ast2firm: Remove the thin wrapper function set_value_for_expression().
[cparser] / ast2firm.c
1 /*
2  * This file is part of cparser.
3  * Copyright (C) 2007-2009 Matthias Braun <matze@braunis.de>
4  *
5  * This program is free software; you can redistribute it and/or
6  * modify it under the terms of the GNU General Public License
7  * as published by the Free Software Foundation; either version 2
8  * of the License, or (at your option) any later version.
9  *
10  * This program is distributed in the hope that it will be useful,
11  * but WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13  * GNU General Public License for more details.
14  *
15  * You should have received a copy of the GNU General Public License
16  * along with this program; if not, write to the Free Software
17  * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA
18  * 02111-1307, USA.
19  */
20 #include <config.h>
21
22 #include <assert.h>
23 #include <string.h>
24 #include <stdbool.h>
25 #include <unistd.h>
26 #include <limits.h>
27
28 #include <libfirm/firm.h>
29 #include <libfirm/adt/obst.h>
30 #include <libfirm/be.h>
31
32 #include "ast2firm.h"
33
34 #include "adt/error.h"
35 #include "adt/array.h"
36 #include "adt/strutil.h"
37 #include "adt/util.h"
38 #include "jump_target.h"
39 #include "symbol_t.h"
40 #include "token_t.h"
41 #include "type_t.h"
42 #include "ast_t.h"
43 #include "entity_t.h"
44 #include "parser.h"
45 #include "diagnostic.h"
46 #include "lang_features.h"
47 #include "types.h"
48 #include "type_hash.h"
49 #include "mangle.h"
50 #include "walk.h"
51 #include "warning.h"
52 #include "printer.h"
53 #include "entitymap_t.h"
54 #include "driver/firm_opt.h"
55
56 typedef struct trampoline_region trampoline_region;
57 struct trampoline_region {
58         ir_entity        *function;    /**< The function that is called by this trampoline */
59         ir_entity        *region;      /**< created region for the trampoline */
60 };
61
62 fp_model_t firm_fp_model = fp_model_precise;
63
64 static const backend_params *be_params;
65
66 static ir_type *ir_type_char;
67
68 /* architecture specific floating point arithmetic mode (if any) */
69 static ir_mode *mode_float_arithmetic;
70
71 /* alignment of stack parameters */
72 static unsigned stack_param_align;
73
74 static int         next_value_number_function;
75 static jump_target continue_target;
76 static jump_target break_target;
77 static ir_node    *current_switch;
78 static bool        saw_default_label;
79 static entity_t  **inner_functions;
80 static jump_target ijmp_target;
81 static ir_node   **ijmp_ops;
82 static ir_node   **ijmp_blocks;
83 static bool        constant_folding;
84
85 #define PUSH_BREAK(val) \
86         jump_target const old_break_target = break_target; \
87         (init_jump_target(&break_target, (val)))
88 #define POP_BREAK() \
89         ((void)(break_target = old_break_target))
90
91 #define PUSH_CONTINUE(val) \
92         jump_target const old_continue_target = continue_target; \
93         (init_jump_target(&continue_target, (val)))
94 #define POP_CONTINUE() \
95         ((void)(continue_target = old_continue_target))
96
97 #define PUSH_IRG(val) \
98         ir_graph *const old_irg = current_ir_graph; \
99         ir_graph *const new_irg = (val); \
100         ((void)(current_ir_graph = new_irg))
101
102 #define POP_IRG() \
103         (assert(current_ir_graph == new_irg), (void)(current_ir_graph = old_irg))
104
105 static const entity_t     *current_function_entity;
106 static ir_node            *current_function_name;
107 static ir_node            *current_funcsig;
108 static ir_graph           *current_function;
109 static translation_unit_t *current_translation_unit;
110 static trampoline_region  *current_trampolines;
111 static ir_type            *current_outer_frame;
112 static ir_node            *current_static_link;
113 static ir_entity          *current_vararg_entity;
114
115 static entitymap_t  entitymap;
116
117 static struct obstack asm_obst;
118
119 typedef enum declaration_kind_t {
120         DECLARATION_KIND_UNKNOWN,
121         DECLARATION_KIND_VARIABLE_LENGTH_ARRAY,
122         DECLARATION_KIND_GLOBAL_VARIABLE,
123         DECLARATION_KIND_LOCAL_VARIABLE,
124         DECLARATION_KIND_LOCAL_VARIABLE_ENTITY,
125         DECLARATION_KIND_PARAMETER,
126         DECLARATION_KIND_PARAMETER_ENTITY,
127         DECLARATION_KIND_FUNCTION,
128         DECLARATION_KIND_COMPOUND_MEMBER,
129         DECLARATION_KIND_INNER_FUNCTION
130 } declaration_kind_t;
131
132 static ir_type *get_ir_type_incomplete(type_t *type);
133
134 static void enqueue_inner_function(entity_t *entity)
135 {
136         if (inner_functions == NULL)
137                 inner_functions = NEW_ARR_F(entity_t *, 0);
138         ARR_APP1(entity_t*, inner_functions, entity);
139 }
140
141 static ir_node *uninitialized_local_var(ir_graph *irg, ir_mode *mode, int pos)
142 {
143         const entity_t *entity = get_irg_loc_description(irg, pos);
144
145         if (entity != NULL) {
146                 position_t const *const pos = &entity->base.pos;
147                 warningf(WARN_UNINITIALIZED, pos, "'%N' might be used uninitialized", entity);
148         }
149         return new_r_Unknown(irg, mode);
150 }
151
152 static src_loc_t dbg_retrieve(const dbg_info *dbg)
153 {
154         position_t const *const pos = (position_t const*)dbg;
155         if (pos) {
156                 return (src_loc_t){ pos->input_name, pos->lineno, pos->colno };
157         } else {
158                 return (src_loc_t){ NULL, 0, 0 };
159         }
160 }
161
162 static dbg_info *get_dbg_info(const position_t *pos)
163 {
164         return (dbg_info*) pos;
165 }
166
167 static void dbg_print_type_dbg_info(char *buffer, size_t buffer_size,
168                                     const type_dbg_info *dbg)
169 {
170         assert(dbg != NULL);
171         print_to_buffer(buffer, buffer_size);
172         const type_t *type = (const type_t*) dbg;
173         print_type(type);
174         finish_print_to_buffer();
175 }
176
177 static type_dbg_info *get_type_dbg_info_(const type_t *type)
178 {
179         return (type_dbg_info*) type;
180 }
181
182 /* is the current block a reachable one? */
183 static bool currently_reachable(void)
184 {
185         ir_node *const block = get_cur_block();
186         return block != NULL && !is_Bad(block);
187 }
188
189 static void set_unreachable_now(void)
190 {
191         set_cur_block(NULL);
192 }
193
194 ir_mode *atomic_modes[ATOMIC_TYPE_LAST+1];
195
196 static ir_node *_expression_to_firm(const expression_t *expression);
197 static ir_node *expression_to_firm(const expression_t *expression);
198
199 static unsigned decide_modulo_shift(unsigned type_size)
200 {
201         if (architecture_modulo_shift == 0)
202                 return 0;
203         if (type_size < architecture_modulo_shift)
204                 return architecture_modulo_shift;
205         return type_size;
206 }
207
208 static ir_mode *init_atomic_ir_mode(atomic_type_kind_t kind)
209 {
210         unsigned flags = get_atomic_type_flags(kind);
211         unsigned size  = get_atomic_type_size(kind);
212         if (flags & ATOMIC_TYPE_FLAG_FLOAT) {
213                 switch (size) {
214                 case 4:  return get_modeF();
215                 case 8:  return get_modeD();
216                 default: panic("unexpected kind");
217                 }
218         } else if (flags & ATOMIC_TYPE_FLAG_INTEGER) {
219                 char            name[64];
220                 unsigned        bit_size     = size * 8;
221                 bool            is_signed    = (flags & ATOMIC_TYPE_FLAG_SIGNED) != 0;
222                 unsigned        modulo_shift = decide_modulo_shift(bit_size);
223
224                 snprintf(name, sizeof(name), "%s%u", is_signed ? "I" : "U", bit_size);
225                 return new_int_mode(name, irma_twos_complement, bit_size, is_signed,
226                                     modulo_shift);
227         }
228
229         return NULL;
230 }
231
232 /**
233  * Initialises the atomic modes depending on the machine size.
234  */
235 static void init_atomic_modes(void)
236 {
237         atomic_modes[ATOMIC_TYPE_VOID] = mode_ANY;
238         for (int i = 0; i <= ATOMIC_TYPE_LAST; ++i) {
239                 if (atomic_modes[i] != NULL)
240                         continue;
241                 atomic_modes[i] = init_atomic_ir_mode((atomic_type_kind_t) i);
242         }
243 }
244
245 ir_mode *get_atomic_mode(atomic_type_kind_t kind)
246 {
247         assert(kind <= ATOMIC_TYPE_LAST);
248         return atomic_modes[kind];
249 }
250
251 static ir_node *get_vla_size(array_type_t *const type)
252 {
253         ir_node *size_node = type->size_node;
254         if (size_node == NULL) {
255                 size_node = expression_to_firm(type->size_expression);
256                 type->size_node = size_node;
257         }
258         return size_node;
259 }
260
261 static unsigned count_parameters(const function_type_t *function_type)
262 {
263         unsigned count = 0;
264
265         function_parameter_t *parameter = function_type->parameters;
266         for ( ; parameter != NULL; parameter = parameter->next) {
267                 ++count;
268         }
269
270         return count;
271 }
272
273 static ir_type *create_primitive_irtype(atomic_type_kind_t akind,
274                                         type_dbg_info *dbgi)
275 {
276         ir_mode        *mode      = atomic_modes[akind];
277         ir_type        *irtype    = new_d_type_primitive(mode, dbgi);
278         unsigned        alignment = get_atomic_type_alignment(akind);
279         unsigned        size      = get_atomic_type_size(akind);
280
281         set_type_size_bytes(irtype, size);
282         set_type_alignment_bytes(irtype, alignment);
283
284         return irtype;
285 }
286
287 /**
288  * Creates a Firm type for an atomic type
289  */
290 static ir_type *create_atomic_type(atomic_type_kind_t akind, const type_t *type)
291 {
292         type_dbg_info *dbgi = get_type_dbg_info_(type);
293         return create_primitive_irtype(akind, dbgi);
294 }
295
296 /**
297  * Creates a Firm type for a complex type
298  */
299 static ir_type *create_complex_type(atomic_type_kind_t akind,
300                                     const type_t *type)
301 {
302         type_dbg_info *dbgi   = get_type_dbg_info_(type);
303         ir_type       *etype  = create_primitive_irtype(akind, NULL);
304         ir_type       *irtype = new_d_type_array(1, etype, dbgi);
305
306         int align = get_type_alignment_bytes(etype);
307         set_type_alignment_bytes(irtype, align);
308         unsigned n_elements = 2;
309         set_array_bounds_int(irtype, 0, 0, n_elements);
310         size_t elemsize = get_type_size_bytes(etype);
311         if (elemsize % align > 0) {
312                 elemsize += align - (elemsize % align);
313         }
314         set_type_size_bytes(irtype, n_elements * elemsize);
315
316         return irtype;
317 }
318
319 /**
320  * Creates a Firm type for an imaginary type
321  */
322 static ir_type *create_imaginary_type(const atomic_type_t *type)
323 {
324         return create_atomic_type(type->akind, (const type_t*)type);
325 }
326
327 /**
328  * return type of a parameter (and take transparent union gnu extension into
329  * account)
330  */
331 static type_t *get_parameter_type(type_t *orig_type)
332 {
333         type_t *type = skip_typeref(orig_type);
334         if (is_type_union(type)
335                         && get_type_modifiers(orig_type) & DM_TRANSPARENT_UNION) {
336                 compound_t *compound = type->compound.compound;
337                 type                 = compound->members.entities->declaration.type;
338         }
339
340         return type;
341 }
342
343 static ir_type *create_method_type(const function_type_t *function_type, bool for_closure)
344 {
345         type_t        *return_type  = skip_typeref(function_type->return_type);
346
347         int            n_parameters = count_parameters(function_type)
348                                        + (for_closure ? 1 : 0);
349         int            n_results    = is_type_void(return_type) ? 0 : 1;
350         type_dbg_info *dbgi         = get_type_dbg_info_((const type_t*) function_type);
351         ir_type       *irtype       = new_d_type_method(n_parameters, n_results, dbgi);
352
353         if (!is_type_void(return_type)) {
354                 ir_type *restype = get_ir_type(return_type);
355                 set_method_res_type(irtype, 0, restype);
356         }
357
358         function_parameter_t *parameter = function_type->parameters;
359         int                   n         = 0;
360         if (for_closure) {
361                 ir_type *p_irtype = get_ir_type(type_void_ptr);
362                 set_method_param_type(irtype, n, p_irtype);
363                 ++n;
364         }
365         for ( ; parameter != NULL; parameter = parameter->next) {
366                 type_t  *type     = get_parameter_type(parameter->type);
367                 ir_type *p_irtype = get_ir_type(type);
368                 set_method_param_type(irtype, n, p_irtype);
369                 ++n;
370         }
371
372         bool is_variadic = function_type->variadic;
373
374         if (is_variadic)
375                 set_method_variadicity(irtype, variadicity_variadic);
376
377         unsigned cc = get_method_calling_convention(irtype);
378         switch (function_type->calling_convention) {
379         case CC_DEFAULT: /* unspecified calling convention, equal to one of the other, typically cdecl */
380         case CC_CDECL:
381 is_cdecl:
382                 set_method_calling_convention(irtype, SET_CDECL(cc));
383                 break;
384
385         case CC_STDCALL:
386                 if (is_variadic)
387                         goto is_cdecl;
388
389                 /* only non-variadic function can use stdcall, else use cdecl */
390                 set_method_calling_convention(irtype, SET_STDCALL(cc));
391                 break;
392
393         case CC_FASTCALL:
394                 if (is_variadic)
395                         goto is_cdecl;
396                 /* only non-variadic function can use fastcall, else use cdecl */
397                 set_method_calling_convention(irtype, SET_FASTCALL(cc));
398                 break;
399
400         case CC_THISCALL:
401                 /* Hmm, leave default, not accepted by the parser yet. */
402                 break;
403         }
404
405         if (for_closure)
406                 set_method_calling_convention(irtype, get_method_calling_convention(irtype) | cc_this_call);
407
408         const decl_modifiers_t modifiers = function_type->modifiers;
409         if (modifiers & DM_CONST)
410                 add_method_additional_properties(irtype, mtp_property_const);
411         if (modifiers & DM_PURE)
412                 add_method_additional_properties(irtype, mtp_property_pure);
413         if (modifiers & DM_RETURNS_TWICE)
414                 add_method_additional_properties(irtype, mtp_property_returns_twice);
415         if (modifiers & DM_NORETURN)
416                 add_method_additional_properties(irtype, mtp_property_noreturn);
417         if (modifiers & DM_NOTHROW)
418                 add_method_additional_properties(irtype, mtp_property_nothrow);
419         if (modifiers & DM_MALLOC)
420                 add_method_additional_properties(irtype, mtp_property_malloc);
421
422         return irtype;
423 }
424
425 static ir_type *create_pointer_type(pointer_type_t *type)
426 {
427         type_dbg_info *dbgi         = get_type_dbg_info_((const type_t*) type);
428         type_t        *points_to    = type->points_to;
429         ir_type       *ir_points_to = get_ir_type_incomplete(points_to);
430         ir_type       *irtype       = new_d_type_pointer(ir_points_to, dbgi);
431
432         return irtype;
433 }
434
435 static ir_type *create_reference_type(reference_type_t *type)
436 {
437         type_dbg_info *dbgi         = get_type_dbg_info_((const type_t*) type);
438         type_t        *refers_to    = type->refers_to;
439         ir_type       *ir_refers_to = get_ir_type_incomplete(refers_to);
440         ir_type       *irtype       = new_d_type_pointer(ir_refers_to, dbgi);
441
442         return irtype;
443 }
444
445 static ir_type *create_array_type(array_type_t *type)
446 {
447         type_dbg_info *dbgi            = get_type_dbg_info_((const type_t*) type);
448         type_t        *element_type    = type->element_type;
449         ir_type       *ir_element_type = get_ir_type(element_type);
450         ir_type       *irtype          = new_d_type_array(1, ir_element_type, dbgi);
451
452         const int align = get_type_alignment_bytes(ir_element_type);
453         set_type_alignment_bytes(irtype, align);
454
455         if (type->size_constant) {
456                 int n_elements = type->size;
457
458                 set_array_bounds_int(irtype, 0, 0, n_elements);
459
460                 size_t elemsize = get_type_size_bytes(ir_element_type);
461                 if (elemsize % align > 0) {
462                         elemsize += align - (elemsize % align);
463                 }
464                 set_type_size_bytes(irtype, n_elements * elemsize);
465         } else {
466                 set_array_lower_bound_int(irtype, 0, 0);
467         }
468         set_type_state(irtype, layout_fixed);
469
470         return irtype;
471 }
472
473 /**
474  * Return the signed integer type of size bits.
475  *
476  * @param size   the size
477  */
478 static ir_type *get_signed_int_type_for_bit_size(ir_type *base_tp,
479                                                  unsigned size,
480                                                                                                  const type_t *type)
481 {
482         static ir_mode *s_modes[64 + 1] = {NULL, };
483         ir_type *res;
484         ir_mode *mode;
485
486         if (size <= 0 || size > 64)
487                 return NULL;
488
489         mode = s_modes[size];
490         if (mode == NULL) {
491                 char name[32];
492
493                 snprintf(name, sizeof(name), "bf_I%u", size);
494                 mode = new_int_mode(name, irma_twos_complement, size, 1, 0);
495                 s_modes[size] = mode;
496         }
497
498         type_dbg_info *dbgi = get_type_dbg_info_(type);
499         res                 = new_d_type_primitive(mode, dbgi);
500         set_primitive_base_type(res, base_tp);
501
502         return res;
503 }
504
505 /**
506  * Return the unsigned integer type of size bits.
507  *
508  * @param size   the size
509  */
510 static ir_type *get_unsigned_int_type_for_bit_size(ir_type *base_tp,
511                                                    unsigned size,
512                                                                                                    const type_t *type)
513 {
514         static ir_mode *u_modes[64 + 1] = {NULL, };
515         ir_type *res;
516         ir_mode *mode;
517
518         if (size <= 0 || size > 64)
519                 return NULL;
520
521         mode = u_modes[size];
522         if (mode == NULL) {
523                 char name[32];
524
525                 snprintf(name, sizeof(name), "bf_U%u", size);
526                 mode = new_int_mode(name, irma_twos_complement, size, 0, 0);
527                 u_modes[size] = mode;
528         }
529
530         type_dbg_info *dbgi = get_type_dbg_info_(type);
531         res = new_d_type_primitive(mode, dbgi);
532         set_primitive_base_type(res, base_tp);
533
534         return res;
535 }
536
537 static ir_type *create_bitfield_type(const entity_t *entity)
538 {
539         assert(entity->kind == ENTITY_COMPOUND_MEMBER);
540         type_t *base = skip_typeref(entity->declaration.type);
541         assert(is_type_integer(base));
542         ir_type *irbase = get_ir_type(base);
543
544         unsigned bit_size = entity->compound_member.bit_size;
545
546         if (is_type_signed(base)) {
547                 return get_signed_int_type_for_bit_size(irbase, bit_size, base);
548         } else {
549                 return get_unsigned_int_type_for_bit_size(irbase, bit_size, base);
550         }
551 }
552
553 /**
554  * Construct firm type from ast struct type.
555  */
556 static ir_type *create_compound_type(compound_type_t *const type, bool const incomplete)
557 {
558         compound_t *compound = type->compound;
559
560         if (compound->irtype != NULL && (compound->irtype_complete || incomplete)) {
561                 return compound->irtype;
562         }
563
564         bool const is_union = type->base.kind == TYPE_COMPOUND_UNION;
565
566         symbol_t *type_symbol = compound->base.symbol;
567         ident    *id;
568         if (type_symbol != NULL) {
569                 id = new_id_from_str(type_symbol->string);
570         } else {
571                 if (is_union) {
572                         id = id_unique("__anonymous_union.%u");
573                 } else {
574                         id = id_unique("__anonymous_struct.%u");
575                 }
576         }
577
578         ir_type *irtype;
579         if (is_union) {
580                 irtype = new_type_union(id);
581         } else {
582                 irtype = new_type_struct(id);
583         }
584
585         compound->irtype_complete = false;
586         compound->irtype          = irtype;
587
588         if (incomplete)
589                 return irtype;
590
591         if (is_union) {
592                 layout_union_type(type);
593         } else {
594                 layout_struct_type(type);
595         }
596
597         compound->irtype_complete = true;
598
599         entity_t *entry = compound->members.entities;
600         for ( ; entry != NULL; entry = entry->base.next) {
601                 if (entry->kind != ENTITY_COMPOUND_MEMBER)
602                         continue;
603
604                 symbol_t *symbol     = entry->base.symbol;
605                 type_t   *entry_type = entry->declaration.type;
606                 ident    *ident;
607                 if (symbol == NULL) {
608                         /* anonymous bitfield member, skip */
609                         if (entry->compound_member.bitfield)
610                                 continue;
611                         assert(is_type_compound(entry_type));
612                         ident = id_unique("anon.%u");
613                 } else {
614                         ident = new_id_from_str(symbol->string);
615                 }
616
617                 dbg_info *dbgi = get_dbg_info(&entry->base.pos);
618
619                 ir_type *entry_irtype;
620                 if (entry->compound_member.bitfield) {
621                         entry_irtype = create_bitfield_type(entry);
622                 } else {
623                         entry_irtype = get_ir_type(entry_type);
624                 }
625                 ir_entity *entity = new_d_entity(irtype, ident, entry_irtype, dbgi);
626
627                 set_entity_offset(entity, entry->compound_member.offset);
628                 set_entity_offset_bits_remainder(entity,
629                                                  entry->compound_member.bit_offset);
630
631                 assert(entry->declaration.kind == DECLARATION_KIND_UNKNOWN);
632                 entry->declaration.kind       = DECLARATION_KIND_COMPOUND_MEMBER;
633                 entry->compound_member.entity = entity;
634         }
635
636         set_type_alignment_bytes(irtype, compound->alignment);
637         set_type_size_bytes(irtype, compound->size);
638         set_type_state(irtype, layout_fixed);
639
640         return irtype;
641 }
642
643 void determine_enum_values(enum_type_t *const type)
644 {
645         ir_mode   *const mode    = atomic_modes[type->base.akind];
646         ir_tarval *const one     = get_mode_one(mode);
647         ir_tarval *      tv_next = get_mode_null(mode);
648
649         enum_t   *enume = type->enume;
650         entity_t *entry = enume->base.next;
651         for (; entry != NULL; entry = entry->base.next) {
652                 if (entry->kind != ENTITY_ENUM_VALUE)
653                         break;
654
655                 expression_t *const init = entry->enum_value.value;
656                 if (init != NULL) {
657                         tv_next = fold_constant_to_tarval(init);
658                 }
659                 assert(entry->enum_value.tv == NULL || entry->enum_value.tv == tv_next);
660                 entry->enum_value.tv = tv_next;
661                 tv_next = tarval_add(tv_next, one);
662         }
663 }
664
665 static ir_type *create_enum_type(enum_type_t *const type)
666 {
667         return create_atomic_type(type->base.akind, (const type_t*) type);
668 }
669
670 static ir_type *get_ir_type_incomplete(type_t *type)
671 {
672         type = skip_typeref(type);
673
674         if (type->base.firm_type != NULL) {
675                 return type->base.firm_type;
676         }
677
678         if (is_type_compound(type)) {
679                 return create_compound_type(&type->compound, true);
680         } else {
681                 return get_ir_type(type);
682         }
683 }
684
685 ir_type *get_ir_type(type_t *type)
686 {
687         type = skip_typeref(type);
688
689         if (type->base.firm_type != NULL) {
690                 return type->base.firm_type;
691         }
692
693         ir_type *firm_type = NULL;
694         switch (type->kind) {
695         case TYPE_ATOMIC:
696                 firm_type = create_atomic_type(type->atomic.akind, type);
697                 break;
698         case TYPE_COMPLEX:
699                 firm_type = create_complex_type(type->atomic.akind, type);
700                 break;
701         case TYPE_IMAGINARY:
702                 firm_type = create_imaginary_type(&type->atomic);
703                 break;
704         case TYPE_FUNCTION:
705                 firm_type = create_method_type(&type->function, false);
706                 break;
707         case TYPE_POINTER:
708                 firm_type = create_pointer_type(&type->pointer);
709                 break;
710         case TYPE_REFERENCE:
711                 firm_type = create_reference_type(&type->reference);
712                 break;
713         case TYPE_ARRAY:
714                 firm_type = create_array_type(&type->array);
715                 break;
716         case TYPE_COMPOUND_STRUCT:
717         case TYPE_COMPOUND_UNION:
718                 firm_type = create_compound_type(&type->compound, false);
719                 break;
720         case TYPE_ENUM:
721                 firm_type = create_enum_type(&type->enumt);
722                 break;
723
724         case TYPE_ERROR:
725         case TYPE_TYPEOF:
726         case TYPE_TYPEDEF:
727                 break;
728         }
729         if (firm_type == NULL)
730                 panic("unknown type found");
731
732         type->base.firm_type = firm_type;
733         return firm_type;
734 }
735
736 static ir_mode *get_ir_mode_storage(type_t *type)
737 {
738         type = skip_typeref(type);
739
740         /* Firm doesn't report a mode for arrays and structs/unions. */
741         if (!is_type_scalar(type)) {
742                 return mode_P_data;
743         }
744
745         ir_type *const irtype = get_ir_type(type);
746         ir_mode *const mode   = get_type_mode(irtype);
747         assert(mode != NULL);
748         return mode;
749 }
750
751 /*
752  * get arithmetic mode for a type. This is different from get_ir_mode_storage,
753  * int that it returns bigger modes for floating point on some platforms
754  * (x87 internally does arithemtic with 80bits)
755  */
756 static ir_mode *get_ir_mode_arithmetic(type_t *type)
757 {
758         ir_mode *mode = get_ir_mode_storage(type);
759         if (mode_is_float(mode) && mode_float_arithmetic != NULL) {
760                 return mode_float_arithmetic;
761         }
762
763         return mode;
764 }
765
766 /**
767  * Return a node representing the size of a type.
768  */
769 static ir_node *get_type_size_node(type_t *type)
770 {
771         unsigned size;
772         ir_mode *mode = get_ir_mode_arithmetic(type_size_t);
773         type = skip_typeref(type);
774
775         if (is_type_array(type) && type->array.is_vla) {
776                 ir_node *size_node = get_vla_size(&type->array);
777                 ir_node *elem_size = get_type_size_node(type->array.element_type);
778                 ir_node *real_size = new_d_Mul(NULL, size_node, elem_size, mode);
779                 return real_size;
780         }
781
782         size = get_type_size(type);
783         return new_Const_long(mode, size);
784 }
785
786 /** Names of the runtime functions. */
787 static const struct {
788         int        id;           /**< the rts id */
789         int        n_res;        /**< number of return values */
790         const char *name;        /**< the name of the rts function */
791         int        n_params;     /**< number of parameters */
792         unsigned   flags;        /**< language flags */
793 } rts_data[] = {
794         { rts_debugbreak, 0, "__debugbreak", 0, _MS },
795         { rts_abort,      0, "abort",        0, _C89 },
796         { rts_alloca,     1, "alloca",       1, _ALL },
797         { rts_abs,        1, "abs",          1, _C89 },
798         { rts_labs,       1, "labs",         1, _C89 },
799         { rts_llabs,      1, "llabs",        1, _C99 },
800         { rts_imaxabs,    1, "imaxabs",      1, _C99 },
801
802         { rts_fabs,       1, "fabs",         1, _C89 },
803         { rts_sqrt,       1, "sqrt",         1, _C89 },
804         { rts_cbrt,       1, "cbrt",         1, _C99 },
805         { rts_exp,        1, "exp",          1, _C89 },
806         { rts_exp2,       1, "exp2",         1, _C89 },
807         { rts_exp10,      1, "exp10",        1, _GNUC },
808         { rts_log,        1, "log",          1, _C89 },
809         { rts_log2,       1, "log2",         1, _C89 },
810         { rts_log10,      1, "log10",        1, _C89 },
811         { rts_pow,        1, "pow",          2, _C89 },
812         { rts_sin,        1, "sin",          1, _C89 },
813         { rts_cos,        1, "cos",          1, _C89 },
814         { rts_tan,        1, "tan",          1, _C89 },
815         { rts_asin,       1, "asin",         1, _C89 },
816         { rts_acos,       1, "acos",         1, _C89 },
817         { rts_atan,       1, "atan",         1, _C89 },
818         { rts_sinh,       1, "sinh",         1, _C89 },
819         { rts_cosh,       1, "cosh",         1, _C89 },
820         { rts_tanh,       1, "tanh",         1, _C89 },
821
822         { rts_fabsf,      1, "fabsf",        1, _C99 },
823         { rts_sqrtf,      1, "sqrtf",        1, _C99 },
824         { rts_cbrtf,      1, "cbrtf",        1, _C99 },
825         { rts_expf,       1, "expf",         1, _C99 },
826         { rts_exp2f,      1, "exp2f",        1, _C99 },
827         { rts_exp10f,     1, "exp10f",       1, _GNUC },
828         { rts_logf,       1, "logf",         1, _C99 },
829         { rts_log2f,      1, "log2f",        1, _C99 },
830         { rts_log10f,     1, "log10f",       1, _C99 },
831         { rts_powf,       1, "powf",         2, _C99 },
832         { rts_sinf,       1, "sinf",         1, _C99 },
833         { rts_cosf,       1, "cosf",         1, _C99 },
834         { rts_tanf,       1, "tanf",         1, _C99 },
835         { rts_asinf,      1, "asinf",        1, _C99 },
836         { rts_acosf,      1, "acosf",        1, _C99 },
837         { rts_atanf,      1, "atanf",        1, _C99 },
838         { rts_sinhf,      1, "sinhf",        1, _C99 },
839         { rts_coshf,      1, "coshf",        1, _C99 },
840         { rts_tanhf,      1, "tanhf",        1, _C99 },
841
842         { rts_fabsl,      1, "fabsl",        1, _C99 },
843         { rts_sqrtl,      1, "sqrtl",        1, _C99 },
844         { rts_cbrtl,      1, "cbrtl",        1, _C99 },
845         { rts_expl,       1, "expl",         1, _C99 },
846         { rts_exp2l,      1, "exp2l",        1, _C99 },
847         { rts_exp10l,     1, "exp10l",       1, _GNUC },
848         { rts_logl,       1, "logl",         1, _C99 },
849         { rts_log2l,      1, "log2l",        1, _C99 },
850         { rts_log10l,     1, "log10l",       1, _C99 },
851         { rts_powl,       1, "powl",         2, _C99 },
852         { rts_sinl,       1, "sinl",         1, _C99 },
853         { rts_cosl,       1, "cosl",         1, _C99 },
854         { rts_tanl,       1, "tanl",         1, _C99 },
855         { rts_asinl,      1, "asinl",        1, _C99 },
856         { rts_acosl,      1, "acosl",        1, _C99 },
857         { rts_atanl,      1, "atanl",        1, _C99 },
858         { rts_sinhl,      1, "sinhl",        1, _C99 },
859         { rts_coshl,      1, "coshl",        1, _C99 },
860         { rts_tanhl,      1, "tanhl",        1, _C99 },
861
862         { rts_strcmp,     1, "strcmp",       2, _C89 },
863         { rts_strncmp,    1, "strncmp",      3, _C89 },
864         { rts_strcpy,     1, "strcpy",       2, _C89 },
865         { rts_strlen,     1, "strlen",       1, _C89 },
866         { rts_memcpy,     1, "memcpy",       3, _C89 },
867         { rts_mempcpy,    1, "mempcpy",      3, _GNUC },
868         { rts_memmove,    1, "memmove",      3, _C89 },
869         { rts_memset,     1, "memset",       3, _C89 },
870         { rts_memcmp,     1, "memcmp",       3, _C89 },
871 };
872
873 static ident *rts_idents[lengthof(rts_data)];
874
875 static create_ld_ident_func create_ld_ident = create_name_linux_elf;
876
877 void set_create_ld_ident(ident *(*func)(entity_t*))
878 {
879         create_ld_ident = func;
880 }
881
882 static bool declaration_is_definition(const entity_t *entity)
883 {
884         switch (entity->kind) {
885         case ENTITY_VARIABLE:
886                 return entity->declaration.storage_class != STORAGE_CLASS_EXTERN;
887         case ENTITY_FUNCTION:
888                 return entity->function.body != NULL;
889         case ENTITY_PARAMETER:
890         case ENTITY_COMPOUND_MEMBER:
891                 return false;
892         case ENTITY_TYPEDEF:
893         case ENTITY_ENUM:
894         case ENTITY_ENUM_VALUE:
895         case ENTITY_NAMESPACE:
896         case ENTITY_LABEL:
897         case ENTITY_LOCAL_LABEL:
898                 break;
899         }
900         panic("entity is not a declaration");
901 }
902
903 /**
904  * Handle GNU attributes for entities
905  *
906  * @param ent   the entity
907  * @param decl  the routine declaration
908  */
909 static void handle_decl_modifiers(ir_entity *irentity, entity_t *entity)
910 {
911         assert(is_declaration(entity));
912         decl_modifiers_t modifiers = entity->declaration.modifiers;
913
914         if (is_method_entity(irentity)) {
915                 if (modifiers & DM_PURE)
916                         add_entity_additional_properties(irentity, mtp_property_pure);
917                 if (modifiers & DM_CONST)
918                         add_entity_additional_properties(irentity, mtp_property_const);
919                 if (modifiers & DM_NOINLINE)
920                         add_entity_additional_properties(irentity, mtp_property_noinline);
921                 if (modifiers & DM_FORCEINLINE)
922                         add_entity_additional_properties(irentity, mtp_property_always_inline);
923                 if (modifiers & DM_NAKED)
924                         add_entity_additional_properties(irentity, mtp_property_naked);
925                 if (entity->kind == ENTITY_FUNCTION && entity->function.is_inline)
926                         add_entity_additional_properties(irentity,
927                                                                                          mtp_property_inline_recommended);
928         }
929         if ((modifiers & DM_USED) && declaration_is_definition(entity)) {
930                 add_entity_linkage(irentity, IR_LINKAGE_HIDDEN_USER);
931         }
932         if ((modifiers & DM_WEAK) && declaration_is_definition(entity)
933             && entity->declaration.storage_class != STORAGE_CLASS_EXTERN) {
934                 add_entity_linkage(irentity, IR_LINKAGE_WEAK);
935         }
936 }
937
938 static bool is_main(entity_t *entity)
939 {
940         static symbol_t *sym_main = NULL;
941         if (sym_main == NULL) {
942                 sym_main = symbol_table_insert("main");
943         }
944
945         if (entity->base.symbol != sym_main)
946                 return false;
947         /* must be in outermost scope */
948         if (entity->base.parent_scope != &current_translation_unit->scope)
949                 return false;
950
951         return true;
952 }
953
954 /**
955  * Creates an entity representing a function.
956  *
957  * @param entity       the function declaration/definition
958  * @param owner_type   the owner type of this function, NULL
959  *                     for global functions
960  */
961 static ir_entity *get_function_entity(entity_t *entity, ir_type *owner_type)
962 {
963         assert(entity->kind == ENTITY_FUNCTION);
964         if (entity->function.irentity != NULL)
965                 return entity->function.irentity;
966
967         switch (entity->function.btk) {
968         case BUILTIN_NONE:
969         case BUILTIN_LIBC:
970         case BUILTIN_LIBC_CHECK:
971                 break;
972         default:
973                 return NULL;
974         }
975
976         symbol_t *symbol = entity->base.symbol;
977         ident    *id     = new_id_from_str(symbol->string);
978
979         /* already an entity defined? */
980         ir_entity *irentity = entitymap_get(&entitymap, symbol);
981         bool const has_body = entity->function.body != NULL;
982         if (irentity != NULL) {
983                 goto entity_created;
984         }
985
986         ir_type *ir_type_method;
987         if (entity->function.need_closure)
988                 ir_type_method = create_method_type(&entity->declaration.type->function, true);
989         else
990                 ir_type_method = get_ir_type(entity->declaration.type);
991
992         bool nested_function = false;
993         if (owner_type == NULL)
994                 owner_type = get_glob_type();
995         else
996                 nested_function = true;
997
998         dbg_info *const dbgi = get_dbg_info(&entity->base.pos);
999         irentity = new_d_entity(owner_type, id, ir_type_method, dbgi);
1000
1001         ident *ld_id;
1002         if (nested_function)
1003                 ld_id = id_unique("inner.%u");
1004         else
1005                 ld_id = create_ld_ident(entity);
1006         set_entity_ld_ident(irentity, ld_id);
1007
1008         handle_decl_modifiers(irentity, entity);
1009
1010         if (! nested_function) {
1011                 storage_class_tag_t const storage_class
1012                         = (storage_class_tag_t) entity->declaration.storage_class;
1013                 if (storage_class == STORAGE_CLASS_STATIC) {
1014                     set_entity_visibility(irentity, ir_visibility_local);
1015                 } else {
1016                     set_entity_visibility(irentity, ir_visibility_external);
1017                 }
1018
1019                 bool const is_inline = entity->function.is_inline;
1020                 if (is_inline && has_body) {
1021                         if (((c_mode & _C99) && storage_class == STORAGE_CLASS_NONE)
1022                             || ((c_mode & _C99) == 0
1023                                 && storage_class == STORAGE_CLASS_EXTERN)) {
1024                                 add_entity_linkage(irentity, IR_LINKAGE_NO_CODEGEN);
1025                         }
1026                 }
1027         } else {
1028                 /* nested functions are always local */
1029                 set_entity_visibility(irentity, ir_visibility_local);
1030         }
1031
1032         /* We should check for file scope here, but as long as we compile C only
1033            this is not needed. */
1034         if (!freestanding && !has_body) {
1035                 /* check for a known runtime function */
1036                 for (size_t i = 0; i < lengthof(rts_data); ++i) {
1037                         if (id != rts_idents[i])
1038                                 continue;
1039
1040                         function_type_t *function_type
1041                                 = &entity->declaration.type->function;
1042                         /* rts_entities code can't handle a "wrong" number of parameters */
1043                         if (function_type->unspecified_parameters)
1044                                 continue;
1045
1046                         /* check number of parameters */
1047                         int n_params = count_parameters(function_type);
1048                         if (n_params != rts_data[i].n_params)
1049                                 continue;
1050
1051                         type_t *return_type = skip_typeref(function_type->return_type);
1052                         int     n_res       = is_type_void(return_type) ? 0 : 1;
1053                         if (n_res != rts_data[i].n_res)
1054                                 continue;
1055
1056                         /* ignore those rts functions not necessary needed for current mode */
1057                         if ((c_mode & rts_data[i].flags) == 0)
1058                                 continue;
1059                         assert(rts_entities[rts_data[i].id] == NULL);
1060                         rts_entities[rts_data[i].id] = irentity;
1061                 }
1062         }
1063
1064         entitymap_insert(&entitymap, symbol, irentity);
1065
1066 entity_created:
1067         entity->declaration.kind  = DECLARATION_KIND_FUNCTION;
1068         entity->function.irentity = irentity;
1069
1070         return irentity;
1071 }
1072
1073 /**
1074  * Creates a SymConst for a given entity.
1075  *
1076  * @param dbgi    debug info
1077  * @param entity  the entity
1078  */
1079 static ir_node *create_symconst(dbg_info *dbgi, ir_entity *entity)
1080 {
1081         assert(entity != NULL);
1082         union symconst_symbol sym;
1083         sym.entity_p = entity;
1084         return new_d_SymConst(dbgi, mode_P, sym, symconst_addr_ent);
1085 }
1086
1087 static ir_node *create_Const_from_bool(ir_mode *const mode, bool const v)
1088 {
1089         return new_Const((v ? get_mode_one : get_mode_null)(mode));
1090 }
1091
1092 static ir_node *create_conv_from_b(dbg_info *dbgi, ir_node *value,
1093                                    ir_mode *dest_mode)
1094 {
1095         if (is_Const(value)) {
1096                 return create_Const_from_bool(dest_mode, !is_Const_null(value));
1097         }
1098
1099         ir_node *cond       = new_d_Cond(dbgi, value);
1100         ir_node *proj_true  = new_Proj(cond, mode_X, pn_Cond_true);
1101         ir_node *proj_false = new_Proj(cond, mode_X, pn_Cond_false);
1102         ir_node *tblock     = new_Block(1, &proj_true);
1103         ir_node *fblock     = new_Block(1, &proj_false);
1104         set_cur_block(tblock);
1105         ir_node *const1 = new_Const(get_mode_one(dest_mode));
1106         ir_node *tjump  = new_Jmp();
1107         set_cur_block(fblock);
1108         ir_node *const0 = new_Const(get_mode_null(dest_mode));
1109         ir_node *fjump  = new_Jmp();
1110
1111         ir_node *in[2]      = { tjump, fjump };
1112         ir_node *mergeblock = new_Block(2, in);
1113         set_cur_block(mergeblock);
1114         ir_node *phi_in[2]  = { const1, const0 };
1115         ir_node *phi        = new_Phi(2, phi_in, dest_mode);
1116         return phi;
1117 }
1118
1119 static ir_node *create_conv(dbg_info *dbgi, ir_node *value, ir_mode *dest_mode)
1120 {
1121         ir_mode *value_mode = get_irn_mode(value);
1122
1123         if (value_mode == dest_mode)
1124                 return value;
1125
1126         if (dest_mode == mode_b) {
1127                 ir_node *zero = new_Const(get_mode_null(value_mode));
1128                 ir_node *cmp  = new_d_Cmp(dbgi, value, zero, ir_relation_unordered_less_greater);
1129                 return cmp;
1130         } else if (value_mode == mode_b) {
1131                 return create_conv_from_b(dbgi, value, dest_mode);
1132         }
1133
1134         return new_d_Conv(dbgi, value, dest_mode);
1135 }
1136
1137 static ir_node *conv_to_storage_type(dbg_info *const dbgi, ir_node *const val, type_t *const type)
1138 {
1139         ir_mode *const mode = get_ir_mode_storage(type);
1140         return create_conv(dbgi, val, mode);
1141 }
1142
1143 /**
1144  * Creates a SymConst node representing a string constant.
1145  *
1146  * @param src_pos    the source position of the string constant
1147  * @param id_prefix  a prefix for the name of the generated string constant
1148  * @param value      the value of the string constant
1149  */
1150 static ir_node *string_to_firm(position_t const *const src_pos, char const *const id_prefix, string_t const *const value)
1151 {
1152         size_t            const slen        = get_string_len(value) + 1;
1153         ir_initializer_t *const initializer = create_initializer_compound(slen);
1154         ir_type          *      elem_type;
1155         switch (value->encoding) {
1156         case STRING_ENCODING_CHAR:
1157         case STRING_ENCODING_UTF8: {
1158                 elem_type = ir_type_char;
1159
1160                 ir_mode *const mode = get_type_mode(elem_type);
1161                 char const    *p    = value->begin;
1162                 for (size_t i = 0; i < slen; ++i) {
1163                         ir_tarval        *tv  = new_tarval_from_long(*p++, mode);
1164                         ir_initializer_t *val = create_initializer_tarval(tv);
1165                         set_initializer_compound_value(initializer, i, val);
1166                 }
1167                 goto finish;
1168         }
1169
1170         {
1171                 type_t *type;
1172         case STRING_ENCODING_CHAR16: type = type_char16_t; goto init_wide;
1173         case STRING_ENCODING_CHAR32: type = type_char32_t; goto init_wide;
1174         case STRING_ENCODING_WIDE:   type = type_wchar_t;  goto init_wide;
1175 init_wide:;
1176                 elem_type = get_ir_type(type);
1177
1178                 ir_mode *const mode = get_type_mode(elem_type);
1179                 char const    *p    = value->begin;
1180                 for (size_t i = 0; i < slen; ++i) {
1181                         assert(p <= value->begin + value->size);
1182                         utf32             v   = read_utf8_char(&p);
1183                         ir_tarval        *tv  = new_tarval_from_long(v, mode);
1184                         ir_initializer_t *val = create_initializer_tarval(tv);
1185                         set_initializer_compound_value(initializer, i, val);
1186                 }
1187                 goto finish;
1188         }
1189         }
1190         panic("invalid string encoding");
1191
1192 finish:;
1193         ir_type *const type = new_type_array(1, elem_type);
1194         set_array_bounds_int(type, 0, 0, slen);
1195         set_type_size_bytes( type, slen * get_type_size_bytes(elem_type));
1196         set_type_state(      type, layout_fixed);
1197
1198         ir_type   *const global_type = get_glob_type();
1199         ident     *const id          = id_unique(id_prefix);
1200         dbg_info  *const dbgi        = get_dbg_info(src_pos);
1201         ir_entity *const entity      = new_d_entity(global_type, id, type, dbgi);
1202         set_entity_ld_ident(   entity, id);
1203         set_entity_visibility( entity, ir_visibility_private);
1204         add_entity_linkage(    entity, IR_LINKAGE_CONSTANT);
1205         set_entity_initializer(entity, initializer);
1206
1207         return create_symconst(dbgi, entity);
1208 }
1209
1210 static bool try_create_integer(literal_expression_t *literal, type_t *type)
1211 {
1212         assert(type->kind == TYPE_ATOMIC);
1213         atomic_type_kind_t akind = type->atomic.akind;
1214
1215         ir_mode    *const mode = atomic_modes[akind];
1216         char const *const str  = literal->value.begin;
1217         ir_tarval  *const tv   = new_tarval_from_str(str, literal->suffix - str, mode);
1218         if (tv == tarval_bad)
1219                 return false;
1220
1221         literal->base.type    = type;
1222         literal->target_value = tv;
1223         return true;
1224 }
1225
1226 void determine_literal_type(literal_expression_t *const literal)
1227 {
1228         assert(literal->base.kind == EXPR_LITERAL_INTEGER);
1229
1230         /* -1: signed only, 0: any, 1: unsigned only */
1231         int const sign =
1232                 !is_type_signed(literal->base.type) ? 1 :
1233                 literal->value.begin[0] == '0'      ? 0 :
1234                 -1; /* Decimal literals only try signed types. */
1235
1236         tarval_int_overflow_mode_t old_mode = tarval_get_integer_overflow_mode();
1237         tarval_set_integer_overflow_mode(TV_OVERFLOW_BAD);
1238
1239         if (try_create_integer(literal, literal->base.type))
1240                 goto finished;
1241
1242         /* now try if the constant is small enough for some types */
1243         if (sign >= 0 && try_create_integer(literal, type_unsigned_int))
1244                 goto finished;
1245         if (sign <= 0 && try_create_integer(literal, type_long))
1246                 goto finished;
1247         if (sign >= 0 && try_create_integer(literal, type_unsigned_long))
1248                 goto finished;
1249         /* last try? then we should not report tarval_bad */
1250         if (sign < 0)
1251                 tarval_set_integer_overflow_mode(TV_OVERFLOW_WRAP);
1252         if (sign <= 0 && try_create_integer(literal, type_long_long))
1253                 goto finished;
1254
1255         /* last try */
1256         assert(sign >= 0);
1257         tarval_set_integer_overflow_mode(TV_OVERFLOW_WRAP);
1258         bool res = try_create_integer(literal, type_unsigned_long_long);
1259         if (!res)
1260                 panic("internal error when parsing number literal");
1261
1262 finished:
1263         tarval_set_integer_overflow_mode(old_mode);
1264 }
1265
1266 /**
1267  * Creates a Const node representing a constant.
1268  */
1269 static ir_node *literal_to_firm(const literal_expression_t *literal)
1270 {
1271         type_t     *type   = skip_typeref(literal->base.type);
1272         ir_mode    *mode   = get_ir_mode_storage(type);
1273         const char *string = literal->value.begin;
1274         size_t      size   = literal->value.size;
1275         ir_tarval  *tv;
1276
1277         switch (literal->base.kind) {
1278         case EXPR_LITERAL_INTEGER:
1279                 assert(literal->target_value != NULL);
1280                 tv = literal->target_value;
1281                 break;
1282
1283         case EXPR_LITERAL_FLOATINGPOINT:
1284                 tv = new_tarval_from_str(string, size, mode);
1285                 break;
1286
1287         case EXPR_LITERAL_BOOLEAN:
1288                 if (string[0] == 't') {
1289                         tv = get_mode_one(mode);
1290                 } else {
1291                         assert(string[0] == 'f');
1292         case EXPR_LITERAL_MS_NOOP:
1293                         tv = get_mode_null(mode);
1294                 }
1295                 break;
1296
1297         default:
1298                 panic("invalid literal kind");
1299         }
1300
1301         dbg_info *dbgi       = get_dbg_info(&literal->base.pos);
1302         ir_node  *res        = new_d_Const(dbgi, tv);
1303         ir_mode  *mode_arith = get_ir_mode_arithmetic(type);
1304         return create_conv(dbgi, res, mode_arith);
1305 }
1306
1307 /**
1308  * Creates a Const node representing a character constant.
1309  */
1310 static ir_node *char_literal_to_firm(string_literal_expression_t const *literal)
1311 {
1312         type_t     *type   = skip_typeref(literal->base.type);
1313         ir_mode    *mode   = get_ir_mode_storage(type);
1314         const char *string = literal->value.begin;
1315         size_t      size   = literal->value.size;
1316         ir_tarval  *tv;
1317
1318         switch (literal->value.encoding) {
1319         case STRING_ENCODING_WIDE: {
1320                 utf32  v = read_utf8_char(&string);
1321                 char   buf[128];
1322                 size_t len = snprintf(buf, sizeof(buf), UTF32_PRINTF_FORMAT, v);
1323
1324                 tv = new_tarval_from_str(buf, len, mode);
1325                 break;
1326         }
1327
1328         case STRING_ENCODING_CHAR: {
1329                 long long int v;
1330                 bool char_is_signed
1331                         = get_atomic_type_flags(ATOMIC_TYPE_CHAR) & ATOMIC_TYPE_FLAG_SIGNED;
1332                 if (size == 1 && char_is_signed) {
1333                         v = (signed char)string[0];
1334                 } else {
1335                         v = 0;
1336                         for (size_t i = 0; i < size; ++i) {
1337                                 v = (v << 8) | ((unsigned char)string[i]);
1338                         }
1339                 }
1340                 char   buf[128];
1341                 size_t len = snprintf(buf, sizeof(buf), "%lld", v);
1342
1343                 tv = new_tarval_from_str(buf, len, mode);
1344                 break;
1345         }
1346
1347         default:
1348                 panic("invalid literal kind");
1349         }
1350
1351         dbg_info *dbgi       = get_dbg_info(&literal->base.pos);
1352         ir_node  *res        = new_d_Const(dbgi, tv);
1353         ir_mode  *mode_arith = get_ir_mode_arithmetic(type);
1354         return create_conv(dbgi, res, mode_arith);
1355 }
1356
1357 /*
1358  * Allocate an area of size bytes aligned at alignment
1359  * at a frame type.
1360  */
1361 static ir_entity *alloc_trampoline(ir_type *frame_type, int size, unsigned alignment)
1362 {
1363         static unsigned area_cnt = 0;
1364         char buf[32];
1365
1366         ir_type *tp = new_type_array(1, ir_type_char);
1367         set_array_bounds_int(tp, 0, 0, size);
1368         set_type_alignment_bytes(tp, alignment);
1369
1370         snprintf(buf, sizeof(buf), "trampolin%u", area_cnt++);
1371         ident *name = new_id_from_str(buf);
1372         ir_entity *area = new_entity(frame_type, name, tp);
1373
1374         /* mark this entity as compiler generated */
1375         set_entity_compiler_generated(area, 1);
1376         return area;
1377 }
1378
1379 /**
1380  * Return a node representing a trampoline region
1381  * for a given function entity.
1382  *
1383  * @param dbgi    debug info
1384  * @param entity  the function entity
1385  */
1386 static ir_node *get_trampoline_region(dbg_info *dbgi, ir_entity *entity)
1387 {
1388         ir_entity *region = NULL;
1389         int        i;
1390
1391         if (current_trampolines != NULL) {
1392                 for (i = ARR_LEN(current_trampolines) - 1; i >= 0; --i) {
1393                         if (current_trampolines[i].function == entity) {
1394                                 region = current_trampolines[i].region;
1395                                 break;
1396                         }
1397                 }
1398         } else {
1399                 current_trampolines = NEW_ARR_F(trampoline_region, 0);
1400         }
1401         ir_graph *irg = current_ir_graph;
1402         if (region == NULL) {
1403                 /* create a new region */
1404                 ir_type           *frame_tp = get_irg_frame_type(irg);
1405                 trampoline_region  reg;
1406                 reg.function = entity;
1407
1408                 reg.region   = alloc_trampoline(frame_tp,
1409                                                 be_params->trampoline_size,
1410                                                 be_params->trampoline_align);
1411                 ARR_APP1(trampoline_region, current_trampolines, reg);
1412                 region = reg.region;
1413         }
1414         return new_d_simpleSel(dbgi, get_irg_no_mem(irg), get_irg_frame(irg),
1415                                region);
1416 }
1417
1418 /**
1419  * Creates a trampoline for a function represented by an entity.
1420  *
1421  * @param dbgi    debug info
1422  * @param mode    the (reference) mode for the function address
1423  * @param entity  the function entity
1424  */
1425 static ir_node *create_trampoline(dbg_info *dbgi, ir_mode *mode,
1426                                   ir_entity *entity)
1427 {
1428         assert(entity != NULL);
1429         ir_node *in[3];
1430         in[0] = get_trampoline_region(dbgi, entity);
1431         in[1] = create_symconst(dbgi, entity);
1432         in[2] = get_irg_frame(current_ir_graph);
1433
1434         ir_node *irn = new_d_Builtin(dbgi, get_store(), 3, in, ir_bk_inner_trampoline, get_unknown_type());
1435         set_store(new_Proj(irn, mode_M, pn_Builtin_M));
1436         return new_Proj(irn, mode, pn_Builtin_max+1);
1437 }
1438
1439 /**
1440  * Dereference an address.
1441  *
1442  * @param dbgi  debug info
1443  * @param type  the type of the dereferenced result (the points_to type)
1444  * @param addr  the address to dereference
1445  */
1446 static ir_node *deref_address(dbg_info *const dbgi, type_t *const type,
1447                                       ir_node *const addr)
1448 {
1449         type_t *skipped = skip_typeref(type);
1450         if (is_type_incomplete(skipped))
1451                 return addr;
1452
1453         ir_type *irtype = get_ir_type(skipped);
1454         if (is_compound_type(irtype)
1455             || is_Method_type(irtype)
1456             || is_Array_type(irtype)) {
1457                 return addr;
1458         }
1459
1460         ir_cons_flags  flags    = skipped->base.qualifiers & TYPE_QUALIFIER_VOLATILE
1461                                   ? cons_volatile : cons_none;
1462         ir_mode *const mode     = get_type_mode(irtype);
1463         ir_node *const memory   = get_store();
1464         ir_node *const load     = new_d_Load(dbgi, memory, addr, mode, flags);
1465         ir_node *const load_mem = new_d_Proj(dbgi, load, mode_M, pn_Load_M);
1466         ir_node *const load_res = new_d_Proj(dbgi, load, mode,   pn_Load_res);
1467
1468         set_store(load_mem);
1469
1470         ir_mode *const mode_arithmetic = get_ir_mode_arithmetic(skipped);
1471         return create_conv(dbgi, load_res, mode_arithmetic);
1472 }
1473
1474 /**
1475  * Returns the correct base address depending on whether it is a parameter or a
1476  * normal local variable.
1477  */
1478 static ir_node *get_local_frame(ir_entity *const ent)
1479 {
1480         ir_graph      *const irg   = current_ir_graph;
1481         const ir_type *const owner = get_entity_owner(ent);
1482         if (owner == current_outer_frame) {
1483                 assert(current_static_link != NULL);
1484                 return current_static_link;
1485         } else {
1486                 return get_irg_frame(irg);
1487         }
1488 }
1489
1490 /**
1491  * Keep the current block and memory.
1492  * This is necessary for all loops, because they could become infinite.
1493  */
1494 static void keep_loop(void)
1495 {
1496         keep_alive(get_cur_block());
1497         keep_alive(get_store());
1498 }
1499
1500 static ir_node *enum_constant_to_firm(reference_expression_t const *const ref)
1501 {
1502         entity_t *entity = ref->entity;
1503         if (entity->enum_value.tv == NULL) {
1504                 type_t *type = skip_typeref(entity->enum_value.enum_type);
1505                 assert(type->kind == TYPE_ENUM);
1506                 determine_enum_values(&type->enumt);
1507         }
1508
1509         return new_Const(entity->enum_value.tv);
1510 }
1511
1512 static ir_node *reference_addr(const reference_expression_t *ref)
1513 {
1514         dbg_info *dbgi   = get_dbg_info(&ref->base.pos);
1515         entity_t *entity = ref->entity;
1516         assert(is_declaration(entity));
1517
1518         if (entity->kind == ENTITY_FUNCTION
1519             && entity->function.btk != BUILTIN_NONE) {
1520                 ir_entity *irentity = get_function_entity(entity, NULL);
1521                 /* for gcc compatibility we have to produce (dummy) addresses for some
1522                  * builtins which don't have entities */
1523                 if (irentity == NULL) {
1524                         position_t const *const pos = &ref->base.pos;
1525                         warningf(WARN_OTHER, pos, "taking address of builtin '%N'", ref->entity);
1526
1527                         /* simply create a NULL pointer */
1528                         ir_mode  *mode = get_ir_mode_arithmetic(type_void_ptr);
1529                         ir_node  *res  = new_Const(get_mode_null(mode));
1530
1531                         return res;
1532                 }
1533         }
1534
1535         switch((declaration_kind_t) entity->declaration.kind) {
1536         case DECLARATION_KIND_UNKNOWN:
1537                 break;
1538         case DECLARATION_KIND_PARAMETER:
1539         case DECLARATION_KIND_LOCAL_VARIABLE:
1540                 /* you can store to a local variable (so we don't panic but return NULL
1541                  * as an indicator for no real address) */
1542                 return NULL;
1543         case DECLARATION_KIND_GLOBAL_VARIABLE: {
1544                 ir_node *const addr = create_symconst(dbgi, entity->variable.v.entity);
1545                 return addr;
1546         }
1547
1548         case DECLARATION_KIND_LOCAL_VARIABLE_ENTITY:
1549         case DECLARATION_KIND_PARAMETER_ENTITY: {
1550                 ir_entity *irentity = entity->variable.v.entity;
1551                 ir_node   *frame    = get_local_frame(irentity);
1552                 ir_node   *sel = new_d_simpleSel(dbgi, new_NoMem(), frame, irentity);
1553                 return sel;
1554         }
1555
1556         case DECLARATION_KIND_VARIABLE_LENGTH_ARRAY:
1557                 return entity->variable.v.vla_base;
1558
1559         case DECLARATION_KIND_FUNCTION: {
1560                 return create_symconst(dbgi, entity->function.irentity);
1561         }
1562
1563         case DECLARATION_KIND_INNER_FUNCTION: {
1564                 type_t  *const type = skip_typeref(entity->declaration.type);
1565                 ir_mode *const mode = get_ir_mode_storage(type);
1566                 if (!entity->function.goto_to_outer && !entity->function.need_closure) {
1567                         /* inner function not using the closure */
1568                         return create_symconst(dbgi, entity->function.irentity);
1569                 } else {
1570                         /* need trampoline here */
1571                         return create_trampoline(dbgi, mode, entity->function.irentity);
1572                 }
1573         }
1574
1575         case DECLARATION_KIND_COMPOUND_MEMBER:
1576                 panic("not implemented reference type");
1577         }
1578
1579         panic("reference to declaration with unknown type");
1580 }
1581
1582 static ir_node *reference_expression_to_firm(const reference_expression_t *ref)
1583 {
1584         dbg_info *const dbgi   = get_dbg_info(&ref->base.pos);
1585         entity_t *const entity = ref->entity;
1586         assert(is_declaration(entity));
1587
1588         switch ((declaration_kind_t)entity->declaration.kind) {
1589         case DECLARATION_KIND_LOCAL_VARIABLE:
1590         case DECLARATION_KIND_PARAMETER: {
1591                 type_t  *const type  = skip_typeref(entity->declaration.type);
1592                 ir_mode *const mode  = get_ir_mode_storage(type);
1593                 ir_node *const value = get_value(entity->variable.v.value_number, mode);
1594                 return create_conv(dbgi, value, get_ir_mode_arithmetic(type));
1595         }
1596
1597         default: {
1598                 ir_node *const addr = reference_addr(ref);
1599                 return deref_address(dbgi, entity->declaration.type, addr);
1600         }
1601         }
1602 }
1603
1604 /**
1605  * Transform calls to builtin functions.
1606  */
1607 static ir_node *process_builtin_call(const call_expression_t *call)
1608 {
1609         dbg_info *dbgi = get_dbg_info(&call->base.pos);
1610
1611         assert(call->function->kind == EXPR_REFERENCE);
1612         reference_expression_t *builtin = &call->function->reference;
1613
1614         type_t *expr_type = skip_typeref(builtin->base.type);
1615         assert(is_type_pointer(expr_type));
1616
1617         type_t *function_type = skip_typeref(expr_type->pointer.points_to);
1618
1619         switch (builtin->entity->function.btk) {
1620         case BUILTIN_NONE:
1621                 break;
1622         case BUILTIN_ALLOCA: {
1623                 expression_t *argument = call->arguments->expression;
1624                 ir_node      *size     = expression_to_firm(argument);
1625
1626                 ir_node *store  = get_store();
1627                 ir_node *alloca = new_d_Alloc(dbgi, store, size, get_unknown_type(),
1628                                               stack_alloc);
1629                 ir_node *proj_m = new_Proj(alloca, mode_M, pn_Alloc_M);
1630                 set_store(proj_m);
1631                 ir_node *res    = new_Proj(alloca, mode_P_data, pn_Alloc_res);
1632
1633                 return res;
1634         }
1635         case BUILTIN_INF: {
1636                 type_t    *type = function_type->function.return_type;
1637                 ir_mode   *mode = get_ir_mode_arithmetic(type);
1638                 ir_tarval *tv   = get_mode_infinite(mode);
1639                 ir_node   *res  = new_d_Const(dbgi, tv);
1640                 return res;
1641         }
1642         case BUILTIN_NAN: {
1643                 /* Ignore string for now... */
1644                 assert(is_type_function(function_type));
1645                 type_t    *type = function_type->function.return_type;
1646                 ir_mode   *mode = get_ir_mode_arithmetic(type);
1647                 ir_tarval *tv   = get_mode_NAN(mode);
1648                 ir_node   *res  = new_d_Const(dbgi, tv);
1649                 return res;
1650         }
1651         case BUILTIN_EXPECT: {
1652                 expression_t *argument = call->arguments->expression;
1653                 return _expression_to_firm(argument);
1654         }
1655         case BUILTIN_VA_END:
1656                 /* evaluate the argument of va_end for its side effects */
1657                 _expression_to_firm(call->arguments->expression);
1658                 return NULL;
1659         case BUILTIN_OBJECT_SIZE: {
1660                 /* determine value of "type" */
1661                 expression_t *type_expression = call->arguments->next->expression;
1662                 long          type_val        = fold_constant_to_int(type_expression);
1663                 type_t       *type            = function_type->function.return_type;
1664                 ir_mode      *mode            = get_ir_mode_arithmetic(type);
1665                 /* just produce a "I don't know" result */
1666                 ir_tarval    *result          = type_val & 2 ? get_mode_null(mode) :
1667                                                 get_mode_minus_one(mode);
1668
1669                 return new_d_Const(dbgi, result);
1670         }
1671         case BUILTIN_ROTL: {
1672                 ir_node *val  = expression_to_firm(call->arguments->expression);
1673                 ir_node *shf  = expression_to_firm(call->arguments->next->expression);
1674                 ir_mode *mode = get_irn_mode(val);
1675                 ir_mode *mode_uint = atomic_modes[ATOMIC_TYPE_UINT];
1676                 return new_d_Rotl(dbgi, val, create_conv(dbgi, shf, mode_uint), mode);
1677         }
1678         case BUILTIN_ROTR: {
1679                 ir_node *val  = expression_to_firm(call->arguments->expression);
1680                 ir_node *shf  = expression_to_firm(call->arguments->next->expression);
1681                 ir_mode *mode = get_irn_mode(val);
1682                 ir_mode *mode_uint = atomic_modes[ATOMIC_TYPE_UINT];
1683                 ir_node *c    = new_Const_long(mode_uint, get_mode_size_bits(mode));
1684                 ir_node *sub  = new_d_Sub(dbgi, c, create_conv(dbgi, shf, mode_uint), mode_uint);
1685                 return new_d_Rotl(dbgi, val, sub, mode);
1686         }
1687         case BUILTIN_FIRM:
1688                 break;
1689         case BUILTIN_LIBC:
1690         case BUILTIN_LIBC_CHECK:
1691                 panic("builtin did not produce an entity");
1692         }
1693         panic("invalid builtin");
1694 }
1695
1696 /**
1697  * Transform a call expression.
1698  * Handles some special cases, like alloca() calls, which must be resolved
1699  * BEFORE the inlines runs. Inlining routines calling alloca() is dangerous,
1700  * 176.gcc for instance might allocate 2GB instead of 256 MB if alloca is not
1701  * handled right...
1702  */
1703 static ir_node *call_expression_to_firm(const call_expression_t *const call)
1704 {
1705         dbg_info *const dbgi = get_dbg_info(&call->base.pos);
1706         assert(currently_reachable());
1707
1708         expression_t   *function = call->function;
1709         ir_node        *callee   = NULL;
1710         bool            firm_builtin = false;
1711         ir_builtin_kind firm_builtin_kind = ir_bk_trap;
1712         if (function->kind == EXPR_REFERENCE) {
1713                 const reference_expression_t *ref    = &function->reference;
1714                 entity_t                     *entity = ref->entity;
1715
1716                 if (entity->kind == ENTITY_FUNCTION) {
1717                         builtin_kind_t builtin = entity->function.btk;
1718                         if (builtin == BUILTIN_FIRM) {
1719                                 firm_builtin = true;
1720                                 firm_builtin_kind = entity->function.b.firm_builtin_kind;
1721                         } else if (builtin != BUILTIN_NONE && builtin != BUILTIN_LIBC
1722                                    && builtin != BUILTIN_LIBC_CHECK) {
1723                                 return process_builtin_call(call);
1724                         }
1725                 }
1726         }
1727         if (!firm_builtin)
1728                 callee = expression_to_firm(function);
1729
1730         type_t *type = skip_typeref(function->base.type);
1731         assert(is_type_pointer(type));
1732         pointer_type_t *pointer_type = &type->pointer;
1733         type_t         *points_to    = skip_typeref(pointer_type->points_to);
1734         assert(is_type_function(points_to));
1735         function_type_t *function_type = &points_to->function;
1736
1737         int      n_parameters    = 0;
1738         ir_type *ir_method_type  = get_ir_type((type_t*) function_type);
1739         ir_type *new_method_type = NULL;
1740         if (function_type->variadic || function_type->unspecified_parameters) {
1741                 const call_argument_t *argument = call->arguments;
1742                 for ( ; argument != NULL; argument = argument->next) {
1743                         ++n_parameters;
1744                 }
1745
1746                 /* we need to construct a new method type matching the call
1747                  * arguments... */
1748                 type_dbg_info *tdbgi = get_type_dbg_info_((const type_t*) function_type);
1749                 int n_res       = get_method_n_ress(ir_method_type);
1750                 new_method_type = new_d_type_method(n_parameters, n_res, tdbgi);
1751                 set_method_calling_convention(new_method_type,
1752                                get_method_calling_convention(ir_method_type));
1753                 set_method_additional_properties(new_method_type,
1754                                get_method_additional_properties(ir_method_type));
1755                 set_method_variadicity(new_method_type,
1756                                        get_method_variadicity(ir_method_type));
1757
1758                 for (int i = 0; i < n_res; ++i) {
1759                         set_method_res_type(new_method_type, i,
1760                                             get_method_res_type(ir_method_type, i));
1761                 }
1762                 argument = call->arguments;
1763                 for (int i = 0; i < n_parameters; ++i, argument = argument->next) {
1764                         expression_t *expression = argument->expression;
1765                         ir_type      *irtype     = get_ir_type(expression->base.type);
1766                         set_method_param_type(new_method_type, i, irtype);
1767                 }
1768                 ir_method_type = new_method_type;
1769         } else {
1770                 n_parameters = get_method_n_params(ir_method_type);
1771         }
1772
1773         ir_node *in[n_parameters];
1774
1775         const call_argument_t *argument = call->arguments;
1776         for (int n = 0; n < n_parameters; ++n) {
1777                 expression_t *expression = argument->expression;
1778                 ir_node      *arg_node   = expression_to_firm(expression);
1779                 type_t       *arg_type   = skip_typeref(expression->base.type);
1780                 in[n] = conv_to_storage_type(dbgi, arg_node, arg_type);
1781
1782                 argument = argument->next;
1783         }
1784
1785         ir_node *store;
1786         if (function_type->modifiers & DM_CONST) {
1787                 store = get_irg_no_mem(current_ir_graph);
1788         } else {
1789                 store = get_store();
1790         }
1791
1792         ir_node *node;
1793         type_t  *return_type = skip_typeref(function_type->return_type);
1794         ir_node *result      = NULL;
1795         if (firm_builtin) {
1796                 node = new_d_Builtin(dbgi, store, n_parameters, in, firm_builtin_kind,
1797                                      ir_method_type);
1798                 if (! (function_type->modifiers & DM_CONST)) {
1799                         ir_node *mem = new_Proj(node, mode_M, pn_Builtin_M);
1800                         set_store(mem);
1801                 }
1802
1803                 if (!is_type_void(return_type)) {
1804                         assert(is_type_scalar(return_type));
1805                         ir_mode *mode = get_ir_mode_storage(return_type);
1806                         result = new_Proj(node, mode, pn_Builtin_max+1);
1807                         ir_mode *mode_arith = get_ir_mode_arithmetic(return_type);
1808                         result              = create_conv(NULL, result, mode_arith);
1809                 }
1810         } else {
1811                 node = new_d_Call(dbgi, store, callee, n_parameters, in, ir_method_type);
1812                 if (! (function_type->modifiers & DM_CONST)) {
1813                         ir_node *mem = new_Proj(node, mode_M, pn_Call_M);
1814                         set_store(mem);
1815                 }
1816
1817                 if (!is_type_void(return_type)) {
1818                         ir_node *const resproj    = new_Proj(node, mode_T, pn_Call_T_result);
1819                         ir_mode *const mode       = get_ir_mode_storage(return_type);
1820                         result                    = new_Proj(resproj, mode, 0);
1821                         ir_mode *const mode_arith = get_ir_mode_arithmetic(return_type);
1822                         result                    = create_conv(NULL, result, mode_arith);
1823                 }
1824         }
1825
1826         if (function_type->modifiers & DM_NORETURN) {
1827                 /* A dead end:  Keep the Call and the Block.  Also place all further
1828                  * nodes into a new and unreachable block. */
1829                 keep_alive(node);
1830                 keep_alive(get_cur_block());
1831                 ir_node *block = new_Block(0, NULL);
1832                 set_cur_block(block);
1833         }
1834
1835         return result;
1836 }
1837
1838 static ir_node *statement_to_firm(statement_t *statement);
1839 static ir_node *compound_statement_to_firm(compound_statement_t *compound);
1840
1841 static ir_node *expression_to_addr(const expression_t *expression);
1842 static ir_node *create_condition_evaluation(expression_t const *expression, jump_target *true_target, jump_target *false_target);
1843
1844 static void assign_value(dbg_info *dbgi, ir_node *addr, type_t *type,
1845                          ir_node *value)
1846 {
1847         value = conv_to_storage_type(dbgi, value, type);
1848
1849         ir_node *memory = get_store();
1850
1851         if (is_type_scalar(type)) {
1852                 ir_cons_flags flags = type->base.qualifiers & TYPE_QUALIFIER_VOLATILE
1853                                       ? cons_volatile : cons_none;
1854                 ir_node  *store     = new_d_Store(dbgi, memory, addr, value, flags);
1855                 ir_node  *store_mem = new_d_Proj(dbgi, store, mode_M, pn_Store_M);
1856                 set_store(store_mem);
1857         } else {
1858                 ir_type *irtype    = get_ir_type(type);
1859                 ir_node *copyb     = new_d_CopyB(dbgi, memory, addr, value, irtype);
1860                 ir_node *copyb_mem = new_Proj(copyb, mode_M, pn_CopyB_M);
1861                 set_store(copyb_mem);
1862         }
1863 }
1864
1865 static ir_tarval *create_bitfield_mask(ir_mode *mode, int offset, int size)
1866 {
1867         ir_tarval *all_one   = get_mode_all_one(mode);
1868         int        mode_size = get_mode_size_bits(mode);
1869         ir_mode   *mode_uint = atomic_modes[ATOMIC_TYPE_UINT];
1870
1871         assert(offset >= 0);
1872         assert(size   >= 0);
1873         assert(offset + size <= mode_size);
1874         if (size == mode_size) {
1875                 return all_one;
1876         }
1877
1878         long       shiftr    = get_mode_size_bits(mode) - size;
1879         long       shiftl    = offset;
1880         ir_tarval *tv_shiftr = new_tarval_from_long(shiftr, mode_uint);
1881         ir_tarval *tv_shiftl = new_tarval_from_long(shiftl, mode_uint);
1882         ir_tarval *mask0     = tarval_shr(all_one, tv_shiftr);
1883         ir_tarval *mask1     = tarval_shl(mask0, tv_shiftl);
1884
1885         return mask1;
1886 }
1887
1888 static ir_node *bitfield_store_to_firm(dbg_info *dbgi,
1889                 ir_entity *entity, ir_node *addr, ir_node *value, bool set_volatile,
1890                 bool need_return)
1891 {
1892         ir_type *entity_type = get_entity_type(entity);
1893         ir_type *base_type   = get_primitive_base_type(entity_type);
1894         ir_mode *mode        = get_type_mode(base_type);
1895         ir_mode *mode_uint   = atomic_modes[ATOMIC_TYPE_UINT];
1896
1897         value = create_conv(dbgi, value, mode);
1898
1899         /* kill upper bits of value and shift to right position */
1900         unsigned  bitoffset  = get_entity_offset_bits_remainder(entity);
1901         unsigned  bitsize    = get_mode_size_bits(get_type_mode(entity_type));
1902         unsigned  base_bits  = get_mode_size_bits(mode);
1903         unsigned  shiftwidth = base_bits - bitsize;
1904
1905         ir_node  *shiftcount = new_Const_long(mode_uint, shiftwidth);
1906         ir_node  *shiftl     = new_d_Shl(dbgi, value, shiftcount, mode);
1907
1908         unsigned  shrwidth   = base_bits - bitsize - bitoffset;
1909         ir_node  *shrconst   = new_Const_long(mode_uint, shrwidth);
1910         ir_node  *shiftr     = new_d_Shr(dbgi, shiftl, shrconst, mode);
1911
1912         /* load current value */
1913         ir_node   *mem             = get_store();
1914         ir_node   *load            = new_d_Load(dbgi, mem, addr, mode,
1915                                           set_volatile ? cons_volatile : cons_none);
1916         ir_node   *load_mem        = new_d_Proj(dbgi, load, mode_M, pn_Load_M);
1917         ir_node   *load_res        = new_d_Proj(dbgi, load, mode, pn_Load_res);
1918         ir_tarval *shift_mask      = create_bitfield_mask(mode, bitoffset, bitsize);
1919         ir_tarval *inv_mask        = tarval_not(shift_mask);
1920         ir_node   *inv_mask_node   = new_d_Const(dbgi, inv_mask);
1921         ir_node   *load_res_masked = new_d_And(dbgi, load_res, inv_mask_node, mode);
1922
1923         /* construct new value and store */
1924         ir_node *new_val   = new_d_Or(dbgi, load_res_masked, shiftr, mode);
1925         ir_node *store     = new_d_Store(dbgi, load_mem, addr, new_val,
1926                                          set_volatile ? cons_volatile : cons_none);
1927         ir_node *store_mem = new_d_Proj(dbgi, store, mode_M, pn_Store_M);
1928         set_store(store_mem);
1929
1930         if (!need_return)
1931                 return NULL;
1932
1933         ir_node *res_shr;
1934         ir_node *count_res_shr = new_Const_long(mode_uint, base_bits - bitsize);
1935         if (mode_is_signed(mode)) {
1936                 res_shr = new_d_Shrs(dbgi, shiftl, count_res_shr, mode);
1937         } else {
1938                 res_shr = new_d_Shr(dbgi, shiftl, count_res_shr, mode);
1939         }
1940         return res_shr;
1941 }
1942
1943 static ir_node *bitfield_extract_to_firm(const select_expression_t *expression,
1944                                          ir_node *addr)
1945 {
1946         dbg_info *dbgi      = get_dbg_info(&expression->base.pos);
1947         entity_t *entity    = expression->compound_entry;
1948         type_t   *base_type = entity->declaration.type;
1949         ir_mode  *mode      = get_ir_mode_storage(base_type);
1950         ir_node  *mem       = get_store();
1951         ir_node  *load      = new_d_Load(dbgi, mem, addr, mode, cons_none);
1952         ir_node  *load_mem  = new_d_Proj(dbgi, load, mode_M, pn_Load_M);
1953         ir_node  *load_res  = new_d_Proj(dbgi, load, mode, pn_Load_res);
1954         ir_mode  *mode_uint = atomic_modes[ATOMIC_TYPE_UINT];
1955
1956         ir_mode  *amode     = mode;
1957         /* optimisation, since shifting in modes < machine_size is usually
1958          * less efficient */
1959         if (get_mode_size_bits(amode) < get_mode_size_bits(mode_uint)) {
1960                 amode = mode_uint;
1961         }
1962         unsigned amode_size = get_mode_size_bits(amode);
1963         load_res = create_conv(dbgi, load_res, amode);
1964
1965         set_store(load_mem);
1966
1967         /* kill upper bits */
1968         assert(expression->compound_entry->kind == ENTITY_COMPOUND_MEMBER);
1969         unsigned   bitoffset   = entity->compound_member.bit_offset;
1970         unsigned   bitsize     = entity->compound_member.bit_size;
1971         unsigned   shift_bitsl = amode_size - bitoffset - bitsize;
1972         ir_tarval *tvl         = new_tarval_from_long((long)shift_bitsl, mode_uint);
1973         ir_node   *countl      = new_d_Const(dbgi, tvl);
1974         ir_node   *shiftl      = new_d_Shl(dbgi, load_res, countl, amode);
1975
1976         unsigned   shift_bitsr = bitoffset + shift_bitsl;
1977         assert(shift_bitsr <= amode_size);
1978         ir_tarval *tvr         = new_tarval_from_long((long)shift_bitsr, mode_uint);
1979         ir_node   *countr      = new_d_Const(dbgi, tvr);
1980         ir_node   *shiftr;
1981         if (mode_is_signed(mode)) {
1982                 shiftr = new_d_Shrs(dbgi, shiftl, countr, amode);
1983         } else {
1984                 shiftr = new_d_Shr(dbgi, shiftl, countr, amode);
1985         }
1986
1987         type_t  *type    = expression->base.type;
1988         ir_mode *resmode = get_ir_mode_arithmetic(type);
1989         return create_conv(dbgi, shiftr, resmode);
1990 }
1991
1992 /* make sure the selected compound type is constructed */
1993 static void construct_select_compound(const select_expression_t *expression)
1994 {
1995         type_t *type = skip_typeref(expression->compound->base.type);
1996         if (is_type_pointer(type)) {
1997                 type = type->pointer.points_to;
1998         }
1999         (void) get_ir_type(type);
2000 }
2001
2002 static ir_node *set_value_for_expression_addr(const expression_t *expression,
2003                                               ir_node *value, ir_node *addr)
2004 {
2005         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
2006         type_t   *type = skip_typeref(expression->base.type);
2007         value = conv_to_storage_type(dbgi, value, type);
2008
2009         if (expression->kind == EXPR_REFERENCE) {
2010                 const reference_expression_t *ref = &expression->reference;
2011
2012                 entity_t *entity = ref->entity;
2013                 assert(is_declaration(entity));
2014                 assert(entity->declaration.kind != DECLARATION_KIND_UNKNOWN);
2015                 if (entity->declaration.kind == DECLARATION_KIND_LOCAL_VARIABLE ||
2016                     entity->declaration.kind == DECLARATION_KIND_PARAMETER) {
2017                         set_value(entity->variable.v.value_number, value);
2018                         return value;
2019                 }
2020         }
2021
2022         if (addr == NULL)
2023                 addr = expression_to_addr(expression);
2024         assert(addr != NULL);
2025
2026         if (expression->kind == EXPR_SELECT) {
2027                 const select_expression_t *select = &expression->select;
2028
2029                 construct_select_compound(select);
2030
2031                 entity_t *entity = select->compound_entry;
2032                 assert(entity->kind == ENTITY_COMPOUND_MEMBER);
2033                 if (entity->compound_member.bitfield) {
2034                         ir_entity *irentity = entity->compound_member.entity;
2035                         bool       set_volatile
2036                                 = select->base.type->base.qualifiers & TYPE_QUALIFIER_VOLATILE;
2037                         value = bitfield_store_to_firm(dbgi, irentity, addr, value,
2038                                                        set_volatile, true);
2039                         return value;
2040                 }
2041         }
2042
2043         assign_value(dbgi, addr, type, value);
2044         return value;
2045 }
2046
2047 static ir_node *get_value_from_lvalue(const expression_t *expression,
2048                                       ir_node *addr)
2049 {
2050         if (expression->kind == EXPR_REFERENCE) {
2051                 const reference_expression_t *ref = &expression->reference;
2052
2053                 entity_t *entity = ref->entity;
2054                 assert(entity->kind == ENTITY_VARIABLE
2055                                 || entity->kind == ENTITY_PARAMETER);
2056                 assert(entity->declaration.kind != DECLARATION_KIND_UNKNOWN);
2057                 int value_number;
2058                 if (entity->declaration.kind == DECLARATION_KIND_LOCAL_VARIABLE ||
2059                     entity->declaration.kind == DECLARATION_KIND_PARAMETER) {
2060                         value_number = entity->variable.v.value_number;
2061                         assert(addr == NULL);
2062                         type_t  *type = skip_typeref(expression->base.type);
2063                         ir_mode *mode = get_ir_mode_storage(type);
2064                         ir_node *res  = get_value(value_number, mode);
2065                         return create_conv(NULL, res, get_ir_mode_arithmetic(type));
2066                 }
2067         }
2068
2069         assert(addr != NULL);
2070         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
2071
2072         ir_node *value;
2073         if (expression->kind == EXPR_SELECT &&
2074             expression->select.compound_entry->compound_member.bitfield) {
2075             construct_select_compound(&expression->select);
2076                 value = bitfield_extract_to_firm(&expression->select, addr);
2077         } else {
2078                 value = deref_address(dbgi, expression->base.type, addr);
2079         }
2080
2081         return value;
2082 }
2083
2084 static ir_node *create_incdec(unary_expression_t const *const expr, bool const inc, bool const pre)
2085 {
2086         type_t  *const type = skip_typeref(expr->base.type);
2087         ir_mode *const mode = get_ir_mode_arithmetic(type);
2088
2089         ir_node *offset;
2090         if (is_type_pointer(type)) {
2091                 offset = get_type_size_node(type->pointer.points_to);
2092         } else {
2093                 assert(is_type_arithmetic(type));
2094                 offset = new_Const(get_mode_one(mode));
2095         }
2096
2097         dbg_info           *const dbgi       = get_dbg_info(&expr->base.pos);
2098         expression_t const *const value_expr = expr->value;
2099         ir_node            *const addr       = expression_to_addr(value_expr);
2100         ir_node            *const value      = get_value_from_lvalue(value_expr, addr);
2101         ir_node            *const new_value  = inc
2102                 ? new_d_Add(dbgi, value, offset, mode)
2103                 : new_d_Sub(dbgi, value, offset, mode);
2104
2105         ir_node *const store_value = set_value_for_expression_addr(value_expr, new_value, addr);
2106         return pre ? store_value : value;
2107 }
2108
2109 static bool is_local_variable(expression_t *expression)
2110 {
2111         if (expression->kind != EXPR_REFERENCE)
2112                 return false;
2113         reference_expression_t *ref_expr = &expression->reference;
2114         entity_t               *entity   = ref_expr->entity;
2115         if (entity->kind != ENTITY_VARIABLE)
2116                 return false;
2117         assert(entity->declaration.kind != DECLARATION_KIND_UNKNOWN);
2118         return entity->declaration.kind == DECLARATION_KIND_LOCAL_VARIABLE;
2119 }
2120
2121 static ir_relation get_relation(const expression_kind_t kind)
2122 {
2123         switch(kind) {
2124         case EXPR_BINARY_EQUAL:         return ir_relation_equal;
2125         case EXPR_BINARY_ISLESSGREATER: return ir_relation_less_greater;
2126         case EXPR_BINARY_NOTEQUAL:      return ir_relation_unordered_less_greater;
2127         case EXPR_BINARY_ISLESS:
2128         case EXPR_BINARY_LESS:          return ir_relation_less;
2129         case EXPR_BINARY_ISLESSEQUAL:
2130         case EXPR_BINARY_LESSEQUAL:     return ir_relation_less_equal;
2131         case EXPR_BINARY_ISGREATER:
2132         case EXPR_BINARY_GREATER:       return ir_relation_greater;
2133         case EXPR_BINARY_ISGREATEREQUAL:
2134         case EXPR_BINARY_GREATEREQUAL:  return ir_relation_greater_equal;
2135         case EXPR_BINARY_ISUNORDERED:   return ir_relation_unordered;
2136
2137         default:
2138                 break;
2139         }
2140         panic("trying to get ir_relation from non-comparison binexpr type");
2141 }
2142
2143 /**
2144  * Handle the assume optimizer hint: check if a Confirm
2145  * node can be created.
2146  *
2147  * @param dbi    debug info
2148  * @param expr   the IL assume expression
2149  *
2150  * we support here only some simple cases:
2151  *  - var rel const
2152  *  - const rel val
2153  *  - var rel var
2154  */
2155 static ir_node *handle_assume_compare(dbg_info *dbi,
2156                                       const binary_expression_t *expression)
2157 {
2158         expression_t *op1 = expression->left;
2159         expression_t *op2 = expression->right;
2160         entity_t     *var2, *var = NULL;
2161         ir_node      *res      = NULL;
2162         ir_relation   relation = get_relation(expression->base.kind);
2163
2164         if (is_local_variable(op1) && is_local_variable(op2)) {
2165                 var  = op1->reference.entity;
2166             var2 = op2->reference.entity;
2167
2168                 type_t  *const type = skip_typeref(var->declaration.type);
2169                 ir_mode *const mode = get_ir_mode_storage(type);
2170
2171                 ir_node *const irn1 = get_value(var->variable.v.value_number, mode);
2172                 ir_node *const irn2 = get_value(var2->variable.v.value_number, mode);
2173
2174                 res = new_d_Confirm(dbi, irn2, irn1, get_inversed_relation(relation));
2175                 set_value(var2->variable.v.value_number, res);
2176
2177                 res = new_d_Confirm(dbi, irn1, irn2, relation);
2178                 set_value(var->variable.v.value_number, res);
2179
2180                 return res;
2181         }
2182
2183         expression_t *con = NULL;
2184         if (is_local_variable(op1) && is_constant_expression(op2) == EXPR_CLASS_CONSTANT) {
2185                 var = op1->reference.entity;
2186                 con = op2;
2187         } else if (is_constant_expression(op1) == EXPR_CLASS_CONSTANT && is_local_variable(op2)) {
2188                 relation = get_inversed_relation(relation);
2189                 var = op2->reference.entity;
2190                 con = op1;
2191         }
2192
2193         if (var != NULL) {
2194                 type_t  *const type = skip_typeref(var->declaration.type);
2195                 ir_mode *const mode = get_ir_mode_storage(type);
2196
2197                 res = get_value(var->variable.v.value_number, mode);
2198                 res = new_d_Confirm(dbi, res, expression_to_firm(con), relation);
2199                 set_value(var->variable.v.value_number, res);
2200         }
2201         return res;
2202 }
2203
2204 /**
2205  * Handle the assume optimizer hint.
2206  *
2207  * @param dbi    debug info
2208  * @param expr   the IL assume expression
2209  */
2210 static ir_node *handle_assume(dbg_info *dbi, const expression_t *expression)
2211 {
2212         switch(expression->kind) {
2213         case EXPR_BINARY_EQUAL:
2214         case EXPR_BINARY_NOTEQUAL:
2215         case EXPR_BINARY_LESS:
2216         case EXPR_BINARY_LESSEQUAL:
2217         case EXPR_BINARY_GREATER:
2218         case EXPR_BINARY_GREATEREQUAL:
2219                 return handle_assume_compare(dbi, &expression->binary);
2220         default:
2221                 return NULL;
2222         }
2223 }
2224
2225 static ir_node *create_cast(dbg_info *dbgi, ir_node *value_node,
2226                             type_t *from_type, type_t *type)
2227 {
2228         type = skip_typeref(type);
2229         if (is_type_void(type)) {
2230                 /* make sure firm type is constructed */
2231                 (void) get_ir_type(type);
2232                 return NULL;
2233         }
2234         if (!is_type_scalar(type)) {
2235                 /* make sure firm type is constructed */
2236                 (void) get_ir_type(type);
2237                 return value_node;
2238         }
2239
2240         from_type     = skip_typeref(from_type);
2241         ir_mode *mode = get_ir_mode_storage(type);
2242         /* check for conversion from / to __based types */
2243         if (is_type_pointer(type) && is_type_pointer(from_type)) {
2244                 const variable_t *from_var = from_type->pointer.base_variable;
2245                 const variable_t *to_var   = type->pointer.base_variable;
2246                 if (from_var != to_var) {
2247                         if (from_var != NULL) {
2248                                 ir_node *const addr = create_symconst(dbgi, from_var->v.entity);
2249                                 ir_node *const base = deref_address(dbgi, from_var->base.type, addr);
2250                                 value_node = new_d_Add(dbgi, value_node, base, mode);
2251                         }
2252                         if (to_var != NULL) {
2253                                 ir_node *const addr = create_symconst(dbgi, to_var->v.entity);
2254                                 ir_node *const base = deref_address(dbgi, to_var->base.type, addr);
2255                                 value_node = new_d_Sub(dbgi, value_node, base, mode);
2256                         }
2257                 }
2258         }
2259
2260         if (is_type_atomic(type, ATOMIC_TYPE_BOOL)) {
2261                 /* bool adjustments (we save a mode_Bu, but have to temporarily
2262                  * convert to mode_b so we only get a 0/1 value */
2263                 value_node = create_conv(dbgi, value_node, mode_b);
2264         }
2265
2266         ir_mode *mode_arith = get_ir_mode_arithmetic(type);
2267         ir_node *node       = create_conv(dbgi, value_node, mode);
2268         node                = create_conv(dbgi, node, mode_arith);
2269
2270         return node;
2271 }
2272
2273 static ir_node *unary_expression_to_firm(const unary_expression_t *expression)
2274 {
2275         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
2276         type_t   *type = skip_typeref(expression->base.type);
2277
2278         const expression_t *value = expression->value;
2279
2280         switch(expression->base.kind) {
2281         case EXPR_UNARY_TAKE_ADDRESS:
2282                 return expression_to_addr(value);
2283
2284         case EXPR_UNARY_NEGATE: {
2285                 ir_node *value_node = expression_to_firm(value);
2286                 ir_mode *mode       = get_ir_mode_arithmetic(type);
2287                 return new_d_Minus(dbgi, value_node, mode);
2288         }
2289         case EXPR_UNARY_PLUS:
2290                 return expression_to_firm(value);
2291         case EXPR_UNARY_BITWISE_NEGATE: {
2292                 ir_node *value_node = expression_to_firm(value);
2293                 ir_mode *mode       = get_ir_mode_arithmetic(type);
2294                 return new_d_Not(dbgi, value_node, mode);
2295         }
2296         case EXPR_UNARY_NOT: {
2297                 ir_node *value_node = _expression_to_firm(value);
2298                 value_node          = create_conv(dbgi, value_node, mode_b);
2299                 ir_node *res        = new_d_Not(dbgi, value_node, mode_b);
2300                 return res;
2301         }
2302         case EXPR_UNARY_DEREFERENCE: {
2303                 ir_node *value_node = expression_to_firm(value);
2304                 type_t  *value_type = skip_typeref(value->base.type);
2305                 assert(is_type_pointer(value_type));
2306
2307                 /* check for __based */
2308                 const variable_t *const base_var = value_type->pointer.base_variable;
2309                 if (base_var != NULL) {
2310                         ir_node *const addr = create_symconst(dbgi, base_var->v.entity);
2311                         ir_node *const base = deref_address(dbgi, base_var->base.type, addr);
2312                         value_node = new_d_Add(dbgi, value_node, base, get_ir_mode_storage(value_type));
2313                 }
2314                 type_t  *points_to  = value_type->pointer.points_to;
2315                 return deref_address(dbgi, points_to, value_node);
2316         }
2317
2318         {
2319                 bool inc;
2320                 bool pre;
2321         case EXPR_UNARY_POSTFIX_DECREMENT: inc = false; pre = false; goto incdec;
2322         case EXPR_UNARY_POSTFIX_INCREMENT: inc = true;  pre = false; goto incdec;
2323         case EXPR_UNARY_PREFIX_DECREMENT:  inc = false; pre = true;  goto incdec;
2324         case EXPR_UNARY_PREFIX_INCREMENT:  inc = true;  pre = true;  goto incdec;
2325 incdec:
2326                 return create_incdec(expression, inc, pre);
2327         }
2328
2329         case EXPR_UNARY_CAST: {
2330                 ir_node *value_node = expression_to_firm(value);
2331                 type_t  *from_type  = value->base.type;
2332                 return create_cast(dbgi, value_node, from_type, type);
2333         }
2334         case EXPR_UNARY_ASSUME:
2335                 return handle_assume(dbgi, value);
2336
2337         default:
2338                 break;
2339         }
2340         panic("invalid unary expression type");
2341 }
2342
2343 /**
2344  * produces a 0/1 depending of the value of a mode_b node
2345  */
2346 static ir_node *produce_condition_result(const expression_t *expression,
2347                                          ir_mode *mode, dbg_info *dbgi)
2348 {
2349         jump_target true_target;
2350         jump_target false_target;
2351         init_jump_target(&true_target,  NULL);
2352         init_jump_target(&false_target, NULL);
2353         create_condition_evaluation(expression, &true_target, &false_target);
2354
2355         ir_node    *val = NULL;
2356         jump_target exit_target;
2357         init_jump_target(&exit_target, NULL);
2358
2359         if (enter_jump_target(&true_target)) {
2360                 val = new_Const(get_mode_one(mode));
2361                 jump_to_target(&exit_target);
2362         }
2363
2364         if (enter_jump_target(&false_target)) {
2365                 ir_node *const zero = new_Const(get_mode_null(mode));
2366                 jump_to_target(&exit_target);
2367                 if (val) {
2368                         ir_node *const in[] = { val, zero };
2369                         val = new_rd_Phi(dbgi, exit_target.block, lengthof(in), in, mode);
2370                 } else {
2371                         val = zero;
2372                 }
2373         }
2374
2375         if (!enter_jump_target(&exit_target)) {
2376                 set_cur_block(new_Block(0, NULL));
2377                 val = new_Unknown(mode);
2378         }
2379         return val;
2380 }
2381
2382 static ir_node *adjust_for_pointer_arithmetic(dbg_info *dbgi,
2383                 ir_node *value, type_t *type)
2384 {
2385         ir_mode        *const mode         = get_ir_mode_arithmetic(type_ptrdiff_t);
2386         assert(is_type_pointer(type));
2387         pointer_type_t *const pointer_type = &type->pointer;
2388         type_t         *const points_to    = skip_typeref(pointer_type->points_to);
2389         ir_node        *      elem_size    = get_type_size_node(points_to);
2390         elem_size                          = create_conv(dbgi, elem_size, mode);
2391         value                              = create_conv(dbgi, value,     mode);
2392         ir_node        *const mul          = new_d_Mul(dbgi, value, elem_size, mode);
2393         return mul;
2394 }
2395
2396 static ir_node *create_op(dbg_info *dbgi, const binary_expression_t *expression,
2397                           ir_node *left, ir_node *right)
2398 {
2399         ir_mode  *mode;
2400         type_t   *type_left  = skip_typeref(expression->left->base.type);
2401         type_t   *type_right = skip_typeref(expression->right->base.type);
2402
2403         expression_kind_t kind = expression->base.kind;
2404
2405         switch (kind) {
2406         case EXPR_BINARY_SHIFTLEFT:
2407         case EXPR_BINARY_SHIFTRIGHT:
2408         case EXPR_BINARY_SHIFTLEFT_ASSIGN:
2409         case EXPR_BINARY_SHIFTRIGHT_ASSIGN:
2410                 mode  = get_ir_mode_arithmetic(expression->base.type);
2411                 right = create_conv(dbgi, right, atomic_modes[ATOMIC_TYPE_UINT]);
2412                 break;
2413
2414         case EXPR_BINARY_SUB:
2415                 if (is_type_pointer(type_left) && is_type_pointer(type_right)) {
2416                         const pointer_type_t *const ptr_type = &type_left->pointer;
2417
2418                         mode = get_ir_mode_arithmetic(expression->base.type);
2419                         ir_node *const elem_size = get_type_size_node(ptr_type->points_to);
2420                         ir_node *const conv_size = new_d_Conv(dbgi, elem_size, mode);
2421                         ir_node *const sub       = new_d_Sub(dbgi, left, right, mode);
2422                         ir_node *const no_mem    = new_NoMem();
2423                         ir_node *const div       = new_d_DivRL(dbgi, no_mem, sub, conv_size,
2424                                                                                                    mode, op_pin_state_floats);
2425                         return new_d_Proj(dbgi, div, mode, pn_Div_res);
2426                 }
2427                 /* fallthrough */
2428         case EXPR_BINARY_SUB_ASSIGN:
2429                 if (is_type_pointer(type_left)) {
2430                         right = adjust_for_pointer_arithmetic(dbgi, right, type_left);
2431                         mode  = get_ir_mode_arithmetic(type_left);
2432                         break;
2433                 }
2434                 goto normal_node;
2435
2436         case EXPR_BINARY_ADD:
2437         case EXPR_BINARY_ADD_ASSIGN:
2438                 if (is_type_pointer(type_left)) {
2439                         right = adjust_for_pointer_arithmetic(dbgi, right, type_left);
2440                         mode  = get_ir_mode_arithmetic(type_left);
2441                         break;
2442                 } else if (is_type_pointer(type_right)) {
2443                         left  = adjust_for_pointer_arithmetic(dbgi, left, type_right);
2444                         mode  = get_ir_mode_arithmetic(type_right);
2445                         break;
2446                 }
2447                 goto normal_node;
2448
2449         default:
2450 normal_node:
2451                 mode = get_ir_mode_arithmetic(type_right);
2452                 left = create_conv(dbgi, left, mode);
2453                 break;
2454         }
2455
2456         switch (kind) {
2457         case EXPR_BINARY_ADD_ASSIGN:
2458         case EXPR_BINARY_ADD:
2459                 return new_d_Add(dbgi, left, right, mode);
2460         case EXPR_BINARY_SUB_ASSIGN:
2461         case EXPR_BINARY_SUB:
2462                 return new_d_Sub(dbgi, left, right, mode);
2463         case EXPR_BINARY_MUL_ASSIGN:
2464         case EXPR_BINARY_MUL:
2465                 return new_d_Mul(dbgi, left, right, mode);
2466         case EXPR_BINARY_BITWISE_AND:
2467         case EXPR_BINARY_BITWISE_AND_ASSIGN:
2468                 return new_d_And(dbgi, left, right, mode);
2469         case EXPR_BINARY_BITWISE_OR:
2470         case EXPR_BINARY_BITWISE_OR_ASSIGN:
2471                 return new_d_Or(dbgi, left, right, mode);
2472         case EXPR_BINARY_BITWISE_XOR:
2473         case EXPR_BINARY_BITWISE_XOR_ASSIGN:
2474                 return new_d_Eor(dbgi, left, right, mode);
2475         case EXPR_BINARY_SHIFTLEFT:
2476         case EXPR_BINARY_SHIFTLEFT_ASSIGN:
2477                 return new_d_Shl(dbgi, left, right, mode);
2478         case EXPR_BINARY_SHIFTRIGHT:
2479         case EXPR_BINARY_SHIFTRIGHT_ASSIGN:
2480                 if (mode_is_signed(mode)) {
2481                         return new_d_Shrs(dbgi, left, right, mode);
2482                 } else {
2483                         return new_d_Shr(dbgi, left, right, mode);
2484                 }
2485         case EXPR_BINARY_DIV:
2486         case EXPR_BINARY_DIV_ASSIGN: {
2487                 ir_node *pin = new_Pin(new_NoMem());
2488                 ir_node *op  = new_d_Div(dbgi, pin, left, right, mode,
2489                                          op_pin_state_floats);
2490                 ir_node *res = new_d_Proj(dbgi, op, mode, pn_Div_res);
2491                 return res;
2492         }
2493         case EXPR_BINARY_MOD:
2494         case EXPR_BINARY_MOD_ASSIGN: {
2495                 ir_node *pin = new_Pin(new_NoMem());
2496                 ir_node *op  = new_d_Mod(dbgi, pin, left, right, mode,
2497                                          op_pin_state_floats);
2498                 ir_node *res = new_d_Proj(dbgi, op, mode, pn_Mod_res);
2499                 return res;
2500         }
2501         default:
2502                 panic("unexpected expression kind");
2503         }
2504 }
2505
2506 static ir_node *create_lazy_op(const binary_expression_t *expression)
2507 {
2508         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
2509         type_t   *type = skip_typeref(expression->base.type);
2510         ir_mode  *mode = get_ir_mode_arithmetic(type);
2511
2512         if (is_constant_expression(expression->left) == EXPR_CLASS_CONSTANT) {
2513                 bool val = fold_constant_to_bool(expression->left);
2514                 expression_kind_t ekind = expression->base.kind;
2515                 assert(ekind == EXPR_BINARY_LOGICAL_AND || ekind == EXPR_BINARY_LOGICAL_OR);
2516                 if (ekind == EXPR_BINARY_LOGICAL_AND) {
2517                         if (!val) {
2518                                 return new_Const(get_mode_null(mode));
2519                         }
2520                 } else {
2521                         if (val) {
2522                                 return new_Const(get_mode_one(mode));
2523                         }
2524                 }
2525
2526                 if (is_constant_expression(expression->right) == EXPR_CLASS_CONSTANT) {
2527                         bool valr = fold_constant_to_bool(expression->right);
2528                         return create_Const_from_bool(mode, valr);
2529                 }
2530
2531                 return produce_condition_result(expression->right, mode, dbgi);
2532         }
2533
2534         return produce_condition_result((const expression_t*) expression, mode,
2535                                         dbgi);
2536 }
2537
2538 static ir_node *create_assign_binop(const binary_expression_t *expression)
2539 {
2540         dbg_info *const     dbgi = get_dbg_info(&expression->base.pos);
2541         const expression_t *left_expr = expression->left;
2542         type_t             *type      = skip_typeref(left_expr->base.type);
2543         ir_node            *right     = expression_to_firm(expression->right);
2544         ir_node            *left_addr = expression_to_addr(left_expr);
2545         ir_node            *left      = get_value_from_lvalue(left_expr, left_addr);
2546         ir_node            *result    = create_op(dbgi, expression, left, right);
2547
2548         result = create_cast(dbgi, result, expression->right->base.type, type);
2549
2550         result = set_value_for_expression_addr(left_expr, result, left_addr);
2551
2552         if (!is_type_compound(type)) {
2553                 ir_mode *mode_arithmetic = get_ir_mode_arithmetic(type);
2554                 result = create_conv(dbgi, result, mode_arithmetic);
2555         }
2556         return result;
2557 }
2558
2559 static ir_node *binary_expression_to_firm(const binary_expression_t *expression)
2560 {
2561         expression_kind_t kind = expression->base.kind;
2562
2563         switch(kind) {
2564         case EXPR_BINARY_EQUAL:
2565         case EXPR_BINARY_NOTEQUAL:
2566         case EXPR_BINARY_LESS:
2567         case EXPR_BINARY_LESSEQUAL:
2568         case EXPR_BINARY_GREATER:
2569         case EXPR_BINARY_GREATEREQUAL:
2570         case EXPR_BINARY_ISGREATER:
2571         case EXPR_BINARY_ISGREATEREQUAL:
2572         case EXPR_BINARY_ISLESS:
2573         case EXPR_BINARY_ISLESSEQUAL:
2574         case EXPR_BINARY_ISLESSGREATER:
2575         case EXPR_BINARY_ISUNORDERED: {
2576                 dbg_info   *dbgi     = get_dbg_info(&expression->base.pos);
2577                 ir_node    *left     = expression_to_firm(expression->left);
2578                 ir_node    *right    = expression_to_firm(expression->right);
2579                 ir_relation relation = get_relation(kind);
2580                 ir_node    *cmp      = new_d_Cmp(dbgi, left, right, relation);
2581                 return cmp;
2582         }
2583         case EXPR_BINARY_ASSIGN: {
2584                 ir_node *addr  = expression_to_addr(expression->left);
2585                 ir_node *right = expression_to_firm(expression->right);
2586                 ir_node *res
2587                         = set_value_for_expression_addr(expression->left, right, addr);
2588
2589                 type_t  *type            = skip_typeref(expression->base.type);
2590                 if (!is_type_compound(type)) {
2591                         ir_mode *mode_arithmetic = get_ir_mode_arithmetic(type);
2592                         res                      = create_conv(NULL, res, mode_arithmetic);
2593                 }
2594                 return res;
2595         }
2596         case EXPR_BINARY_ADD:
2597         case EXPR_BINARY_SUB:
2598         case EXPR_BINARY_MUL:
2599         case EXPR_BINARY_DIV:
2600         case EXPR_BINARY_MOD:
2601         case EXPR_BINARY_BITWISE_AND:
2602         case EXPR_BINARY_BITWISE_OR:
2603         case EXPR_BINARY_BITWISE_XOR:
2604         case EXPR_BINARY_SHIFTLEFT:
2605         case EXPR_BINARY_SHIFTRIGHT:
2606         {
2607                 dbg_info *dbgi  = get_dbg_info(&expression->base.pos);
2608                 ir_node  *left  = expression_to_firm(expression->left);
2609                 ir_node  *right = expression_to_firm(expression->right);
2610                 return create_op(dbgi, expression, left, right);
2611         }
2612         case EXPR_BINARY_LOGICAL_AND:
2613         case EXPR_BINARY_LOGICAL_OR:
2614                 return create_lazy_op(expression);
2615         case EXPR_BINARY_COMMA:
2616                 /* create side effects of left side */
2617                 (void) expression_to_firm(expression->left);
2618                 return _expression_to_firm(expression->right);
2619
2620         case EXPR_BINARY_ADD_ASSIGN:
2621         case EXPR_BINARY_SUB_ASSIGN:
2622         case EXPR_BINARY_MUL_ASSIGN:
2623         case EXPR_BINARY_MOD_ASSIGN:
2624         case EXPR_BINARY_DIV_ASSIGN:
2625         case EXPR_BINARY_BITWISE_AND_ASSIGN:
2626         case EXPR_BINARY_BITWISE_OR_ASSIGN:
2627         case EXPR_BINARY_BITWISE_XOR_ASSIGN:
2628         case EXPR_BINARY_SHIFTLEFT_ASSIGN:
2629         case EXPR_BINARY_SHIFTRIGHT_ASSIGN:
2630                 return create_assign_binop(expression);
2631         default:
2632                 panic("invalid binexpr type");
2633         }
2634 }
2635
2636 static ir_node *array_access_addr(const array_access_expression_t *expression)
2637 {
2638         dbg_info *dbgi        = get_dbg_info(&expression->base.pos);
2639         ir_node  *base_addr   = expression_to_firm(expression->array_ref);
2640         ir_node  *offset      = expression_to_firm(expression->index);
2641         type_t   *ref_type    = skip_typeref(expression->array_ref->base.type);
2642         ir_node  *real_offset = adjust_for_pointer_arithmetic(dbgi, offset, ref_type);
2643         ir_node  *result      = new_d_Add(dbgi, base_addr, real_offset, mode_P_data);
2644
2645         return result;
2646 }
2647
2648 static ir_node *array_access_to_firm(
2649                 const array_access_expression_t *expression)
2650 {
2651         dbg_info *dbgi   = get_dbg_info(&expression->base.pos);
2652         ir_node  *addr   = array_access_addr(expression);
2653         type_t   *type   = revert_automatic_type_conversion(
2654                         (const expression_t*) expression);
2655         type             = skip_typeref(type);
2656
2657         return deref_address(dbgi, type, addr);
2658 }
2659
2660 static long get_offsetof_offset(const offsetof_expression_t *expression)
2661 {
2662         type_t *orig_type = expression->type;
2663         long    offset    = 0;
2664
2665         designator_t *designator = expression->designator;
2666         for ( ; designator != NULL; designator = designator->next) {
2667                 type_t *type = skip_typeref(orig_type);
2668                 /* be sure the type is constructed */
2669                 (void) get_ir_type(type);
2670
2671                 if (designator->symbol != NULL) {
2672                         assert(is_type_compound(type));
2673                         symbol_t *symbol = designator->symbol;
2674
2675                         compound_t *compound = type->compound.compound;
2676                         entity_t   *iter     = compound->members.entities;
2677                         for (; iter->base.symbol != symbol; iter = iter->base.next) {}
2678
2679                         assert(iter->kind == ENTITY_COMPOUND_MEMBER);
2680                         assert(iter->declaration.kind == DECLARATION_KIND_COMPOUND_MEMBER);
2681                         offset += get_entity_offset(iter->compound_member.entity);
2682
2683                         orig_type = iter->declaration.type;
2684                 } else {
2685                         expression_t *array_index = designator->array_index;
2686                         assert(designator->array_index != NULL);
2687                         assert(is_type_array(type));
2688
2689                         long index         = fold_constant_to_int(array_index);
2690                         ir_type *arr_type  = get_ir_type(type);
2691                         ir_type *elem_type = get_array_element_type(arr_type);
2692                         long     elem_size = get_type_size_bytes(elem_type);
2693
2694                         offset += index * elem_size;
2695
2696                         orig_type = type->array.element_type;
2697                 }
2698         }
2699
2700         return offset;
2701 }
2702
2703 static ir_node *offsetof_to_firm(const offsetof_expression_t *expression)
2704 {
2705         ir_mode   *mode   = get_ir_mode_arithmetic(expression->base.type);
2706         long       offset = get_offsetof_offset(expression);
2707         ir_tarval *tv     = new_tarval_from_long(offset, mode);
2708         dbg_info  *dbgi   = get_dbg_info(&expression->base.pos);
2709
2710         return new_d_Const(dbgi, tv);
2711 }
2712
2713 static void create_local_initializer(initializer_t *initializer, dbg_info *dbgi,
2714                                      ir_entity *entity, type_t *type);
2715 static ir_initializer_t *create_ir_initializer(
2716                 const initializer_t *initializer, type_t *type);
2717
2718 static ir_entity *create_initializer_entity(dbg_info *dbgi,
2719                                             initializer_t *initializer,
2720                                             type_t *type)
2721 {
2722         /* create the ir_initializer */
2723         PUSH_IRG(get_const_code_irg());
2724         ir_initializer_t *irinitializer = create_ir_initializer(initializer, type);
2725         POP_IRG();
2726
2727         ident     *const id          = id_unique("initializer.%u");
2728         ir_type   *const irtype      = get_ir_type(type);
2729         ir_type   *const global_type = get_glob_type();
2730         ir_entity *const entity      = new_d_entity(global_type, id, irtype, dbgi);
2731         set_entity_ld_ident(entity, id);
2732         set_entity_visibility(entity, ir_visibility_private);
2733         add_entity_linkage(entity, IR_LINKAGE_CONSTANT);
2734         set_entity_initializer(entity, irinitializer);
2735         return entity;
2736 }
2737
2738 static ir_node *compound_literal_addr(compound_literal_expression_t const *const expression)
2739 {
2740         dbg_info      *dbgi        = get_dbg_info(&expression->base.pos);
2741         type_t        *type        = expression->type;
2742         initializer_t *initializer = expression->initializer;
2743
2744         if (expression->global_scope ||
2745                 ((type->base.qualifiers & TYPE_QUALIFIER_CONST)
2746             && is_constant_initializer(initializer) == EXPR_CLASS_CONSTANT)) {
2747                 ir_entity *entity = create_initializer_entity(dbgi, initializer, type);
2748                 return create_symconst(dbgi, entity);
2749         } else {
2750                 /* create an entity on the stack */
2751                 ident   *const id     = id_unique("CompLit.%u");
2752                 ir_type *const irtype = get_ir_type(type);
2753                 ir_type *frame_type   = get_irg_frame_type(current_ir_graph);
2754
2755                 ir_entity *const entity = new_d_entity(frame_type, id, irtype, dbgi);
2756                 set_entity_ld_ident(entity, id);
2757
2758                 /* create initialisation code */
2759                 create_local_initializer(initializer, dbgi, entity, type);
2760
2761                 /* create a sel for the compound literal address */
2762                 ir_node *frame = get_irg_frame(current_ir_graph);
2763                 ir_node *sel   = new_d_simpleSel(dbgi, new_NoMem(), frame, entity);
2764                 return sel;
2765         }
2766 }
2767
2768 static ir_node *compound_literal_to_firm(compound_literal_expression_t const* const expr)
2769 {
2770         dbg_info *const dbgi = get_dbg_info(&expr->base.pos);
2771         type_t   *const type = expr->type;
2772         ir_node  *const addr = compound_literal_addr(expr);
2773         return deref_address(dbgi, type, addr);
2774 }
2775
2776 /**
2777  * Transform a sizeof expression into Firm code.
2778  */
2779 static ir_node *sizeof_to_firm(const typeprop_expression_t *expression)
2780 {
2781         type_t *const type = skip_typeref(expression->type);
2782         /* ยง6.5.3.4:2 if the type is a VLA, evaluate the expression. */
2783         if (is_type_array(type) && type->array.is_vla
2784                         && expression->tp_expression != NULL) {
2785                 expression_to_firm(expression->tp_expression);
2786         }
2787
2788         return get_type_size_node(type);
2789 }
2790
2791 static entity_t *get_expression_entity(const expression_t *expression)
2792 {
2793         if (expression->kind != EXPR_REFERENCE)
2794                 return NULL;
2795
2796         return expression->reference.entity;
2797 }
2798
2799 static unsigned get_cparser_entity_alignment(const entity_t *entity)
2800 {
2801         switch(entity->kind) {
2802         case DECLARATION_KIND_CASES:
2803                 return entity->declaration.alignment;
2804         case ENTITY_STRUCT:
2805         case ENTITY_UNION:
2806                 return entity->compound.alignment;
2807         case ENTITY_TYPEDEF:
2808                 return entity->typedefe.alignment;
2809         default:
2810                 break;
2811         }
2812         return 0;
2813 }
2814
2815 /**
2816  * Transform an alignof expression into Firm code.
2817  */
2818 static ir_node *alignof_to_firm(const typeprop_expression_t *expression)
2819 {
2820         unsigned alignment = 0;
2821
2822         const expression_t *tp_expression = expression->tp_expression;
2823         if (tp_expression != NULL) {
2824                 entity_t *entity = get_expression_entity(tp_expression);
2825                 if (entity != NULL) {
2826                         alignment = get_cparser_entity_alignment(entity);
2827                 }
2828         }
2829
2830         if (alignment == 0) {
2831                 type_t *type = expression->type;
2832                 alignment = get_type_alignment(type);
2833         }
2834
2835         dbg_info  *dbgi = get_dbg_info(&expression->base.pos);
2836         ir_mode   *mode = get_ir_mode_arithmetic(expression->base.type);
2837         ir_tarval *tv   = new_tarval_from_long(alignment, mode);
2838         return new_d_Const(dbgi, tv);
2839 }
2840
2841 static void init_ir_types(void);
2842
2843 ir_tarval *fold_constant_to_tarval(const expression_t *expression)
2844 {
2845         assert(is_constant_expression(expression) == EXPR_CLASS_CONSTANT);
2846
2847         bool constant_folding_old = constant_folding;
2848         constant_folding = true;
2849         int old_optimize         = get_optimize();
2850         int old_constant_folding = get_opt_constant_folding();
2851         set_optimize(1);
2852         set_opt_constant_folding(1);
2853
2854         init_ir_types();
2855
2856         PUSH_IRG(get_const_code_irg());
2857         ir_node *const cnst = _expression_to_firm(expression);
2858         POP_IRG();
2859
2860         set_optimize(old_optimize);
2861         set_opt_constant_folding(old_constant_folding);
2862
2863         if (!is_Const(cnst)) {
2864                 panic("couldn't fold constant");
2865         }
2866
2867         constant_folding = constant_folding_old;
2868
2869         ir_tarval *const tv   = get_Const_tarval(cnst);
2870         ir_mode   *const mode = get_ir_mode_arithmetic(skip_typeref(expression->base.type));
2871         return tarval_convert_to(tv, mode);
2872 }
2873
2874 /* this function is only used in parser.c, but it relies on libfirm functionality */
2875 bool constant_is_negative(const expression_t *expression)
2876 {
2877         ir_tarval *tv = fold_constant_to_tarval(expression);
2878         return tarval_is_negative(tv);
2879 }
2880
2881 long fold_constant_to_int(const expression_t *expression)
2882 {
2883         ir_tarval *tv = fold_constant_to_tarval(expression);
2884         if (!tarval_is_long(tv)) {
2885                 panic("result of constant folding is not integer");
2886         }
2887
2888         return get_tarval_long(tv);
2889 }
2890
2891 bool fold_constant_to_bool(const expression_t *expression)
2892 {
2893         ir_tarval *tv = fold_constant_to_tarval(expression);
2894         return !tarval_is_null(tv);
2895 }
2896
2897 static ir_node *conditional_to_firm(const conditional_expression_t *expression)
2898 {
2899         /* first try to fold a constant condition */
2900         if (is_constant_expression(expression->condition) == EXPR_CLASS_CONSTANT) {
2901                 bool val = fold_constant_to_bool(expression->condition);
2902                 if (val) {
2903                         expression_t *true_expression = expression->true_expression;
2904                         if (true_expression == NULL)
2905                                 true_expression = expression->condition;
2906                         return expression_to_firm(true_expression);
2907                 } else {
2908                         return expression_to_firm(expression->false_expression);
2909                 }
2910         }
2911
2912         jump_target true_target;
2913         jump_target false_target;
2914         init_jump_target(&true_target,  NULL);
2915         init_jump_target(&false_target, NULL);
2916         ir_node *const cond_expr = create_condition_evaluation(expression->condition, &true_target, &false_target);
2917
2918         ir_node    *val = NULL;
2919         jump_target exit_target;
2920         init_jump_target(&exit_target, NULL);
2921
2922         if (enter_jump_target(&true_target)) {
2923                 if (expression->true_expression) {
2924                         val = expression_to_firm(expression->true_expression);
2925                 } else if (cond_expr && get_irn_mode(cond_expr) != mode_b) {
2926                         val = cond_expr;
2927                 } else {
2928                         /* Condition ended with a short circuit (&&, ||, !) operation or a
2929                          * comparison.  Generate a "1" as value for the true branch. */
2930                         val = new_Const(get_mode_one(mode_Is));
2931                 }
2932                 jump_to_target(&exit_target);
2933         }
2934
2935         if (enter_jump_target(&false_target)) {
2936                 ir_node *const false_val = expression_to_firm(expression->false_expression);
2937                 jump_to_target(&exit_target);
2938                 if (val) {
2939                         ir_node  *const in[] = { val, false_val };
2940                         dbg_info *const dbgi = get_dbg_info(&expression->base.pos);
2941                         val = new_rd_Phi(dbgi, exit_target.block, lengthof(in), in, get_irn_mode(val));
2942                 } else {
2943                         val = false_val;
2944                 }
2945         }
2946
2947         if (!enter_jump_target(&exit_target)) {
2948                 set_cur_block(new_Block(0, NULL));
2949                 type_t *const type = skip_typeref(expression->base.type);
2950                 if (!is_type_void(type))
2951                         val = new_Unknown(get_ir_mode_arithmetic(type));
2952         }
2953         return val;
2954 }
2955
2956 /**
2957  * Returns an IR-node representing the address of a field.
2958  */
2959 static ir_node *select_addr(const select_expression_t *expression)
2960 {
2961         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
2962
2963         construct_select_compound(expression);
2964
2965         ir_node *compound_addr = expression_to_firm(expression->compound);
2966
2967         entity_t *entry = expression->compound_entry;
2968         assert(entry->kind == ENTITY_COMPOUND_MEMBER);
2969         assert(entry->declaration.kind == DECLARATION_KIND_COMPOUND_MEMBER);
2970
2971         if (constant_folding) {
2972                 ir_mode *mode      = get_irn_mode(compound_addr);
2973                 ir_mode *mode_uint = get_reference_mode_unsigned_eq(mode);
2974                 ir_node *ofs       = new_Const_long(mode_uint, entry->compound_member.offset);
2975                 return new_d_Add(dbgi, compound_addr, ofs, mode);
2976         } else {
2977                 ir_entity *irentity = entry->compound_member.entity;
2978                 assert(irentity != NULL);
2979                 return new_d_simpleSel(dbgi, new_NoMem(), compound_addr, irentity);
2980         }
2981 }
2982
2983 static ir_node *select_to_firm(const select_expression_t *expression)
2984 {
2985         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
2986         ir_node  *addr = select_addr(expression);
2987         type_t   *type = revert_automatic_type_conversion(
2988                         (const expression_t*) expression);
2989         type           = skip_typeref(type);
2990
2991         entity_t *entry = expression->compound_entry;
2992         assert(entry->kind == ENTITY_COMPOUND_MEMBER);
2993
2994         if (entry->compound_member.bitfield) {
2995                 return bitfield_extract_to_firm(expression, addr);
2996         }
2997
2998         return deref_address(dbgi, type, addr);
2999 }
3000
3001 /* Values returned by __builtin_classify_type. */
3002 typedef enum gcc_type_class
3003 {
3004         no_type_class = -1,
3005         void_type_class,
3006         integer_type_class,
3007         char_type_class,
3008         enumeral_type_class,
3009         boolean_type_class,
3010         pointer_type_class,
3011         reference_type_class,
3012         offset_type_class,
3013         real_type_class,
3014         complex_type_class,
3015         function_type_class,
3016         method_type_class,
3017         record_type_class,
3018         union_type_class,
3019         array_type_class,
3020         string_type_class,
3021         set_type_class,
3022         file_type_class,
3023         lang_type_class
3024 } gcc_type_class;
3025
3026 static ir_node *classify_type_to_firm(const classify_type_expression_t *const expr)
3027 {
3028         type_t *type = expr->type_expression->base.type;
3029
3030         /* FIXME gcc returns different values depending on whether compiling C or C++
3031          * e.g. int x[10] is pointer_type_class in C, but array_type_class in C++ */
3032         gcc_type_class tc;
3033         for (;;) {
3034                 type = skip_typeref(type);
3035                 switch (type->kind) {
3036                         case TYPE_ATOMIC: {
3037                                 const atomic_type_t *const atomic_type = &type->atomic;
3038                                 switch (atomic_type->akind) {
3039                                         /* gcc cannot do that */
3040                                         case ATOMIC_TYPE_VOID:
3041                                                 tc = void_type_class;
3042                                                 goto make_const;
3043
3044                                         case ATOMIC_TYPE_WCHAR_T:   /* gcc handles this as integer */
3045                                         case ATOMIC_TYPE_CHAR:      /* gcc handles this as integer */
3046                                         case ATOMIC_TYPE_SCHAR:     /* gcc handles this as integer */
3047                                         case ATOMIC_TYPE_UCHAR:     /* gcc handles this as integer */
3048                                         case ATOMIC_TYPE_SHORT:
3049                                         case ATOMIC_TYPE_USHORT:
3050                                         case ATOMIC_TYPE_INT:
3051                                         case ATOMIC_TYPE_UINT:
3052                                         case ATOMIC_TYPE_LONG:
3053                                         case ATOMIC_TYPE_ULONG:
3054                                         case ATOMIC_TYPE_LONGLONG:
3055                                         case ATOMIC_TYPE_ULONGLONG:
3056                                         case ATOMIC_TYPE_BOOL:      /* gcc handles this as integer */
3057                                                 tc = integer_type_class;
3058                                                 goto make_const;
3059
3060                                         case ATOMIC_TYPE_FLOAT:
3061                                         case ATOMIC_TYPE_DOUBLE:
3062                                         case ATOMIC_TYPE_LONG_DOUBLE:
3063                                                 tc = real_type_class;
3064                                                 goto make_const;
3065                                 }
3066                                 panic("Unexpected atomic type.");
3067                         }
3068
3069                         case TYPE_COMPLEX:         tc = complex_type_class; goto make_const;
3070                         case TYPE_IMAGINARY:       tc = complex_type_class; goto make_const;
3071                         case TYPE_ARRAY:           /* gcc handles this as pointer */
3072                         case TYPE_FUNCTION:        /* gcc handles this as pointer */
3073                         case TYPE_POINTER:         tc = pointer_type_class; goto make_const;
3074                         case TYPE_COMPOUND_STRUCT: tc = record_type_class;  goto make_const;
3075                         case TYPE_COMPOUND_UNION:  tc = union_type_class;   goto make_const;
3076
3077                         /* gcc handles this as integer */
3078                         case TYPE_ENUM:            tc = integer_type_class; goto make_const;
3079
3080                         /* gcc classifies the referenced type */
3081                         case TYPE_REFERENCE: type = type->reference.refers_to; continue;
3082
3083                         /* typedef/typeof should be skipped already */
3084                         case TYPE_TYPEDEF:
3085                         case TYPE_TYPEOF:
3086                         case TYPE_ERROR:
3087                                 break;
3088                 }
3089                 panic("unexpected type.");
3090         }
3091
3092 make_const:;
3093         dbg_info  *const dbgi = get_dbg_info(&expr->base.pos);
3094         ir_mode   *const mode = atomic_modes[ATOMIC_TYPE_INT];
3095         ir_tarval *const tv   = new_tarval_from_long(tc, mode);
3096         return new_d_Const(dbgi, tv);
3097 }
3098
3099 static ir_node *function_name_to_firm(
3100                 const funcname_expression_t *const expr)
3101 {
3102         switch(expr->kind) {
3103         case FUNCNAME_FUNCTION:
3104         case FUNCNAME_PRETTY_FUNCTION:
3105         case FUNCNAME_FUNCDNAME:
3106                 if (current_function_name == NULL) {
3107                         position_t const *const src_pos = &expr->base.pos;
3108                         char       const *const name    = current_function_entity->base.symbol->string;
3109                         string_t          const string  = { name, strlen(name), STRING_ENCODING_CHAR };
3110                         current_function_name = string_to_firm(src_pos, "__func__.%u", &string);
3111                 }
3112                 return current_function_name;
3113         case FUNCNAME_FUNCSIG:
3114                 if (current_funcsig == NULL) {
3115                         position_t const *const src_pos = &expr->base.pos;
3116                         ir_entity        *const ent     = get_irg_entity(current_ir_graph);
3117                         char       const *const name    = get_entity_ld_name(ent);
3118                         string_t          const string  = { name, strlen(name), STRING_ENCODING_CHAR };
3119                         current_funcsig = string_to_firm(src_pos, "__FUNCSIG__.%u", &string);
3120                 }
3121                 return current_funcsig;
3122         }
3123         panic("Unsupported function name");
3124 }
3125
3126 static ir_node *statement_expression_to_firm(const statement_expression_t *expr)
3127 {
3128         statement_t *statement = expr->statement;
3129
3130         assert(statement->kind == STATEMENT_COMPOUND);
3131         return compound_statement_to_firm(&statement->compound);
3132 }
3133
3134 static ir_node *va_start_expression_to_firm(
3135         const va_start_expression_t *const expr)
3136 {
3137         ir_entity *param_ent = current_vararg_entity;
3138         if (param_ent == NULL) {
3139                 size_t   const n           = IR_VA_START_PARAMETER_NUMBER;
3140                 ir_type *const frame_type  = get_irg_frame_type(current_ir_graph);
3141                 ir_type *const param_type  = get_unknown_type();
3142                 param_ent = new_parameter_entity(frame_type, n, param_type);
3143                 current_vararg_entity = param_ent;
3144         }
3145
3146         ir_node  *const frame   = get_irg_frame(current_ir_graph);
3147         dbg_info *const dbgi    = get_dbg_info(&expr->base.pos);
3148         ir_node  *const no_mem  = new_NoMem();
3149         ir_node  *const arg_sel = new_d_simpleSel(dbgi, no_mem, frame, param_ent);
3150
3151         set_value_for_expression_addr(expr->ap, arg_sel, NULL);
3152
3153         return NULL;
3154 }
3155
3156 static ir_node *va_arg_expression_to_firm(const va_arg_expression_t *const expr)
3157 {
3158         type_t       *const type    = expr->base.type;
3159         expression_t *const ap_expr = expr->ap;
3160         ir_node      *const ap_addr = expression_to_addr(ap_expr);
3161         ir_node      *const ap      = get_value_from_lvalue(ap_expr, ap_addr);
3162         dbg_info     *const dbgi    = get_dbg_info(&expr->base.pos);
3163         ir_node      *const res     = deref_address(dbgi, type, ap);
3164
3165         ir_node      *const cnst    = get_type_size_node(expr->base.type);
3166         ir_mode      *const mode    = get_irn_mode(cnst);
3167         ir_node      *const c1      = new_Const_long(mode, stack_param_align - 1);
3168         ir_node      *const c2      = new_d_Add(dbgi, cnst, c1, mode);
3169         ir_node      *const c3      = new_Const_long(mode, -(long)stack_param_align);
3170         ir_node      *const c4      = new_d_And(dbgi, c2, c3, mode);
3171         ir_node      *const add     = new_d_Add(dbgi, ap, c4, mode_P_data);
3172
3173         set_value_for_expression_addr(ap_expr, add, ap_addr);
3174
3175         return res;
3176 }
3177
3178 /**
3179  * Generate Firm for a va_copy expression.
3180  */
3181 static ir_node *va_copy_expression_to_firm(const va_copy_expression_t *const expr)
3182 {
3183         ir_node *const src = expression_to_firm(expr->src);
3184         set_value_for_expression_addr(expr->dst, src, NULL);
3185         return NULL;
3186 }
3187
3188 static ir_node *dereference_addr(const unary_expression_t *const expression)
3189 {
3190         assert(expression->base.kind == EXPR_UNARY_DEREFERENCE);
3191         return expression_to_firm(expression->value);
3192 }
3193
3194 /**
3195  * Returns a IR-node representing an lvalue of the given expression.
3196  */
3197 static ir_node *expression_to_addr(const expression_t *expression)
3198 {
3199         switch(expression->kind) {
3200         case EXPR_ARRAY_ACCESS:
3201                 return array_access_addr(&expression->array_access);
3202         case EXPR_COMPOUND_LITERAL:
3203                 return compound_literal_addr(&expression->compound_literal);
3204         case EXPR_REFERENCE:
3205                 return reference_addr(&expression->reference);
3206         case EXPR_SELECT:
3207                 return select_addr(&expression->select);
3208         case EXPR_UNARY_DEREFERENCE:
3209                 return dereference_addr(&expression->unary);
3210         default:
3211                 break;
3212         }
3213         panic("trying to get address of non-lvalue");
3214 }
3215
3216 static ir_node *builtin_constant_to_firm(
3217                 const builtin_constant_expression_t *expression)
3218 {
3219         ir_mode *const mode = get_ir_mode_arithmetic(expression->base.type);
3220         bool     const v    = is_constant_expression(expression->value) == EXPR_CLASS_CONSTANT;
3221         return create_Const_from_bool(mode, v);
3222 }
3223
3224 static ir_node *builtin_types_compatible_to_firm(
3225                 const builtin_types_compatible_expression_t *expression)
3226 {
3227         type_t  *const left  = get_unqualified_type(skip_typeref(expression->left));
3228         type_t  *const right = get_unqualified_type(skip_typeref(expression->right));
3229         bool     const value = types_compatible(left, right);
3230         ir_mode *const mode  = get_ir_mode_arithmetic(expression->base.type);
3231         return create_Const_from_bool(mode, value);
3232 }
3233
3234 static void prepare_label_target(label_t *const label)
3235 {
3236         if (label->address_taken && !label->indirect_block) {
3237                 ir_node *const iblock = new_immBlock();
3238                 label->indirect_block = iblock;
3239                 ARR_APP1(ir_node*, ijmp_blocks, iblock);
3240                 jump_from_block_to_target(&label->target, iblock);
3241         }
3242 }
3243
3244 /**
3245  * Pointer to a label.  This is used for the
3246  * GNU address-of-label extension.
3247  */
3248 static ir_node *label_address_to_firm(const label_address_expression_t *label)
3249 {
3250         /* Beware: Might be called from create initializer with current_ir_graph
3251          * set to const_code_irg. */
3252         PUSH_IRG(current_function);
3253         prepare_label_target(label->label);
3254         POP_IRG();
3255
3256         symconst_symbol value;
3257         value.entity_p = create_Block_entity(label->label->indirect_block);
3258         dbg_info *const dbgi = get_dbg_info(&label->base.pos);
3259         return new_d_SymConst(dbgi, mode_P_code, value, symconst_addr_ent);
3260 }
3261
3262 /**
3263  * creates firm nodes for an expression. The difference between this function
3264  * and expression_to_firm is, that this version might produce mode_b nodes
3265  * instead of mode_Is.
3266  */
3267 static ir_node *_expression_to_firm(expression_t const *const expr)
3268 {
3269 #ifndef NDEBUG
3270         if (!constant_folding) {
3271                 assert(!expr->base.transformed);
3272                 ((expression_t*)expr)->base.transformed = true;
3273         }
3274 #endif
3275
3276         switch (expr->kind) {
3277         case EXPR_ALIGNOF:                    return alignof_to_firm(                 &expr->typeprop);
3278         case EXPR_ARRAY_ACCESS:               return array_access_to_firm(            &expr->array_access);
3279         case EXPR_BINARY_CASES:               return binary_expression_to_firm(       &expr->binary);
3280         case EXPR_BUILTIN_CONSTANT_P:         return builtin_constant_to_firm(        &expr->builtin_constant);
3281         case EXPR_BUILTIN_TYPES_COMPATIBLE_P: return builtin_types_compatible_to_firm(&expr->builtin_types_compatible);
3282         case EXPR_CALL:                       return call_expression_to_firm(         &expr->call);
3283         case EXPR_CLASSIFY_TYPE:              return classify_type_to_firm(           &expr->classify_type);
3284         case EXPR_COMPOUND_LITERAL:           return compound_literal_to_firm(        &expr->compound_literal);
3285         case EXPR_CONDITIONAL:                return conditional_to_firm(             &expr->conditional);
3286         case EXPR_FUNCNAME:                   return function_name_to_firm(           &expr->funcname);
3287         case EXPR_LABEL_ADDRESS:              return label_address_to_firm(           &expr->label_address);
3288         case EXPR_LITERAL_CASES:              return literal_to_firm(                 &expr->literal);
3289         case EXPR_LITERAL_CHARACTER:          return char_literal_to_firm(            &expr->string_literal);
3290         case EXPR_OFFSETOF:                   return offsetof_to_firm(                &expr->offsetofe);
3291         case EXPR_REFERENCE:                  return reference_expression_to_firm(    &expr->reference);
3292         case EXPR_ENUM_CONSTANT:              return enum_constant_to_firm(           &expr->reference);
3293         case EXPR_SELECT:                     return select_to_firm(                  &expr->select);
3294         case EXPR_SIZEOF:                     return sizeof_to_firm(                  &expr->typeprop);
3295         case EXPR_STATEMENT:                  return statement_expression_to_firm(    &expr->statement);
3296         case EXPR_UNARY_CASES:                return unary_expression_to_firm(        &expr->unary);
3297         case EXPR_VA_ARG:                     return va_arg_expression_to_firm(       &expr->va_arge);
3298         case EXPR_VA_COPY:                    return va_copy_expression_to_firm(      &expr->va_copye);
3299         case EXPR_VA_START:                   return va_start_expression_to_firm(     &expr->va_starte);
3300
3301         case EXPR_STRING_LITERAL: return string_to_firm(&expr->base.pos, "str.%u", &expr->string_literal.value);
3302
3303         case EXPR_ERROR: break;
3304         }
3305         panic("invalid expression");
3306 }
3307
3308 /**
3309  * Check if a given expression is a GNU __builtin_expect() call.
3310  */
3311 static bool is_builtin_expect(const expression_t *expression)
3312 {
3313         if (expression->kind != EXPR_CALL)
3314                 return false;
3315
3316         expression_t *function = expression->call.function;
3317         if (function->kind != EXPR_REFERENCE)
3318                 return false;
3319         reference_expression_t *ref = &function->reference;
3320         if (ref->entity->kind         != ENTITY_FUNCTION ||
3321             ref->entity->function.btk != BUILTIN_EXPECT)
3322                 return false;
3323
3324         return true;
3325 }
3326
3327 static bool produces_mode_b(const expression_t *expression)
3328 {
3329         switch (expression->kind) {
3330         case EXPR_BINARY_EQUAL:
3331         case EXPR_BINARY_NOTEQUAL:
3332         case EXPR_BINARY_LESS:
3333         case EXPR_BINARY_LESSEQUAL:
3334         case EXPR_BINARY_GREATER:
3335         case EXPR_BINARY_GREATEREQUAL:
3336         case EXPR_BINARY_ISGREATER:
3337         case EXPR_BINARY_ISGREATEREQUAL:
3338         case EXPR_BINARY_ISLESS:
3339         case EXPR_BINARY_ISLESSEQUAL:
3340         case EXPR_BINARY_ISLESSGREATER:
3341         case EXPR_BINARY_ISUNORDERED:
3342         case EXPR_UNARY_NOT:
3343                 return true;
3344
3345         case EXPR_CALL:
3346                 if (is_builtin_expect(expression)) {
3347                         expression_t *argument = expression->call.arguments->expression;
3348                         return produces_mode_b(argument);
3349                 }
3350                 return false;
3351         case EXPR_BINARY_COMMA:
3352                 return produces_mode_b(expression->binary.right);
3353
3354         default:
3355                 return false;
3356         }
3357 }
3358
3359 static ir_node *expression_to_firm(const expression_t *expression)
3360 {
3361         if (!produces_mode_b(expression)) {
3362                 ir_node *res = _expression_to_firm(expression);
3363                 assert(res == NULL || get_irn_mode(res) != mode_b);
3364                 return res;
3365         }
3366
3367         if (is_constant_expression(expression) == EXPR_CLASS_CONSTANT) {
3368                 return new_Const(fold_constant_to_tarval(expression));
3369         }
3370
3371         /* we have to produce a 0/1 from the mode_b expression */
3372         dbg_info *dbgi = get_dbg_info(&expression->base.pos);
3373         ir_mode  *mode = get_ir_mode_arithmetic(expression->base.type);
3374         return produce_condition_result(expression, mode, dbgi);
3375 }
3376
3377 /**
3378  * create a short-circuit expression evaluation that tries to construct
3379  * efficient control flow structures for &&, || and ! expressions
3380  */
3381 static ir_node *create_condition_evaluation(expression_t const *const expression, jump_target *const true_target, jump_target *const false_target)
3382 {
3383         switch(expression->kind) {
3384         case EXPR_UNARY_NOT: {
3385                 const unary_expression_t *unary_expression = &expression->unary;
3386                 create_condition_evaluation(unary_expression->value, false_target, true_target);
3387                 return NULL;
3388         }
3389         case EXPR_BINARY_LOGICAL_AND: {
3390                 jump_target extra_target;
3391                 init_jump_target(&extra_target, NULL);
3392                 create_condition_evaluation(expression->binary.left, &extra_target, false_target);
3393                 if (enter_jump_target(&extra_target))
3394                         create_condition_evaluation(expression->binary.right, true_target, false_target);
3395                 return NULL;
3396         }
3397         case EXPR_BINARY_LOGICAL_OR: {
3398                 jump_target extra_target;
3399                 init_jump_target(&extra_target, NULL);
3400                 create_condition_evaluation(expression->binary.left, true_target, &extra_target);
3401                 if (enter_jump_target(&extra_target))
3402                         create_condition_evaluation(expression->binary.right, true_target, false_target);
3403                 return NULL;
3404         }
3405         default:
3406                 break;
3407         }
3408
3409         ir_node *cond_expr = _expression_to_firm(expression);
3410         if (is_Const(cond_expr)) {
3411                 if (tarval_is_null(get_Const_tarval(cond_expr))) {
3412                         jump_to_target(false_target);
3413                 } else {
3414                         jump_to_target(true_target);
3415                 }
3416         } else {
3417                 dbg_info *dbgi       = get_dbg_info(&expression->base.pos);
3418                 ir_node  *condition  = create_conv(dbgi, cond_expr, mode_b);
3419                 ir_node  *cond       = new_d_Cond(dbgi, condition);
3420                 ir_node  *true_proj  = new_d_Proj(dbgi, cond, mode_X, pn_Cond_true);
3421                 ir_node  *false_proj = new_d_Proj(dbgi, cond, mode_X, pn_Cond_false);
3422
3423                 /* set branch prediction info based on __builtin_expect */
3424                 if (is_builtin_expect(expression) && is_Cond(cond)) {
3425                         call_argument_t *argument = expression->call.arguments->next;
3426                         if (is_constant_expression(argument->expression) == EXPR_CLASS_CONSTANT) {
3427                                 bool               const cnst = fold_constant_to_bool(argument->expression);
3428                                 cond_jmp_predicate const pred = cnst ? COND_JMP_PRED_TRUE : COND_JMP_PRED_FALSE;
3429                                 set_Cond_jmp_pred(cond, pred);
3430                         }
3431                 }
3432
3433                 add_pred_to_jump_target(true_target,  true_proj);
3434                 add_pred_to_jump_target(false_target, false_proj);
3435         }
3436         set_unreachable_now();
3437         return cond_expr;
3438 }
3439
3440 static void create_variable_entity(entity_t *variable,
3441                                    declaration_kind_t declaration_kind,
3442                                    ir_type *parent_type)
3443 {
3444         assert(variable->kind == ENTITY_VARIABLE);
3445         type_t    *type = skip_typeref(variable->declaration.type);
3446
3447         ident     *const id        = new_id_from_str(variable->base.symbol->string);
3448         ir_type   *const irtype    = get_ir_type(type);
3449         dbg_info  *const dbgi      = get_dbg_info(&variable->base.pos);
3450         ir_entity *const irentity  = new_d_entity(parent_type, id, irtype, dbgi);
3451         unsigned         alignment = variable->declaration.alignment;
3452
3453         set_entity_alignment(irentity, alignment);
3454
3455         handle_decl_modifiers(irentity, variable);
3456
3457         variable->declaration.kind  = (unsigned char) declaration_kind;
3458         variable->variable.v.entity = irentity;
3459         set_entity_ld_ident(irentity, create_ld_ident(variable));
3460
3461         if (type->base.qualifiers & TYPE_QUALIFIER_VOLATILE) {
3462                 set_entity_volatility(irentity, volatility_is_volatile);
3463         }
3464 }
3465
3466
3467 typedef struct type_path_entry_t type_path_entry_t;
3468 struct type_path_entry_t {
3469         type_t           *type;
3470         ir_initializer_t *initializer;
3471         size_t            index;
3472         entity_t         *compound_entry;
3473 };
3474
3475 typedef struct type_path_t type_path_t;
3476 struct type_path_t {
3477         type_path_entry_t *path;
3478         type_t            *top_type;
3479         bool               invalid;
3480 };
3481
3482 static __attribute__((unused)) void debug_print_type_path(const type_path_t *path)
3483 {
3484         size_t len = ARR_LEN(path->path);
3485
3486         for (size_t i = 0; i < len; ++i) {
3487                 const type_path_entry_t *entry = & path->path[i];
3488
3489                 type_t *type = skip_typeref(entry->type);
3490                 if (is_type_compound(type)) {
3491                         fprintf(stderr, ".%s", entry->compound_entry->base.symbol->string);
3492                 } else if (is_type_array(type)) {
3493                         fprintf(stderr, "[%u]", (unsigned) entry->index);
3494                 } else {
3495                         fprintf(stderr, "-INVALID-");
3496                 }
3497         }
3498         fprintf(stderr, "  (");
3499         print_type(path->top_type);
3500         fprintf(stderr, ")");
3501 }
3502
3503 static type_path_entry_t *get_type_path_top(const type_path_t *path)
3504 {
3505         size_t len = ARR_LEN(path->path);
3506         assert(len > 0);
3507         return & path->path[len-1];
3508 }
3509
3510 static type_path_entry_t *append_to_type_path(type_path_t *path)
3511 {
3512         size_t len = ARR_LEN(path->path);
3513         ARR_RESIZE(type_path_entry_t, path->path, len+1);
3514
3515         type_path_entry_t *result = & path->path[len];
3516         memset(result, 0, sizeof(result[0]));
3517         return result;
3518 }
3519
3520 static size_t get_compound_member_count(const compound_type_t *type)
3521 {
3522         compound_t *compound  = type->compound;
3523         size_t      n_members = 0;
3524         entity_t   *member    = compound->members.entities;
3525         for ( ; member != NULL; member = member->base.next) {
3526                 ++n_members;
3527         }
3528
3529         return n_members;
3530 }
3531
3532 static ir_initializer_t *get_initializer_entry(type_path_t *path)
3533 {
3534         type_t *orig_top_type = path->top_type;
3535         type_t *top_type      = skip_typeref(orig_top_type);
3536
3537         assert(is_type_compound(top_type) || is_type_array(top_type));
3538
3539         if (ARR_LEN(path->path) == 0) {
3540                 return NULL;
3541         } else {
3542                 type_path_entry_t *top         = get_type_path_top(path);
3543                 ir_initializer_t  *initializer = top->initializer;
3544                 return get_initializer_compound_value(initializer, top->index);
3545         }
3546 }
3547
3548 static void descend_into_subtype(type_path_t *path)
3549 {
3550         type_t *orig_top_type = path->top_type;
3551         type_t *top_type      = skip_typeref(orig_top_type);
3552
3553         assert(is_type_compound(top_type) || is_type_array(top_type));
3554
3555         ir_initializer_t *initializer = get_initializer_entry(path);
3556
3557         type_path_entry_t *top = append_to_type_path(path);
3558         top->type              = top_type;
3559
3560         size_t len;
3561
3562         if (is_type_compound(top_type)) {
3563                 compound_t *const compound = top_type->compound.compound;
3564                 entity_t   *const entry    = skip_unnamed_bitfields(compound->members.entities);
3565
3566                 top->compound_entry = entry;
3567                 top->index          = 0;
3568                 len                 = get_compound_member_count(&top_type->compound);
3569                 if (entry != NULL) {
3570                         assert(entry->kind == ENTITY_COMPOUND_MEMBER);
3571                         path->top_type = entry->declaration.type;
3572                 }
3573         } else {
3574                 assert(is_type_array(top_type));
3575                 assert(top_type->array.size > 0);
3576
3577                 top->index     = 0;
3578                 path->top_type = top_type->array.element_type;
3579                 len            = top_type->array.size;
3580         }
3581         if (initializer == NULL
3582                         || get_initializer_kind(initializer) == IR_INITIALIZER_NULL) {
3583                 initializer = create_initializer_compound(len);
3584                 /* we have to set the entry at the 2nd latest path entry... */
3585                 size_t path_len = ARR_LEN(path->path);
3586                 assert(path_len >= 1);
3587                 if (path_len > 1) {
3588                         type_path_entry_t *entry        = & path->path[path_len-2];
3589                         ir_initializer_t  *tinitializer = entry->initializer;
3590                         set_initializer_compound_value(tinitializer, entry->index,
3591                                                        initializer);
3592                 }
3593         }
3594         top->initializer = initializer;
3595 }
3596
3597 static void ascend_from_subtype(type_path_t *path)
3598 {
3599         type_path_entry_t *top = get_type_path_top(path);
3600
3601         path->top_type = top->type;
3602
3603         size_t len = ARR_LEN(path->path);
3604         ARR_RESIZE(type_path_entry_t, path->path, len-1);
3605 }
3606
3607 static void walk_designator(type_path_t *path, const designator_t *designator)
3608 {
3609         /* designators start at current object type */
3610         ARR_RESIZE(type_path_entry_t, path->path, 1);
3611
3612         for ( ; designator != NULL; designator = designator->next) {
3613                 type_path_entry_t *top         = get_type_path_top(path);
3614                 type_t            *orig_type   = top->type;
3615                 type_t            *type        = skip_typeref(orig_type);
3616
3617                 if (designator->symbol != NULL) {
3618                         assert(is_type_compound(type));
3619                         size_t    index  = 0;
3620                         symbol_t *symbol = designator->symbol;
3621
3622                         compound_t *compound = type->compound.compound;
3623                         entity_t   *iter     = compound->members.entities;
3624                         for (; iter->base.symbol != symbol; iter = iter->base.next, ++index) {}
3625                         assert(iter->kind == ENTITY_COMPOUND_MEMBER);
3626
3627                         /* revert previous initialisations of other union elements */
3628                         if (type->kind == TYPE_COMPOUND_UNION) {
3629                                 ir_initializer_t *initializer = top->initializer;
3630                                 if (initializer != NULL
3631                                         && get_initializer_kind(initializer) == IR_INITIALIZER_COMPOUND) {
3632                                         /* are we writing to a new element? */
3633                                         ir_initializer_t *oldi
3634                                                 = get_initializer_compound_value(initializer, index);
3635                                         if (get_initializer_kind(oldi) == IR_INITIALIZER_NULL) {
3636                                                 /* clear initializer */
3637                                                 size_t len
3638                                                         = get_initializer_compound_n_entries(initializer);
3639                                                 ir_initializer_t *nulli = get_initializer_null();
3640                                                 for (size_t i = 0; i < len; ++i) {
3641                                                         set_initializer_compound_value(initializer, i,
3642                                                                                        nulli);
3643                                                 }
3644                                         }
3645                                 }
3646                         }
3647
3648                         top->type           = orig_type;
3649                         top->compound_entry = iter;
3650                         top->index          = index;
3651                         orig_type           = iter->declaration.type;
3652                 } else {
3653                         expression_t *array_index = designator->array_index;
3654                         assert(is_type_array(type));
3655
3656                         long index = fold_constant_to_int(array_index);
3657                         assert(0 <= index && (!type->array.size_constant || (size_t)index < type->array.size));
3658
3659                         top->type  = orig_type;
3660                         top->index = (size_t) index;
3661                         orig_type  = type->array.element_type;
3662                 }
3663                 path->top_type = orig_type;
3664
3665                 if (designator->next != NULL) {
3666                         descend_into_subtype(path);
3667                 }
3668         }
3669
3670         path->invalid  = false;
3671 }
3672
3673 static void advance_current_object(type_path_t *path)
3674 {
3675         if (path->invalid) {
3676                 /* TODO: handle this... */
3677                 panic("invalid initializer (excessive elements)");
3678         }
3679
3680         type_path_entry_t *top = get_type_path_top(path);
3681
3682         type_t *type = skip_typeref(top->type);
3683         if (is_type_union(type)) {
3684                 /* only the first element is initialized in unions */
3685                 top->compound_entry = NULL;
3686         } else if (is_type_struct(type)) {
3687                 entity_t *entry = top->compound_entry;
3688
3689                 top->index++;
3690                 entry               = skip_unnamed_bitfields(entry->base.next);
3691                 top->compound_entry = entry;
3692                 if (entry != NULL) {
3693                         assert(entry->kind == ENTITY_COMPOUND_MEMBER);
3694                         path->top_type = entry->declaration.type;
3695                         return;
3696                 }
3697         } else {
3698                 assert(is_type_array(type));
3699
3700                 top->index++;
3701                 if (!type->array.size_constant || top->index < type->array.size) {
3702                         return;
3703                 }
3704         }
3705
3706         /* we're past the last member of the current sub-aggregate, try if we
3707          * can ascend in the type hierarchy and continue with another subobject */
3708         size_t len = ARR_LEN(path->path);
3709
3710         if (len > 1) {
3711                 ascend_from_subtype(path);
3712                 advance_current_object(path);
3713         } else {
3714                 path->invalid = true;
3715         }
3716 }
3717
3718
3719 static ir_initializer_t *create_ir_initializer_value(
3720                 const initializer_value_t *initializer)
3721 {
3722         expression_t *expr = initializer->value;
3723         type_t       *type = skip_typeref(expr->base.type);
3724
3725         if (is_type_compound(type)) {
3726                 if (expr->kind == EXPR_UNARY_CAST) {
3727                         expr = expr->unary.value;
3728                         type = skip_typeref(expr->base.type);
3729                 }
3730                 /* must be a compound literal... */
3731                 if (expr->kind == EXPR_COMPOUND_LITERAL) {
3732                         return create_ir_initializer(expr->compound_literal.initializer,
3733                                                      type);
3734                 }
3735         }
3736
3737         ir_node *value = expression_to_firm(expr);
3738         value = conv_to_storage_type(NULL, value, type);
3739         return create_initializer_const(value);
3740 }
3741
3742 /** Tests whether type can be initialized by a string constant */
3743 static bool is_string_type(type_t *type)
3744 {
3745         if (!is_type_array(type))
3746                 return false;
3747
3748         type_t *const inner = skip_typeref(type->array.element_type);
3749         return is_type_integer(inner);
3750 }
3751
3752 static ir_initializer_t *create_ir_initializer_list(
3753                 const initializer_list_t *initializer, type_t *type)
3754 {
3755         type_path_t path;
3756         memset(&path, 0, sizeof(path));
3757         path.top_type = type;
3758         path.path     = NEW_ARR_F(type_path_entry_t, 0);
3759
3760         descend_into_subtype(&path);
3761
3762         for (size_t i = 0; i < initializer->len; ++i) {
3763                 const initializer_t *sub_initializer = initializer->initializers[i];
3764
3765                 if (sub_initializer->kind == INITIALIZER_DESIGNATOR) {
3766                         walk_designator(&path, sub_initializer->designator.designator);
3767                         continue;
3768                 }
3769
3770                 if (sub_initializer->kind == INITIALIZER_VALUE) {
3771                         const expression_t *expr      = sub_initializer->value.value;
3772                         const type_t       *expr_type = skip_typeref(expr->base.type);
3773                         /* we might have to descend into types until the types match */
3774                         while(true) {
3775                                 type_t *orig_top_type = path.top_type;
3776                                 type_t *top_type      = skip_typeref(orig_top_type);
3777
3778                                 if (types_compatible(top_type, expr_type))
3779                                         break;
3780                                 descend_into_subtype(&path);
3781                         }
3782                 } else if (sub_initializer->kind == INITIALIZER_STRING) {
3783                         /* we might have to descend into types until we're at a scalar
3784                          * type */
3785                         while (true) {
3786                                 type_t *orig_top_type = path.top_type;
3787                                 type_t *top_type      = skip_typeref(orig_top_type);
3788
3789                                 if (is_string_type(top_type))
3790                                         break;
3791                                 descend_into_subtype(&path);
3792                         }
3793                 }
3794
3795                 ir_initializer_t *sub_irinitializer
3796                         = create_ir_initializer(sub_initializer, path.top_type);
3797
3798                 size_t path_len = ARR_LEN(path.path);
3799                 assert(path_len >= 1);
3800                 type_path_entry_t *entry        = & path.path[path_len-1];
3801                 ir_initializer_t  *tinitializer = entry->initializer;
3802                 set_initializer_compound_value(tinitializer, entry->index,
3803                                                sub_irinitializer);
3804
3805                 advance_current_object(&path);
3806         }
3807
3808         assert(ARR_LEN(path.path) >= 1);
3809         ir_initializer_t *result = path.path[0].initializer;
3810         DEL_ARR_F(path.path);
3811
3812         return result;
3813 }
3814
3815 static ir_initializer_t *create_ir_initializer_string(initializer_t const *const init, type_t *type)
3816 {
3817         type = skip_typeref(type);
3818
3819         assert(type->kind == TYPE_ARRAY);
3820         assert(type->array.size_constant);
3821         string_literal_expression_t const *const str = get_init_string(init);
3822         size_t            const str_len = str->value.size;
3823         size_t            const arr_len = type->array.size;
3824         ir_initializer_t *const irinit  = create_initializer_compound(arr_len);
3825         ir_mode          *const mode    = get_ir_mode_storage(type->array.element_type);
3826         char const       *      p       = str->value.begin;
3827         switch (str->value.encoding) {
3828         case STRING_ENCODING_CHAR:
3829         case STRING_ENCODING_UTF8:
3830                 for (size_t i = 0; i != arr_len; ++i) {
3831                         char              const c      = i < str_len ? *p++ : 0;
3832                         ir_tarval        *const tv     = new_tarval_from_long(c, mode);
3833                         ir_initializer_t *const tvinit = create_initializer_tarval(tv);
3834                         set_initializer_compound_value(irinit, i, tvinit);
3835                 }
3836                 break;
3837
3838         case STRING_ENCODING_CHAR16:
3839         case STRING_ENCODING_CHAR32:
3840         case STRING_ENCODING_WIDE:
3841                 for (size_t i = 0; i != arr_len; ++i) {
3842                         utf32             const c      = i < str_len ? read_utf8_char(&p) : 0;
3843                         ir_tarval        *const tv     = new_tarval_from_long(c, mode);
3844                         ir_initializer_t *const tvinit = create_initializer_tarval(tv);
3845                         set_initializer_compound_value(irinit, i, tvinit);
3846                 }
3847                 break;
3848         }
3849
3850         return irinit;
3851 }
3852
3853 static ir_initializer_t *create_ir_initializer(
3854                 const initializer_t *initializer, type_t *type)
3855 {
3856         switch(initializer->kind) {
3857                 case INITIALIZER_STRING:
3858                         return create_ir_initializer_string(initializer, type);
3859
3860                 case INITIALIZER_LIST:
3861                         return create_ir_initializer_list(&initializer->list, type);
3862
3863                 case INITIALIZER_VALUE:
3864                         return create_ir_initializer_value(&initializer->value);
3865
3866                 case INITIALIZER_DESIGNATOR:
3867                         panic("unexpected designator initializer");
3868         }
3869         panic("unknown initializer");
3870 }
3871
3872 /** ANSI C ยง6.7.8:21: If there are fewer initializers [..] than there
3873  *  are elements [...] the remainder of the aggregate shall be initialized
3874  *  implicitly the same as objects that have static storage duration. */
3875 static void create_dynamic_null_initializer(ir_entity *entity, dbg_info *dbgi,
3876                 ir_node *base_addr)
3877 {
3878         /* for unions we must NOT do anything for null initializers */
3879         ir_type *owner = get_entity_owner(entity);
3880         if (is_Union_type(owner)) {
3881                 return;
3882         }
3883
3884         ir_type *ent_type = get_entity_type(entity);
3885         /* create sub-initializers for a compound type */
3886         if (is_compound_type(ent_type)) {
3887                 unsigned n_members = get_compound_n_members(ent_type);
3888                 for (unsigned n = 0; n < n_members; ++n) {
3889                         ir_entity *member = get_compound_member(ent_type, n);
3890                         ir_node   *addr   = new_d_simpleSel(dbgi, new_NoMem(), base_addr,
3891                                                                 member);
3892                         create_dynamic_null_initializer(member, dbgi, addr);
3893                 }
3894                 return;
3895         }
3896         if (is_Array_type(ent_type)) {
3897                 assert(has_array_upper_bound(ent_type, 0));
3898                 long n = get_array_upper_bound_int(ent_type, 0);
3899                 for (long i = 0; i < n; ++i) {
3900                         ir_mode   *mode_uint = atomic_modes[ATOMIC_TYPE_UINT];
3901                         ir_tarval *index_tv = new_tarval_from_long(i, mode_uint);
3902                         ir_node   *cnst     = new_d_Const(dbgi, index_tv);
3903                         ir_node   *in[1]    = { cnst };
3904                         ir_entity *arrent   = get_array_element_entity(ent_type);
3905                         ir_node   *addr     = new_d_Sel(dbgi, new_NoMem(), base_addr, 1, in,
3906                                                         arrent);
3907                         create_dynamic_null_initializer(arrent, dbgi, addr);
3908                 }
3909                 return;
3910         }
3911
3912         ir_mode *value_mode = get_type_mode(ent_type);
3913         ir_node *node       = new_Const(get_mode_null(value_mode));
3914
3915         /* is it a bitfield type? */
3916         if (is_Primitive_type(ent_type) &&
3917                         get_primitive_base_type(ent_type) != NULL) {
3918                 bitfield_store_to_firm(dbgi, entity, base_addr, node, false, false);
3919                 return;
3920         }
3921
3922         ir_node *mem    = get_store();
3923         ir_node *store  = new_d_Store(dbgi, mem, base_addr, node, cons_none);
3924         ir_node *proj_m = new_Proj(store, mode_M, pn_Store_M);
3925         set_store(proj_m);
3926 }
3927
3928 static void create_dynamic_initializer_sub(ir_initializer_t *initializer,
3929                 ir_entity *entity, ir_type *type, dbg_info *dbgi, ir_node *base_addr)
3930 {
3931         switch(get_initializer_kind(initializer)) {
3932         case IR_INITIALIZER_NULL:
3933                 create_dynamic_null_initializer(entity, dbgi, base_addr);
3934                 return;
3935         case IR_INITIALIZER_CONST: {
3936                 ir_node *node     = get_initializer_const_value(initializer);
3937                 ir_type *ent_type = get_entity_type(entity);
3938
3939                 /* is it a bitfield type? */
3940                 if (is_Primitive_type(ent_type) &&
3941                                 get_primitive_base_type(ent_type) != NULL) {
3942                         bitfield_store_to_firm(dbgi, entity, base_addr, node, false, false);
3943                         return;
3944                 }
3945
3946                 ir_node *mem = get_store();
3947                 ir_node *new_mem;
3948                 if (is_compound_type(ent_type)) {
3949                         ir_node *copyb = new_d_CopyB(dbgi, mem, base_addr, node, ent_type);
3950                         new_mem = new_Proj(copyb, mode_M, pn_CopyB_M);
3951                 } else {
3952                         assert(get_type_mode(type) == get_irn_mode(node));
3953                         ir_node *store = new_d_Store(dbgi, mem, base_addr, node, cons_none);
3954                         new_mem = new_Proj(store, mode_M, pn_Store_M);
3955                 }
3956                 set_store(new_mem);
3957                 return;
3958         }
3959         case IR_INITIALIZER_TARVAL: {
3960                 ir_tarval *tv       = get_initializer_tarval_value(initializer);
3961                 ir_node   *cnst     = new_d_Const(dbgi, tv);
3962                 ir_type   *ent_type = get_entity_type(entity);
3963
3964                 /* is it a bitfield type? */
3965                 if (is_Primitive_type(ent_type) &&
3966                                 get_primitive_base_type(ent_type) != NULL) {
3967                         bitfield_store_to_firm(dbgi, entity, base_addr, cnst, false, false);
3968                         return;
3969                 }
3970
3971                 assert(get_type_mode(type) == get_tarval_mode(tv));
3972                 ir_node *mem    = get_store();
3973                 ir_node *store  = new_d_Store(dbgi, mem, base_addr, cnst, cons_none);
3974                 ir_node *proj_m = new_Proj(store, mode_M, pn_Store_M);
3975                 set_store(proj_m);
3976                 return;
3977         }
3978         case IR_INITIALIZER_COMPOUND: {
3979                 assert(is_compound_type(type) || is_Array_type(type));
3980                 int n_members;
3981                 if (is_Array_type(type)) {
3982                         assert(has_array_upper_bound(type, 0));
3983                         n_members = get_array_upper_bound_int(type, 0);
3984                 } else {
3985                         n_members = get_compound_n_members(type);
3986                 }
3987
3988                 if (get_initializer_compound_n_entries(initializer)
3989                                 != (unsigned) n_members)
3990                         panic("initializer doesn't match compound type");
3991
3992                 for (int i = 0; i < n_members; ++i) {
3993                         ir_node   *addr;
3994                         ir_type   *irtype;
3995                         ir_entity *sub_entity;
3996                         if (is_Array_type(type)) {
3997                                 ir_mode   *mode_uint = atomic_modes[ATOMIC_TYPE_UINT];
3998                                 ir_tarval *index_tv = new_tarval_from_long(i, mode_uint);
3999                                 ir_node   *cnst     = new_d_Const(dbgi, index_tv);
4000                                 ir_node   *in[1]    = { cnst };
4001                                 irtype     = get_array_element_type(type);
4002                                 sub_entity = get_array_element_entity(type);
4003                                 addr       = new_d_Sel(dbgi, new_NoMem(), base_addr, 1, in,
4004                                                        sub_entity);
4005                         } else {
4006                                 sub_entity = get_compound_member(type, i);
4007                                 irtype     = get_entity_type(sub_entity);
4008                                 addr       = new_d_simpleSel(dbgi, new_NoMem(), base_addr,
4009                                                              sub_entity);
4010                         }
4011
4012                         ir_initializer_t *sub_init
4013                                 = get_initializer_compound_value(initializer, i);
4014
4015                         create_dynamic_initializer_sub(sub_init, sub_entity, irtype, dbgi,
4016                                                        addr);
4017                 }
4018                 return;
4019         }
4020         }
4021
4022         panic("invalid ir_initializer");
4023 }
4024
4025 static void create_dynamic_initializer(ir_initializer_t *initializer,
4026                 dbg_info *dbgi, ir_entity *entity)
4027 {
4028         ir_node *frame     = get_irg_frame(current_ir_graph);
4029         ir_node *base_addr = new_d_simpleSel(dbgi, new_NoMem(), frame, entity);
4030         ir_type *type      = get_entity_type(entity);
4031
4032         create_dynamic_initializer_sub(initializer, entity, type, dbgi, base_addr);
4033 }
4034
4035 static void create_local_initializer(initializer_t *initializer, dbg_info *dbgi,
4036                                      ir_entity *entity, type_t *type)
4037 {
4038         ir_node *memory = get_store();
4039         ir_node *nomem  = new_NoMem();
4040         ir_node *frame  = get_irg_frame(current_ir_graph);
4041         ir_node *addr   = new_d_simpleSel(dbgi, nomem, frame, entity);
4042
4043         if (initializer->kind == INITIALIZER_VALUE) {
4044                 initializer_value_t *initializer_value = &initializer->value;
4045
4046                 ir_node *value = expression_to_firm(initializer_value->value);
4047                 type = skip_typeref(type);
4048                 assign_value(dbgi, addr, type, value);
4049                 return;
4050         }
4051
4052         if (is_constant_initializer(initializer) == EXPR_CLASS_VARIABLE) {
4053                 ir_initializer_t *irinitializer
4054                         = create_ir_initializer(initializer, type);
4055
4056                 create_dynamic_initializer(irinitializer, dbgi, entity);
4057                 return;
4058         }
4059
4060         /* create a "template" entity which is copied to the entity on the stack */
4061         ir_entity *const init_entity
4062                 = create_initializer_entity(dbgi, initializer, type);
4063         ir_node *const src_addr = create_symconst(dbgi, init_entity);
4064         ir_type *const irtype   = get_ir_type(type);
4065         ir_node *const copyb    = new_d_CopyB(dbgi, memory, addr, src_addr, irtype);
4066
4067         ir_node *const copyb_mem = new_Proj(copyb, mode_M, pn_CopyB_M);
4068         set_store(copyb_mem);
4069 }
4070
4071 static void create_initializer_local_variable_entity(entity_t *entity)
4072 {
4073         assert(entity->kind == ENTITY_VARIABLE);
4074         initializer_t *initializer = entity->variable.initializer;
4075         dbg_info      *dbgi        = get_dbg_info(&entity->base.pos);
4076         ir_entity     *irentity    = entity->variable.v.entity;
4077         type_t        *type        = entity->declaration.type;
4078
4079         create_local_initializer(initializer, dbgi, irentity, type);
4080 }
4081
4082 static void create_variable_initializer(entity_t *entity)
4083 {
4084         assert(entity->kind == ENTITY_VARIABLE);
4085         initializer_t *initializer = entity->variable.initializer;
4086         if (initializer == NULL)
4087                 return;
4088
4089         declaration_kind_t declaration_kind
4090                 = (declaration_kind_t) entity->declaration.kind;
4091         if (declaration_kind == DECLARATION_KIND_LOCAL_VARIABLE_ENTITY) {
4092                 create_initializer_local_variable_entity(entity);
4093                 return;
4094         }
4095
4096         type_t            *type = entity->declaration.type;
4097         type_qualifiers_t  tq   = get_type_qualifier(type, true);
4098
4099         if (initializer->kind == INITIALIZER_VALUE) {
4100                 expression_t *      value     = initializer->value.value;
4101                 type_t       *const init_type = skip_typeref(value->base.type);
4102
4103                 if (!is_type_scalar(init_type)) {
4104                         /* skip convs */
4105                         while (value->kind == EXPR_UNARY_CAST)
4106                                 value = value->unary.value;
4107
4108                         if (value->kind != EXPR_COMPOUND_LITERAL)
4109                                 panic("expected non-scalar initializer to be a compound literal");
4110                         initializer = value->compound_literal.initializer;
4111                         goto have_initializer;
4112                 }
4113
4114                 ir_node  *      node = expression_to_firm(value);
4115                 dbg_info *const dbgi = get_dbg_info(&entity->base.pos);
4116                 node = conv_to_storage_type(dbgi, node, init_type);
4117
4118                 if (declaration_kind == DECLARATION_KIND_LOCAL_VARIABLE) {
4119                         set_value(entity->variable.v.value_number, node);
4120                 } else {
4121                         assert(declaration_kind == DECLARATION_KIND_GLOBAL_VARIABLE);
4122
4123                         ir_entity *irentity = entity->variable.v.entity;
4124
4125                         if (tq & TYPE_QUALIFIER_CONST
4126                                         && get_entity_owner(irentity) != get_tls_type()) {
4127                                 add_entity_linkage(irentity, IR_LINKAGE_CONSTANT);
4128                         }
4129                         set_atomic_ent_value(irentity, node);
4130                 }
4131         } else {
4132 have_initializer:
4133                 assert(declaration_kind == DECLARATION_KIND_LOCAL_VARIABLE_ENTITY ||
4134                        declaration_kind == DECLARATION_KIND_GLOBAL_VARIABLE);
4135
4136                 ir_entity        *irentity        = entity->variable.v.entity;
4137                 ir_initializer_t *irinitializer
4138                         = create_ir_initializer(initializer, type);
4139
4140                 if (tq & TYPE_QUALIFIER_CONST) {
4141                         add_entity_linkage(irentity, IR_LINKAGE_CONSTANT);
4142                 }
4143                 set_entity_initializer(irentity, irinitializer);
4144         }
4145 }
4146
4147 static void create_variable_length_array(entity_t *entity)
4148 {
4149         assert(entity->kind == ENTITY_VARIABLE);
4150         assert(entity->variable.initializer == NULL);
4151
4152         entity->declaration.kind    = DECLARATION_KIND_VARIABLE_LENGTH_ARRAY;
4153         entity->variable.v.vla_base = NULL;
4154
4155         /* TODO: record VLA somewhere so we create the free node when we leave
4156          * it's scope */
4157 }
4158
4159 static void allocate_variable_length_array(entity_t *entity)
4160 {
4161         assert(entity->kind == ENTITY_VARIABLE);
4162         assert(entity->variable.initializer == NULL);
4163         assert(currently_reachable());
4164
4165         dbg_info *dbgi      = get_dbg_info(&entity->base.pos);
4166         type_t   *type      = entity->declaration.type;
4167         ir_type  *el_type   = get_ir_type(type->array.element_type);
4168
4169         /* make sure size_node is calculated */
4170         get_type_size_node(type);
4171         ir_node  *elems = type->array.size_node;
4172         ir_node  *mem   = get_store();
4173         ir_node  *alloc = new_d_Alloc(dbgi, mem, elems, el_type, stack_alloc);
4174
4175         ir_node  *proj_m = new_d_Proj(dbgi, alloc, mode_M, pn_Alloc_M);
4176         ir_node  *addr   = new_d_Proj(dbgi, alloc, mode_P_data, pn_Alloc_res);
4177         set_store(proj_m);
4178
4179         assert(entity->declaration.kind == DECLARATION_KIND_VARIABLE_LENGTH_ARRAY);
4180         entity->variable.v.vla_base = addr;
4181 }
4182
4183 static bool var_needs_entity(variable_t const *const var)
4184 {
4185         if (var->address_taken)
4186                 return true;
4187         type_t *const type = skip_typeref(var->base.type);
4188         return !is_type_scalar(type) || type->base.qualifiers & TYPE_QUALIFIER_VOLATILE;
4189 }
4190
4191 /**
4192  * Creates a Firm local variable from a declaration.
4193  */
4194 static void create_local_variable(entity_t *entity)
4195 {
4196         assert(entity->kind == ENTITY_VARIABLE);
4197         assert(entity->declaration.kind == DECLARATION_KIND_UNKNOWN);
4198
4199         if (!var_needs_entity(&entity->variable)) {
4200                 entity->declaration.kind        = DECLARATION_KIND_LOCAL_VARIABLE;
4201                 entity->variable.v.value_number = next_value_number_function;
4202                 set_irg_loc_description(current_ir_graph, next_value_number_function, entity);
4203                 ++next_value_number_function;
4204                 return;
4205         }
4206
4207         /* is it a variable length array? */
4208         type_t *const type = skip_typeref(entity->declaration.type);
4209         if (is_type_array(type) && !type->array.size_constant) {
4210                 create_variable_length_array(entity);
4211                 return;
4212         }
4213
4214         ir_type *const frame_type = get_irg_frame_type(current_ir_graph);
4215         create_variable_entity(entity, DECLARATION_KIND_LOCAL_VARIABLE_ENTITY, frame_type);
4216 }
4217
4218 static void create_local_static_variable(entity_t *entity)
4219 {
4220         assert(entity->kind == ENTITY_VARIABLE);
4221         assert(entity->declaration.kind == DECLARATION_KIND_UNKNOWN);
4222
4223         type_t   *type           = skip_typeref(entity->declaration.type);
4224         ir_type  *const var_type = entity->variable.thread_local ?
4225                 get_tls_type() : get_glob_type();
4226         ir_type  *const irtype   = get_ir_type(type);
4227         dbg_info *const dbgi     = get_dbg_info(&entity->base.pos);
4228
4229         size_t l = strlen(entity->base.symbol->string);
4230         char   buf[l + sizeof(".%u")];
4231         snprintf(buf, sizeof(buf), "%s.%%u", entity->base.symbol->string);
4232         ident     *const id       = id_unique(buf);
4233         ir_entity *const irentity = new_d_entity(var_type, id, irtype, dbgi);
4234
4235         if (type->base.qualifiers & TYPE_QUALIFIER_VOLATILE) {
4236                 set_entity_volatility(irentity, volatility_is_volatile);
4237         }
4238
4239         entity->declaration.kind  = DECLARATION_KIND_GLOBAL_VARIABLE;
4240         entity->variable.v.entity = irentity;
4241
4242         set_entity_ld_ident(irentity, id);
4243         set_entity_visibility(irentity, ir_visibility_local);
4244
4245         if (entity->variable.initializer == NULL) {
4246                 ir_initializer_t *null_init = get_initializer_null();
4247                 set_entity_initializer(irentity, null_init);
4248         }
4249
4250         PUSH_IRG(get_const_code_irg());
4251         create_variable_initializer(entity);
4252         POP_IRG();
4253 }
4254
4255
4256
4257 static ir_node *return_statement_to_firm(return_statement_t *statement)
4258 {
4259         if (!currently_reachable())
4260                 return NULL;
4261
4262         dbg_info *const dbgi = get_dbg_info(&statement->base.pos);
4263         type_t   *const type = skip_typeref(current_function_entity->declaration.type->function.return_type);
4264         ir_node  *      res  = statement->value ? expression_to_firm(statement->value) : NULL;
4265
4266         int in_len;
4267         if (!is_type_void(type)) {
4268                 if (res) {
4269                         res = conv_to_storage_type(dbgi, res, type);
4270                 } else {
4271                         res = new_Unknown(get_ir_mode_storage(type));
4272                 }
4273                 in_len = 1;
4274         } else {
4275                 in_len = 0;
4276         }
4277
4278         ir_node *const in[1] = { res };
4279         ir_node *const store = get_store();
4280         ir_node *const ret   = new_d_Return(dbgi, store, in_len, in);
4281
4282         ir_node *end_block = get_irg_end_block(current_ir_graph);
4283         add_immBlock_pred(end_block, ret);
4284
4285         set_unreachable_now();
4286         return NULL;
4287 }
4288
4289 static ir_node *expression_statement_to_firm(expression_statement_t *statement)
4290 {
4291         if (!currently_reachable())
4292                 return NULL;
4293
4294         return expression_to_firm(statement->expression);
4295 }
4296
4297 static void create_local_declarations(entity_t*);
4298
4299 static ir_node *compound_statement_to_firm(compound_statement_t *compound)
4300 {
4301         create_local_declarations(compound->scope.entities);
4302
4303         ir_node     *result    = NULL;
4304         statement_t *statement = compound->statements;
4305         for ( ; statement != NULL; statement = statement->base.next) {
4306                 result = statement_to_firm(statement);
4307         }
4308
4309         return result;
4310 }
4311
4312 static void create_global_variable(entity_t *entity)
4313 {
4314         ir_linkage          linkage    = IR_LINKAGE_DEFAULT;
4315         ir_visibility       visibility = ir_visibility_external;
4316         storage_class_tag_t storage
4317                 = (storage_class_tag_t)entity->declaration.storage_class;
4318         decl_modifiers_t    modifiers  = entity->declaration.modifiers;
4319         assert(entity->kind == ENTITY_VARIABLE);
4320
4321         switch (storage) {
4322         case STORAGE_CLASS_EXTERN: visibility = ir_visibility_external; break;
4323         case STORAGE_CLASS_STATIC: visibility = ir_visibility_local;    break;
4324         case STORAGE_CLASS_NONE:   visibility = ir_visibility_external; break;
4325         case STORAGE_CLASS_TYPEDEF:
4326         case STORAGE_CLASS_AUTO:
4327         case STORAGE_CLASS_REGISTER:
4328                 panic("invalid storage class for global var");
4329         }
4330
4331         /* "common" symbols */
4332         if (storage == STORAGE_CLASS_NONE
4333             && entity->variable.initializer == NULL
4334             && !entity->variable.thread_local
4335             && (modifiers & DM_WEAK) == 0) {
4336                 linkage |= IR_LINKAGE_MERGE;
4337         }
4338
4339         ir_type *var_type = get_glob_type();
4340         if (entity->variable.thread_local) {
4341                 var_type = get_tls_type();
4342         }
4343         create_variable_entity(entity, DECLARATION_KIND_GLOBAL_VARIABLE, var_type);
4344         ir_entity *irentity = entity->variable.v.entity;
4345         add_entity_linkage(irentity, linkage);
4346         set_entity_visibility(irentity, visibility);
4347         if (entity->variable.initializer == NULL
4348             && storage != STORAGE_CLASS_EXTERN) {
4349                 ir_initializer_t *null_init = get_initializer_null();
4350                 set_entity_initializer(irentity, null_init);
4351         }
4352 }
4353
4354 static void create_local_declaration(entity_t *entity)
4355 {
4356         assert(is_declaration(entity));
4357
4358         /* construct type */
4359         (void) get_ir_type(entity->declaration.type);
4360         if (entity->base.symbol == NULL) {
4361                 return;
4362         }
4363
4364         switch ((storage_class_tag_t) entity->declaration.storage_class) {
4365         case STORAGE_CLASS_STATIC:
4366                 if (entity->kind == ENTITY_FUNCTION) {
4367                         (void)get_function_entity(entity, NULL);
4368                 } else {
4369                         create_local_static_variable(entity);
4370                 }
4371                 return;
4372         case STORAGE_CLASS_EXTERN:
4373                 if (entity->kind == ENTITY_FUNCTION) {
4374                         assert(entity->function.body == NULL);
4375                         (void)get_function_entity(entity, NULL);
4376                 } else {
4377                         create_global_variable(entity);
4378                         create_variable_initializer(entity);
4379                 }
4380                 return;
4381         case STORAGE_CLASS_NONE:
4382         case STORAGE_CLASS_AUTO:
4383         case STORAGE_CLASS_REGISTER:
4384                 if (entity->kind == ENTITY_FUNCTION) {
4385                         if (entity->function.body != NULL) {
4386                                 ir_type *owner = get_irg_frame_type(current_ir_graph);
4387                                 (void)get_function_entity(entity, owner);
4388                                 entity->declaration.kind = DECLARATION_KIND_INNER_FUNCTION;
4389                                 enqueue_inner_function(entity);
4390                         } else {
4391                                 (void)get_function_entity(entity, NULL);
4392                         }
4393                 } else {
4394                         create_local_variable(entity);
4395                 }
4396                 return;
4397         case STORAGE_CLASS_TYPEDEF:
4398                 break;
4399         }
4400         panic("invalid storage class");
4401 }
4402
4403 static void create_local_declarations(entity_t *e)
4404 {
4405         for (; e; e = e->base.next) {
4406                 if (is_declaration(e))
4407                         create_local_declaration(e);
4408         }
4409 }
4410
4411 static void initialize_local_declaration(entity_t *entity)
4412 {
4413         if (entity->base.symbol == NULL)
4414                 return;
4415
4416         // no need to emit code in dead blocks
4417         if (entity->declaration.storage_class != STORAGE_CLASS_STATIC
4418                         && !currently_reachable())
4419                 return;
4420
4421         switch ((declaration_kind_t) entity->declaration.kind) {
4422         case DECLARATION_KIND_LOCAL_VARIABLE:
4423         case DECLARATION_KIND_LOCAL_VARIABLE_ENTITY:
4424                 create_variable_initializer(entity);
4425                 return;
4426
4427         case DECLARATION_KIND_VARIABLE_LENGTH_ARRAY:
4428                 allocate_variable_length_array(entity);
4429                 return;
4430
4431         case DECLARATION_KIND_COMPOUND_MEMBER:
4432         case DECLARATION_KIND_GLOBAL_VARIABLE:
4433         case DECLARATION_KIND_FUNCTION:
4434         case DECLARATION_KIND_INNER_FUNCTION:
4435                 return;
4436
4437         case DECLARATION_KIND_PARAMETER:
4438         case DECLARATION_KIND_PARAMETER_ENTITY:
4439                 panic("can't initialize parameters");
4440
4441         case DECLARATION_KIND_UNKNOWN:
4442                 panic("can't initialize unknown declaration");
4443         }
4444         panic("invalid declaration kind");
4445 }
4446
4447 static ir_node *declaration_statement_to_firm(declaration_statement_t *statement)
4448 {
4449         entity_t *entity = statement->declarations_begin;
4450         if (entity == NULL)
4451                 return NULL;
4452
4453         entity_t *const last = statement->declarations_end;
4454         for ( ;; entity = entity->base.next) {
4455                 if (is_declaration(entity)) {
4456                         initialize_local_declaration(entity);
4457                 } else if (entity->kind == ENTITY_TYPEDEF) {
4458                         /* ยง6.7.7:3  Any array size expressions associated with variable length
4459                          * array declarators are evaluated each time the declaration of the
4460                          * typedef name is reached in the order of execution. */
4461                         type_t *const type = skip_typeref(entity->typedefe.type);
4462                         if (is_type_array(type) && type->array.is_vla)
4463                                 get_vla_size(&type->array);
4464                 }
4465                 if (entity == last)
4466                         break;
4467         }
4468
4469         return NULL;
4470 }
4471
4472 static ir_node *if_statement_to_firm(if_statement_t *statement)
4473 {
4474         create_local_declarations(statement->scope.entities);
4475
4476         /* Create the condition. */
4477         jump_target true_target;
4478         jump_target false_target;
4479         init_jump_target(&true_target,  NULL);
4480         init_jump_target(&false_target, NULL);
4481         if (currently_reachable())
4482                 create_condition_evaluation(statement->condition, &true_target, &false_target);
4483
4484         jump_target exit_target;
4485         init_jump_target(&exit_target, NULL);
4486
4487         /* Create the true statement. */
4488         enter_jump_target(&true_target);
4489         statement_to_firm(statement->true_statement);
4490         jump_to_target(&exit_target);
4491
4492         /* Create the false statement. */
4493         enter_jump_target(&false_target);
4494         if (statement->false_statement)
4495                 statement_to_firm(statement->false_statement);
4496         jump_to_target(&exit_target);
4497
4498         enter_jump_target(&exit_target);
4499         return NULL;
4500 }
4501
4502 static ir_node *do_while_statement_to_firm(do_while_statement_t *statement)
4503 {
4504         create_local_declarations(statement->scope.entities);
4505
4506         PUSH_BREAK(NULL);
4507         PUSH_CONTINUE(NULL);
4508
4509         expression_t *const cond = statement->condition;
4510         /* Avoid an explicit body block in case of do ... while (0);. */
4511         if (is_constant_expression(cond) == EXPR_CLASS_CONSTANT && !fold_constant_to_bool(cond)) {
4512                 /* do ... while (0);. */
4513                 statement_to_firm(statement->body);
4514                 jump_to_target(&continue_target);
4515                 enter_jump_target(&continue_target);
4516                 jump_to_target(&break_target);
4517         } else {
4518                 jump_target body_target;
4519                 init_jump_target(&body_target, NULL);
4520                 jump_to_target(&body_target);
4521                 enter_immature_jump_target(&body_target);
4522                 keep_loop();
4523                 statement_to_firm(statement->body);
4524                 jump_to_target(&continue_target);
4525                 if (enter_jump_target(&continue_target))
4526                         create_condition_evaluation(statement->condition, &body_target, &break_target);
4527                 enter_jump_target(&body_target);
4528         }
4529         enter_jump_target(&break_target);
4530
4531         POP_CONTINUE();
4532         POP_BREAK();
4533         return NULL;
4534 }
4535
4536 static ir_node *for_statement_to_firm(for_statement_t *statement)
4537 {
4538         create_local_declarations(statement->scope.entities);
4539
4540         if (currently_reachable()) {
4541                 entity_t *entity = statement->scope.entities;
4542                 for ( ; entity != NULL; entity = entity->base.next) {
4543                         if (!is_declaration(entity))
4544                                 continue;
4545
4546                         initialize_local_declaration(entity);
4547                 }
4548
4549                 if (statement->initialisation != NULL) {
4550                         expression_to_firm(statement->initialisation);
4551                 }
4552         }
4553
4554         /* Create the header block */
4555         jump_target header_target;
4556         init_jump_target(&header_target, NULL);
4557         jump_to_target(&header_target);
4558         enter_immature_jump_target(&header_target);
4559         keep_loop();
4560
4561         expression_t *const step = statement->step;
4562         PUSH_BREAK(NULL);
4563         PUSH_CONTINUE(step ? NULL : header_target.block);
4564
4565         /* Create the condition. */
4566         expression_t *const cond = statement->condition;
4567         if (cond && (is_constant_expression(cond) != EXPR_CLASS_CONSTANT || !fold_constant_to_bool(cond))) {
4568                 jump_target body_target;
4569                 init_jump_target(&body_target, NULL);
4570                 create_condition_evaluation(cond, &body_target, &break_target);
4571                 enter_jump_target(&body_target);
4572         }
4573
4574         /* Create the loop body. */
4575         statement_to_firm(statement->body);
4576         jump_to_target(&continue_target);
4577
4578         /* Create the step code. */
4579         if (step && enter_jump_target(&continue_target)) {
4580                 expression_to_firm(step);
4581                 jump_to_target(&header_target);
4582         }
4583
4584         enter_jump_target(&header_target);
4585         enter_jump_target(&break_target);
4586
4587         POP_CONTINUE();
4588         POP_BREAK();
4589         return NULL;
4590 }
4591
4592 static ir_switch_table *create_switch_table(const switch_statement_t *statement)
4593 {
4594         /* determine number of cases */
4595         size_t n_cases = 0;
4596         for (case_label_statement_t *l = statement->first_case; l != NULL;
4597              l = l->next) {
4598                 /* default case */
4599                 if (l->expression == NULL)
4600                         continue;
4601                 if (l->is_empty_range)
4602                         continue;
4603                 ++n_cases;
4604         }
4605
4606         ir_switch_table *res = ir_new_switch_table(current_ir_graph, n_cases);
4607         size_t           i   = 0;
4608         for (case_label_statement_t *l = statement->first_case; l != NULL;
4609              l = l->next) {
4610             if (l->expression == NULL) {
4611                         l->pn = pn_Switch_default;
4612                         continue;
4613                 }
4614                 if (l->is_empty_range)
4615                         continue;
4616                 ir_tarval *min = l->first_case;
4617                 ir_tarval *max = l->last_case;
4618                 long       pn  = (long) i+1;
4619                 ir_switch_table_set(res, i++, min, max, pn);
4620                 l->pn = pn;
4621         }
4622         return res;
4623 }
4624
4625 static ir_node *switch_statement_to_firm(switch_statement_t *statement)
4626 {
4627         dbg_info *dbgi        = get_dbg_info(&statement->base.pos);
4628         ir_node  *switch_node = NULL;
4629
4630         if (currently_reachable()) {
4631                 ir_node *expression = expression_to_firm(statement->expression);
4632                 ir_switch_table *table = create_switch_table(statement);
4633                 unsigned n_outs = (unsigned)ir_switch_table_get_n_entries(table) + 1;
4634
4635                 switch_node = new_d_Switch(dbgi, expression, n_outs, table);
4636         }
4637
4638         set_unreachable_now();
4639
4640         PUSH_BREAK(NULL);
4641         ir_node *const old_switch            = current_switch;
4642         const bool     old_saw_default_label = saw_default_label;
4643         saw_default_label                    = false;
4644         current_switch                       = switch_node;
4645
4646         statement_to_firm(statement->body);
4647         jump_to_target(&break_target);
4648
4649         if (!saw_default_label && switch_node) {
4650                 ir_node *proj = new_d_Proj(dbgi, switch_node, mode_X, pn_Switch_default);
4651                 add_pred_to_jump_target(&break_target, proj);
4652         }
4653
4654         enter_jump_target(&break_target);
4655
4656         assert(current_switch == switch_node);
4657         current_switch    = old_switch;
4658         saw_default_label = old_saw_default_label;
4659         POP_BREAK();
4660         return NULL;
4661 }
4662
4663 static ir_node *case_label_to_firm(const case_label_statement_t *statement)
4664 {
4665         if (current_switch != NULL && !statement->is_empty_range) {
4666                 jump_target case_target;
4667                 init_jump_target(&case_target, NULL);
4668
4669                 /* Fallthrough from previous case */
4670                 jump_to_target(&case_target);
4671
4672                 ir_node *const proj = new_Proj(current_switch, mode_X, statement->pn);
4673                 add_pred_to_jump_target(&case_target, proj);
4674                 if (statement->expression == NULL)
4675                         saw_default_label = true;
4676
4677                 enter_jump_target(&case_target);
4678         }
4679
4680         return statement_to_firm(statement->statement);
4681 }
4682
4683 static ir_node *label_to_firm(const label_statement_t *statement)
4684 {
4685         label_t *const label = statement->label;
4686         prepare_label_target(label);
4687         jump_to_target(&label->target);
4688         if (--label->n_users == 0) {
4689                 enter_jump_target(&label->target);
4690         } else {
4691                 enter_immature_jump_target(&label->target);
4692                 keep_loop();
4693         }
4694
4695         return statement_to_firm(statement->statement);
4696 }
4697
4698 static ir_node *goto_statement_to_firm(goto_statement_t *const stmt)
4699 {
4700         label_t *const label = stmt->label;
4701         prepare_label_target(label);
4702         jump_to_target(&label->target);
4703         if (--label->n_users == 0)
4704                 enter_jump_target(&label->target);
4705         set_unreachable_now();
4706         return NULL;
4707 }
4708
4709 static ir_node *computed_goto_to_firm(computed_goto_statement_t const *const statement)
4710 {
4711         if (currently_reachable()) {
4712                 ir_node *const op = expression_to_firm(statement->expression);
4713                 ARR_APP1(ir_node*, ijmp_ops, op);
4714                 jump_to_target(&ijmp_target);
4715                 set_unreachable_now();
4716         }
4717         return NULL;
4718 }
4719
4720 static ir_node *asm_statement_to_firm(const asm_statement_t *statement)
4721 {
4722         bool           needs_memory = statement->is_volatile;
4723         size_t         n_clobbers   = 0;
4724         asm_clobber_t *clobber      = statement->clobbers;
4725         for ( ; clobber != NULL; clobber = clobber->next) {
4726                 const char *clobber_str = clobber->clobber.begin;
4727
4728                 if (!be_is_valid_clobber(clobber_str)) {
4729                         errorf(&statement->base.pos,
4730                                    "invalid clobber '%s' specified", clobber->clobber);
4731                         continue;
4732                 }
4733
4734                 if (streq(clobber_str, "memory")) {
4735                         needs_memory = true;
4736                         continue;
4737                 }
4738
4739                 ident *id = new_id_from_str(clobber_str);
4740                 obstack_ptr_grow(&asm_obst, id);
4741                 ++n_clobbers;
4742         }
4743         assert(obstack_object_size(&asm_obst) == n_clobbers * sizeof(ident*));
4744         ident **clobbers = NULL;
4745         if (n_clobbers > 0) {
4746                 clobbers = obstack_finish(&asm_obst);
4747         }
4748
4749         size_t n_inputs  = 0;
4750         asm_argument_t *argument = statement->inputs;
4751         for ( ; argument != NULL; argument = argument->next)
4752                 n_inputs++;
4753         size_t n_outputs = 0;
4754         argument = statement->outputs;
4755         for ( ; argument != NULL; argument = argument->next)
4756                 n_outputs++;
4757
4758         unsigned next_pos = 0;
4759
4760         ir_node *ins[n_inputs + n_outputs + 1];
4761         size_t   in_size = 0;
4762
4763         ir_asm_constraint tmp_in_constraints[n_outputs];
4764
4765         const expression_t *out_exprs[n_outputs];
4766         ir_node            *out_addrs[n_outputs];
4767         size_t              out_size = 0;
4768
4769         argument = statement->outputs;
4770         for ( ; argument != NULL; argument = argument->next) {
4771                 const char *constraints = argument->constraints.begin;
4772                 asm_constraint_flags_t asm_flags
4773                         = be_parse_asm_constraints(constraints);
4774
4775                 {
4776                         position_t const *const pos = &statement->base.pos;
4777                         if (asm_flags & ASM_CONSTRAINT_FLAG_NO_SUPPORT) {
4778                                 warningf(WARN_OTHER, pos, "some constraints in '%s' are not supported", constraints);
4779                         }
4780                         if (asm_flags & ASM_CONSTRAINT_FLAG_INVALID) {
4781                                 errorf(pos, "some constraints in '%s' are invalid", constraints);
4782                                 continue;
4783                         }
4784                         if (! (asm_flags & ASM_CONSTRAINT_FLAG_MODIFIER_WRITE)) {
4785                                 errorf(pos, "no write flag specified for output constraints '%s'", constraints);
4786                                 continue;
4787                         }
4788                 }
4789
4790                 unsigned pos = next_pos++;
4791                 if ( (asm_flags & ASM_CONSTRAINT_FLAG_SUPPORTS_IMMEDIATE)
4792                                 || (asm_flags & ASM_CONSTRAINT_FLAG_SUPPORTS_REGISTER) ) {
4793                         expression_t *expr = argument->expression;
4794                         ir_node      *addr = expression_to_addr(expr);
4795                         /* in+output, construct an artifical same_as constraint on the
4796                          * input */
4797                         if (asm_flags & ASM_CONSTRAINT_FLAG_MODIFIER_READ) {
4798                                 char     buf[64];
4799                                 ir_node *value = get_value_from_lvalue(expr, addr);
4800
4801                                 snprintf(buf, sizeof(buf), "%u", (unsigned) out_size);
4802
4803                                 ir_asm_constraint constraint;
4804                                 constraint.pos              = pos;
4805                                 constraint.constraint       = new_id_from_str(buf);
4806                                 constraint.mode             = get_ir_mode_storage(expr->base.type);
4807                                 tmp_in_constraints[in_size] = constraint;
4808                                 ins[in_size] = value;
4809
4810                                 ++in_size;
4811                         }
4812
4813                         out_exprs[out_size] = expr;
4814                         out_addrs[out_size] = addr;
4815                         ++out_size;
4816                 } else if (asm_flags & ASM_CONSTRAINT_FLAG_SUPPORTS_MEMOP) {
4817                         /* pure memory ops need no input (but we have to make sure we
4818                          * attach to the memory) */
4819                         assert(! (asm_flags &
4820                                                 (ASM_CONSTRAINT_FLAG_SUPPORTS_IMMEDIATE
4821                                                  | ASM_CONSTRAINT_FLAG_SUPPORTS_REGISTER)));
4822                         needs_memory = true;
4823
4824                         /* we need to attach the address to the inputs */
4825                         expression_t *expr = argument->expression;
4826
4827                         ir_asm_constraint constraint;
4828                         constraint.pos              = pos;
4829                         constraint.constraint       = new_id_from_str(constraints);
4830                         constraint.mode             = mode_M;
4831                         tmp_in_constraints[in_size] = constraint;
4832
4833                         ins[in_size] = expression_to_addr(expr);
4834                         ++in_size;
4835                         continue;
4836                 } else {
4837                         errorf(&statement->base.pos,
4838                                "only modifiers but no place set in constraints '%s'",
4839                                constraints);
4840                         continue;
4841                 }
4842
4843                 ir_asm_constraint constraint;
4844                 constraint.pos        = pos;
4845                 constraint.constraint = new_id_from_str(constraints);
4846                 constraint.mode       = get_ir_mode_storage(argument->expression->base.type);
4847
4848                 obstack_grow(&asm_obst, &constraint, sizeof(constraint));
4849         }
4850         assert(obstack_object_size(&asm_obst)
4851                         == out_size * sizeof(ir_asm_constraint));
4852         ir_asm_constraint *output_constraints = obstack_finish(&asm_obst);
4853
4854
4855         obstack_grow(&asm_obst, tmp_in_constraints,
4856                      in_size * sizeof(tmp_in_constraints[0]));
4857         /* find and count input and output arguments */
4858         argument = statement->inputs;
4859         for ( ; argument != NULL; argument = argument->next) {
4860                 const char *constraints = argument->constraints.begin;
4861                 asm_constraint_flags_t asm_flags
4862                         = be_parse_asm_constraints(constraints);
4863
4864                 if (asm_flags & ASM_CONSTRAINT_FLAG_NO_SUPPORT) {
4865                         errorf(&statement->base.pos,
4866                                "some constraints in '%s' are not supported", constraints);
4867                         continue;
4868                 }
4869                 if (asm_flags & ASM_CONSTRAINT_FLAG_INVALID) {
4870                         errorf(&statement->base.pos,
4871                                "some constraints in '%s' are invalid", constraints);
4872                         continue;
4873                 }
4874                 if (asm_flags & ASM_CONSTRAINT_FLAG_MODIFIER_WRITE) {
4875                         errorf(&statement->base.pos,
4876                                "write flag specified for input constraints '%s'",
4877                                constraints);
4878                         continue;
4879                 }
4880
4881                 ir_node *input;
4882                 if ( (asm_flags & ASM_CONSTRAINT_FLAG_SUPPORTS_IMMEDIATE)
4883                                 || (asm_flags & ASM_CONSTRAINT_FLAG_SUPPORTS_REGISTER) ) {
4884                         /* we can treat this as "normal" input */
4885                         input = expression_to_firm(argument->expression);
4886                 } else if (asm_flags & ASM_CONSTRAINT_FLAG_SUPPORTS_MEMOP) {
4887                         /* pure memory ops need no input (but we have to make sure we
4888                          * attach to the memory) */
4889                         assert(! (asm_flags &
4890                                                 (ASM_CONSTRAINT_FLAG_SUPPORTS_IMMEDIATE
4891                                                  | ASM_CONSTRAINT_FLAG_SUPPORTS_REGISTER)));
4892                         needs_memory = true;
4893                         input = expression_to_addr(argument->expression);
4894                 } else {
4895                         errorf(&statement->base.pos,
4896                                "only modifiers but no place set in constraints '%s'",
4897                                constraints);
4898                         continue;
4899                 }
4900
4901                 ir_asm_constraint constraint;
4902                 constraint.pos        = next_pos++;
4903                 constraint.constraint = new_id_from_str(constraints);
4904                 constraint.mode       = get_irn_mode(input);
4905
4906                 obstack_grow(&asm_obst, &constraint, sizeof(constraint));
4907                 ins[in_size++] = input;
4908         }
4909
4910         ir_node *mem = needs_memory ? get_store() : new_NoMem();
4911         assert(obstack_object_size(&asm_obst)
4912                         == in_size * sizeof(ir_asm_constraint));
4913         ir_asm_constraint *input_constraints = obstack_finish(&asm_obst);
4914
4915         /* create asm node */
4916         dbg_info *dbgi = get_dbg_info(&statement->base.pos);
4917
4918         ident *asm_text = new_id_from_str(statement->asm_text.begin);
4919
4920         ir_node *node = new_d_ASM(dbgi, mem, in_size, ins, input_constraints,
4921                                   out_size, output_constraints,
4922                                   n_clobbers, clobbers, asm_text);
4923
4924         if (statement->is_volatile) {
4925                 set_irn_pinned(node, op_pin_state_pinned);
4926         } else {
4927                 set_irn_pinned(node, op_pin_state_floats);
4928         }
4929
4930         /* create output projs & connect them */
4931         if (needs_memory) {
4932                 ir_node *projm = new_Proj(node, mode_M, out_size);
4933                 set_store(projm);
4934         }
4935
4936         size_t i;
4937         for (i = 0; i < out_size; ++i) {
4938                 const expression_t *out_expr = out_exprs[i];
4939                 long                pn       = i;
4940                 ir_mode            *mode     = get_ir_mode_storage(out_expr->base.type);
4941                 ir_node            *proj     = new_Proj(node, mode, pn);
4942                 ir_node            *addr     = out_addrs[i];
4943
4944                 set_value_for_expression_addr(out_expr, proj, addr);
4945         }
4946
4947         return NULL;
4948 }
4949
4950 static ir_node *ms_try_statement_to_firm(ms_try_statement_t *statement)
4951 {
4952         statement_to_firm(statement->try_statement);
4953         position_t const *const pos = &statement->base.pos;
4954         warningf(WARN_OTHER, pos, "structured exception handling ignored");
4955         return NULL;
4956 }
4957
4958 static ir_node *leave_statement_to_firm(leave_statement_t *statement)
4959 {
4960         errorf(&statement->base.pos, "__leave not supported yet");
4961         return NULL;
4962 }
4963
4964 /**
4965  * Transform a statement.
4966  */
4967 static ir_node *statement_to_firm(statement_t *const stmt)
4968 {
4969 #ifndef NDEBUG
4970         assert(!stmt->base.transformed);
4971         stmt->base.transformed = true;
4972 #endif
4973
4974         switch (stmt->kind) {
4975         case STATEMENT_ASM:           return asm_statement_to_firm(        &stmt->asms);
4976         case STATEMENT_CASE_LABEL:    return case_label_to_firm(           &stmt->case_label);
4977         case STATEMENT_COMPOUND:      return compound_statement_to_firm(   &stmt->compound);
4978         case STATEMENT_COMPUTED_GOTO: return computed_goto_to_firm(        &stmt->computed_goto);
4979         case STATEMENT_DECLARATION:   return declaration_statement_to_firm(&stmt->declaration);
4980         case STATEMENT_DO_WHILE:      return do_while_statement_to_firm(   &stmt->do_while);
4981         case STATEMENT_EMPTY:         return NULL; /* nothing */
4982         case STATEMENT_EXPRESSION:    return expression_statement_to_firm( &stmt->expression);
4983         case STATEMENT_FOR:           return for_statement_to_firm(        &stmt->fors);
4984         case STATEMENT_GOTO:          return goto_statement_to_firm(       &stmt->gotos);
4985         case STATEMENT_IF:            return if_statement_to_firm(         &stmt->ifs);
4986         case STATEMENT_LABEL:         return label_to_firm(                &stmt->label);
4987         case STATEMENT_LEAVE:         return leave_statement_to_firm(      &stmt->leave);
4988         case STATEMENT_MS_TRY:        return ms_try_statement_to_firm(     &stmt->ms_try);
4989         case STATEMENT_RETURN:        return return_statement_to_firm(     &stmt->returns);
4990         case STATEMENT_SWITCH:        return switch_statement_to_firm(     &stmt->switchs);
4991
4992         {
4993                 jump_target *tgt;
4994         case STATEMENT_BREAK:    tgt = &break_target;    goto jump;
4995         case STATEMENT_CONTINUE: tgt = &continue_target; goto jump;
4996 jump:
4997                 jump_to_target(tgt);
4998                 set_unreachable_now();
4999                 return NULL;
5000         }
5001
5002         case STATEMENT_ERROR: panic("error statement");
5003         }
5004         panic("statement not implemented");
5005 }
5006
5007 static int count_local_variables(const entity_t *entity,
5008                                  const entity_t *const last)
5009 {
5010         int count = 0;
5011         entity_t const *const end = last != NULL ? last->base.next : NULL;
5012         for (; entity != end; entity = entity->base.next) {
5013                 if ((entity->kind == ENTITY_VARIABLE || entity->kind == ENTITY_PARAMETER) &&
5014                     !var_needs_entity(&entity->variable))
5015                         ++count;
5016         }
5017         return count;
5018 }
5019
5020 static void count_local_variables_in_stmt(statement_t *stmt, void *const env)
5021 {
5022         int *const count = env;
5023
5024         switch (stmt->kind) {
5025         case STATEMENT_DECLARATION: {
5026                 const declaration_statement_t *const decl_stmt = &stmt->declaration;
5027                 *count += count_local_variables(decl_stmt->declarations_begin,
5028                                 decl_stmt->declarations_end);
5029                 break;
5030         }
5031
5032         case STATEMENT_FOR:
5033                 *count += count_local_variables(stmt->fors.scope.entities, NULL);
5034                 break;
5035
5036         default:
5037                 break;
5038         }
5039 }
5040
5041 /**
5042  * Return the number of local (alias free) variables used by a function.
5043  */
5044 static int get_function_n_local_vars(entity_t *entity)
5045 {
5046         const function_t *function = &entity->function;
5047         int count = 0;
5048
5049         /* count parameters */
5050         count += count_local_variables(function->parameters.entities, NULL);
5051
5052         /* count local variables declared in body */
5053         walk_statements(function->body, count_local_variables_in_stmt, &count);
5054         return count;
5055 }
5056
5057 /**
5058  * Build Firm code for the parameters of a function.
5059  */
5060 static void initialize_function_parameters(entity_t *entity)
5061 {
5062         assert(entity->kind == ENTITY_FUNCTION);
5063         ir_graph *irg             = current_ir_graph;
5064         ir_node  *args            = get_irg_args(irg);
5065         int       n               = 0;
5066         ir_type  *function_irtype;
5067
5068         if (entity->function.need_closure) {
5069                 /* add an extra parameter for the static link */
5070                 entity->function.static_link = new_r_Proj(args, mode_P_data, 0);
5071                 ++n;
5072
5073                 /* Matze: IMO this is wrong, nested functions should have an own
5074                  * type and not rely on strange parameters... */
5075                 function_irtype = create_method_type(&entity->declaration.type->function, true);
5076         } else {
5077                 function_irtype = get_ir_type(entity->declaration.type);
5078         }
5079
5080
5081
5082         entity_t *parameter = entity->function.parameters.entities;
5083         for ( ; parameter != NULL; parameter = parameter->base.next, ++n) {
5084                 if (parameter->kind != ENTITY_PARAMETER)
5085                         continue;
5086
5087                 assert(parameter->declaration.kind == DECLARATION_KIND_UNKNOWN);
5088                 type_t *type = skip_typeref(parameter->declaration.type);
5089
5090                 dbg_info *const dbgi         = get_dbg_info(&parameter->base.pos);
5091                 ir_type  *const param_irtype = get_method_param_type(function_irtype, n);
5092                 if (var_needs_entity(&parameter->variable)) {
5093                         ir_type   *frame_type = get_irg_frame_type(irg);
5094                         ir_entity *param
5095                                 = new_d_parameter_entity(frame_type, n, param_irtype, dbgi);
5096                         parameter->declaration.kind  = DECLARATION_KIND_PARAMETER_ENTITY;
5097                         parameter->variable.v.entity = param;
5098                         continue;
5099                 }
5100
5101                 ir_mode *param_mode = get_type_mode(param_irtype);
5102                 long     pn         = n;
5103                 ir_node *value      = new_rd_Proj(dbgi, args, param_mode, pn);
5104                 value = conv_to_storage_type(dbgi, value, type);
5105
5106                 parameter->declaration.kind        = DECLARATION_KIND_PARAMETER;
5107                 parameter->variable.v.value_number = next_value_number_function;
5108                 set_irg_loc_description(current_ir_graph, next_value_number_function,
5109                                         parameter);
5110                 ++next_value_number_function;
5111
5112                 set_value(parameter->variable.v.value_number, value);
5113         }
5114 }
5115
5116 static void add_function_pointer(ir_type *segment, ir_entity *method,
5117                                  const char *unique_template)
5118 {
5119         ir_type   *method_type  = get_entity_type(method);
5120         ir_type   *ptr_type     = new_type_pointer(method_type);
5121
5122         /* these entities don't really have a name but firm only allows
5123          * "" in ld_ident.
5124          * Note that we mustn't give these entities a name since for example
5125          * Mach-O doesn't allow them. */
5126         ident     *ide          = id_unique(unique_template);
5127         ir_entity *ptr          = new_entity(segment, ide, ptr_type);
5128         ir_graph  *irg          = get_const_code_irg();
5129         ir_node   *val          = new_rd_SymConst_addr_ent(NULL, irg, mode_P_code,
5130                                                            method);
5131
5132         set_entity_ld_ident(ptr, new_id_from_chars("", 0));
5133         set_entity_compiler_generated(ptr, 1);
5134         set_entity_visibility(ptr, ir_visibility_private);
5135         add_entity_linkage(ptr, IR_LINKAGE_CONSTANT|IR_LINKAGE_HIDDEN_USER);
5136         set_atomic_ent_value(ptr, val);
5137 }
5138
5139 /**
5140  * Create code for a function and all inner functions.
5141  *
5142  * @param entity  the function entity
5143  */
5144 static void create_function(entity_t *entity)
5145 {
5146         assert(entity->kind == ENTITY_FUNCTION);
5147         ir_entity *function_entity = get_function_entity(entity, current_outer_frame);
5148
5149         if (entity->function.body == NULL)
5150                 return;
5151
5152         inner_functions     = NULL;
5153         current_trampolines = NULL;
5154
5155         if (entity->declaration.modifiers & DM_CONSTRUCTOR) {
5156                 ir_type *segment = get_segment_type(IR_SEGMENT_CONSTRUCTORS);
5157                 add_function_pointer(segment, function_entity, "constructor_ptr.%u");
5158         }
5159         if (entity->declaration.modifiers & DM_DESTRUCTOR) {
5160                 ir_type *segment = get_segment_type(IR_SEGMENT_DESTRUCTORS);
5161                 add_function_pointer(segment, function_entity, "destructor_ptr.%u");
5162         }
5163
5164         current_function_entity = entity;
5165         current_function_name   = NULL;
5166         current_funcsig         = NULL;
5167
5168         assert(!ijmp_ops);
5169         assert(!ijmp_blocks);
5170         init_jump_target(&ijmp_target, NULL);
5171         ijmp_ops    = NEW_ARR_F(ir_node*, 0);
5172         ijmp_blocks = NEW_ARR_F(ir_node*, 0);
5173
5174         int       n_local_vars = get_function_n_local_vars(entity);
5175         ir_graph *irg          = new_ir_graph(function_entity, n_local_vars);
5176         current_ir_graph = irg;
5177
5178         ir_graph *old_current_function = current_function;
5179         current_function = irg;
5180
5181         ir_entity *const old_current_vararg_entity = current_vararg_entity;
5182         current_vararg_entity = NULL;
5183
5184         set_irg_fp_model(irg, firm_fp_model);
5185         set_irn_dbg_info(get_irg_start_block(irg),
5186                          get_entity_dbg_info(function_entity));
5187
5188         next_value_number_function = 0;
5189         initialize_function_parameters(entity);
5190         current_static_link = entity->function.static_link;
5191
5192         statement_to_firm(entity->function.body);
5193
5194         ir_node *end_block = get_irg_end_block(irg);
5195
5196         /* do we have a return statement yet? */
5197         if (currently_reachable()) {
5198                 type_t *type = skip_typeref(entity->declaration.type);
5199                 assert(is_type_function(type));
5200                 type_t *const return_type = skip_typeref(type->function.return_type);
5201
5202                 ir_node *ret;
5203                 if (is_type_void(return_type)) {
5204                         ret = new_Return(get_store(), 0, NULL);
5205                 } else {
5206                         ir_mode *const mode = get_ir_mode_storage(return_type);
5207
5208                         ir_node *in[1];
5209                         /* ยง5.1.2.2.3 main implicitly returns 0 */
5210                         if (is_main(entity)) {
5211                                 in[0] = new_Const(get_mode_null(mode));
5212                         } else {
5213                                 in[0] = new_Unknown(mode);
5214                         }
5215                         ret = new_Return(get_store(), 1, in);
5216                 }
5217                 add_immBlock_pred(end_block, ret);
5218         }
5219
5220         if (enter_jump_target(&ijmp_target)) {
5221                 keep_loop();
5222                 size_t   const n    = ARR_LEN(ijmp_ops);
5223                 ir_node *const op   = n == 1 ? ijmp_ops[0] : new_Phi(n, ijmp_ops, get_irn_mode(ijmp_ops[0]));
5224                 ir_node *const ijmp = new_IJmp(op);
5225                 for (size_t i = ARR_LEN(ijmp_blocks); i-- != 0;) {
5226                         ir_node *const block = ijmp_blocks[i];
5227                         add_immBlock_pred(block, ijmp);
5228                         mature_immBlock(block);
5229                 }
5230         }
5231
5232         DEL_ARR_F(ijmp_ops);
5233         DEL_ARR_F(ijmp_blocks);
5234         ijmp_ops    = NULL;
5235         ijmp_blocks = NULL;
5236
5237         irg_finalize_cons(irg);
5238
5239         /* finalize the frame type */
5240         ir_type *frame_type = get_irg_frame_type(irg);
5241         int      n          = get_compound_n_members(frame_type);
5242         int      align_all  = 4;
5243         int      offset     = 0;
5244         for (int i = 0; i < n; ++i) {
5245                 ir_entity *member      = get_compound_member(frame_type, i);
5246                 ir_type   *entity_type = get_entity_type(member);
5247
5248                 int align = get_type_alignment_bytes(entity_type);
5249                 if (align > align_all)
5250                         align_all = align;
5251                 int misalign = 0;
5252                 if (align > 0) {
5253                         misalign  = offset % align;
5254                         if (misalign > 0) {
5255                                 offset += align - misalign;
5256                         }
5257                 }
5258
5259                 set_entity_offset(member, offset);
5260                 offset += get_type_size_bytes(entity_type);
5261         }
5262         set_type_size_bytes(frame_type, offset);
5263         set_type_alignment_bytes(frame_type, align_all);
5264
5265         irg_verify(irg, VERIFY_ENFORCE_SSA);
5266         current_vararg_entity = old_current_vararg_entity;
5267         current_function      = old_current_function;
5268
5269         if (current_trampolines != NULL) {
5270                 DEL_ARR_F(current_trampolines);
5271                 current_trampolines = NULL;
5272         }
5273
5274         /* create inner functions if any */
5275         entity_t **inner = inner_functions;
5276         if (inner != NULL) {
5277                 ir_type *rem_outer_frame      = current_outer_frame;
5278                 current_outer_frame           = get_irg_frame_type(current_ir_graph);
5279                 for (int i = ARR_LEN(inner) - 1; i >= 0; --i) {
5280                         create_function(inner[i]);
5281                 }
5282                 DEL_ARR_F(inner);
5283
5284                 current_outer_frame      = rem_outer_frame;
5285         }
5286 }
5287
5288 static void scope_to_firm(scope_t *scope)
5289 {
5290         /* first pass: create declarations */
5291         entity_t *entity = scope->entities;
5292         for ( ; entity != NULL; entity = entity->base.next) {
5293                 if (entity->base.symbol == NULL)
5294                         continue;
5295
5296                 if (entity->kind == ENTITY_FUNCTION) {
5297                         if (entity->function.btk != BUILTIN_NONE) {
5298                                 /* builtins have no representation */
5299                                 continue;
5300                         }
5301                         (void)get_function_entity(entity, NULL);
5302                 } else if (entity->kind == ENTITY_VARIABLE) {
5303                         create_global_variable(entity);
5304                 } else if (entity->kind == ENTITY_NAMESPACE) {
5305                         scope_to_firm(&entity->namespacee.members);
5306                 }
5307         }
5308
5309         /* second pass: create code/initializers */
5310         entity = scope->entities;
5311         for ( ; entity != NULL; entity = entity->base.next) {
5312                 if (entity->base.symbol == NULL)
5313                         continue;
5314
5315                 if (entity->kind == ENTITY_FUNCTION) {
5316                         if (entity->function.btk != BUILTIN_NONE) {
5317                                 /* builtins have no representation */
5318                                 continue;
5319                         }
5320                         create_function(entity);
5321                 } else if (entity->kind == ENTITY_VARIABLE) {
5322                         assert(entity->declaration.kind
5323                                         == DECLARATION_KIND_GLOBAL_VARIABLE);
5324                         current_ir_graph = get_const_code_irg();
5325                         create_variable_initializer(entity);
5326                 }
5327         }
5328 }
5329
5330 void init_ast2firm(void)
5331 {
5332         obstack_init(&asm_obst);
5333         init_atomic_modes();
5334
5335         ir_set_debug_retrieve(dbg_retrieve);
5336         ir_set_type_debug_retrieve(dbg_print_type_dbg_info);
5337
5338         /* create idents for all known runtime functions */
5339         for (size_t i = 0; i < lengthof(rts_data); ++i) {
5340                 rts_idents[i] = new_id_from_str(rts_data[i].name);
5341         }
5342
5343         entitymap_init(&entitymap);
5344 }
5345
5346 static void init_ir_types(void)
5347 {
5348         static int ir_types_initialized = 0;
5349         if (ir_types_initialized)
5350                 return;
5351         ir_types_initialized = 1;
5352
5353         ir_type_char = get_ir_type(type_char);
5354
5355         be_params             = be_get_backend_param();
5356         mode_float_arithmetic = be_params->mode_float_arithmetic;
5357
5358         stack_param_align     = be_params->stack_param_align;
5359 }
5360
5361 void exit_ast2firm(void)
5362 {
5363         entitymap_destroy(&entitymap);
5364         obstack_free(&asm_obst, NULL);
5365 }
5366
5367 static void global_asm_to_firm(statement_t *s)
5368 {
5369         for (; s != NULL; s = s->base.next) {
5370                 assert(s->kind == STATEMENT_ASM);
5371
5372                 char const *const text = s->asms.asm_text.begin;
5373                 size_t      const size = s->asms.asm_text.size;
5374                 ident      *const id   = new_id_from_chars(text, size);
5375                 add_irp_asm(id);
5376         }
5377 }
5378
5379 static const char *get_cwd(void)
5380 {
5381         static char buf[1024];
5382         if (buf[0] == '\0') {
5383                 return getcwd(buf, sizeof(buf));
5384         }
5385         return buf;
5386 }
5387
5388 void translation_unit_to_firm(translation_unit_t *unit)
5389 {
5390         if (c_mode & _CXX) {
5391                 be_dwarf_set_source_language(DW_LANG_C_plus_plus);
5392         } else if (c_mode & _C99) {
5393                 be_dwarf_set_source_language(DW_LANG_C99);
5394         } else if (c_mode & _C89) {
5395                 be_dwarf_set_source_language(DW_LANG_C89);
5396         } else {
5397                 be_dwarf_set_source_language(DW_LANG_C);
5398         }
5399         const char *cwd = get_cwd();
5400         if (cwd != NULL) {
5401                 be_dwarf_set_compilation_directory(cwd);
5402         }
5403
5404         /* initialize firm arithmetic */
5405         tarval_set_integer_overflow_mode(TV_OVERFLOW_WRAP);
5406         ir_set_uninitialized_local_variable_func(uninitialized_local_var);
5407
5408         /* just to be sure */
5409         init_jump_target(&break_target,    NULL);
5410         init_jump_target(&continue_target, NULL);
5411         current_switch           = NULL;
5412         current_translation_unit = unit;
5413
5414         init_ir_types();
5415
5416         scope_to_firm(&unit->scope);
5417         global_asm_to_firm(unit->global_asm);
5418
5419         current_ir_graph         = NULL;
5420         current_translation_unit = NULL;
5421 }