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Remove 2 unused variables in create_binop - unused since create_general_instruction
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1 /*
2  * Copyright (C) 2012
3  *     Wolfgang Bumiller
4  *
5  * Permission is hereby granted, free of charge, to any person obtaining a copy of
6  * this software and associated documentation files (the "Software"), to deal in
7  * the Software without restriction, including without limitation the rights to
8  * use, copy, modify, merge, publish, distribute, sublicense, and/or sell copies
9  * of the Software, and to permit persons to whom the Software is furnished to do
10  * so, subject to the following conditions:
11  *
12  * The above copyright notice and this permission notice shall be included in all
13  * copies or substantial portions of the Software.
14  *
15  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
18  * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19  * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
20  * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
21  * SOFTWARE.
22  */
23 #include <stdlib.h>
24 #include <string.h>
25 #include "gmqcc.h"
26 #include "ir.h"
27
28 /***********************************************************************
29  *IR Builder
30  */
31
32 ir_builder* ir_builder_new(const char *modulename)
33 {
34     ir_builder* self;
35
36     self = (ir_builder*)mem_a(sizeof(*self));
37     MEM_VECTOR_INIT(self, functions);
38     MEM_VECTOR_INIT(self, globals);
39     self->name = NULL;
40     if (!ir_builder_set_name(self, modulename)) {
41         mem_d(self);
42         return NULL;
43     }
44
45     /* globals which always exist */
46
47     /* for now we give it a vector size */
48     ir_builder_create_global(self, "OFS_RETURN", TYPE_VARIANT);
49
50     return self;
51 }
52
53 MEM_VEC_FUNCTIONS(ir_builder, ir_value*, globals)
54 MEM_VEC_FUNCTIONS(ir_builder, ir_function*, functions)
55
56 void ir_builder_delete(ir_builder* self)
57 {
58     size_t i;
59     mem_d((void*)self->name);
60     for (i = 0; i != self->functions_count; ++i) {
61         ir_function_delete(self->functions[i]);
62     }
63     MEM_VECTOR_CLEAR(self, functions);
64     for (i = 0; i != self->globals_count; ++i) {
65         ir_value_delete(self->globals[i]);
66     }
67     MEM_VECTOR_CLEAR(self, globals);
68     mem_d(self);
69 }
70
71 bool ir_builder_set_name(ir_builder *self, const char *name)
72 {
73     if (self->name)
74         mem_d((void*)self->name);
75     self->name = util_strdup(name);
76     return !!self->name;
77 }
78
79 ir_function* ir_builder_get_function(ir_builder *self, const char *name)
80 {
81     size_t i;
82     for (i = 0; i < self->functions_count; ++i) {
83         if (!strcmp(name, self->functions[i]->name))
84             return self->functions[i];
85     }
86     return NULL;
87 }
88
89 ir_function* ir_builder_create_function(ir_builder *self, const char *name)
90 {
91     ir_function *fn = ir_builder_get_function(self, name);
92     if (fn) {
93         return NULL;
94     }
95
96     fn = ir_function_new(self);
97     if (!ir_function_set_name(fn, name) ||
98         !ir_builder_functions_add(self, fn) )
99     {
100         ir_function_delete(fn);
101         return NULL;
102     }
103     return fn;
104 }
105
106 ir_value* ir_builder_get_global(ir_builder *self, const char *name)
107 {
108     size_t i;
109     for (i = 0; i < self->globals_count; ++i) {
110         if (!strcmp(self->globals[i]->name, name))
111             return self->globals[i];
112     }
113     return NULL;
114 }
115
116 ir_value* ir_builder_create_global(ir_builder *self, const char *name, int vtype)
117 {
118     ir_value *ve = ir_builder_get_global(self, name);
119     if (ve) {
120         return NULL;
121     }
122
123     ve = ir_value_var(name, store_global, vtype);
124     if (!ir_builder_globals_add(self, ve)) {
125         ir_value_delete(ve);
126         return NULL;
127     }
128     return ve;
129 }
130
131 /***********************************************************************
132  *IR Function
133  */
134
135 bool ir_function_naive_phi(ir_function*);
136 void ir_function_enumerate(ir_function*);
137 bool ir_function_calculate_liferanges(ir_function*);
138
139 ir_function* ir_function_new(ir_builder* owner)
140 {
141     ir_function *self;
142     self = (ir_function*)mem_a(sizeof(*self));
143     self->name = NULL;
144     if (!ir_function_set_name(self, "<@unnamed>")) {
145         mem_d(self);
146         return NULL;
147     }
148     self->owner = owner;
149     self->context.file = "<@no context>";
150     self->context.line = 0;
151     self->retype = TYPE_VOID;
152     MEM_VECTOR_INIT(self, params);
153     MEM_VECTOR_INIT(self, blocks);
154     MEM_VECTOR_INIT(self, values);
155     MEM_VECTOR_INIT(self, locals);
156
157     self->run_id = 0;
158     return self;
159 }
160 MEM_VEC_FUNCTIONS(ir_function, ir_value*, values)
161 MEM_VEC_FUNCTIONS(ir_function, ir_block*, blocks)
162 MEM_VEC_FUNCTIONS(ir_function, ir_value*, locals)
163
164 bool ir_function_set_name(ir_function *self, const char *name)
165 {
166     if (self->name)
167         mem_d((void*)self->name);
168     self->name = util_strdup(name);
169     return !!self->name;
170 }
171
172 void ir_function_delete(ir_function *self)
173 {
174     size_t i;
175     mem_d((void*)self->name);
176
177     for (i = 0; i != self->blocks_count; ++i)
178         ir_block_delete(self->blocks[i]);
179     MEM_VECTOR_CLEAR(self, blocks);
180
181     MEM_VECTOR_CLEAR(self, params);
182
183     for (i = 0; i != self->values_count; ++i)
184         ir_value_delete(self->values[i]);
185     MEM_VECTOR_CLEAR(self, values);
186
187     for (i = 0; i != self->locals_count; ++i)
188         ir_value_delete(self->locals[i]);
189     MEM_VECTOR_CLEAR(self, locals);
190
191     mem_d(self);
192 }
193
194 bool GMQCC_WARN ir_function_collect_value(ir_function *self, ir_value *v)
195 {
196     return ir_function_values_add(self, v);
197 }
198
199 ir_block* ir_function_create_block(ir_function *self, const char *label)
200 {
201     ir_block* bn = ir_block_new(self, label);
202     memcpy(&bn->context, &self->context, sizeof(self->context));
203     if (!ir_function_blocks_add(self, bn)) {
204         ir_block_delete(bn);
205         return NULL;
206     }
207     return bn;
208 }
209
210 bool ir_function_finalize(ir_function *self)
211 {
212     if (!ir_function_naive_phi(self))
213         return false;
214
215     ir_function_enumerate(self);
216
217     if (!ir_function_calculate_liferanges(self))
218         return false;
219     return true;
220 }
221
222 ir_value* ir_function_get_local(ir_function *self, const char *name)
223 {
224     size_t i;
225     for (i = 0; i < self->locals_count; ++i) {
226         if (!strcmp(self->locals[i]->name, name))
227             return self->locals[i];
228     }
229     return NULL;
230 }
231
232 ir_value* ir_function_create_local(ir_function *self, const char *name, int vtype)
233 {
234     ir_value *ve = ir_function_get_local(self, name);
235     if (ve) {
236         return NULL;
237     }
238
239     ve = ir_value_var(name, store_local, vtype);
240     if (!ir_function_locals_add(self, ve)) {
241         ir_value_delete(ve);
242         return NULL;
243     }
244     return ve;
245 }
246
247 /***********************************************************************
248  *IR Block
249  */
250
251 ir_block* ir_block_new(ir_function* owner, const char *name)
252 {
253     ir_block *self;
254     self = (ir_block*)mem_a(sizeof(*self));
255     self->label = NULL;
256     if (!ir_block_set_label(self, name)) {
257         mem_d(self);
258         return NULL;
259     }
260     self->owner = owner;
261     self->context.file = "<@no context>";
262     self->context.line = 0;
263     self->final = false;
264     MEM_VECTOR_INIT(self, instr);
265     MEM_VECTOR_INIT(self, entries);
266     MEM_VECTOR_INIT(self, exits);
267
268     self->eid = 0;
269     self->is_return = false;
270     self->run_id = 0;
271     MEM_VECTOR_INIT(self, living);
272     return self;
273 }
274 MEM_VEC_FUNCTIONS(ir_block, ir_instr*, instr)
275 MEM_VEC_FUNCTIONS_ALL(ir_block, ir_block*, entries)
276 MEM_VEC_FUNCTIONS_ALL(ir_block, ir_block*, exits)
277 MEM_VEC_FUNCTIONS_ALL(ir_block, ir_value*, living)
278
279 void ir_block_delete(ir_block* self)
280 {
281     size_t i;
282     mem_d(self->label);
283     for (i = 0; i != self->instr_count; ++i)
284         ir_instr_delete(self->instr[i]);
285     MEM_VECTOR_CLEAR(self, instr);
286     MEM_VECTOR_CLEAR(self, entries);
287     MEM_VECTOR_CLEAR(self, exits);
288     MEM_VECTOR_CLEAR(self, living);
289     mem_d(self);
290 }
291
292 bool ir_block_set_label(ir_block *self, const char *name)
293 {
294     if (self->label)
295         mem_d((void*)self->label);
296     self->label = util_strdup(name);
297     return !!self->label;
298 }
299
300 /***********************************************************************
301  *IR Instructions
302  */
303
304 ir_instr* ir_instr_new(ir_block* owner, int op)
305 {
306     ir_instr *self;
307     self = (ir_instr*)mem_a(sizeof(*self));
308     self->owner = owner;
309     self->context.file = "<@no context>";
310     self->context.line = 0;
311     self->opcode = op;
312     self->_ops[0] = NULL;
313     self->_ops[1] = NULL;
314     self->_ops[2] = NULL;
315     self->bops[0] = NULL;
316     self->bops[1] = NULL;
317     MEM_VECTOR_INIT(self, phi);
318
319     self->eid = 0;
320     return self;
321 }
322 MEM_VEC_FUNCTIONS(ir_instr, ir_phi_entry_t, phi)
323
324 void ir_instr_delete(ir_instr *self)
325 {
326     size_t i;
327     /* The following calls can only delete from
328      * vectors, we still want to delete this instruction
329      * so ignore the return value. Since with the warn_unused_result attribute
330      * gcc doesn't care about an explicit: (void)foo(); to ignore the result,
331      * I have to improvise here and use if(foo());
332      */
333     for (i = 0; i < self->phi_count; ++i) {
334         size_t idx;
335         if (ir_value_writes_find(self->phi[i].value, self, &idx))
336             if (ir_value_writes_remove(self->phi[i].value, idx)) GMQCC_SUPRESS_EMPTY_BODY;
337         if (ir_value_reads_find(self->phi[i].value, self, &idx))
338             if (ir_value_reads_remove (self->phi[i].value, idx)) GMQCC_SUPRESS_EMPTY_BODY;
339     }
340     MEM_VECTOR_CLEAR(self, phi);
341     if (ir_instr_op(self, 0, NULL, false)) GMQCC_SUPRESS_EMPTY_BODY;
342     if (ir_instr_op(self, 1, NULL, false)) GMQCC_SUPRESS_EMPTY_BODY;
343     if (ir_instr_op(self, 2, NULL, false)) GMQCC_SUPRESS_EMPTY_BODY;
344     mem_d(self);
345 }
346
347 bool ir_instr_op(ir_instr *self, int op, ir_value *v, bool writing)
348 {
349     if (self->_ops[op]) {
350         size_t idx;
351         if (writing && ir_value_writes_find(self->_ops[op], self, &idx))
352         {
353             if (!ir_value_writes_remove(self->_ops[op], idx))
354                 return false;
355         }
356         else if (ir_value_reads_find(self->_ops[op], self, &idx))
357         {
358             if (!ir_value_reads_remove(self->_ops[op], idx))
359                 return false;
360         }
361     }
362     if (v) {
363         if (writing) {
364             if (!ir_value_writes_add(v, self))
365                 return false;
366         } else {
367             if (!ir_value_reads_add(v, self))
368                 return false;
369         }
370     }
371     self->_ops[op] = v;
372     return true;
373 }
374
375 /***********************************************************************
376  *IR Value
377  */
378
379 ir_value* ir_value_var(const char *name, int storetype, int vtype)
380 {
381     ir_value *self;
382     self = (ir_value*)mem_a(sizeof(*self));
383     self->vtype = vtype;
384     self->store = storetype;
385     MEM_VECTOR_INIT(self, reads);
386     MEM_VECTOR_INIT(self, writes);
387     self->isconst = false;
388     self->context.file = "<@no context>";
389     self->context.line = 0;
390     self->name = NULL;
391     ir_value_set_name(self, name);
392
393     MEM_VECTOR_INIT(self, life);
394     return self;
395 }
396 MEM_VEC_FUNCTIONS(ir_value, ir_life_entry_t, life)
397 MEM_VEC_FUNCTIONS_ALL(ir_value, ir_instr*, reads)
398 MEM_VEC_FUNCTIONS_ALL(ir_value, ir_instr*, writes)
399
400 ir_value* ir_value_out(ir_function *owner, const char *name, int storetype, int vtype)
401 {
402     ir_value *v = ir_value_var(name, storetype, vtype);
403     if (!v)
404         return NULL;
405     if (!ir_function_collect_value(owner, v))
406     {
407         ir_value_delete(v);
408         return NULL;
409     }
410     return v;
411 }
412
413 void ir_value_delete(ir_value* self)
414 {
415     mem_d((void*)self->name);
416     if (self->isconst)
417     {
418         if (self->vtype == TYPE_STRING)
419             mem_d((void*)self->constval.vstring);
420     }
421     MEM_VECTOR_CLEAR(self, reads);
422     MEM_VECTOR_CLEAR(self, writes);
423     MEM_VECTOR_CLEAR(self, life);
424     mem_d(self);
425 }
426
427 void ir_value_set_name(ir_value *self, const char *name)
428 {
429     if (self->name)
430         mem_d((void*)self->name);
431     self->name = util_strdup(name);
432 }
433
434 bool ir_value_set_float(ir_value *self, float f)
435 {
436     if (self->vtype != TYPE_FLOAT)
437         return false;
438     self->constval.vfloat = f;
439     self->isconst = true;
440     return true;
441 }
442
443 bool ir_value_set_vector(ir_value *self, vector v)
444 {
445     if (self->vtype != TYPE_VECTOR)
446         return false;
447     self->constval.vvec = v;
448     self->isconst = true;
449     return true;
450 }
451
452 bool ir_value_set_string(ir_value *self, const char *str)
453 {
454     if (self->vtype != TYPE_STRING)
455         return false;
456     self->constval.vstring = util_strdup(str);
457     self->isconst = true;
458     return true;
459 }
460
461 #if 0
462 bool ir_value_set_int(ir_value *self, int i)
463 {
464     if (self->vtype != TYPE_INTEGER)
465         return false;
466     self->constval.vint = i;
467     self->isconst = true;
468     return true;
469 }
470 #endif
471
472 bool ir_value_lives(ir_value *self, size_t at)
473 {
474     size_t i;
475     for (i = 0; i < self->life_count; ++i)
476     {
477         ir_life_entry_t *life = &self->life[i];
478         if (life->start <= at && at <= life->end)
479             return true;
480         if (life->start > at) /* since it's ordered */
481             return false;
482     }
483     return false;
484 }
485
486 bool ir_value_life_insert(ir_value *self, size_t idx, ir_life_entry_t e)
487 {
488     size_t k;
489     if (!ir_value_life_add(self, e)) /* naive... */
490         return false;
491     for (k = self->life_count-1; k > idx; --k)
492         self->life[k] = self->life[k-1];
493     self->life[idx] = e;
494     return true;
495 }
496
497 bool ir_value_life_merge(ir_value *self, size_t s)
498 {
499     size_t i;
500     ir_life_entry_t *life = NULL;
501     ir_life_entry_t *before = NULL;
502     ir_life_entry_t new_entry;
503
504     /* Find the first range >= s */
505     for (i = 0; i < self->life_count; ++i)
506     {
507         before = life;
508         life = &self->life[i];
509         if (life->start > s)
510             break;
511     }
512     /* nothing found? append */
513     if (i == self->life_count) {
514         ir_life_entry_t e;
515         if (life && life->end+1 == s)
516         {
517             /* previous life range can be merged in */
518             life->end++;
519             return true;
520         }
521         if (life && life->end >= s)
522             return false;
523         e.start = e.end = s;
524         if (!ir_value_life_add(self, e))
525             return false; /* failing */
526         return true;
527     }
528     /* found */
529     if (before)
530     {
531         if (before->end + 1 == s &&
532             life->start - 1 == s)
533         {
534             /* merge */
535             before->end = life->end;
536             if (!ir_value_life_remove(self, i))
537                 return false; /* failing */
538             return true;
539         }
540         if (before->end + 1 == s)
541         {
542             /* extend before */
543             before->end++;
544             return true;
545         }
546         /* already contained */
547         if (before->end >= s)
548             return false;
549     }
550     /* extend */
551     if (life->start - 1 == s)
552     {
553         life->start--;
554         return true;
555     }
556     /* insert a new entry */
557     new_entry.start = new_entry.end = s;
558     return ir_value_life_insert(self, i, new_entry);
559 }
560
561 bool ir_values_overlap(ir_value *a, ir_value *b)
562 {
563     /* For any life entry in A see if it overlaps with
564      * any life entry in B.
565      * Note that the life entries are orderes, so we can make a
566      * more efficient algorithm there than naively translating the
567      * statement above.
568      */
569
570     ir_life_entry_t *la, *lb, *enda, *endb;
571
572     /* first of all, if either has no life range, they cannot clash */
573     if (!a->life_count || !b->life_count)
574         return false;
575
576     la = a->life;
577     lb = b->life;
578     enda = la + a->life_count;
579     endb = lb + b->life_count;
580     while (true)
581     {
582         /* check if the entries overlap, for that,
583          * both must start before the other one ends.
584          */
585         if (la->start <= lb->end &&
586             lb->start <= la->end)
587         {
588             return true;
589         }
590
591         /* entries are ordered
592          * one entry is earlier than the other
593          * that earlier entry will be moved forward
594          */
595         if (la->end < lb->end)
596         {
597             /* order: A B, move A forward
598              * check if we hit the end with A
599              */
600             if (++la == enda)
601                 break;
602         }
603         else if (lb->end < la->end)
604         {
605             /* order: B A, move B forward
606              * check if we hit the end with B
607              */
608             if (++lb == endb)
609                 break;
610         }
611     }
612     return false;
613 }
614
615 /***********************************************************************
616  *IR main operations
617  */
618
619 bool ir_block_create_store_op(ir_block *self, int op, ir_value *target, ir_value *what)
620 {
621     if (target->store == store_value) {
622         fprintf(stderr, "cannot store to an SSA value\n");
623         return false;
624     } else {
625         ir_instr *in = ir_instr_new(self, op);
626         if (!in)
627             return false;
628         if (!ir_instr_op(in, 0, target, true) ||
629             !ir_instr_op(in, 1, what, false)  ||
630             !ir_block_instr_add(self, in) )
631         {
632             return false;
633         }
634         return true;
635     }
636 }
637
638 bool ir_block_create_store(ir_block *self, ir_value *target, ir_value *what)
639 {
640     int op = 0;
641     int vtype;
642     if (target->vtype == TYPE_VARIANT)
643         vtype = what->vtype;
644     else
645         vtype = target->vtype;
646
647     switch (vtype) {
648         case TYPE_FLOAT:
649 #if 0
650             if (what->vtype == TYPE_INTEGER)
651                 op = INSTR_CONV_ITOF;
652             else
653 #endif
654                 op = INSTR_STORE_F;
655             break;
656         case TYPE_VECTOR:
657             op = INSTR_STORE_V;
658             break;
659         case TYPE_ENTITY:
660             op = INSTR_STORE_ENT;
661             break;
662         case TYPE_STRING:
663             op = INSTR_STORE_S;
664             break;
665         case TYPE_FIELD:
666             op = INSTR_STORE_FLD;
667             break;
668 #if 0
669         case TYPE_INTEGER:
670             if (what->vtype == TYPE_INTEGER)
671                 op = INSTR_CONV_FTOI;
672             else
673                 op = INSTR_STORE_I;
674             break;
675 #endif
676         case TYPE_POINTER:
677 #if 0
678             op = INSTR_STORE_I;
679 #else
680             op = INSTR_STORE_ENT;
681 #endif
682             break;
683         default:
684             /* Unknown type */
685             return false;
686     }
687     return ir_block_create_store_op(self, op, target, what);
688 }
689
690 bool ir_block_create_storep(ir_block *self, ir_value *target, ir_value *what)
691 {
692     int op = 0;
693     int vtype;
694
695     if (target->vtype != TYPE_POINTER)
696         return false;
697
698     /* storing using pointer - target is a pointer, type must be
699      * inferred from source
700      */
701     vtype = what->vtype;
702
703     switch (vtype) {
704         case TYPE_FLOAT:
705             op = INSTR_STOREP_F;
706             break;
707         case TYPE_VECTOR:
708             op = INSTR_STOREP_V;
709             break;
710         case TYPE_ENTITY:
711             op = INSTR_STOREP_ENT;
712             break;
713         case TYPE_STRING:
714             op = INSTR_STOREP_S;
715             break;
716         case TYPE_FIELD:
717             op = INSTR_STOREP_FLD;
718             break;
719 #if 0
720         case TYPE_INTEGER:
721             op = INSTR_STOREP_I;
722             break;
723 #endif
724         case TYPE_POINTER:
725 #if 0
726             op = INSTR_STOREP_I;
727 #else
728             op = INSTR_STOREP_ENT;
729 #endif
730             break;
731         default:
732             /* Unknown type */
733             return false;
734     }
735     return ir_block_create_store_op(self, op, target, what);
736 }
737
738 bool ir_block_create_return(ir_block *self, ir_value *v)
739 {
740     ir_instr *in;
741     if (self->final) {
742         fprintf(stderr, "block already ended (%s)\n", self->label);
743         return false;
744     }
745     self->final = true;
746     self->is_return = true;
747     in = ir_instr_new(self, INSTR_RETURN);
748     if (!in)
749         return false;
750
751     if (!ir_instr_op(in, 0, v, false) ||
752         !ir_block_instr_add(self, in) )
753     {
754         return false;
755     }
756     return true;
757 }
758
759 bool ir_block_create_if(ir_block *self, ir_value *v,
760                         ir_block *ontrue, ir_block *onfalse)
761 {
762     ir_instr *in;
763     if (self->final) {
764         fprintf(stderr, "block already ended (%s)\n", self->label);
765         return false;
766     }
767     self->final = true;
768     /*in = ir_instr_new(self, (v->vtype == TYPE_STRING ? INSTR_IF_S : INSTR_IF_F));*/
769     in = ir_instr_new(self, VINSTR_COND);
770     if (!in)
771         return false;
772
773     if (!ir_instr_op(in, 0, v, false)) {
774         ir_instr_delete(in);
775         return false;
776     }
777
778     in->bops[0] = ontrue;
779     in->bops[1] = onfalse;
780
781     if (!ir_block_instr_add(self, in))
782         return false;
783
784     if (!ir_block_exits_add(self, ontrue)    ||
785         !ir_block_exits_add(self, onfalse)   ||
786         !ir_block_entries_add(ontrue, self)  ||
787         !ir_block_entries_add(onfalse, self) )
788     {
789         return false;
790     }
791     return true;
792 }
793
794 bool ir_block_create_jump(ir_block *self, ir_block *to)
795 {
796     ir_instr *in;
797     if (self->final) {
798         fprintf(stderr, "block already ended (%s)\n", self->label);
799         return false;
800     }
801     self->final = true;
802     in = ir_instr_new(self, VINSTR_JUMP);
803     if (!in)
804         return false;
805
806     in->bops[0] = to;
807     if (!ir_block_instr_add(self, in))
808         return false;
809
810     if (!ir_block_exits_add(self, to) ||
811         !ir_block_entries_add(to, self) )
812     {
813         return false;
814     }
815     return true;
816 }
817
818 bool ir_block_create_goto(ir_block *self, ir_block *to)
819 {
820     ir_instr *in;
821     if (self->final) {
822         fprintf(stderr, "block already ended (%s)\n", self->label);
823         return false;
824     }
825     self->final = true;
826     in = ir_instr_new(self, INSTR_GOTO);
827     if (!in)
828         return false;
829
830     in->bops[0] = to;
831     if (!ir_block_instr_add(self, in))
832         return false;
833
834     if (!ir_block_exits_add(self, to) ||
835         !ir_block_entries_add(to, self) )
836     {
837         return false;
838     }
839     return true;
840 }
841
842 ir_instr* ir_block_create_phi(ir_block *self, const char *label, int ot)
843 {
844     ir_value *out;
845     ir_instr *in;
846     in = ir_instr_new(self, VINSTR_PHI);
847     if (!in)
848         return NULL;
849     out = ir_value_out(self->owner, label, store_value, ot);
850     if (!out) {
851         ir_instr_delete(in);
852         return NULL;
853     }
854     if (!ir_instr_op(in, 0, out, true)) {
855         ir_instr_delete(in);
856         ir_value_delete(out);
857         return NULL;
858     }
859     if (!ir_block_instr_add(self, in)) {
860         ir_instr_delete(in);
861         ir_value_delete(out);
862         return NULL;
863     }
864     return in;
865 }
866
867 ir_value* ir_phi_value(ir_instr *self)
868 {
869     return self->_ops[0];
870 }
871
872 bool ir_phi_add(ir_instr* self, ir_block *b, ir_value *v)
873 {
874     ir_phi_entry_t pe;
875
876     if (!ir_block_entries_find(self->owner, b, NULL)) {
877         /* Must not be possible to cause this, otherwise the AST
878          * is doing something wrong.
879          */
880         fprintf(stderr, "Invalid entry block for PHI\n");
881         abort();
882     }
883
884     pe.value = v;
885     pe.from = b;
886     if (!ir_value_reads_add(v, self))
887         return false;
888     return ir_instr_phi_add(self, pe);
889 }
890
891 /* binary op related code */
892
893 ir_value* ir_block_create_binop(ir_block *self,
894                                 const char *label, int opcode,
895                                 ir_value *left, ir_value *right)
896 {
897     int ot = TYPE_VOID;
898     switch (opcode) {
899         case INSTR_ADD_F:
900         case INSTR_SUB_F:
901         case INSTR_DIV_F:
902         case INSTR_MUL_F:
903         case INSTR_MUL_V:
904         case INSTR_AND:
905         case INSTR_OR:
906 #if 0
907         case INSTR_AND_I:
908         case INSTR_AND_IF:
909         case INSTR_AND_FI:
910         case INSTR_OR_I:
911         case INSTR_OR_IF:
912         case INSTR_OR_FI:
913 #endif
914         case INSTR_BITAND:
915         case INSTR_BITOR:
916 #if 0
917         case INSTR_SUB_S: /* -- offset of string as float */
918         case INSTR_MUL_IF:
919         case INSTR_MUL_FI:
920         case INSTR_DIV_IF:
921         case INSTR_DIV_FI:
922         case INSTR_BITOR_IF:
923         case INSTR_BITOR_FI:
924         case INSTR_BITAND_FI:
925         case INSTR_BITAND_IF:
926         case INSTR_EQ_I:
927         case INSTR_NE_I:
928 #endif
929             ot = TYPE_FLOAT;
930             break;
931 #if 0
932         case INSTR_ADD_I:
933         case INSTR_ADD_IF:
934         case INSTR_ADD_FI:
935         case INSTR_SUB_I:
936         case INSTR_SUB_FI:
937         case INSTR_SUB_IF:
938         case INSTR_MUL_I:
939         case INSTR_DIV_I:
940         case INSTR_BITAND_I:
941         case INSTR_BITOR_I:
942         case INSTR_XOR_I:
943         case INSTR_RSHIFT_I:
944         case INSTR_LSHIFT_I:
945             ot = TYPE_INTEGER;
946             break;
947 #endif
948         case INSTR_ADD_V:
949         case INSTR_SUB_V:
950         case INSTR_MUL_VF:
951         case INSTR_MUL_FV:
952 #if 0
953         case INSTR_DIV_VF:
954         case INSTR_MUL_IV:
955         case INSTR_MUL_VI:
956 #endif
957             ot = TYPE_VECTOR;
958             break;
959 #if 0
960         case INSTR_ADD_SF:
961             ot = TYPE_POINTER;
962             break;
963 #endif
964         default:
965             /* ranges: */
966             /* boolean operations result in floats */
967             if (opcode >= INSTR_EQ_F && opcode <= INSTR_GT)
968                 ot = TYPE_FLOAT;
969             else if (opcode >= INSTR_LE && opcode <= INSTR_GT)
970                 ot = TYPE_FLOAT;
971 #if 0
972             else if (opcode >= INSTR_LE_I && opcode <= INSTR_EQ_FI)
973                 ot = TYPE_FLOAT;
974 #endif
975             break;
976     };
977     if (ot == TYPE_VOID) {
978         /* The AST or parser were supposed to check this! */
979         return NULL;
980     }
981
982     return ir_block_create_general_instr(self, label, opcode, left, right, ot);
983 }
984
985 ir_value* ir_block_create_general_instr(ir_block *self, const char *label,
986                                         int op, ir_value *a, ir_value *b, int outype)
987 {
988     ir_instr *instr;
989     ir_value *out;
990
991     out = ir_value_out(self->owner, label, store_value, outype);
992     if (!out)
993         return NULL;
994
995     instr = ir_instr_new(self, op);
996     if (!instr) {
997         ir_value_delete(out);
998         return NULL;
999     }
1000
1001     if (!ir_instr_op(instr, 0, out, true) ||
1002         !ir_instr_op(instr, 1, a, false) ||
1003         !ir_instr_op(instr, 2, b, false) )
1004     {
1005         goto on_error;
1006     }
1007
1008     if (!ir_block_instr_add(self, instr))
1009         goto on_error;
1010
1011     return out;
1012 on_error:
1013     ir_instr_delete(instr);
1014     ir_value_delete(out);
1015     return NULL;
1016 }
1017
1018 ir_value* ir_block_create_fieldaddress(ir_block *self, const char *label, ir_value *ent, ir_value *field)
1019 {
1020     /* Support for various pointer types todo if so desired */
1021     if (ent->vtype != TYPE_ENTITY)
1022         return NULL;
1023
1024     if (field->vtype != TYPE_FIELD)
1025         return NULL;
1026
1027     return ir_block_create_general_instr(self, label, INSTR_ADDRESS, ent, field, TYPE_POINTER);
1028 }
1029
1030 ir_value* ir_block_create_load_from_ent(ir_block *self, const char *label, ir_value *ent, ir_value *field, int outype)
1031 {
1032     int op;
1033     if (ent->vtype != TYPE_ENTITY)
1034         return NULL;
1035
1036     /* at some point we could redirect for TYPE_POINTER... but that could lead to carelessness */
1037     if (field->vtype != TYPE_FIELD)
1038         return NULL;
1039
1040     switch (outype)
1041     {
1042         case TYPE_FLOAT:   op = INSTR_LOAD_F;   break;
1043         case TYPE_VECTOR:  op = INSTR_LOAD_V;   break;
1044         case TYPE_STRING:  op = INSTR_LOAD_S;   break;
1045         case TYPE_FIELD:   op = INSTR_LOAD_FLD; break;
1046         case TYPE_ENTITY:  op = INSTR_LOAD_ENT; break;
1047 #if 0
1048         case TYPE_POINTER: op = INSTR_LOAD_I;   break;
1049         case TYPE_INTEGER: op = INSTR_LOAD_I;   break;
1050 #endif
1051         default:
1052             return NULL;
1053     }
1054
1055     return ir_block_create_general_instr(self, label, op, ent, field, outype);
1056 }
1057
1058 ir_value* ir_block_create_add(ir_block *self,
1059                               const char *label,
1060                               ir_value *left, ir_value *right)
1061 {
1062     int op = 0;
1063     int l = left->vtype;
1064     int r = right->vtype;
1065     if (l == r) {
1066         switch (l) {
1067             default:
1068                 return NULL;
1069             case TYPE_FLOAT:
1070                 op = INSTR_ADD_F;
1071                 break;
1072 #if 0
1073             case TYPE_INTEGER:
1074                 op = INSTR_ADD_I;
1075                 break;
1076 #endif
1077             case TYPE_VECTOR:
1078                 op = INSTR_ADD_V;
1079                 break;
1080         }
1081     } else {
1082 #if 0
1083         if ( (l == TYPE_FLOAT && r == TYPE_INTEGER) )
1084             op = INSTR_ADD_FI;
1085         else if ( (l == TYPE_INTEGER && r == TYPE_FLOAT) )
1086             op = INSTR_ADD_IF;
1087         else
1088 #endif
1089             return NULL;
1090     }
1091     return ir_block_create_binop(self, label, op, left, right);
1092 }
1093
1094 ir_value* ir_block_create_sub(ir_block *self,
1095                               const char *label,
1096                               ir_value *left, ir_value *right)
1097 {
1098     int op = 0;
1099     int l = left->vtype;
1100     int r = right->vtype;
1101     if (l == r) {
1102
1103         switch (l) {
1104             default:
1105                 return NULL;
1106             case TYPE_FLOAT:
1107                 op = INSTR_SUB_F;
1108                 break;
1109 #if 0
1110             case TYPE_INTEGER:
1111                 op = INSTR_SUB_I;
1112                 break;
1113 #endif
1114             case TYPE_VECTOR:
1115                 op = INSTR_SUB_V;
1116                 break;
1117         }
1118     } else {
1119 #if 0
1120         if ( (l == TYPE_FLOAT && r == TYPE_INTEGER) )
1121             op = INSTR_SUB_FI;
1122         else if ( (l == TYPE_INTEGER && r == TYPE_FLOAT) )
1123             op = INSTR_SUB_IF;
1124         else
1125 #endif
1126             return NULL;
1127     }
1128     return ir_block_create_binop(self, label, op, left, right);
1129 }
1130
1131 ir_value* ir_block_create_mul(ir_block *self,
1132                               const char *label,
1133                               ir_value *left, ir_value *right)
1134 {
1135     int op = 0;
1136     int l = left->vtype;
1137     int r = right->vtype;
1138     if (l == r) {
1139
1140         switch (l) {
1141             default:
1142                 return NULL;
1143             case TYPE_FLOAT:
1144                 op = INSTR_MUL_F;
1145                 break;
1146 #if 0
1147             case TYPE_INTEGER:
1148                 op = INSTR_MUL_I;
1149                 break;
1150 #endif
1151             case TYPE_VECTOR:
1152                 op = INSTR_MUL_V;
1153                 break;
1154         }
1155     } else {
1156         if ( (l == TYPE_VECTOR && r == TYPE_FLOAT) )
1157             op = INSTR_MUL_VF;
1158         else if ( (l == TYPE_FLOAT && r == TYPE_VECTOR) )
1159             op = INSTR_MUL_FV;
1160 #if 0
1161         else if ( (l == TYPE_VECTOR && r == TYPE_INTEGER) )
1162             op = INSTR_MUL_VI;
1163         else if ( (l == TYPE_INTEGER && r == TYPE_VECTOR) )
1164             op = INSTR_MUL_IV;
1165         else if ( (l == TYPE_FLOAT && r == TYPE_INTEGER) )
1166             op = INSTR_MUL_FI;
1167         else if ( (l == TYPE_INTEGER && r == TYPE_FLOAT) )
1168             op = INSTR_MUL_IF;
1169 #endif
1170         else
1171             return NULL;
1172     }
1173     return ir_block_create_binop(self, label, op, left, right);
1174 }
1175
1176 ir_value* ir_block_create_div(ir_block *self,
1177                               const char *label,
1178                               ir_value *left, ir_value *right)
1179 {
1180     int op = 0;
1181     int l = left->vtype;
1182     int r = right->vtype;
1183     if (l == r) {
1184
1185         switch (l) {
1186             default:
1187                 return NULL;
1188             case TYPE_FLOAT:
1189                 op = INSTR_DIV_F;
1190                 break;
1191 #if 0
1192             case TYPE_INTEGER:
1193                 op = INSTR_DIV_I;
1194                 break;
1195 #endif
1196         }
1197     } else {
1198 #if 0
1199         if ( (l == TYPE_VECTOR && r == TYPE_FLOAT) )
1200             op = INSTR_DIV_VF;
1201         else if ( (l == TYPE_FLOAT && r == TYPE_INTEGER) )
1202             op = INSTR_DIV_FI;
1203         else if ( (l == TYPE_INTEGER && r == TYPE_FLOAT) )
1204             op = INSTR_DIV_IF;
1205         else
1206 #endif
1207             return NULL;
1208     }
1209     return ir_block_create_binop(self, label, op, left, right);
1210 }
1211
1212 /* PHI resolving breaks the SSA, and must thus be the last
1213  * step before life-range calculation.
1214  */
1215
1216 static bool ir_block_naive_phi(ir_block *self);
1217 bool ir_function_naive_phi(ir_function *self)
1218 {
1219     size_t i;
1220
1221     for (i = 0; i < self->blocks_count; ++i)
1222     {
1223         if (!ir_block_naive_phi(self->blocks[i]))
1224             return false;
1225     }
1226     return true;
1227 }
1228
1229 static bool ir_naive_phi_emit_store(ir_block *block, size_t iid, ir_value *old, ir_value *what)
1230 {
1231     ir_instr *instr;
1232     size_t i;
1233
1234     /* create a store */
1235     if (!ir_block_create_store(block, old, what))
1236         return false;
1237
1238     /* we now move it up */
1239     instr = block->instr[block->instr_count-1];
1240     for (i = block->instr_count; i > iid; --i)
1241         block->instr[i] = block->instr[i-1];
1242     block->instr[i] = instr;
1243
1244     return true;
1245 }
1246
1247 static bool ir_block_naive_phi(ir_block *self)
1248 {
1249     size_t i, p, w;
1250     /* FIXME: optionally, create_phi can add the phis
1251      * to a list so we don't need to loop through blocks
1252      * - anyway: "don't optimize YET"
1253      */
1254     for (i = 0; i < self->instr_count; ++i)
1255     {
1256         ir_instr *instr = self->instr[i];
1257         if (instr->opcode != VINSTR_PHI)
1258             continue;
1259
1260         if (!ir_block_instr_remove(self, i))
1261             return false;
1262         --i; /* NOTE: i+1 below */
1263
1264         for (p = 0; p < instr->phi_count; ++p)
1265         {
1266             ir_value *v = instr->phi[p].value;
1267             for (w = 0; w < v->writes_count; ++w) {
1268                 ir_value *old;
1269
1270                 if (!v->writes[w]->_ops[0])
1271                     continue;
1272
1273                 /* When the write was to a global, we have to emit a mov */
1274                 old = v->writes[w]->_ops[0];
1275
1276                 /* The original instruction now writes to the PHI target local */
1277                 if (v->writes[w]->_ops[0] == v)
1278                     v->writes[w]->_ops[0] = instr->_ops[0];
1279
1280                 if (old->store != store_local)
1281                 {
1282                     /* If it originally wrote to a global we need to store the value
1283                      * there as welli
1284                      */
1285                     if (!ir_naive_phi_emit_store(self, i+1, old, v))
1286                         return false;
1287                     if (i+1 < self->instr_count)
1288                         instr = self->instr[i+1];
1289                     else
1290                         instr = NULL;
1291                     /* In case I forget and access instr later, it'll be NULL
1292                      * when it's a problem, to make sure we crash, rather than accessing
1293                      * invalid data.
1294                      */
1295                 }
1296                 else
1297                 {
1298                     /* If it didn't, we can replace all reads by the phi target now. */
1299                     size_t r;
1300                     for (r = 0; r < old->reads_count; ++r)
1301                     {
1302                         size_t op;
1303                         ir_instr *ri = old->reads[r];
1304                         for (op = 0; op < ri->phi_count; ++op) {
1305                             if (ri->phi[op].value == old)
1306                                 ri->phi[op].value = v;
1307                         }
1308                         for (op = 0; op < 3; ++op) {
1309                             if (ri->_ops[op] == old)
1310                                 ri->_ops[op] = v;
1311                         }
1312                     }
1313                 }
1314             }
1315         }
1316         ir_instr_delete(instr);
1317     }
1318     return true;
1319 }
1320
1321 /***********************************************************************
1322  *IR Temp allocation code
1323  * Propagating value life ranges by walking through the function backwards
1324  * until no more changes are made.
1325  * In theory this should happen once more than once for every nested loop
1326  * level.
1327  * Though this implementation might run an additional time for if nests.
1328  */
1329
1330 typedef struct
1331 {
1332     ir_value* *v;
1333     size_t    v_count;
1334     size_t    v_alloc;
1335 } new_reads_t;
1336 MEM_VEC_FUNCTIONS_ALL(new_reads_t, ir_value*, v)
1337
1338 /* Enumerate instructions used by value's life-ranges
1339  */
1340 static void ir_block_enumerate(ir_block *self, size_t *_eid)
1341 {
1342     size_t i;
1343     size_t eid = *_eid;
1344     for (i = 0; i < self->instr_count; ++i)
1345     {
1346         self->instr[i]->eid = eid++;
1347     }
1348     *_eid = eid;
1349 }
1350
1351 /* Enumerate blocks and instructions.
1352  * The block-enumeration is unordered!
1353  * We do not really use the block enumreation, however
1354  * the instruction enumeration is important for life-ranges.
1355  */
1356 void ir_function_enumerate(ir_function *self)
1357 {
1358     size_t i;
1359     size_t instruction_id = 0;
1360     for (i = 0; i < self->blocks_count; ++i)
1361     {
1362         self->blocks[i]->eid = i;
1363         self->blocks[i]->run_id = 0;
1364         ir_block_enumerate(self->blocks[i], &instruction_id);
1365     }
1366 }
1367
1368 static bool ir_block_life_propagate(ir_block *b, ir_block *prev, bool *changed);
1369 bool ir_function_calculate_liferanges(ir_function *self)
1370 {
1371     size_t i;
1372     bool changed;
1373
1374     do {
1375         self->run_id++;
1376         changed = false;
1377         for (i = 0; i != self->blocks_count; ++i)
1378         {
1379             if (self->blocks[i]->is_return)
1380             {
1381                 if (!ir_block_life_propagate(self->blocks[i], NULL, &changed))
1382                     return false;
1383             }
1384         }
1385     } while (changed);
1386     return true;
1387 }
1388
1389 /* Get information about which operand
1390  * is read from, or written to.
1391  */
1392 static void ir_op_read_write(int op, size_t *read, size_t *write)
1393 {
1394     switch (op)
1395     {
1396     case VINSTR_JUMP:
1397     case INSTR_GOTO:
1398         *write = 0;
1399         *read = 0;
1400         break;
1401     case INSTR_IF:
1402     case INSTR_IFNOT:
1403 #if 0
1404     case INSTR_IF_S:
1405     case INSTR_IFNOT_S:
1406 #endif
1407     case INSTR_RETURN:
1408     case VINSTR_COND:
1409         *write = 0;
1410         *read = 1;
1411         break;
1412     default:
1413         *write = 1;
1414         *read = 6;
1415         break;
1416     };
1417 }
1418
1419 static bool ir_block_living_add_instr(ir_block *self, size_t eid)
1420 {
1421     size_t i;
1422     bool changed = false;
1423     bool tempbool;
1424     for (i = 0; i != self->living_count; ++i)
1425     {
1426         tempbool = ir_value_life_merge(self->living[i], eid);
1427         /* debug
1428         if (tempbool)
1429             fprintf(stderr, "block_living_add_instr() value instruction added %s: %i\n", self->living[i]->_name, (int)eid);
1430         */
1431         changed = changed || tempbool;
1432     }
1433     return changed;
1434 }
1435
1436 static bool ir_block_life_prop_previous(ir_block* self, ir_block *prev, bool *changed)
1437 {
1438     size_t i;
1439     /* values which have been read in a previous iteration are now
1440      * in the "living" array even if the previous block doesn't use them.
1441      * So we have to remove whatever does not exist in the previous block.
1442      * They will be re-added on-read, but the liferange merge won't cause
1443      * a change.
1444      */
1445     for (i = 0; i < self->living_count; ++i)
1446     {
1447         if (!ir_block_living_find(prev, self->living[i], NULL)) {
1448             if (!ir_block_living_remove(self, i))
1449                 return false;
1450             --i;
1451         }
1452     }
1453
1454     /* Whatever the previous block still has in its living set
1455      * must now be added to ours as well.
1456      */
1457     for (i = 0; i < prev->living_count; ++i)
1458     {
1459         if (ir_block_living_find(self, prev->living[i], NULL))
1460             continue;
1461         if (!ir_block_living_add(self, prev->living[i]))
1462             return false;
1463         /*
1464         printf("%s got from prev: %s\n", self->label, prev->living[i]->_name);
1465         */
1466     }
1467     return true;
1468 }
1469
1470 static bool ir_block_life_propagate(ir_block *self, ir_block *prev, bool *changed)
1471 {
1472     ir_instr *instr;
1473     ir_value *value;
1474     bool  tempbool;
1475     size_t i, o, p, rd;
1476     /* bitmasks which operands are read from or written to */
1477     size_t read, write;
1478     new_reads_t new_reads;
1479     char dbg_ind[16] = { '#', '0' };
1480     (void)dbg_ind;
1481
1482     MEM_VECTOR_INIT(&new_reads, v);
1483
1484     if (prev)
1485     {
1486         if (!ir_block_life_prop_previous(self, prev, changed))
1487             return false;
1488     }
1489
1490     i = self->instr_count;
1491     while (i)
1492     { --i;
1493         instr = self->instr[i];
1494
1495         /* PHI operands are always read operands */
1496         for (p = 0; p < instr->phi_count; ++p)
1497         {
1498             value = instr->phi[p].value;
1499             /* used this before new_reads - puts the last read into the life range as well
1500             if (!ir_block_living_find(self, value, NULL))
1501                 ir_block_living_add(self, value);
1502             */
1503             /* fprintf(stderr, "read: %s\n", value->_name); */
1504             if (!new_reads_t_v_find(&new_reads, value, NULL))
1505             {
1506                 if (!new_reads_t_v_add(&new_reads, value))
1507                     goto on_error;
1508             }
1509         }
1510
1511         /* See which operands are read and write operands */
1512         ir_op_read_write(instr->opcode, &read, &write);
1513
1514         /* Go through the 3 main operands */
1515         for (o = 0; o < 3; ++o)
1516         {
1517             if (!instr->_ops[o]) /* no such operand */
1518                 continue;
1519
1520             value = instr->_ops[o];
1521
1522             /* We only care about locals */
1523             if (value->store != store_value &&
1524                 value->store != store_local)
1525                 continue;
1526
1527             /* read operands */
1528             if (read & (1<<o))
1529             {
1530                 /* used this before new_reads - puts the last read into the life range as well
1531                 if (!ir_block_living_find(self, value, NULL))
1532                     ir_block_living_add(self, value);
1533                 */
1534                 /* fprintf(stderr, "read: %s\n", value->_name); */
1535                 if (!new_reads_t_v_find(&new_reads, value, NULL))
1536                 {
1537                     if (!new_reads_t_v_add(&new_reads, value))
1538                         goto on_error;
1539                 }
1540             }
1541
1542             /* write operands */
1543             /* When we write to a local, we consider it "dead" for the
1544              * remaining upper part of the function, since in SSA a value
1545              * can only be written once (== created)
1546              */
1547             if (write & (1<<o))
1548             {
1549                 size_t idx, readidx;
1550                 bool in_living = ir_block_living_find(self, value, &idx);
1551                 bool in_reads = new_reads_t_v_find(&new_reads, value, &readidx);
1552                 if (!in_living && !in_reads)
1553                 {
1554                     /* If the value isn't alive it hasn't been read before... */
1555                     /* TODO: See if the warning can be emitted during parsing or AST processing
1556                      * otherwise have warning printed here.
1557                      * IF printing a warning here: include filecontext_t,
1558                      * and make sure it's only printed once
1559                      * since this function is run multiple times.
1560                      */
1561                     /* For now: debug info: */
1562                     fprintf(stderr, "Value only written %s\n", value->name);
1563                     tempbool = ir_value_life_merge(value, instr->eid);
1564                     *changed = *changed || tempbool;
1565                     /*
1566                     ir_instr_dump(instr, dbg_ind, printf);
1567                     abort();
1568                     */
1569                 } else {
1570                     /* since 'living' won't contain it
1571                      * anymore, merge the value, since
1572                      * (A) doesn't.
1573                      */
1574                     tempbool = ir_value_life_merge(value, instr->eid);
1575                     /*
1576                     if (tempbool)
1577                         fprintf(stderr, "value added id %s %i\n", value->name, (int)instr->eid);
1578                     */
1579                     *changed = *changed || tempbool;
1580                     /* Then remove */
1581                     if (!ir_block_living_remove(self, idx))
1582                         goto on_error;
1583                     if (in_reads)
1584                     {
1585                         if (!new_reads_t_v_remove(&new_reads, readidx))
1586                             goto on_error;
1587                     }
1588                 }
1589             }
1590         }
1591         /* (A) */
1592         tempbool = ir_block_living_add_instr(self, instr->eid);
1593         /*fprintf(stderr, "living added values\n");*/
1594         *changed = *changed || tempbool;
1595
1596         /* new reads: */
1597         for (rd = 0; rd < new_reads.v_count; ++rd)
1598         {
1599             if (!ir_block_living_find(self, new_reads.v[rd], NULL)) {
1600                 if (!ir_block_living_add(self, new_reads.v[rd]))
1601                     goto on_error;
1602             }
1603             if (!i && !self->entries_count) {
1604                 /* fix the top */
1605                 *changed = *changed || ir_value_life_merge(new_reads.v[rd], instr->eid);
1606             }
1607         }
1608         MEM_VECTOR_CLEAR(&new_reads, v);
1609     }
1610
1611     if (self->run_id == self->owner->run_id)
1612         return true;
1613
1614     self->run_id = self->owner->run_id;
1615
1616     for (i = 0; i < self->entries_count; ++i)
1617     {
1618         ir_block *entry = self->entries[i];
1619         ir_block_life_propagate(entry, self, changed);
1620     }
1621
1622     return true;
1623 on_error:
1624     MEM_VECTOR_CLEAR(&new_reads, v);
1625     return false;
1626 }
1627
1628 /***********************************************************************
1629  *IR DEBUG Dump functions...
1630  */
1631
1632 #define IND_BUFSZ 1024
1633
1634 const char *qc_opname(int op)
1635 {
1636     if (op < 0) return "<INVALID>";
1637     if (op < ( sizeof(asm_instr) / sizeof(asm_instr[0]) ))
1638         return asm_instr[op].m;
1639     switch (op) {
1640         case VINSTR_PHI:  return "PHI";
1641         case VINSTR_JUMP: return "JUMP";
1642         case VINSTR_COND: return "COND";
1643         default:          return "<UNK>";
1644     }
1645 }
1646
1647 void ir_builder_dump(ir_builder *b, int (*oprintf)(const char*, ...))
1648 {
1649         size_t i;
1650         char indent[IND_BUFSZ];
1651         indent[0] = '\t';
1652         indent[1] = 0;
1653
1654         oprintf("module %s\n", b->name);
1655         for (i = 0; i < b->globals_count; ++i)
1656         {
1657                 oprintf("global ");
1658                 if (b->globals[i]->isconst)
1659                         oprintf("%s = ", b->globals[i]->name);
1660                 ir_value_dump(b->globals[i], oprintf);
1661                 oprintf("\n");
1662         }
1663         for (i = 0; i < b->functions_count; ++i)
1664                 ir_function_dump(b->functions[i], indent, oprintf);
1665         oprintf("endmodule %s\n", b->name);
1666 }
1667
1668 void ir_function_dump(ir_function *f, char *ind,
1669                       int (*oprintf)(const char*, ...))
1670 {
1671         size_t i;
1672         oprintf("%sfunction %s\n", ind, f->name);
1673         strncat(ind, "\t", IND_BUFSZ);
1674         if (f->locals_count)
1675         {
1676                 oprintf("%s%i locals:\n", ind, (int)f->locals_count);
1677                 for (i = 0; i < f->locals_count; ++i) {
1678                         oprintf("%s\t", ind);
1679                         ir_value_dump(f->locals[i], oprintf);
1680                         oprintf("\n");
1681                 }
1682         }
1683         if (f->blocks_count)
1684         {
1685
1686                 oprintf("%slife passes: %i\n", ind, (int)f->blocks[0]->run_id);
1687                 for (i = 0; i < f->blocks_count; ++i)
1688                         ir_block_dump(f->blocks[i], ind, oprintf);
1689
1690         }
1691         ind[strlen(ind)-1] = 0;
1692         oprintf("%sendfunction %s\n", ind, f->name);
1693 }
1694
1695 void ir_block_dump(ir_block* b, char *ind,
1696                    int (*oprintf)(const char*, ...))
1697 {
1698         size_t i;
1699         oprintf("%s:%s\n", ind, b->label);
1700         strncat(ind, "\t", IND_BUFSZ);
1701
1702         for (i = 0; i < b->instr_count; ++i)
1703                 ir_instr_dump(b->instr[i], ind, oprintf);
1704         ind[strlen(ind)-1] = 0;
1705 }
1706
1707 void dump_phi(ir_instr *in, char *ind,
1708               int (*oprintf)(const char*, ...))
1709 {
1710         size_t i;
1711         oprintf("%s <- phi ", in->_ops[0]->name);
1712         for (i = 0; i < in->phi_count; ++i)
1713         {
1714                 oprintf("([%s] : %s) ", in->phi[i].from->label,
1715                                         in->phi[i].value->name);
1716         }
1717         oprintf("\n");
1718 }
1719
1720 void ir_instr_dump(ir_instr *in, char *ind,
1721                        int (*oprintf)(const char*, ...))
1722 {
1723         size_t i;
1724         const char *comma = NULL;
1725
1726         oprintf("%s (%i) ", ind, (int)in->eid);
1727
1728         if (in->opcode == VINSTR_PHI) {
1729                 dump_phi(in, ind, oprintf);
1730                 return;
1731         }
1732
1733         strncat(ind, "\t", IND_BUFSZ);
1734
1735         if (in->_ops[0] && (in->_ops[1] || in->_ops[2])) {
1736                 ir_value_dump(in->_ops[0], oprintf);
1737                 if (in->_ops[1] || in->_ops[2])
1738                         oprintf(" <- ");
1739         }
1740         oprintf("%s\t", qc_opname(in->opcode));
1741         if (in->_ops[0] && !(in->_ops[1] || in->_ops[2])) {
1742                 ir_value_dump(in->_ops[0], oprintf);
1743                 comma = ",\t";
1744         }
1745         else
1746         {
1747                 for (i = 1; i != 3; ++i) {
1748                         if (in->_ops[i]) {
1749                                 if (comma)
1750                                         oprintf(comma);
1751                                 ir_value_dump(in->_ops[i], oprintf);
1752                                 comma = ",\t";
1753                         }
1754                 }
1755         }
1756         if (in->bops[0]) {
1757                 if (comma)
1758                         oprintf(comma);
1759                 oprintf("[%s]", in->bops[0]->label);
1760                 comma = ",\t";
1761         }
1762         if (in->bops[1])
1763                 oprintf("%s[%s]", comma, in->bops[1]->label);
1764         oprintf("\n");
1765         ind[strlen(ind)-1] = 0;
1766 }
1767
1768 void ir_value_dump(ir_value* v, int (*oprintf)(const char*, ...))
1769 {
1770         if (v->isconst) {
1771                 switch (v->vtype) {
1772                         case TYPE_VOID:
1773                                 oprintf("(void)");
1774                                 break;
1775                         case TYPE_FLOAT:
1776                                 oprintf("%g", v->constval.vfloat);
1777                                 break;
1778                         case TYPE_VECTOR:
1779                                 oprintf("'%g %g %g'",
1780                                         v->constval.vvec.x,
1781                                         v->constval.vvec.y,
1782                                         v->constval.vvec.z);
1783                                 break;
1784                         case TYPE_ENTITY:
1785                                 oprintf("(entity)");
1786                                 break;
1787                         case TYPE_STRING:
1788                                 oprintf("\"%s\"", v->constval.vstring);
1789                                 break;
1790 #if 0
1791                         case TYPE_INTEGER:
1792                                 oprintf("%i", v->constval.vint);
1793                                 break;
1794 #endif
1795                         case TYPE_POINTER:
1796                                 oprintf("&%s",
1797                                         v->constval.vpointer->name);
1798                                 break;
1799                 }
1800         } else {
1801                 oprintf("%s", v->name);
1802         }
1803 }
1804
1805 void ir_value_dump_life(ir_value *self, int (*oprintf)(const char*,...))
1806 {
1807         size_t i;
1808         oprintf("Life of %s:\n", self->name);
1809         for (i = 0; i < self->life_count; ++i)
1810         {
1811                 oprintf(" + [%i, %i]\n", self->life[i].start, self->life[i].end);
1812         }
1813 }