks. */
1001 gfc_add_block_to_block (&se
->post
, &rse
.post
);
1002 gfc_add_block_to_block (&se
->post
, &lse
.post
);
1007 gfc_conv_function_val (gfc_se
* se
, gfc_symbol
* sym
)
1011 if (sym
->attr
.dummy
)
1013 tmp
= gfc_get_symbol_decl (sym
);
1014 gcc_assert (TREE_CODE (TREE_TYPE (tmp
)) == POINTER_TYPE
1015 && TREE_CODE (TREE_TYPE (TREE_TYPE (tmp
))) == FUNCTION_TYPE
);
1021 if (!sym
->backend_decl
)
1022 sym
->backend_decl
= gfc_get_extern_function_decl (sym
);
1024 tmp
= sym
->backend_decl
;
1025 gcc_assert (TREE_CODE (tmp
) == FUNCTION_DECL
);
1026 se
->expr
= gfc_build_addr_expr (NULL
, tmp
);
1031 /* Generate code for a procedure call. Note can return se->post != NULL.
1032 If se->direct_byref is set then se->expr contains the return parameter. */
1035 gfc_conv_function_call (gfc_se
* se
, gfc_symbol
* sym
,
1036 gfc_actual_arglist
* arg
)
1049 gfc_formal_arglist
*formal
;
1051 arglist
= NULL_TREE
;
1052 stringargs
= NULL_TREE
;
1058 if (!sym
->attr
.elemental
)
1060 gcc_assert (se
->ss
->type
== GFC_SS_FUNCTION
);
1061 if (se
->ss
->useflags
)
1063 gcc_assert (gfc_return_by_reference (sym
)
1064 && sym
->result
->attr
.dimension
);
1065 gcc_assert (se
->loop
!= NULL
);
1067 /* Access the previously obtained result. */
1068 gfc_conv_tmp_array_ref (se
);
1069 gfc_advance_se_ss_chain (se
);
1073 info
= &se
->ss
->data
.info
;
1078 byref
= gfc_return_by_reference (sym
);
1081 if (se
->direct_byref
)
1082 arglist
= gfc_chainon_list (arglist
, se
->expr
);
1083 else if (sym
->result
->attr
.dimension
)
1085 gcc_assert (se
->loop
&& se
->ss
);
1086 /* Set the type of the array. */
1087 tmp
= gfc_typenode_for_spec (&sym
->ts
);
1088 info
->dimen
= se
->loop
->dimen
;
1089 /* Allocate a temporary to store the result. */
1090 gfc_trans_allocate_temp_array (se
->loop
, info
, tmp
);
1092 /* Zero the first stride to indicate a temporary. */
1094 gfc_conv_descriptor_stride (info
->descriptor
, gfc_rank_cst
[0]);
1095 gfc_add_modify_expr (&se
->pre
, tmp
,
1096 convert (TREE_TYPE (tmp
), integer_zero_node
));
1097 /* Pass the temporary as the first argument. */
1098 tmp
= info
->descriptor
;
1099 tmp
= gfc_build_addr_expr (NULL
, tmp
);
1100 arglist
= gfc_chainon_list (arglist
, tmp
);
1102 else if (sym
->ts
.type
== BT_CHARACTER
)
1104 gcc_assert (sym
->ts
.cl
&& sym
->ts
.cl
->length
1105 && sym
->ts
.cl
->length
->expr_type
== EXPR_CONSTANT
);
1106 len
= gfc_conv_mpz_to_tree
1107 (sym
->ts
.cl
->length
->value
.integer
, sym
->ts
.cl
->length
->ts
.kind
);
1108 sym
->ts
.cl
->backend_decl
= len
;
1109 type
= gfc_get_character_type (sym
->ts
.kind
, sym
->ts
.cl
);
1110 type
= build_pointer_type (type
);
1112 var
= gfc_conv_string_tmp (se
, type
, len
);
1113 arglist
= gfc_chainon_list (arglist
, var
);
1114 arglist
= gfc_chainon_list (arglist
,
1115 convert (gfc_charlen_type_node
, len
));
1117 else /* TODO: derived type function return values. */
1121 formal
= sym
->formal
;
1122 /* Evaluate the arguments. */
1123 for (; arg
!= NULL
; arg
= arg
->next
, formal
= formal
? formal
->next
: NULL
)
1125 if (arg
->expr
== NULL
)
1128 if (se
->ignore_optional
)
1130 /* Some intrinsics have already been resolved to the correct
1134 else if (arg
->label
)
1136 has_alternate_specifier
= 1;
1141 /* Pass a NULL pointer for an absent arg. */
1142 gfc_init_se (&parmse
, NULL
);
1143 parmse
.expr
= null_pointer_node
;
1144 if (arg
->missing_arg_type
== BT_CHARACTER
)
1147 gfc_chainon_list (stringargs
,
1148 convert (gfc_charlen_type_node
,
1149 integer_zero_node
));
1153 else if (se
->ss
&& se
->ss
->useflags
)
1155 /* An elemental function inside a scalarized loop. */
1156 gfc_init_se (&parmse
, se
);
1157 gfc_conv_expr_reference (&parmse
, arg
->expr
);
1161 /* A scalar or transformational function. */
1162 gfc_init_se (&parmse
, NULL
);
1163 argss
= gfc_walk_expr (arg
->expr
);
1165 if (argss
== gfc_ss_terminator
)
1167 gfc_conv_expr_reference (&parmse
, arg
->expr
);
1168 if (formal
&& formal
->sym
->attr
.pointer
1169 && arg
->expr
->expr_type
!= EXPR_NULL
)
1171 /* Scalar pointer dummy args require an extra level of
1172 indirection. The null pointer already contains
1173 this level of indirection. */
1174 parmse
.expr
= gfc_build_addr_expr (NULL
, parmse
.expr
);
1179 /* If the procedure requires an explicit interface, the
1180 actual argument is passed according to the
1181 corresponding formal argument. If the corresponding
1182 formal argument is a POINTER or assumed shape, we do
1183 not use g77's calling convention, and pass the
1184 address of the array descriptor instead. Otherwise we
1185 use g77's calling convention. */
1187 f
= (formal
!= NULL
)
1188 && !formal
->sym
->attr
.pointer
1189 && formal
->sym
->as
->type
!= AS_ASSUMED_SHAPE
;
1190 f
= f
|| !sym
->attr
.always_explicit
;
1191 gfc_conv_array_parameter (&parmse
, arg
->expr
, argss
, f
);
1195 gfc_add_block_to_block (&se
->pre
, &parmse
.pre
);
1196 gfc_add_block_to_block (&se
->post
, &parmse
.post
);
1198 /* Character strings are passed as two paramarers, a length and a
1200 if (parmse
.string_length
!= NULL_TREE
)
1201 stringargs
= gfc_chainon_list (stringargs
, parmse
.string_length
);
1203 arglist
= gfc_chainon_list (arglist
, parmse
.expr
);
1206 /* Add the hidden string length parameters to the arguments. */
1207 arglist
= chainon (arglist
, stringargs
);
1209 /* Generate the actual call. */
1210 gfc_conv_function_val (se
, sym
);
1211 /* If there are alternate return labels, function type should be
1213 if (has_alternate_specifier
)
1214 TREE_TYPE (TREE_TYPE (TREE_TYPE (se
->expr
))) = integer_type_node
;
1216 fntype
= TREE_TYPE (TREE_TYPE (se
->expr
));
1217 se
->expr
= build3 (CALL_EXPR
, TREE_TYPE (fntype
), se
->expr
,
1218 arglist
, NULL_TREE
);
1220 /* If we have a pointer function, but we don't want a pointer, e.g.
1223 where f is pointer valued, we have to dereference the result. */
1224 if (sym
->attr
.pointer
&& !se
->want_pointer
&& !byref
)
1225 se
->expr
= gfc_build_indirect_ref (se
->expr
);
1227 /* A pure function may still have side-effects - it may modify its
1229 TREE_SIDE_EFFECTS (se
->expr
) = 1;
1231 if (!sym
->attr
.pure
)
1232 TREE_SIDE_EFFECTS (se
->expr
) = 1;
1237 /* Add the function call to the pre chain. There is no expression. */
1238 gfc_add_expr_to_block (&se
->pre
, se
->expr
);
1239 se
->expr
= NULL_TREE
;
1241 if (!se
->direct_byref
)
1243 if (sym
->result
->attr
.dimension
)
1245 if (flag_bounds_check
)
1247 /* Check the data pointer hasn't been modified. This would
1248 happen in a function returning a pointer. */
1249 tmp
= gfc_conv_descriptor_data (info
->descriptor
);
1250 tmp
= build2 (NE_EXPR
, boolean_type_node
, tmp
, info
->data
);
1251 gfc_trans_runtime_check (tmp
, gfc_strconst_fault
, &se
->pre
);
1253 se
->expr
= info
->descriptor
;
1255 else if (sym
->ts
.type
== BT_CHARACTER
)
1258 se
->string_length
= len
;
1267 /* Generate code to copy a string. */
1270 gfc_trans_string_copy (stmtblock_t
* block
, tree dlen
, tree dest
,
1271 tree slen
, tree src
)
1276 tmp
= gfc_chainon_list (tmp
, dlen
);
1277 tmp
= gfc_chainon_list (tmp
, dest
);
1278 tmp
= gfc_chainon_list (tmp
, slen
);
1279 tmp
= gfc_chainon_list (tmp
, src
);
1280 tmp
= gfc_build_function_call (gfor_fndecl_copy_string
, tmp
);
1281 gfc_add_expr_to_block (block
, tmp
);
1285 /* Translate a statement function.
1286 The value of a statement function reference is obtained by evaluating the
1287 expression using the values of the actual arguments for the values of the
1288 corresponding dummy arguments. */
1291 gfc_conv_statement_function (gfc_se
* se
, gfc_expr
* expr
)
1295 gfc_formal_arglist
*fargs
;
1296 gfc_actual_arglist
*args
;
1299 gfc_saved_var
*saved_vars
;
1305 sym
= expr
->symtree
->n
.sym
;
1306 args
= expr
->value
.function
.actual
;
1307 gfc_init_se (&lse
, NULL
);
1308 gfc_init_se (&rse
, NULL
);
1311 for (fargs
= sym
->formal
; fargs
; fargs
= fargs
->next
)
1313 saved_vars
= (gfc_saved_var
*)gfc_getmem (n
* sizeof (gfc_saved_var
));
1314 temp_vars
= (tree
*)gfc_getmem (n
* sizeof (tree
));
1316 for (fargs
= sym
->formal
, n
= 0; fargs
; fargs
= fargs
->next
, n
++)
1318 /* Each dummy shall be specified, explicitly or implicitly, to be
1320 gcc_assert (fargs
->sym
->attr
.dimension
== 0);
1323 /* Create a temporary to hold the value. */
1324 type
= gfc_typenode_for_spec (&fsym
->ts
);
1325 temp_vars
[n
] = gfc_create_var (type
, fsym
->name
);
1327 if (fsym
->ts
.type
== BT_CHARACTER
)
1329 /* Copy string arguments. */
1332 gcc_assert (fsym
->ts
.cl
&& fsym
->ts
.cl
->length
1333 && fsym
->ts
.cl
->length
->expr_type
== EXPR_CONSTANT
);
1335 arglen
= TYPE_MAX_VALUE (TYPE_DOMAIN (type
));
1336 tmp
= gfc_build_addr_expr (build_pointer_type (type
),
1339 gfc_conv_expr (&rse
, args
->expr
);
1340 gfc_conv_string_parameter (&rse
);
1341 gfc_add_block_to_block (&se
->pre
, &lse
.pre
);
1342 gfc_add_block_to_block (&se
->pre
, &rse
.pre
);
1344 gfc_trans_string_copy (&se
->pre
, arglen
, tmp
, rse
.string_length
,
1346 gfc_add_block_to_block (&se
->pre
, &lse
.post
);
1347 gfc_add_block_to_block (&se
->pre
, &rse
.post
);
1351 /* For everything else, just evaluate the expression. */
1352 gfc_conv_expr (&lse
, args
->expr
);
1354 gfc_add_block_to_block (&se
->pre
, &lse
.pre
);
1355 gfc_add_modify_expr (&se
->pre
, temp_vars
[n
], lse
.expr
);
1356 gfc_add_block_to_block (&se
->pre
, &lse
.post
);
1362 /* Use the temporary variables in place of the real ones. */
1363 for (fargs
= sym
->formal
, n
= 0; fargs
; fargs
= fargs
->next
, n
++)
1364 gfc_shadow_sym (fargs
->sym
, temp_vars
[n
], &saved_vars
[n
]);
1366 gfc_conv_expr (se
, sym
->value
);
1368 if (sym
->ts
.type
== BT_CHARACTER
)
1370 gfc_conv_const_charlen (sym
->ts
.cl
);
1372 /* Force the expression to the correct length. */
1373 if (!INTEGER_CST_P (se
->string_length
)
1374 || tree_int_cst_lt (se
->string_length
,
1375 sym
->ts
.cl
->backend_decl
))
1377 type
= gfc_get_character_type (sym
->ts
.kind
, sym
->ts
.cl
);
1378 tmp
= gfc_create_var (type
, sym
->name
);
1379 tmp
= gfc_build_addr_expr (build_pointer_type (type
), tmp
);
1380 gfc_trans_string_copy (&se
->pre
, sym
->ts
.cl
->backend_decl
, tmp
,
1381 se
->string_length
, se
->expr
);
1384 se
->string_length
= sym
->ts
.cl
->backend_decl
;
1387 /* Restore the original variables. */
1388 for (fargs
= sym
->formal
, n
= 0; fargs
; fargs
= fargs
->next
, n
++)
1389 gfc_restore_sym (fargs
->sym
, &saved_vars
[n
]);
1390 gfc_free (saved_vars
);
1394 /* Translate a function expression. */
1397 gfc_conv_function_expr (gfc_se
* se
, gfc_expr
* expr
)
1401 if (expr
->value
.function
.isym
)
1403 gfc_conv_intrinsic_function (se
, expr
);
1407 /* We distinguish statement functions from general functions to improve
1408 runtime performance. */
1409 if (expr
->symtree
->n
.sym
->attr
.proc
== PROC_ST_FUNCTION
)
1411 gfc_conv_statement_function (se
, expr
);
1415 /* expr.value.function.esym is the resolved (specific) function symbol for
1416 most functions. However this isn't set for dummy procedures. */
1417 sym
= expr
->value
.function
.esym
;
1419 sym
= expr
->symtree
->n
.sym
;
1420 gfc_conv_function_call (se
, sym
, expr
->value
.function
.actual
);
1425 gfc_conv_array_constructor_expr (gfc_se
* se
, gfc_expr
* expr
)
1427 gcc_assert (se
->ss
!= NULL
&& se
->ss
!= gfc_ss_terminator
);
1428 gcc_assert (se
->ss
->expr
== expr
&& se
->ss
->type
== GFC_SS_CONSTRUCTOR
);
1430 gfc_conv_tmp_array_ref (se
);
1431 gfc_advance_se_ss_chain (se
);
1435 /* Build a static initializer. EXPR is the expression for the initial value.
1436 The other parameters describe the variable of the component being
1437 initialized. EXPR may be null. */
1440 gfc_conv_initializer (gfc_expr
* expr
, gfc_typespec
* ts
, tree type
,
1441 bool array
, bool pointer
)
1445 if (!(expr
|| pointer
))
1450 /* Arrays need special handling. */
1452 return gfc_build_null_descriptor (type
);
1454 return gfc_conv_array_initializer (type
, expr
);
1457 return fold_convert (type
, null_pointer_node
);
1463 gfc_init_se (&se
, NULL
);
1464 gfc_conv_structure (&se
, expr
, 1);
1468 return gfc_conv_string_init (ts
->cl
->backend_decl
,expr
);
1471 gfc_init_se (&se
, NULL
);
1472 gfc_conv_constant (&se
, expr
);
1479 gfc_trans_subarray_assign (tree dest
, gfc_component
* cm
, gfc_expr
* expr
)
1491 gfc_start_block (&block
);
1493 /* Initialize the scalarizer. */
1494 gfc_init_loopinfo (&loop
);
1496 gfc_init_se (&lse
, NULL
);
1497 gfc_init_se (&rse
, NULL
);
1500 rss
= gfc_walk_expr (expr
);
1501 if (rss
== gfc_ss_terminator
)
1503 /* The rhs is scalar. Add a ss for the expression. */
1504 rss
= gfc_get_ss ();
1505 rss
->next
= gfc_ss_terminator
;
1506 rss
->type
= GFC_SS_SCALAR
;
1510 /* Create a SS for the destination. */
1511 lss
= gfc_get_ss ();
1512 lss
->type
= GFC_SS_COMPONENT
;
1514 lss
->shape
= gfc_get_shape (cm
->as
->rank
);
1515 lss
->next
= gfc_ss_terminator
;
1516 lss
->data
.info
.dimen
= cm
->as
->rank
;
1517 lss
->data
.info
.descriptor
= dest
;
1518 lss
->data
.info
.data
= gfc_conv_array_data (dest
);
1519 lss
->data
.info
.offset
= gfc_conv_array_offset (dest
);
1520 for (n
= 0; n
< cm
->as
->rank
; n
++)
1522 lss
->data
.info
.dim
[n
] = n
;
1523 lss
->data
.info
.start
[n
] = gfc_conv_array_lbound (dest
, n
);
1524 lss
->data
.info
.stride
[n
] = gfc_index_one_node
;
1526 mpz_init (lss
->shape
[n
]);
1527 mpz_sub (lss
->shape
[n
], cm
->as
->upper
[n
]->value
.integer
,
1528 cm
->as
->lower
[n
]->value
.integer
);
1529 mpz_add_ui (lss
->shape
[n
], lss
->shape
[n
], 1);
1532 /* Associate the SS with the loop. */
1533 gfc_add_ss_to_loop (&loop
, lss
);
1534 gfc_add_ss_to_loop (&loop
, rss
);
1536 /* Calculate the bounds of the scalarization. */
1537 gfc_conv_ss_startstride (&loop
);
1539 /* Setup the scalarizing loops. */
1540 gfc_conv_loop_setup (&loop
);
1542 /* Setup the gfc_se structures. */
1543 gfc_copy_loopinfo_to_se (&lse
, &loop
);
1544 gfc_copy_loopinfo_to_se (&rse
, &loop
);
1547 gfc_mark_ss_chain_used (rss
, 1);
1549 gfc_mark_ss_chain_used (lss
, 1);
1551 /* Start the scalarized loop body. */
1552 gfc_start_scalarized_body (&loop
, &body
);
1554 gfc_conv_tmp_array_ref (&lse
);
1555 gfc_conv_expr (&rse
, expr
);
1557 tmp
= gfc_trans_scalar_assign (&lse
, &rse
, cm
->ts
.type
);
1558 gfc_add_expr_to_block (&body
, tmp
);
1560 gcc_assert (rse
.ss
== gfc_ss_terminator
);
1562 /* Generate the copying loops. */
1563 gfc_trans_scalarizing_loops (&loop
, &body
);
1565 /* Wrap the whole thing up. */
1566 gfc_add_block_to_block (&block
, &loop
.pre
);
1567 gfc_add_block_to_block (&block
, &loop
.post
);
1569 gfc_cleanup_loop (&loop
);
1571 for (n
= 0; n
< cm
->as
->rank
; n
++)
1572 mpz_clear (lss
->shape
[n
]);
1573 gfc_free (lss
->shape
);
1575 return gfc_finish_block (&block
);
1578 /* Assign a single component of a derived type constructor. */
1581 gfc_trans_subcomponent_assign (tree dest
, gfc_component
* cm
, gfc_expr
* expr
)
1588 gfc_start_block (&block
);
1591 gfc_init_se (&se
, NULL
);
1592 /* Pointer component. */
1595 /* Array pointer. */
1596 if (expr
->expr_type
== EXPR_NULL
)
1598 dest
= gfc_conv_descriptor_data (dest
);
1599 tmp
= fold_convert (TREE_TYPE (se
.expr
),
1601 gfc_add_modify_expr (&block
, dest
, tmp
);
1605 rss
= gfc_walk_expr (expr
);
1606 se
.direct_byref
= 1;
1608 gfc_conv_expr_descriptor (&se
, expr
, rss
);
1609 gfc_add_block_to_block (&block
, &se
.pre
);
1610 gfc_add_block_to_block (&block
, &se
.post
);
1615 /* Scalar pointers. */
1616 se
.want_pointer
= 1;
1617 gfc_conv_expr (&se
, expr
);
1618 gfc_add_block_to_block (&block
, &se
.pre
);
1619 gfc_add_modify_expr (&block
, dest
,
1620 fold_convert (TREE_TYPE (dest
), se
.expr
));
1621 gfc_add_block_to_block (&block
, &se
.post
);
1624 else if (cm
->dimension
)
1626 tmp
= gfc_trans_subarray_assign (dest
, cm
, expr
);
1627 gfc_add_expr_to_block (&block
, tmp
);
1629 else if (expr
->ts
.type
== BT_DERIVED
)
1631 /* Nested derived type. */
1632 tmp
= gfc_trans_structure_assign (dest
, expr
);
1633 gfc_add_expr_to_block (&block
, tmp
);
1637 /* Scalar component. */
1640 gfc_init_se (&se
, NULL
);
1641 gfc_init_se (&lse
, NULL
);
1643 gfc_conv_expr (&se
, expr
);
1644 if (cm
->ts
.type
== BT_CHARACTER
)
1645 lse
.string_length
= cm
->ts
.cl
->backend_decl
;
1647 tmp
= gfc_trans_scalar_assign (&lse
, &se
, cm
->ts
.type
);
1648 gfc_add_expr_to_block (&block
, tmp
);
1650 return gfc_finish_block (&block
);
1653 /* Assign a derived type constructor to a variable. */
1656 gfc_trans_structure_assign (tree dest
, gfc_expr
* expr
)
1664 gfc_start_block (&block
);
1665 cm
= expr
->ts
.derived
->components
;
1666 for (c
= expr
->value
.constructor
; c
; c
= c
->next
, cm
= cm
->next
)
1668 /* Skip absent members in default initializers. */
1672 field
= cm
->backend_decl
;
1673 tmp
= build3 (COMPONENT_REF
, TREE_TYPE (field
), dest
, field
, NULL_TREE
);
1674 tmp
= gfc_trans_subcomponent_assign (tmp
, cm
, c
->expr
);
1675 gfc_add_expr_to_block (&block
, tmp
);
1677 return gfc_finish_block (&block
);
1680 /* Build an expression for a constructor. If init is nonzero then
1681 this is part of a static variable initializer. */
1684 gfc_conv_structure (gfc_se
* se
, gfc_expr
* expr
, int init
)
1694 gcc_assert (se
->ss
== NULL
);
1695 gcc_assert (expr
->expr_type
== EXPR_STRUCTURE
);
1696 type
= gfc_typenode_for_spec (&expr
->ts
);
1700 /* Create a temporary variable and fill it in. */
1701 se
->expr
= gfc_create_var (type
, expr
->ts
.derived
->name
);
1702 tmp
= gfc_trans_structure_assign (se
->expr
, expr
);
1703 gfc_add_expr_to_block (&se
->pre
, tmp
);
1707 head
= build1 (CONSTRUCTOR
, type
, NULL_TREE
);
1710 cm
= expr
->ts
.derived
->components
;
1711 for (c
= expr
->value
.constructor
; c
; c
= c
->next
, cm
= cm
->next
)
1713 /* Skip absent members in default initializers. */
1717 val
= gfc_conv_initializer (c
->expr
, &cm
->ts
,
1718 TREE_TYPE (cm
->backend_decl
), cm
->dimension
, cm
->pointer
);
1720 /* Build a TREE_CHAIN to hold it. */
1721 val
= tree_cons (cm
->backend_decl
, val
, NULL_TREE
);
1723 /* Add it to the list. */
1724 if (tail
== NULL_TREE
)
1725 TREE_OPERAND(head
, 0) = tail
= val
;
1728 TREE_CHAIN (tail
) = val
;
1736 /* Translate a substring expression. */
1739 gfc_conv_substring_expr (gfc_se
* se
, gfc_expr
* expr
)
1745 gcc_assert (ref
->type
== REF_SUBSTRING
);
1747 se
->expr
= gfc_build_string_const(expr
->value
.character
.length
,
1748 expr
->value
.character
.string
);
1749 se
->string_length
= TYPE_MAX_VALUE (TYPE_DOMAIN (TREE_TYPE (se
->expr
)));
1750 TYPE_STRING_FLAG (TREE_TYPE (se
->expr
))=1;
1752 gfc_conv_substring(se
,ref
,expr
->ts
.kind
);
1756 /* Entry point for expression translation. */
1759 gfc_conv_expr (gfc_se
* se
, gfc_expr
* expr
)
1761 if (se
->ss
&& se
->ss
->expr
== expr
1762 && (se
->ss
->type
== GFC_SS_SCALAR
|| se
->ss
->type
== GFC_SS_REFERENCE
))
1764 /* Substitute a scalar expression evaluated outside the scalarization
1766 se
->expr
= se
->ss
->data
.scalar
.expr
;
1767 se
->string_length
= se
->ss
->string_length
;
1768 gfc_advance_se_ss_chain (se
);
1772 switch (expr
->expr_type
)
1775 gfc_conv_expr_op (se
, expr
);
1779 gfc_conv_function_expr (se
, expr
);
1783 gfc_conv_constant (se
, expr
);
1787 gfc_conv_variable (se
, expr
);
1791 se
->expr
= null_pointer_node
;
1794 case EXPR_SUBSTRING
:
1795 gfc_conv_substring_expr (se
, expr
);
1798 case EXPR_STRUCTURE
:
1799 gfc_conv_structure (se
, expr
, 0);
1803 gfc_conv_array_constructor_expr (se
, expr
);
1813 gfc_conv_expr_lhs (gfc_se
* se
, gfc_expr
* expr
)
1815 gfc_conv_expr (se
, expr
);
1816 /* AFAICS all numeric lvalues have empty post chains. If not we need to
1817 figure out a way of rewriting an lvalue so that it has no post chain. */
1818 gcc_assert (expr
->ts
.type
!= BT_CHARACTER
|| !se
->post
.head
);
1822 gfc_conv_expr_val (gfc_se
* se
, gfc_expr
* expr
)
1826 gcc_assert (expr
->ts
.type
!= BT_CHARACTER
);
1827 gfc_conv_expr (se
, expr
);
1830 val
= gfc_create_var (TREE_TYPE (se
->expr
), NULL
);
1831 gfc_add_modify_expr (&se
->pre
, val
, se
->expr
);
1836 gfc_conv_expr_type (gfc_se
* se
, gfc_expr
* expr
, tree type
)
1838 gfc_conv_expr_val (se
, expr
);
1839 se
->expr
= convert (type
, se
->expr
);
1843 /* Converts an expression so that it can be passed by reference. Scalar
1847 gfc_conv_expr_reference (gfc_se
* se
, gfc_expr
* expr
)
1851 if (se
->ss
&& se
->ss
->expr
== expr
1852 && se
->ss
->type
== GFC_SS_REFERENCE
)
1854 se
->expr
= se
->ss
->data
.scalar
.expr
;
1855 se
->string_length
= se
->ss
->string_length
;
1856 gfc_advance_se_ss_chain (se
);
1860 if (expr
->ts
.type
== BT_CHARACTER
)
1862 gfc_conv_expr (se
, expr
);
1863 gfc_conv_string_parameter (se
);
1867 if (expr
->expr_type
== EXPR_VARIABLE
)
1869 se
->want_pointer
= 1;
1870 gfc_conv_expr (se
, expr
);
1873 var
= gfc_create_var (TREE_TYPE (se
->expr
), NULL
);
1874 gfc_add_modify_expr (&se
->pre
, var
, se
->expr
);
1875 gfc_add_block_to_block (&se
->pre
, &se
->post
);
1881 gfc_conv_expr (se
, expr
);
1883 /* Create a temporary var to hold the value. */
1884 if (TREE_CONSTANT (se
->expr
))
1886 var
= build_decl (CONST_DECL
, NULL
, TREE_TYPE (se
->expr
));
1887 DECL_INITIAL (var
) = se
->expr
;
1892 var
= gfc_create_var (TREE_TYPE (se
->expr
), NULL
);
1893 gfc_add_modify_expr (&se
->pre
, var
, se
->expr
);
1895 gfc_add_block_to_block (&se
->pre
, &se
->post
);
1897 /* Take the address of that value. */
1898 se
->expr
= gfc_build_addr_expr (NULL
, var
);
1903 gfc_trans_pointer_assign (gfc_code
* code
)
1905 return gfc_trans_pointer_assignment (code
->expr
, code
->expr2
);
1909 /* Generate code for a pointer assignment. */
1912 gfc_trans_pointer_assignment (gfc_expr
* expr1
, gfc_expr
* expr2
)
1920 gfc_start_block (&block
);
1922 gfc_init_se (&lse
, NULL
);
1924 lss
= gfc_walk_expr (expr1
);
1925 rss
= gfc_walk_expr (expr2
);
1926 if (lss
== gfc_ss_terminator
)
1928 /* Scalar pointers. */
1929 lse
.want_pointer
= 1;
1930 gfc_conv_expr (&lse
, expr1
);
1931 gcc_assert (rss
== gfc_ss_terminator
);
1932 gfc_init_se (&rse
, NULL
);
1933 rse
.want_pointer
= 1;
1934 gfc_conv_expr (&rse
, expr2
);
1935 gfc_add_block_to_block (&block
, &lse
.pre
);
1936 gfc_add_block_to_block (&block
, &rse
.pre
);
1937 gfc_add_modify_expr (&block
, lse
.expr
,
1938 fold_convert (TREE_TYPE (lse
.expr
), rse
.expr
));
1939 gfc_add_block_to_block (&block
, &rse
.post
);
1940 gfc_add_block_to_block (&block
, &lse
.post
);
1944 /* Array pointer. */
1945 gfc_conv_expr_descriptor (&lse
, expr1
, lss
);
1946 /* Implement Nullify. */
1947 if (expr2
->expr_type
== EXPR_NULL
)
1949 lse
.expr
= gfc_conv_descriptor_data (lse
.expr
);
1950 rse
.expr
= fold_convert (TREE_TYPE (lse
.expr
), null_pointer_node
);
1951 gfc_add_modify_expr (&block
, lse
.expr
, rse
.expr
);
1955 lse
.direct_byref
= 1;
1956 gfc_conv_expr_descriptor (&lse
, expr2
, rss
);
1958 gfc_add_block_to_block (&block
, &lse
.pre
);
1959 gfc_add_block_to_block (&block
, &lse
.post
);
1961 return gfc_finish_block (&block
);
1965 /* Makes sure se is suitable for passing as a function string parameter. */
1966 /* TODO: Need to check all callers fo this function. It may be abused. */
1969 gfc_conv_string_parameter (gfc_se
* se
)
1973 if (TREE_CODE (se
->expr
) == STRING_CST
)
1975 se
->expr
= gfc_build_addr_expr (pchar_type_node
, se
->expr
);
1979 type
= TREE_TYPE (se
->expr
);
1980 if (TYPE_STRING_FLAG (type
))
1982 gcc_assert (TREE_CODE (se
->expr
) != INDIRECT_REF
);
1983 se
->expr
= gfc_build_addr_expr (pchar_type_node
, se
->expr
);
1986 gcc_assert (POINTER_TYPE_P (TREE_TYPE (se
->expr
)));
1987 gcc_assert (se
->string_length
1988 && TREE_CODE (TREE_TYPE (se
->string_length
)) == INTEGER_TYPE
);
1992 /* Generate code for assignment of scalar variables. Includes character
1996 gfc_trans_scalar_assign (gfc_se
* lse
, gfc_se
* rse
, bt type
)
2000 gfc_init_block (&block
);
2002 if (type
== BT_CHARACTER
)
2004 gcc_assert (lse
->string_length
!= NULL_TREE
2005 && rse
->string_length
!= NULL_TREE
);
2007 gfc_conv_string_parameter (lse
);
2008 gfc_conv_string_parameter (rse
);
2010 gfc_add_block_to_block (&block
, &lse
->pre
);
2011 gfc_add_block_to_block (&block
, &rse
->pre
);
2013 gfc_trans_string_copy (&block
, lse
->string_length
, lse
->expr
,
2014 rse
->string_length
, rse
->expr
);
2018 gfc_add_block_to_block (&block
, &lse
->pre
);
2019 gfc_add_block_to_block (&block
, &rse
->pre
);
2021 gfc_add_modify_expr (&block
, lse
->expr
,
2022 fold_convert (TREE_TYPE (lse
->expr
), rse
->expr
));
2025 gfc_add_block_to_block (&block
, &lse
->post
);
2026 gfc_add_block_to_block (&block
, &rse
->post
);
2028 return gfc_finish_block (&block
);
2032 /* Try to translate array(:) = func (...), where func is a transformational
2033 array function, without using a temporary. Returns NULL is this isn't the
2037 gfc_trans_arrayfunc_assign (gfc_expr
* expr1
, gfc_expr
* expr2
)
2042 /* The caller has already checked rank>0 and expr_type == EXPR_FUNCTION. */
2043 if (expr2
->value
.function
.isym
&& !gfc_is_intrinsic_libcall (expr2
))
2046 /* Elemental functions don't need a temporary anyway. */
2047 if (expr2
->symtree
->n
.sym
->attr
.elemental
)
2050 /* Check for a dependency. */
2051 if (gfc_check_fncall_dependency (expr1
, expr2
))
2054 /* The frontend doesn't seem to bother filling in expr->symtree for intrinsic
2056 gcc_assert (expr2
->value
.function
.isym
2057 || (gfc_return_by_reference (expr2
->value
.function
.esym
)
2058 && expr2
->value
.function
.esym
->result
->attr
.dimension
));
2060 ss
= gfc_walk_expr (expr1
);
2061 gcc_assert (ss
!= gfc_ss_terminator
);
2062 gfc_init_se (&se
, NULL
);
2063 gfc_start_block (&se
.pre
);
2064 se
.want_pointer
= 1;
2066 gfc_conv_array_parameter (&se
, expr1
, ss
, 0);
2068 se
.direct_byref
= 1;
2069 se
.ss
= gfc_walk_expr (expr2
);
2070 gcc_assert (se
.ss
!= gfc_ss_terminator
);
2071 gfc_conv_function_expr (&se
, expr2
);
2072 gfc_add_block_to_block (&se
.pre
, &se
.post
);
2074 return gfc_finish_block (&se
.pre
);
2078 /* Translate an assignment. Most of the code is concerned with
2079 setting up the scalarizer. */
2082 gfc_trans_assignment (gfc_expr
* expr1
, gfc_expr
* expr2
)
2087 gfc_ss
*lss_section
;
2094 /* Special case a single function returning an array. */
2095 if (expr2
->expr_type
== EXPR_FUNCTION
&& expr2
->rank
> 0)
2097 tmp
= gfc_trans_arrayfunc_assign (expr1
, expr2
);
2102 /* Assignment of the form lhs = rhs. */
2103 gfc_start_block (&block
);
2105 gfc_init_se (&lse
, NULL
);
2106 gfc_init_se (&rse
, NULL
);
2109 lss
= gfc_walk_expr (expr1
);
2111 if (lss
!= gfc_ss_terminator
)
2113 /* The assignment needs scalarization. */
2116 /* Find a non-scalar SS from the lhs. */
2117 while (lss_section
!= gfc_ss_terminator
2118 && lss_section
->type
!= GFC_SS_SECTION
)
2119 lss_section
= lss_section
->next
;
2121 gcc_assert (lss_section
!= gfc_ss_terminator
);
2123 /* Initialize the scalarizer. */
2124 gfc_init_loopinfo (&loop
);
2127 rss
= gfc_walk_expr (expr2
);
2128 if (rss
== gfc_ss_terminator
)
2130 /* The rhs is scalar. Add a ss for the expression. */
2131 rss
= gfc_get_ss ();
2132 rss
->next
= gfc_ss_terminator
;
2133 rss
->type
= GFC_SS_SCALAR
;
2136 /* Associate the SS with the loop. */
2137 gfc_add_ss_to_loop (&loop
, lss
);
2138 gfc_add_ss_to_loop (&loop
, rss
);
2140 /* Calculate the bounds of the scalarization. */
2141 gfc_conv_ss_startstride (&loop
);
2142 /* Resolve any data dependencies in the statement. */
2143 gfc_conv_resolve_dependencies (&loop
, lss_section
, rss
);
2144 /* Setup the scalarizing loops. */
2145 gfc_conv_loop_setup (&loop
);
2147 /* Setup the gfc_se structures. */
2148 gfc_copy_loopinfo_to_se (&lse
, &loop
);
2149 gfc_copy_loopinfo_to_se (&rse
, &loop
);
2152 gfc_mark_ss_chain_used (rss
, 1);
2153 if (loop
.temp_ss
== NULL
)
2156 gfc_mark_ss_chain_used (lss
, 1);
2160 lse
.ss
= loop
.temp_ss
;
2161 gfc_mark_ss_chain_used (lss
, 3);
2162 gfc_mark_ss_chain_used (loop
.temp_ss
, 3);
2165 /* Start the scalarized loop body. */
2166 gfc_start_scalarized_body (&loop
, &body
);
2169 gfc_init_block (&body
);
2171 /* Translate the expression. */
2172 gfc_conv_expr (&rse
, expr2
);
2174 if (lss
!= gfc_ss_terminator
&& loop
.temp_ss
!= NULL
)
2176 gfc_conv_tmp_array_ref (&lse
);
2177 gfc_advance_se_ss_chain (&lse
);
2180 gfc_conv_expr (&lse
, expr1
);
2182 tmp
= gfc_trans_scalar_assign (&lse
, &rse
, expr1
->ts
.type
);
2183 gfc_add_expr_to_block (&body
, tmp
);
2185 if (lss
== gfc_ss_terminator
)
2187 /* Use the scalar assignment as is. */
2188 gfc_add_block_to_block (&block
, &body
);
2192 gcc_assert (lse
.ss
== gfc_ss_terminator
2193 && rse
.ss
== gfc_ss_terminator
);
2195 if (loop
.temp_ss
!= NULL
)
2197 gfc_trans_scalarized_loop_boundary (&loop
, &body
);
2199 /* We need to copy the temporary to the actual lhs. */
2200 gfc_init_se (&lse
, NULL
);
2201 gfc_init_se (&rse
, NULL
);
2202 gfc_copy_loopinfo_to_se (&lse
, &loop
);
2203 gfc_copy_loopinfo_to_se (&rse
, &loop
);
2205 rse
.ss
= loop
.temp_ss
;
2208 gfc_conv_tmp_array_ref (&rse
);
2209 gfc_advance_se_ss_chain (&rse
);
2210 gfc_conv_expr (&lse
, expr1
);
2212 gcc_assert (lse
.ss
== gfc_ss_terminator
2213 && rse
.ss
== gfc_ss_terminator
);
2215 tmp
= gfc_trans_scalar_assign (&lse
, &rse
, expr1
->ts
.type
);
2216 gfc_add_expr_to_block (&body
, tmp
);
2218 /* Generate the copying loops. */
2219 gfc_trans_scalarizing_loops (&loop
, &body
);
2221 /* Wrap the whole thing up. */
2222 gfc_add_block_to_block (&block
, &loop
.pre
);
2223 gfc_add_block_to_block (&block
, &loop
.post
);
2225 gfc_cleanup_loop (&loop
);
2228 return gfc_finish_block (&block
);
2232 gfc_trans_assign (gfc_code
* code
)
2234 return gfc_trans_assignment (code
->expr
, code
->expr2
);