tidy code
[tinycc.git] / arm-gen.c
blobe766ce43fcd82be551838835b3ff95c2f6a0d373
1 /*
2 * ARMv4 code generator for TCC
4 * Copyright (c) 2003 Daniel Glöckner
5 * Copyright (c) 2012 Thomas Preud'homme
7 * Based on i386-gen.c by Fabrice Bellard
9 * This library is free software; you can redistribute it and/or
10 * modify it under the terms of the GNU Lesser General Public
11 * License as published by the Free Software Foundation; either
12 * version 2 of the License, or (at your option) any later version.
14 * This library is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
17 * Lesser General Public License for more details.
19 * You should have received a copy of the GNU Lesser General Public
20 * License along with this library; if not, write to the Free Software
21 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
24 #ifdef TARGET_DEFS_ONLY
26 #if defined(TCC_ARM_EABI) && !defined(TCC_ARM_VFP)
27 #error "Currently TinyCC only supports float computation with VFP instructions"
28 #endif
30 /* number of available registers */
31 #ifdef TCC_ARM_VFP
32 #define NB_REGS 13
33 #else
34 #define NB_REGS 9
35 #endif
37 #ifndef TCC_CPU_VERSION
38 # define TCC_CPU_VERSION 5
39 #endif
41 /* a register can belong to several classes. The classes must be
42 sorted from more general to more precise (see gv2() code which does
43 assumptions on it). */
44 #define RC_INT 0x0001 /* generic integer register */
45 #define RC_FLOAT 0x0002 /* generic float register */
46 #define RC_R0 0x0004
47 #define RC_R1 0x0008
48 #define RC_R2 0x0010
49 #define RC_R3 0x0020
50 #define RC_R12 0x0040
51 #define RC_F0 0x0080
52 #define RC_F1 0x0100
53 #define RC_F2 0x0200
54 #define RC_F3 0x0400
55 #ifdef TCC_ARM_VFP
56 #define RC_F4 0x0800
57 #define RC_F5 0x1000
58 #define RC_F6 0x2000
59 #define RC_F7 0x4000
60 #endif
61 #define RC_IRET RC_R0 /* function return: integer register */
62 #define RC_LRET RC_R1 /* function return: second integer register */
63 #define RC_FRET RC_F0 /* function return: float register */
65 /* pretty names for the registers */
66 enum {
67 TREG_R0 = 0,
68 TREG_R1,
69 TREG_R2,
70 TREG_R3,
71 TREG_R12,
72 TREG_F0,
73 TREG_F1,
74 TREG_F2,
75 TREG_F3,
76 #ifdef TCC_ARM_VFP
77 TREG_F4,
78 TREG_F5,
79 TREG_F6,
80 TREG_F7,
81 #endif
82 TREG_SP = 13,
83 TREG_LR,
86 #ifdef TCC_ARM_VFP
87 #define T2CPR(t) (((t) & VT_BTYPE) != VT_FLOAT ? 0x100 : 0)
88 #endif
90 /* return registers for function */
91 #define REG_IRET TREG_R0 /* single word int return register */
92 #define REG_LRET TREG_R1 /* second word return register (for long long) */
93 #define REG_FRET TREG_F0 /* float return register */
95 #ifdef TCC_ARM_EABI
96 #define TOK___divdi3 TOK___aeabi_ldivmod
97 #define TOK___moddi3 TOK___aeabi_ldivmod
98 #define TOK___udivdi3 TOK___aeabi_uldivmod
99 #define TOK___umoddi3 TOK___aeabi_uldivmod
100 #endif
102 /* defined if function parameters must be evaluated in reverse order */
103 #define INVERT_FUNC_PARAMS
105 /* defined if structures are passed as pointers. Otherwise structures
106 are directly pushed on stack. */
107 /* #define FUNC_STRUCT_PARAM_AS_PTR */
109 /* pointer size, in bytes */
110 #define PTR_SIZE 4
112 /* long double size and alignment, in bytes */
113 #ifdef TCC_ARM_VFP
114 #define LDOUBLE_SIZE 8
115 #endif
117 #ifndef LDOUBLE_SIZE
118 #define LDOUBLE_SIZE 8
119 #endif
121 #ifdef TCC_ARM_EABI
122 #define LDOUBLE_ALIGN 8
123 #else
124 #define LDOUBLE_ALIGN 4
125 #endif
127 /* maximum alignment (for aligned attribute support) */
128 #define MAX_ALIGN 8
130 #define CHAR_IS_UNSIGNED
132 /******************************************************/
133 #else /* ! TARGET_DEFS_ONLY */
134 /******************************************************/
135 #include "tcc.h"
137 enum float_abi float_abi;
139 ST_DATA const int reg_classes[NB_REGS] = {
140 /* r0 */ RC_INT | RC_R0,
141 /* r1 */ RC_INT | RC_R1,
142 /* r2 */ RC_INT | RC_R2,
143 /* r3 */ RC_INT | RC_R3,
144 /* r12 */ RC_INT | RC_R12,
145 /* f0 */ RC_FLOAT | RC_F0,
146 /* f1 */ RC_FLOAT | RC_F1,
147 /* f2 */ RC_FLOAT | RC_F2,
148 /* f3 */ RC_FLOAT | RC_F3,
149 #ifdef TCC_ARM_VFP
150 /* d4/s8 */ RC_FLOAT | RC_F4,
151 /* d5/s10 */ RC_FLOAT | RC_F5,
152 /* d6/s12 */ RC_FLOAT | RC_F6,
153 /* d7/s14 */ RC_FLOAT | RC_F7,
154 #endif
157 static int func_sub_sp_offset, last_itod_magic;
158 static int leaffunc;
160 #if defined(TCC_ARM_EABI) && defined(TCC_ARM_VFP)
161 static CType float_type, double_type, func_float_type, func_double_type;
162 ST_FUNC void arm_init(struct TCCState *s)
164 float_type.t = VT_FLOAT;
165 double_type.t = VT_DOUBLE;
166 func_float_type.t = VT_FUNC;
167 func_float_type.ref = sym_push(SYM_FIELD, &float_type, FUNC_CDECL, FUNC_OLD);
168 func_double_type.t = VT_FUNC;
169 func_double_type.ref = sym_push(SYM_FIELD, &double_type, FUNC_CDECL, FUNC_OLD);
171 float_abi = s->float_abi;
172 #ifndef TCC_ARM_HARDFLOAT
173 tcc_warning("soft float ABI currently not supported: default to softfp");
174 #endif
176 #else
177 #define func_float_type func_old_type
178 #define func_double_type func_old_type
179 #define func_ldouble_type func_old_type
180 ST_FUNC void arm_init(struct TCCState *s)
182 #if 0
183 #if !defined (TCC_ARM_VFP)
184 tcc_warning("Support for FPA is deprecated and will be removed in next"
185 " release");
186 #endif
187 #if !defined (TCC_ARM_EABI)
188 tcc_warning("Support for OABI is deprecated and will be removed in next"
189 " release");
190 #endif
191 #endif
193 #endif
195 static int two2mask(int a,int b) {
196 return (reg_classes[a]|reg_classes[b])&~(RC_INT|RC_FLOAT);
199 static int regmask(int r) {
200 return reg_classes[r]&~(RC_INT|RC_FLOAT);
203 /******************************************************/
205 #if defined(TCC_ARM_EABI) && !defined(CONFIG_TCC_ELFINTERP)
206 const char *default_elfinterp(struct TCCState *s)
208 if (s->float_abi == ARM_HARD_FLOAT)
209 return "/lib/ld-linux-armhf.so.3";
210 else
211 return "/lib/ld-linux.so.3";
213 #endif
215 void o(uint32_t i)
217 /* this is a good place to start adding big-endian support*/
218 int ind1;
219 if (nocode_wanted)
220 return;
221 ind1 = ind + 4;
222 if (!cur_text_section)
223 tcc_error("compiler error! This happens f.ex. if the compiler\n"
224 "can't evaluate constant expressions outside of a function.");
225 if (ind1 > cur_text_section->data_allocated)
226 section_realloc(cur_text_section, ind1);
227 cur_text_section->data[ind++] = i&255;
228 i>>=8;
229 cur_text_section->data[ind++] = i&255;
230 i>>=8;
231 cur_text_section->data[ind++] = i&255;
232 i>>=8;
233 cur_text_section->data[ind++] = i;
236 static uint32_t stuff_const(uint32_t op, uint32_t c)
238 int try_neg=0;
239 uint32_t nc = 0, negop = 0;
241 switch(op&0x1F00000)
243 case 0x800000: //add
244 case 0x400000: //sub
245 try_neg=1;
246 negop=op^0xC00000;
247 nc=-c;
248 break;
249 case 0x1A00000: //mov
250 case 0x1E00000: //mvn
251 try_neg=1;
252 negop=op^0x400000;
253 nc=~c;
254 break;
255 case 0x200000: //xor
256 if(c==~0)
257 return (op&0xF010F000)|((op>>16)&0xF)|0x1E00000;
258 break;
259 case 0x0: //and
260 if(c==~0)
261 return (op&0xF010F000)|((op>>16)&0xF)|0x1A00000;
262 case 0x1C00000: //bic
263 try_neg=1;
264 negop=op^0x1C00000;
265 nc=~c;
266 break;
267 case 0x1800000: //orr
268 if(c==~0)
269 return (op&0xFFF0FFFF)|0x1E00000;
270 break;
272 do {
273 uint32_t m;
274 int i;
275 if(c<256) /* catch undefined <<32 */
276 return op|c;
277 for(i=2;i<32;i+=2) {
278 m=(0xff>>i)|(0xff<<(32-i));
279 if(!(c&~m))
280 return op|(i<<7)|(c<<i)|(c>>(32-i));
282 op=negop;
283 c=nc;
284 } while(try_neg--);
285 return 0;
289 //only add,sub
290 void stuff_const_harder(uint32_t op, uint32_t v) {
291 uint32_t x;
292 x=stuff_const(op,v);
293 if(x)
294 o(x);
295 else {
296 uint32_t a[16], nv, no, o2, n2;
297 int i,j,k;
298 a[0]=0xff;
299 o2=(op&0xfff0ffff)|((op&0xf000)<<4);;
300 for(i=1;i<16;i++)
301 a[i]=(a[i-1]>>2)|(a[i-1]<<30);
302 for(i=0;i<12;i++)
303 for(j=i<4?i+12:15;j>=i+4;j--)
304 if((v&(a[i]|a[j]))==v) {
305 o(stuff_const(op,v&a[i]));
306 o(stuff_const(o2,v&a[j]));
307 return;
309 no=op^0xC00000;
310 n2=o2^0xC00000;
311 nv=-v;
312 for(i=0;i<12;i++)
313 for(j=i<4?i+12:15;j>=i+4;j--)
314 if((nv&(a[i]|a[j]))==nv) {
315 o(stuff_const(no,nv&a[i]));
316 o(stuff_const(n2,nv&a[j]));
317 return;
319 for(i=0;i<8;i++)
320 for(j=i+4;j<12;j++)
321 for(k=i<4?i+12:15;k>=j+4;k--)
322 if((v&(a[i]|a[j]|a[k]))==v) {
323 o(stuff_const(op,v&a[i]));
324 o(stuff_const(o2,v&a[j]));
325 o(stuff_const(o2,v&a[k]));
326 return;
328 no=op^0xC00000;
329 nv=-v;
330 for(i=0;i<8;i++)
331 for(j=i+4;j<12;j++)
332 for(k=i<4?i+12:15;k>=j+4;k--)
333 if((nv&(a[i]|a[j]|a[k]))==nv) {
334 o(stuff_const(no,nv&a[i]));
335 o(stuff_const(n2,nv&a[j]));
336 o(stuff_const(n2,nv&a[k]));
337 return;
339 o(stuff_const(op,v&a[0]));
340 o(stuff_const(o2,v&a[4]));
341 o(stuff_const(o2,v&a[8]));
342 o(stuff_const(o2,v&a[12]));
346 uint32_t encbranch(int pos, int addr, int fail)
348 addr-=pos+8;
349 addr/=4;
350 if(addr>=0x1000000 || addr<-0x1000000) {
351 if(fail)
352 tcc_error("FIXME: function bigger than 32MB");
353 return 0;
355 return 0x0A000000|(addr&0xffffff);
358 int decbranch(int pos)
360 int x;
361 x=*(uint32_t *)(cur_text_section->data + pos);
362 x&=0x00ffffff;
363 if(x&0x800000)
364 x-=0x1000000;
365 return x*4+pos+8;
368 /* output a symbol and patch all calls to it */
369 void gsym_addr(int t, int a)
371 uint32_t *x;
372 int lt;
373 while(t) {
374 x=(uint32_t *)(cur_text_section->data + t);
375 t=decbranch(lt=t);
376 if(a==lt+4)
377 *x=0xE1A00000; // nop
378 else {
379 *x &= 0xff000000;
380 *x |= encbranch(lt,a,1);
385 void gsym(int t)
387 gsym_addr(t, ind);
390 #ifdef TCC_ARM_VFP
391 static uint32_t vfpr(int r)
393 if(r<TREG_F0 || r>TREG_F7)
394 tcc_error("compiler error! register %i is no vfp register",r);
395 return r - TREG_F0;
397 #else
398 static uint32_t fpr(int r)
400 if(r<TREG_F0 || r>TREG_F3)
401 tcc_error("compiler error! register %i is no fpa register",r);
402 return r - TREG_F0;
404 #endif
406 static uint32_t intr(int r)
408 if(r == TREG_R12)
409 return 12;
410 if(r >= TREG_R0 && r <= TREG_R3)
411 return r - TREG_R0;
412 if (r >= TREG_SP && r <= TREG_LR)
413 return r + (13 - TREG_SP);
414 tcc_error("compiler error! register %i is no int register",r);
417 static void calcaddr(uint32_t *base, int *off, int *sgn, int maxoff, unsigned shift)
419 if(*off>maxoff || *off&((1<<shift)-1)) {
420 uint32_t x, y;
421 x=0xE280E000;
422 if(*sgn)
423 x=0xE240E000;
424 x|=(*base)<<16;
425 *base=14; // lr
426 y=stuff_const(x,*off&~maxoff);
427 if(y) {
428 o(y);
429 *off&=maxoff;
430 return;
432 y=stuff_const(x,(*off+maxoff)&~maxoff);
433 if(y) {
434 o(y);
435 *sgn=!*sgn;
436 *off=((*off+maxoff)&~maxoff)-*off;
437 return;
439 stuff_const_harder(x,*off&~maxoff);
440 *off&=maxoff;
444 static uint32_t mapcc(int cc)
446 switch(cc)
448 case TOK_ULT:
449 return 0x30000000; /* CC/LO */
450 case TOK_UGE:
451 return 0x20000000; /* CS/HS */
452 case TOK_EQ:
453 return 0x00000000; /* EQ */
454 case TOK_NE:
455 return 0x10000000; /* NE */
456 case TOK_ULE:
457 return 0x90000000; /* LS */
458 case TOK_UGT:
459 return 0x80000000; /* HI */
460 case TOK_Nset:
461 return 0x40000000; /* MI */
462 case TOK_Nclear:
463 return 0x50000000; /* PL */
464 case TOK_LT:
465 return 0xB0000000; /* LT */
466 case TOK_GE:
467 return 0xA0000000; /* GE */
468 case TOK_LE:
469 return 0xD0000000; /* LE */
470 case TOK_GT:
471 return 0xC0000000; /* GT */
473 tcc_error("unexpected condition code");
474 return 0xE0000000; /* AL */
477 static int negcc(int cc)
479 switch(cc)
481 case TOK_ULT:
482 return TOK_UGE;
483 case TOK_UGE:
484 return TOK_ULT;
485 case TOK_EQ:
486 return TOK_NE;
487 case TOK_NE:
488 return TOK_EQ;
489 case TOK_ULE:
490 return TOK_UGT;
491 case TOK_UGT:
492 return TOK_ULE;
493 case TOK_Nset:
494 return TOK_Nclear;
495 case TOK_Nclear:
496 return TOK_Nset;
497 case TOK_LT:
498 return TOK_GE;
499 case TOK_GE:
500 return TOK_LT;
501 case TOK_LE:
502 return TOK_GT;
503 case TOK_GT:
504 return TOK_LE;
506 tcc_error("unexpected condition code");
507 return TOK_NE;
510 /* load 'r' from value 'sv' */
511 void load(int r, SValue *sv)
513 int v, ft, fc, fr, sign;
514 uint32_t op;
515 SValue v1;
517 fr = sv->r;
518 ft = sv->type.t;
519 fc = sv->c.i;
521 if(fc>=0)
522 sign=0;
523 else {
524 sign=1;
525 fc=-fc;
528 v = fr & VT_VALMASK;
529 if (fr & VT_LVAL) {
530 uint32_t base = 0xB; // fp
531 if(v == VT_LLOCAL) {
532 v1.type.t = VT_PTR;
533 v1.r = VT_LOCAL | VT_LVAL;
534 v1.c.i = sv->c.i;
535 load(TREG_LR, &v1);
536 base = 14; /* lr */
537 fc=sign=0;
538 v=VT_LOCAL;
539 } else if(v == VT_CONST) {
540 v1.type.t = VT_PTR;
541 v1.r = fr&~VT_LVAL;
542 v1.c.i = sv->c.i;
543 v1.sym=sv->sym;
544 load(TREG_LR, &v1);
545 base = 14; /* lr */
546 fc=sign=0;
547 v=VT_LOCAL;
548 } else if(v < VT_CONST) {
549 base=intr(v);
550 fc=sign=0;
551 v=VT_LOCAL;
553 if(v == VT_LOCAL) {
554 if(is_float(ft)) {
555 calcaddr(&base,&fc,&sign,1020,2);
556 #ifdef TCC_ARM_VFP
557 op=0xED100A00; /* flds */
558 if(!sign)
559 op|=0x800000;
560 if ((ft & VT_BTYPE) != VT_FLOAT)
561 op|=0x100; /* flds -> fldd */
562 o(op|(vfpr(r)<<12)|(fc>>2)|(base<<16));
563 #else
564 op=0xED100100;
565 if(!sign)
566 op|=0x800000;
567 #if LDOUBLE_SIZE == 8
568 if ((ft & VT_BTYPE) != VT_FLOAT)
569 op|=0x8000;
570 #else
571 if ((ft & VT_BTYPE) == VT_DOUBLE)
572 op|=0x8000;
573 else if ((ft & VT_BTYPE) == VT_LDOUBLE)
574 op|=0x400000;
575 #endif
576 o(op|(fpr(r)<<12)|(fc>>2)|(base<<16));
577 #endif
578 } else if((ft & (VT_BTYPE|VT_UNSIGNED)) == VT_BYTE
579 || (ft & VT_BTYPE) == VT_SHORT) {
580 calcaddr(&base,&fc,&sign,255,0);
581 op=0xE1500090;
582 if ((ft & VT_BTYPE) == VT_SHORT)
583 op|=0x20;
584 if ((ft & VT_UNSIGNED) == 0)
585 op|=0x40;
586 if(!sign)
587 op|=0x800000;
588 o(op|(intr(r)<<12)|(base<<16)|((fc&0xf0)<<4)|(fc&0xf));
589 } else {
590 calcaddr(&base,&fc,&sign,4095,0);
591 op=0xE5100000;
592 if(!sign)
593 op|=0x800000;
594 if ((ft & VT_BTYPE) == VT_BYTE || (ft & VT_BTYPE) == VT_BOOL)
595 op|=0x400000;
596 o(op|(intr(r)<<12)|fc|(base<<16));
598 return;
600 } else {
601 if (v == VT_CONST) {
602 op=stuff_const(0xE3A00000|(intr(r)<<12),sv->c.i);
603 if (fr & VT_SYM || !op) {
604 o(0xE59F0000|(intr(r)<<12));
605 o(0xEA000000);
606 if(fr & VT_SYM)
607 greloc(cur_text_section, sv->sym, ind, R_ARM_ABS32);
608 o(sv->c.i);
609 } else
610 o(op);
611 return;
612 } else if (v == VT_LOCAL) {
613 op=stuff_const(0xE28B0000|(intr(r)<<12),sv->c.i);
614 if (fr & VT_SYM || !op) {
615 o(0xE59F0000|(intr(r)<<12));
616 o(0xEA000000);
617 if(fr & VT_SYM) // needed ?
618 greloc(cur_text_section, sv->sym, ind, R_ARM_ABS32);
619 o(sv->c.i);
620 o(0xE08B0000|(intr(r)<<12)|intr(r));
621 } else
622 o(op);
623 return;
624 } else if(v == VT_CMP) {
625 o(mapcc(sv->c.i)|0x3A00001|(intr(r)<<12));
626 o(mapcc(negcc(sv->c.i))|0x3A00000|(intr(r)<<12));
627 return;
628 } else if (v == VT_JMP || v == VT_JMPI) {
629 int t;
630 t = v & 1;
631 o(0xE3A00000|(intr(r)<<12)|t);
632 o(0xEA000000);
633 gsym(sv->c.i);
634 o(0xE3A00000|(intr(r)<<12)|(t^1));
635 return;
636 } else if (v < VT_CONST) {
637 if(is_float(ft))
638 #ifdef TCC_ARM_VFP
639 o(0xEEB00A40|(vfpr(r)<<12)|vfpr(v)|T2CPR(ft)); /* fcpyX */
640 #else
641 o(0xEE008180|(fpr(r)<<12)|fpr(v));
642 #endif
643 else
644 o(0xE1A00000|(intr(r)<<12)|intr(v));
645 return;
648 tcc_error("load unimplemented!");
651 /* store register 'r' in lvalue 'v' */
652 void store(int r, SValue *sv)
654 SValue v1;
655 int v, ft, fc, fr, sign;
656 uint32_t op;
658 fr = sv->r;
659 ft = sv->type.t;
660 fc = sv->c.i;
662 if(fc>=0)
663 sign=0;
664 else {
665 sign=1;
666 fc=-fc;
669 v = fr & VT_VALMASK;
670 if (fr & VT_LVAL || fr == VT_LOCAL) {
671 uint32_t base = 0xb; /* fp */
672 if(v < VT_CONST) {
673 base=intr(v);
674 v=VT_LOCAL;
675 fc=sign=0;
676 } else if(v == VT_CONST) {
677 v1.type.t = ft;
678 v1.r = fr&~VT_LVAL;
679 v1.c.i = sv->c.i;
680 v1.sym=sv->sym;
681 load(TREG_LR, &v1);
682 base = 14; /* lr */
683 fc=sign=0;
684 v=VT_LOCAL;
686 if(v == VT_LOCAL) {
687 if(is_float(ft)) {
688 calcaddr(&base,&fc,&sign,1020,2);
689 #ifdef TCC_ARM_VFP
690 op=0xED000A00; /* fsts */
691 if(!sign)
692 op|=0x800000;
693 if ((ft & VT_BTYPE) != VT_FLOAT)
694 op|=0x100; /* fsts -> fstd */
695 o(op|(vfpr(r)<<12)|(fc>>2)|(base<<16));
696 #else
697 op=0xED000100;
698 if(!sign)
699 op|=0x800000;
700 #if LDOUBLE_SIZE == 8
701 if ((ft & VT_BTYPE) != VT_FLOAT)
702 op|=0x8000;
703 #else
704 if ((ft & VT_BTYPE) == VT_DOUBLE)
705 op|=0x8000;
706 if ((ft & VT_BTYPE) == VT_LDOUBLE)
707 op|=0x400000;
708 #endif
709 o(op|(fpr(r)<<12)|(fc>>2)|(base<<16));
710 #endif
711 return;
712 } else if((ft & VT_BTYPE) == VT_SHORT) {
713 calcaddr(&base,&fc,&sign,255,0);
714 op=0xE14000B0;
715 if(!sign)
716 op|=0x800000;
717 o(op|(intr(r)<<12)|(base<<16)|((fc&0xf0)<<4)|(fc&0xf));
718 } else {
719 calcaddr(&base,&fc,&sign,4095,0);
720 op=0xE5000000;
721 if(!sign)
722 op|=0x800000;
723 if ((ft & VT_BTYPE) == VT_BYTE || (ft & VT_BTYPE) == VT_BOOL)
724 op|=0x400000;
725 o(op|(intr(r)<<12)|fc|(base<<16));
727 return;
730 tcc_error("store unimplemented");
733 static void gadd_sp(int val)
735 stuff_const_harder(0xE28DD000,val);
738 /* 'is_jmp' is '1' if it is a jump */
739 static void gcall_or_jmp(int is_jmp)
741 int r;
742 uint32_t x;
743 if ((vtop->r & (VT_VALMASK | VT_LVAL)) == VT_CONST) {
744 /* constant case */
745 if(vtop->r & VT_SYM){
746 x=encbranch(ind,ind+vtop->c.i,0);
747 if(x) {
748 /* relocation case */
749 greloc(cur_text_section, vtop->sym, ind, R_ARM_PC24);
750 o(x|(is_jmp?0xE0000000:0xE1000000));
751 } else {
752 if(!is_jmp)
753 o(0xE28FE004); // add lr,pc,#4
754 o(0xE51FF004); // ldr pc,[pc,#-4]
755 greloc(cur_text_section, vtop->sym, ind, R_ARM_ABS32);
756 o(vtop->c.i);
758 }else{
759 if(!is_jmp)
760 o(0xE28FE004); // add lr,pc,#4
761 o(0xE51FF004); // ldr pc,[pc,#-4]
762 o(vtop->c.i);
764 } else {
765 /* otherwise, indirect call */
766 r = gv(RC_INT);
767 if(!is_jmp)
768 o(0xE1A0E00F); // mov lr,pc
769 o(0xE1A0F000|intr(r)); // mov pc,r
773 static int unalias_ldbl(int btype)
775 #if LDOUBLE_SIZE == 8
776 if (btype == VT_LDOUBLE)
777 btype = VT_DOUBLE;
778 #endif
779 return btype;
782 /* Return whether a structure is an homogeneous float aggregate or not.
783 The answer is true if all the elements of the structure are of the same
784 primitive float type and there is less than 4 elements.
786 type: the type corresponding to the structure to be tested */
787 static int is_hgen_float_aggr(CType *type)
789 if ((type->t & VT_BTYPE) == VT_STRUCT) {
790 struct Sym *ref;
791 int btype, nb_fields = 0;
793 ref = type->ref->next;
794 btype = unalias_ldbl(ref->type.t & VT_BTYPE);
795 if (btype == VT_FLOAT || btype == VT_DOUBLE) {
796 for(; ref && btype == unalias_ldbl(ref->type.t & VT_BTYPE); ref = ref->next, nb_fields++);
797 return !ref && nb_fields <= 4;
800 return 0;
803 struct avail_regs {
804 signed char avail[3]; /* 3 holes max with only float and double alignments */
805 int first_hole; /* first available hole */
806 int last_hole; /* last available hole (none if equal to first_hole) */
807 int first_free_reg; /* next free register in the sequence, hole excluded */
810 #define AVAIL_REGS_INITIALIZER (struct avail_regs) { { 0, 0, 0}, 0, 0, 0 }
812 /* Find suitable registers for a VFP Co-Processor Register Candidate (VFP CPRC
813 param) according to the rules described in the procedure call standard for
814 the ARM architecture (AAPCS). If found, the registers are assigned to this
815 VFP CPRC parameter. Registers are allocated in sequence unless a hole exists
816 and the parameter is a single float.
818 avregs: opaque structure to keep track of available VFP co-processor regs
819 align: alignment constraints for the param, as returned by type_size()
820 size: size of the parameter, as returned by type_size() */
821 int assign_vfpreg(struct avail_regs *avregs, int align, int size)
823 int first_reg = 0;
825 if (avregs->first_free_reg == -1)
826 return -1;
827 if (align >> 3) { /* double alignment */
828 first_reg = avregs->first_free_reg;
829 /* alignment constraint not respected so use next reg and record hole */
830 if (first_reg & 1)
831 avregs->avail[avregs->last_hole++] = first_reg++;
832 } else { /* no special alignment (float or array of float) */
833 /* if single float and a hole is available, assign the param to it */
834 if (size == 4 && avregs->first_hole != avregs->last_hole)
835 return avregs->avail[avregs->first_hole++];
836 else
837 first_reg = avregs->first_free_reg;
839 if (first_reg + size / 4 <= 16) {
840 avregs->first_free_reg = first_reg + size / 4;
841 return first_reg;
843 avregs->first_free_reg = -1;
844 return -1;
847 /* Returns whether all params need to be passed in core registers or not.
848 This is the case for function part of the runtime ABI. */
849 int floats_in_core_regs(SValue *sval)
851 if (!sval->sym)
852 return 0;
854 switch (sval->sym->v) {
855 case TOK___floatundisf:
856 case TOK___floatundidf:
857 case TOK___fixunssfdi:
858 case TOK___fixunsdfdi:
859 #ifndef TCC_ARM_VFP
860 case TOK___fixunsxfdi:
861 #endif
862 case TOK___floatdisf:
863 case TOK___floatdidf:
864 case TOK___fixsfdi:
865 case TOK___fixdfdi:
866 return 1;
868 default:
869 return 0;
873 /* Return the number of registers needed to return the struct, or 0 if
874 returning via struct pointer. */
875 ST_FUNC int gfunc_sret(CType *vt, int variadic, CType *ret, int *ret_align, int *regsize) {
876 #ifdef TCC_ARM_EABI
877 int size, align;
878 size = type_size(vt, &align);
879 if (float_abi == ARM_HARD_FLOAT && !variadic &&
880 (is_float(vt->t) || is_hgen_float_aggr(vt))) {
881 *ret_align = 8;
882 *regsize = 8;
883 ret->ref = NULL;
884 ret->t = VT_DOUBLE;
885 return (size + 7) >> 3;
886 } else if (size <= 4) {
887 *ret_align = 4;
888 *regsize = 4;
889 ret->ref = NULL;
890 ret->t = VT_INT;
891 return 1;
892 } else
893 return 0;
894 #else
895 return 0;
896 #endif
899 /* Parameters are classified according to how they are copied to their final
900 destination for the function call. Because the copying is performed class
901 after class according to the order in the union below, it is important that
902 some constraints about the order of the members of this union are respected:
903 - CORE_STRUCT_CLASS must come after STACK_CLASS;
904 - CORE_CLASS must come after STACK_CLASS, CORE_STRUCT_CLASS and
905 VFP_STRUCT_CLASS;
906 - VFP_STRUCT_CLASS must come after VFP_CLASS.
907 See the comment for the main loop in copy_params() for the reason. */
908 enum reg_class {
909 STACK_CLASS = 0,
910 CORE_STRUCT_CLASS,
911 VFP_CLASS,
912 VFP_STRUCT_CLASS,
913 CORE_CLASS,
914 NB_CLASSES
917 struct param_plan {
918 int start; /* first reg or addr used depending on the class */
919 int end; /* last reg used or next free addr depending on the class */
920 SValue *sval; /* pointer to SValue on the value stack */
921 struct param_plan *prev; /* previous element in this class */
924 struct plan {
925 struct param_plan *pplans; /* array of all the param plans */
926 struct param_plan *clsplans[NB_CLASSES]; /* per class lists of param plans */
929 #define add_param_plan(plan,pplan,class) \
930 do { \
931 pplan.prev = plan->clsplans[class]; \
932 plan->pplans[plan ## _nb] = pplan; \
933 plan->clsplans[class] = &plan->pplans[plan ## _nb++]; \
934 } while(0)
936 /* Assign parameters to registers and stack with alignment according to the
937 rules in the procedure call standard for the ARM architecture (AAPCS).
938 The overall assignment is recorded in an array of per parameter structures
939 called parameter plans. The parameter plans are also further organized in a
940 number of linked lists, one per class of parameter (see the comment for the
941 definition of union reg_class).
943 nb_args: number of parameters of the function for which a call is generated
944 float_abi: float ABI in use for this function call
945 plan: the structure where the overall assignment is recorded
946 todo: a bitmap that record which core registers hold a parameter
948 Returns the amount of stack space needed for parameter passing
950 Note: this function allocated an array in plan->pplans with tcc_malloc. It
951 is the responsibility of the caller to free this array once used (ie not
952 before copy_params). */
953 static int assign_regs(int nb_args, int float_abi, struct plan *plan, int *todo)
955 int i, size, align;
956 int ncrn /* next core register number */, nsaa /* next stacked argument address*/;
957 int plan_nb = 0;
958 struct param_plan pplan;
959 struct avail_regs avregs = AVAIL_REGS_INITIALIZER;
961 ncrn = nsaa = 0;
962 *todo = 0;
963 plan->pplans = tcc_malloc(nb_args * sizeof(*plan->pplans));
964 memset(plan->clsplans, 0, sizeof(plan->clsplans));
965 for(i = nb_args; i-- ;) {
966 int j, start_vfpreg = 0;
967 CType type = vtop[-i].type;
968 type.t &= ~VT_ARRAY;
969 size = type_size(&type, &align);
970 size = (size + 3) & ~3;
971 align = (align + 3) & ~3;
972 switch(vtop[-i].type.t & VT_BTYPE) {
973 case VT_STRUCT:
974 case VT_FLOAT:
975 case VT_DOUBLE:
976 case VT_LDOUBLE:
977 if (float_abi == ARM_HARD_FLOAT) {
978 int is_hfa = 0; /* Homogeneous float aggregate */
980 if (is_float(vtop[-i].type.t)
981 || (is_hfa = is_hgen_float_aggr(&vtop[-i].type))) {
982 int end_vfpreg;
984 start_vfpreg = assign_vfpreg(&avregs, align, size);
985 end_vfpreg = start_vfpreg + ((size - 1) >> 2);
986 if (start_vfpreg >= 0) {
987 pplan = (struct param_plan) {start_vfpreg, end_vfpreg, &vtop[-i]};
988 if (is_hfa)
989 add_param_plan(plan, pplan, VFP_STRUCT_CLASS);
990 else
991 add_param_plan(plan, pplan, VFP_CLASS);
992 continue;
993 } else
994 break;
997 ncrn = (ncrn + (align-1)/4) & ~((align/4) - 1);
998 if (ncrn + size/4 <= 4 || (ncrn < 4 && start_vfpreg != -1)) {
999 /* The parameter is allocated both in core register and on stack. As
1000 * such, it can be of either class: it would either be the last of
1001 * CORE_STRUCT_CLASS or the first of STACK_CLASS. */
1002 for (j = ncrn; j < 4 && j < ncrn + size / 4; j++)
1003 *todo|=(1<<j);
1004 pplan = (struct param_plan) {ncrn, j, &vtop[-i]};
1005 add_param_plan(plan, pplan, CORE_STRUCT_CLASS);
1006 ncrn += size/4;
1007 if (ncrn > 4)
1008 nsaa = (ncrn - 4) * 4;
1009 } else {
1010 ncrn = 4;
1011 break;
1013 continue;
1014 default:
1015 if (ncrn < 4) {
1016 int is_long = (vtop[-i].type.t & VT_BTYPE) == VT_LLONG;
1018 if (is_long) {
1019 ncrn = (ncrn + 1) & -2;
1020 if (ncrn == 4)
1021 break;
1023 pplan = (struct param_plan) {ncrn, ncrn, &vtop[-i]};
1024 ncrn++;
1025 if (is_long)
1026 pplan.end = ncrn++;
1027 add_param_plan(plan, pplan, CORE_CLASS);
1028 continue;
1031 nsaa = (nsaa + (align - 1)) & ~(align - 1);
1032 pplan = (struct param_plan) {nsaa, nsaa + size, &vtop[-i]};
1033 add_param_plan(plan, pplan, STACK_CLASS);
1034 nsaa += size; /* size already rounded up before */
1036 return nsaa;
1039 #undef add_param_plan
1041 /* Copy parameters to their final destination (core reg, VFP reg or stack) for
1042 function call.
1044 nb_args: number of parameters the function take
1045 plan: the overall assignment plan for parameters
1046 todo: a bitmap indicating what core reg will hold a parameter
1048 Returns the number of SValue added by this function on the value stack */
1049 static int copy_params(int nb_args, struct plan *plan, int todo)
1051 int size, align, r, i, nb_extra_sval = 0;
1052 struct param_plan *pplan;
1053 int pass = 0;
1055 /* Several constraints require parameters to be copied in a specific order:
1056 - structures are copied to the stack before being loaded in a reg;
1057 - floats loaded to an odd numbered VFP reg are first copied to the
1058 preceding even numbered VFP reg and then moved to the next VFP reg.
1060 It is thus important that:
1061 - structures assigned to core regs must be copied after parameters
1062 assigned to the stack but before structures assigned to VFP regs because
1063 a structure can lie partly in core registers and partly on the stack;
1064 - parameters assigned to the stack and all structures be copied before
1065 parameters assigned to a core reg since copying a parameter to the stack
1066 require using a core reg;
1067 - parameters assigned to VFP regs be copied before structures assigned to
1068 VFP regs as the copy might use an even numbered VFP reg that already
1069 holds part of a structure. */
1070 again:
1071 for(i = 0; i < NB_CLASSES; i++) {
1072 for(pplan = plan->clsplans[i]; pplan; pplan = pplan->prev) {
1074 if (pass
1075 && (i != CORE_CLASS || pplan->sval->r < VT_CONST))
1076 continue;
1078 vpushv(pplan->sval);
1079 pplan->sval->r = pplan->sval->r2 = VT_CONST; /* disable entry */
1080 switch(i) {
1081 case STACK_CLASS:
1082 case CORE_STRUCT_CLASS:
1083 case VFP_STRUCT_CLASS:
1084 if ((pplan->sval->type.t & VT_BTYPE) == VT_STRUCT) {
1085 int padding = 0;
1086 size = type_size(&pplan->sval->type, &align);
1087 /* align to stack align size */
1088 size = (size + 3) & ~3;
1089 if (i == STACK_CLASS && pplan->prev)
1090 padding = pplan->start - pplan->prev->end;
1091 size += padding; /* Add padding if any */
1092 /* allocate the necessary size on stack */
1093 gadd_sp(-size);
1094 /* generate structure store */
1095 r = get_reg(RC_INT);
1096 o(0xE28D0000|(intr(r)<<12)|padding); /* add r, sp, padding */
1097 vset(&vtop->type, r | VT_LVAL, 0);
1098 vswap();
1099 vstore(); /* memcpy to current sp + potential padding */
1101 /* Homogeneous float aggregate are loaded to VFP registers
1102 immediately since there is no way of loading data in multiple
1103 non consecutive VFP registers as what is done for other
1104 structures (see the use of todo). */
1105 if (i == VFP_STRUCT_CLASS) {
1106 int first = pplan->start, nb = pplan->end - first + 1;
1107 /* vpop.32 {pplan->start, ..., pplan->end} */
1108 o(0xECBD0A00|(first&1)<<22|(first>>1)<<12|nb);
1109 /* No need to write the register used to a SValue since VFP regs
1110 cannot be used for gcall_or_jmp */
1112 } else {
1113 if (is_float(pplan->sval->type.t)) {
1114 #ifdef TCC_ARM_VFP
1115 r = vfpr(gv(RC_FLOAT)) << 12;
1116 if ((pplan->sval->type.t & VT_BTYPE) == VT_FLOAT)
1117 size = 4;
1118 else {
1119 size = 8;
1120 r |= 0x101; /* vpush.32 -> vpush.64 */
1122 o(0xED2D0A01 + r); /* vpush */
1123 #else
1124 r = fpr(gv(RC_FLOAT)) << 12;
1125 if ((pplan->sval->type.t & VT_BTYPE) == VT_FLOAT)
1126 size = 4;
1127 else if ((pplan->sval->type.t & VT_BTYPE) == VT_DOUBLE)
1128 size = 8;
1129 else
1130 size = LDOUBLE_SIZE;
1132 if (size == 12)
1133 r |= 0x400000;
1134 else if(size == 8)
1135 r|=0x8000;
1137 o(0xED2D0100|r|(size>>2)); /* some kind of vpush for FPA */
1138 #endif
1139 } else {
1140 /* simple type (currently always same size) */
1141 /* XXX: implicit cast ? */
1142 size=4;
1143 if ((pplan->sval->type.t & VT_BTYPE) == VT_LLONG) {
1144 lexpand();
1145 size = 8;
1146 r = gv(RC_INT);
1147 o(0xE52D0004|(intr(r)<<12)); /* push r */
1148 vtop--;
1150 r = gv(RC_INT);
1151 o(0xE52D0004|(intr(r)<<12)); /* push r */
1153 if (i == STACK_CLASS && pplan->prev)
1154 gadd_sp(pplan->prev->end - pplan->start); /* Add padding if any */
1156 break;
1158 case VFP_CLASS:
1159 gv(regmask(TREG_F0 + (pplan->start >> 1)));
1160 if (pplan->start & 1) { /* Must be in upper part of double register */
1161 o(0xEEF00A40|((pplan->start>>1)<<12)|(pplan->start>>1)); /* vmov.f32 s(n+1), sn */
1162 vtop->r = VT_CONST; /* avoid being saved on stack by gv for next float */
1164 break;
1166 case CORE_CLASS:
1167 if ((pplan->sval->type.t & VT_BTYPE) == VT_LLONG) {
1168 lexpand();
1169 gv(regmask(pplan->end));
1170 pplan->sval->r2 = vtop->r;
1171 vtop--;
1173 gv(regmask(pplan->start));
1174 /* Mark register as used so that gcall_or_jmp use another one
1175 (regs >=4 are free as never used to pass parameters) */
1176 pplan->sval->r = vtop->r;
1177 break;
1179 vtop--;
1183 /* second pass to restore registers that were saved on stack by accident.
1184 Maybe redundant after the "lvalue_save" patch in tccgen.c:gv() */
1185 if (++pass < 2)
1186 goto again;
1188 /* Manually free remaining registers since next parameters are loaded
1189 * manually, without the help of gv(int). */
1190 save_regs(nb_args);
1192 if(todo) {
1193 o(0xE8BD0000|todo); /* pop {todo} */
1194 for(pplan = plan->clsplans[CORE_STRUCT_CLASS]; pplan; pplan = pplan->prev) {
1195 int r;
1196 pplan->sval->r = pplan->start;
1197 /* An SValue can only pin 2 registers at best (r and r2) but a structure
1198 can occupy more than 2 registers. Thus, we need to push on the value
1199 stack some fake parameter to have on SValue for each registers used
1200 by a structure (r2 is not used). */
1201 for (r = pplan->start + 1; r <= pplan->end; r++) {
1202 if (todo & (1 << r)) {
1203 nb_extra_sval++;
1204 vpushi(0);
1205 vtop->r = r;
1210 return nb_extra_sval;
1213 /* Generate function call. The function address is pushed first, then
1214 all the parameters in call order. This functions pops all the
1215 parameters and the function address. */
1216 void gfunc_call(int nb_args)
1218 int r, args_size;
1219 int def_float_abi = float_abi;
1220 int todo;
1221 struct plan plan;
1223 #ifdef TCC_ARM_EABI
1224 int variadic;
1226 if (float_abi == ARM_HARD_FLOAT) {
1227 variadic = (vtop[-nb_args].type.ref->f.func_type == FUNC_ELLIPSIS);
1228 if (variadic || floats_in_core_regs(&vtop[-nb_args]))
1229 float_abi = ARM_SOFTFP_FLOAT;
1231 #endif
1232 /* cannot let cpu flags if other instruction are generated. Also avoid leaving
1233 VT_JMP anywhere except on the top of the stack because it would complicate
1234 the code generator. */
1235 r = vtop->r & VT_VALMASK;
1236 if (r == VT_CMP || (r & ~1) == VT_JMP)
1237 gv(RC_INT);
1239 args_size = assign_regs(nb_args, float_abi, &plan, &todo);
1241 #ifdef TCC_ARM_EABI
1242 if (args_size & 7) { /* Stack must be 8 byte aligned at fct call for EABI */
1243 args_size = (args_size + 7) & ~7;
1244 o(0xE24DD004); /* sub sp, sp, #4 */
1246 #endif
1248 nb_args += copy_params(nb_args, &plan, todo);
1249 tcc_free(plan.pplans);
1251 /* Move fct SValue on top as required by gcall_or_jmp */
1252 vrotb(nb_args + 1);
1253 gcall_or_jmp(0);
1254 if (args_size)
1255 gadd_sp(args_size); /* pop all parameters passed on the stack */
1256 #if defined(TCC_ARM_EABI) && defined(TCC_ARM_VFP)
1257 if(float_abi == ARM_SOFTFP_FLOAT && is_float(vtop->type.ref->type.t)) {
1258 if((vtop->type.ref->type.t & VT_BTYPE) == VT_FLOAT) {
1259 o(0xEE000A10); /*vmov s0, r0 */
1260 } else {
1261 o(0xEE000B10); /* vmov.32 d0[0], r0 */
1262 o(0xEE201B10); /* vmov.32 d0[1], r1 */
1265 #endif
1266 vtop -= nb_args + 1; /* Pop all params and fct address from value stack */
1267 leaffunc = 0; /* we are calling a function, so we aren't in a leaf function */
1268 float_abi = def_float_abi;
1271 /* generate function prolog of type 't' */
1272 void gfunc_prolog(CType *func_type)
1274 Sym *sym,*sym2;
1275 int n, nf, size, align, rs, struct_ret = 0;
1276 int addr, pn, sn; /* pn=core, sn=stack */
1277 CType ret_type;
1279 #ifdef TCC_ARM_EABI
1280 struct avail_regs avregs = AVAIL_REGS_INITIALIZER;
1281 #endif
1283 sym = func_type->ref;
1284 func_vt = sym->type;
1285 func_var = (func_type->ref->f.func_type == FUNC_ELLIPSIS);
1287 n = nf = 0;
1288 if ((func_vt.t & VT_BTYPE) == VT_STRUCT &&
1289 !gfunc_sret(&func_vt, func_var, &ret_type, &align, &rs))
1291 n++;
1292 struct_ret = 1;
1293 func_vc = 12; /* Offset from fp of the place to store the result */
1295 for(sym2 = sym->next; sym2 && (n < 4 || nf < 16); sym2 = sym2->next) {
1296 size = type_size(&sym2->type, &align);
1297 #ifdef TCC_ARM_EABI
1298 if (float_abi == ARM_HARD_FLOAT && !func_var &&
1299 (is_float(sym2->type.t) || is_hgen_float_aggr(&sym2->type))) {
1300 int tmpnf = assign_vfpreg(&avregs, align, size);
1301 tmpnf += (size + 3) / 4;
1302 nf = (tmpnf > nf) ? tmpnf : nf;
1303 } else
1304 #endif
1305 if (n < 4)
1306 n += (size + 3) / 4;
1308 o(0xE1A0C00D); /* mov ip,sp */
1309 if (func_var)
1310 n=4;
1311 if (n) {
1312 if(n>4)
1313 n=4;
1314 #ifdef TCC_ARM_EABI
1315 n=(n+1)&-2;
1316 #endif
1317 o(0xE92D0000|((1<<n)-1)); /* save r0-r4 on stack if needed */
1319 if (nf) {
1320 if (nf>16)
1321 nf=16;
1322 nf=(nf+1)&-2; /* nf => HARDFLOAT => EABI */
1323 o(0xED2D0A00|nf); /* save s0-s15 on stack if needed */
1325 o(0xE92D5800); /* save fp, ip, lr */
1326 o(0xE1A0B00D); /* mov fp, sp */
1327 func_sub_sp_offset = ind;
1328 o(0xE1A00000); /* nop, leave space for stack adjustment in epilog */
1330 #ifdef TCC_ARM_EABI
1331 if (float_abi == ARM_HARD_FLOAT) {
1332 func_vc += nf * 4;
1333 avregs = AVAIL_REGS_INITIALIZER;
1335 #endif
1336 pn = struct_ret, sn = 0;
1337 while ((sym = sym->next)) {
1338 CType *type;
1339 type = &sym->type;
1340 size = type_size(type, &align);
1341 size = (size + 3) >> 2;
1342 align = (align + 3) & ~3;
1343 #ifdef TCC_ARM_EABI
1344 if (float_abi == ARM_HARD_FLOAT && !func_var && (is_float(sym->type.t)
1345 || is_hgen_float_aggr(&sym->type))) {
1346 int fpn = assign_vfpreg(&avregs, align, size << 2);
1347 if (fpn >= 0)
1348 addr = fpn * 4;
1349 else
1350 goto from_stack;
1351 } else
1352 #endif
1353 if (pn < 4) {
1354 #ifdef TCC_ARM_EABI
1355 pn = (pn + (align-1)/4) & -(align/4);
1356 #endif
1357 addr = (nf + pn) * 4;
1358 pn += size;
1359 if (!sn && pn > 4)
1360 sn = (pn - 4);
1361 } else {
1362 #ifdef TCC_ARM_EABI
1363 from_stack:
1364 sn = (sn + (align-1)/4) & -(align/4);
1365 #endif
1366 addr = (n + nf + sn) * 4;
1367 sn += size;
1369 sym_push(sym->v & ~SYM_FIELD, type, VT_LOCAL | lvalue_type(type->t),
1370 addr + 12);
1372 last_itod_magic=0;
1373 leaffunc = 1;
1374 loc = 0;
1377 /* generate function epilog */
1378 void gfunc_epilog(void)
1380 uint32_t x;
1381 int diff;
1382 /* Copy float return value to core register if base standard is used and
1383 float computation is made with VFP */
1384 #if defined(TCC_ARM_EABI) && defined(TCC_ARM_VFP)
1385 if ((float_abi == ARM_SOFTFP_FLOAT || func_var) && is_float(func_vt.t)) {
1386 if((func_vt.t & VT_BTYPE) == VT_FLOAT)
1387 o(0xEE100A10); /* fmrs r0, s0 */
1388 else {
1389 o(0xEE100B10); /* fmrdl r0, d0 */
1390 o(0xEE301B10); /* fmrdh r1, d0 */
1393 #endif
1394 o(0xE89BA800); /* restore fp, sp, pc */
1395 diff = (-loc + 3) & -4;
1396 #ifdef TCC_ARM_EABI
1397 if(!leaffunc)
1398 diff = ((diff + 11) & -8) - 4;
1399 #endif
1400 if(diff > 0) {
1401 x=stuff_const(0xE24BD000, diff); /* sub sp,fp,# */
1402 if(x)
1403 *(uint32_t *)(cur_text_section->data + func_sub_sp_offset) = x;
1404 else {
1405 int addr;
1406 addr=ind;
1407 o(0xE59FC004); /* ldr ip,[pc+4] */
1408 o(0xE04BD00C); /* sub sp,fp,ip */
1409 o(0xE1A0F00E); /* mov pc,lr */
1410 o(diff);
1411 *(uint32_t *)(cur_text_section->data + func_sub_sp_offset) = 0xE1000000|encbranch(func_sub_sp_offset,addr,1);
1416 ST_FUNC void gen_fill_nops(int bytes)
1418 if ((bytes & 3))
1419 tcc_error("alignment of code section not multiple of 4");
1420 while (bytes > 0) {
1421 o(0xE1A00000);
1422 bytes -= 4;
1426 /* generate a jump to a label */
1427 int gjmp(int t)
1429 int r;
1430 if (nocode_wanted)
1431 return t;
1432 r=ind;
1433 o(0xE0000000|encbranch(r,t,1));
1434 return r;
1437 /* generate a jump to a fixed address */
1438 void gjmp_addr(int a)
1440 gjmp(a);
1443 /* generate a test. set 'inv' to invert test. Stack entry is popped */
1444 int gtst(int inv, int t)
1446 int v, r;
1447 uint32_t op;
1449 v = vtop->r & VT_VALMASK;
1450 r=ind;
1452 if (nocode_wanted) {
1454 } else if (v == VT_CMP) {
1455 op=mapcc(inv?negcc(vtop->c.i):vtop->c.i);
1456 op|=encbranch(r,t,1);
1457 o(op);
1458 t=r;
1459 } else if (v == VT_JMP || v == VT_JMPI) {
1460 if ((v & 1) == inv) {
1461 if(!vtop->c.i)
1462 vtop->c.i=t;
1463 else {
1464 uint32_t *x;
1465 int p,lp;
1466 if(t) {
1467 p = vtop->c.i;
1468 do {
1469 p = decbranch(lp=p);
1470 } while(p);
1471 x = (uint32_t *)(cur_text_section->data + lp);
1472 *x &= 0xff000000;
1473 *x |= encbranch(lp,t,1);
1475 t = vtop->c.i;
1477 } else {
1478 t = gjmp(t);
1479 gsym(vtop->c.i);
1482 vtop--;
1483 return t;
1486 /* generate an integer binary operation */
1487 void gen_opi(int op)
1489 int c, func = 0;
1490 uint32_t opc = 0, r, fr;
1491 unsigned short retreg = REG_IRET;
1493 c=0;
1494 switch(op) {
1495 case '+':
1496 opc = 0x8;
1497 c=1;
1498 break;
1499 case TOK_ADDC1: /* add with carry generation */
1500 opc = 0x9;
1501 c=1;
1502 break;
1503 case '-':
1504 opc = 0x4;
1505 c=1;
1506 break;
1507 case TOK_SUBC1: /* sub with carry generation */
1508 opc = 0x5;
1509 c=1;
1510 break;
1511 case TOK_ADDC2: /* add with carry use */
1512 opc = 0xA;
1513 c=1;
1514 break;
1515 case TOK_SUBC2: /* sub with carry use */
1516 opc = 0xC;
1517 c=1;
1518 break;
1519 case '&':
1520 opc = 0x0;
1521 c=1;
1522 break;
1523 case '^':
1524 opc = 0x2;
1525 c=1;
1526 break;
1527 case '|':
1528 opc = 0x18;
1529 c=1;
1530 break;
1531 case '*':
1532 gv2(RC_INT, RC_INT);
1533 r = vtop[-1].r;
1534 fr = vtop[0].r;
1535 vtop--;
1536 o(0xE0000090|(intr(r)<<16)|(intr(r)<<8)|intr(fr));
1537 return;
1538 case TOK_SHL:
1539 opc = 0;
1540 c=2;
1541 break;
1542 case TOK_SHR:
1543 opc = 1;
1544 c=2;
1545 break;
1546 case TOK_SAR:
1547 opc = 2;
1548 c=2;
1549 break;
1550 case '/':
1551 case TOK_PDIV:
1552 func=TOK___divsi3;
1553 c=3;
1554 break;
1555 case TOK_UDIV:
1556 func=TOK___udivsi3;
1557 c=3;
1558 break;
1559 case '%':
1560 #ifdef TCC_ARM_EABI
1561 func=TOK___aeabi_idivmod;
1562 retreg=REG_LRET;
1563 #else
1564 func=TOK___modsi3;
1565 #endif
1566 c=3;
1567 break;
1568 case TOK_UMOD:
1569 #ifdef TCC_ARM_EABI
1570 func=TOK___aeabi_uidivmod;
1571 retreg=REG_LRET;
1572 #else
1573 func=TOK___umodsi3;
1574 #endif
1575 c=3;
1576 break;
1577 case TOK_UMULL:
1578 gv2(RC_INT, RC_INT);
1579 r=intr(vtop[-1].r2=get_reg(RC_INT));
1580 c=vtop[-1].r;
1581 vtop[-1].r=get_reg_ex(RC_INT,regmask(c));
1582 vtop--;
1583 o(0xE0800090|(r<<16)|(intr(vtop->r)<<12)|(intr(c)<<8)|intr(vtop[1].r));
1584 return;
1585 default:
1586 opc = 0x15;
1587 c=1;
1588 break;
1590 switch(c) {
1591 case 1:
1592 if((vtop[-1].r & (VT_VALMASK | VT_LVAL | VT_SYM)) == VT_CONST) {
1593 if(opc == 4 || opc == 5 || opc == 0xc) {
1594 vswap();
1595 opc|=2; // sub -> rsb
1598 if ((vtop->r & VT_VALMASK) == VT_CMP ||
1599 (vtop->r & (VT_VALMASK & ~1)) == VT_JMP)
1600 gv(RC_INT);
1601 vswap();
1602 c=intr(gv(RC_INT));
1603 vswap();
1604 opc=0xE0000000|(opc<<20)|(c<<16);
1605 if((vtop->r & (VT_VALMASK | VT_LVAL | VT_SYM)) == VT_CONST) {
1606 uint32_t x;
1607 x=stuff_const(opc|0x2000000,vtop->c.i);
1608 if(x) {
1609 r=intr(vtop[-1].r=get_reg_ex(RC_INT,regmask(vtop[-1].r)));
1610 o(x|(r<<12));
1611 goto done;
1614 fr=intr(gv(RC_INT));
1615 r=intr(vtop[-1].r=get_reg_ex(RC_INT,two2mask(vtop->r,vtop[-1].r)));
1616 o(opc|(r<<12)|fr);
1617 done:
1618 vtop--;
1619 if (op >= TOK_ULT && op <= TOK_GT) {
1620 vtop->r = VT_CMP;
1621 vtop->c.i = op;
1623 break;
1624 case 2:
1625 opc=0xE1A00000|(opc<<5);
1626 if ((vtop->r & VT_VALMASK) == VT_CMP ||
1627 (vtop->r & (VT_VALMASK & ~1)) == VT_JMP)
1628 gv(RC_INT);
1629 vswap();
1630 r=intr(gv(RC_INT));
1631 vswap();
1632 opc|=r;
1633 if ((vtop->r & (VT_VALMASK | VT_LVAL | VT_SYM)) == VT_CONST) {
1634 fr=intr(vtop[-1].r=get_reg_ex(RC_INT,regmask(vtop[-1].r)));
1635 c = vtop->c.i & 0x1f;
1636 o(opc|(c<<7)|(fr<<12));
1637 } else {
1638 fr=intr(gv(RC_INT));
1639 c=intr(vtop[-1].r=get_reg_ex(RC_INT,two2mask(vtop->r,vtop[-1].r)));
1640 o(opc|(c<<12)|(fr<<8)|0x10);
1642 vtop--;
1643 break;
1644 case 3:
1645 vpush_global_sym(&func_old_type, func);
1646 vrott(3);
1647 gfunc_call(2);
1648 vpushi(0);
1649 vtop->r = retreg;
1650 break;
1651 default:
1652 tcc_error("gen_opi %i unimplemented!",op);
1656 #ifdef TCC_ARM_VFP
1657 static int is_zero(int i)
1659 if((vtop[i].r & (VT_VALMASK | VT_LVAL | VT_SYM)) != VT_CONST)
1660 return 0;
1661 if (vtop[i].type.t == VT_FLOAT)
1662 return (vtop[i].c.f == 0.f);
1663 else if (vtop[i].type.t == VT_DOUBLE)
1664 return (vtop[i].c.d == 0.0);
1665 return (vtop[i].c.ld == 0.l);
1668 /* generate a floating point operation 'v = t1 op t2' instruction. The
1669 * two operands are guaranteed to have the same floating point type */
1670 void gen_opf(int op)
1672 uint32_t x;
1673 int fneg=0,r;
1674 x=0xEE000A00|T2CPR(vtop->type.t);
1675 switch(op) {
1676 case '+':
1677 if(is_zero(-1))
1678 vswap();
1679 if(is_zero(0)) {
1680 vtop--;
1681 return;
1683 x|=0x300000;
1684 break;
1685 case '-':
1686 x|=0x300040;
1687 if(is_zero(0)) {
1688 vtop--;
1689 return;
1691 if(is_zero(-1)) {
1692 x|=0x810000; /* fsubX -> fnegX */
1693 vswap();
1694 vtop--;
1695 fneg=1;
1697 break;
1698 case '*':
1699 x|=0x200000;
1700 break;
1701 case '/':
1702 x|=0x800000;
1703 break;
1704 default:
1705 if(op < TOK_ULT || op > TOK_GT) {
1706 tcc_error("unknown fp op %x!",op);
1707 return;
1709 if(is_zero(-1)) {
1710 vswap();
1711 switch(op) {
1712 case TOK_LT: op=TOK_GT; break;
1713 case TOK_GE: op=TOK_ULE; break;
1714 case TOK_LE: op=TOK_GE; break;
1715 case TOK_GT: op=TOK_ULT; break;
1718 x|=0xB40040; /* fcmpX */
1719 if(op!=TOK_EQ && op!=TOK_NE)
1720 x|=0x80; /* fcmpX -> fcmpeX */
1721 if(is_zero(0)) {
1722 vtop--;
1723 o(x|0x10000|(vfpr(gv(RC_FLOAT))<<12)); /* fcmp(e)X -> fcmp(e)zX */
1724 } else {
1725 x|=vfpr(gv(RC_FLOAT));
1726 vswap();
1727 o(x|(vfpr(gv(RC_FLOAT))<<12));
1728 vtop--;
1730 o(0xEEF1FA10); /* fmstat */
1732 switch(op) {
1733 case TOK_LE: op=TOK_ULE; break;
1734 case TOK_LT: op=TOK_ULT; break;
1735 case TOK_UGE: op=TOK_GE; break;
1736 case TOK_UGT: op=TOK_GT; break;
1739 vtop->r = VT_CMP;
1740 vtop->c.i = op;
1741 return;
1743 r=gv(RC_FLOAT);
1744 x|=vfpr(r);
1745 r=regmask(r);
1746 if(!fneg) {
1747 int r2;
1748 vswap();
1749 r2=gv(RC_FLOAT);
1750 x|=vfpr(r2)<<16;
1751 r|=regmask(r2);
1753 vtop->r=get_reg_ex(RC_FLOAT,r);
1754 if(!fneg)
1755 vtop--;
1756 o(x|(vfpr(vtop->r)<<12));
1759 #else
1760 static uint32_t is_fconst()
1762 long double f;
1763 uint32_t r;
1764 if((vtop->r & (VT_VALMASK | VT_LVAL | VT_SYM)) != VT_CONST)
1765 return 0;
1766 if (vtop->type.t == VT_FLOAT)
1767 f = vtop->c.f;
1768 else if (vtop->type.t == VT_DOUBLE)
1769 f = vtop->c.d;
1770 else
1771 f = vtop->c.ld;
1772 if(!ieee_finite(f))
1773 return 0;
1774 r=0x8;
1775 if(f<0.0) {
1776 r=0x18;
1777 f=-f;
1779 if(f==0.0)
1780 return r;
1781 if(f==1.0)
1782 return r|1;
1783 if(f==2.0)
1784 return r|2;
1785 if(f==3.0)
1786 return r|3;
1787 if(f==4.0)
1788 return r|4;
1789 if(f==5.0)
1790 return r|5;
1791 if(f==0.5)
1792 return r|6;
1793 if(f==10.0)
1794 return r|7;
1795 return 0;
1798 /* generate a floating point operation 'v = t1 op t2' instruction. The
1799 two operands are guaranteed to have the same floating point type */
1800 void gen_opf(int op)
1802 uint32_t x, r, r2, c1, c2;
1803 //fputs("gen_opf\n",stderr);
1804 vswap();
1805 c1 = is_fconst();
1806 vswap();
1807 c2 = is_fconst();
1808 x=0xEE000100;
1809 #if LDOUBLE_SIZE == 8
1810 if ((vtop->type.t & VT_BTYPE) != VT_FLOAT)
1811 x|=0x80;
1812 #else
1813 if ((vtop->type.t & VT_BTYPE) == VT_DOUBLE)
1814 x|=0x80;
1815 else if ((vtop->type.t & VT_BTYPE) == VT_LDOUBLE)
1816 x|=0x80000;
1817 #endif
1818 switch(op)
1820 case '+':
1821 if(!c2) {
1822 vswap();
1823 c2=c1;
1825 vswap();
1826 r=fpr(gv(RC_FLOAT));
1827 vswap();
1828 if(c2) {
1829 if(c2>0xf)
1830 x|=0x200000; // suf
1831 r2=c2&0xf;
1832 } else {
1833 r2=fpr(gv(RC_FLOAT));
1835 break;
1836 case '-':
1837 if(c2) {
1838 if(c2<=0xf)
1839 x|=0x200000; // suf
1840 r2=c2&0xf;
1841 vswap();
1842 r=fpr(gv(RC_FLOAT));
1843 vswap();
1844 } else if(c1 && c1<=0xf) {
1845 x|=0x300000; // rsf
1846 r2=c1;
1847 r=fpr(gv(RC_FLOAT));
1848 vswap();
1849 } else {
1850 x|=0x200000; // suf
1851 vswap();
1852 r=fpr(gv(RC_FLOAT));
1853 vswap();
1854 r2=fpr(gv(RC_FLOAT));
1856 break;
1857 case '*':
1858 if(!c2 || c2>0xf) {
1859 vswap();
1860 c2=c1;
1862 vswap();
1863 r=fpr(gv(RC_FLOAT));
1864 vswap();
1865 if(c2 && c2<=0xf)
1866 r2=c2;
1867 else
1868 r2=fpr(gv(RC_FLOAT));
1869 x|=0x100000; // muf
1870 break;
1871 case '/':
1872 if(c2 && c2<=0xf) {
1873 x|=0x400000; // dvf
1874 r2=c2;
1875 vswap();
1876 r=fpr(gv(RC_FLOAT));
1877 vswap();
1878 } else if(c1 && c1<=0xf) {
1879 x|=0x500000; // rdf
1880 r2=c1;
1881 r=fpr(gv(RC_FLOAT));
1882 vswap();
1883 } else {
1884 x|=0x400000; // dvf
1885 vswap();
1886 r=fpr(gv(RC_FLOAT));
1887 vswap();
1888 r2=fpr(gv(RC_FLOAT));
1890 break;
1891 default:
1892 if(op >= TOK_ULT && op <= TOK_GT) {
1893 x|=0xd0f110; // cmfe
1894 /* bug (intention?) in Linux FPU emulator
1895 doesn't set carry if equal */
1896 switch(op) {
1897 case TOK_ULT:
1898 case TOK_UGE:
1899 case TOK_ULE:
1900 case TOK_UGT:
1901 tcc_error("unsigned comparison on floats?");
1902 break;
1903 case TOK_LT:
1904 op=TOK_Nset;
1905 break;
1906 case TOK_LE:
1907 op=TOK_ULE; /* correct in unordered case only if AC bit in FPSR set */
1908 break;
1909 case TOK_EQ:
1910 case TOK_NE:
1911 x&=~0x400000; // cmfe -> cmf
1912 break;
1914 if(c1 && !c2) {
1915 c2=c1;
1916 vswap();
1917 switch(op) {
1918 case TOK_Nset:
1919 op=TOK_GT;
1920 break;
1921 case TOK_GE:
1922 op=TOK_ULE;
1923 break;
1924 case TOK_ULE:
1925 op=TOK_GE;
1926 break;
1927 case TOK_GT:
1928 op=TOK_Nset;
1929 break;
1932 vswap();
1933 r=fpr(gv(RC_FLOAT));
1934 vswap();
1935 if(c2) {
1936 if(c2>0xf)
1937 x|=0x200000;
1938 r2=c2&0xf;
1939 } else {
1940 r2=fpr(gv(RC_FLOAT));
1942 vtop[-1].r = VT_CMP;
1943 vtop[-1].c.i = op;
1944 } else {
1945 tcc_error("unknown fp op %x!",op);
1946 return;
1949 if(vtop[-1].r == VT_CMP)
1950 c1=15;
1951 else {
1952 c1=vtop->r;
1953 if(r2&0x8)
1954 c1=vtop[-1].r;
1955 vtop[-1].r=get_reg_ex(RC_FLOAT,two2mask(vtop[-1].r,c1));
1956 c1=fpr(vtop[-1].r);
1958 vtop--;
1959 o(x|(r<<16)|(c1<<12)|r2);
1961 #endif
1963 /* convert integers to fp 't' type. Must handle 'int', 'unsigned int'
1964 and 'long long' cases. */
1965 ST_FUNC void gen_cvt_itof1(int t)
1967 uint32_t r, r2;
1968 int bt;
1969 bt=vtop->type.t & VT_BTYPE;
1970 if(bt == VT_INT || bt == VT_SHORT || bt == VT_BYTE) {
1971 #ifndef TCC_ARM_VFP
1972 uint32_t dsize = 0;
1973 #endif
1974 r=intr(gv(RC_INT));
1975 #ifdef TCC_ARM_VFP
1976 r2=vfpr(vtop->r=get_reg(RC_FLOAT));
1977 o(0xEE000A10|(r<<12)|(r2<<16)); /* fmsr */
1978 r2|=r2<<12;
1979 if(!(vtop->type.t & VT_UNSIGNED))
1980 r2|=0x80; /* fuitoX -> fsituX */
1981 o(0xEEB80A40|r2|T2CPR(t)); /* fYitoX*/
1982 #else
1983 r2=fpr(vtop->r=get_reg(RC_FLOAT));
1984 if((t & VT_BTYPE) != VT_FLOAT)
1985 dsize=0x80; /* flts -> fltd */
1986 o(0xEE000110|dsize|(r2<<16)|(r<<12)); /* flts */
1987 if((vtop->type.t & (VT_UNSIGNED|VT_BTYPE)) == (VT_UNSIGNED|VT_INT)) {
1988 uint32_t off = 0;
1989 o(0xE3500000|(r<<12)); /* cmp */
1990 r=fpr(get_reg(RC_FLOAT));
1991 if(last_itod_magic) {
1992 off=ind+8-last_itod_magic;
1993 off/=4;
1994 if(off>255)
1995 off=0;
1997 o(0xBD1F0100|(r<<12)|off); /* ldflts */
1998 if(!off) {
1999 o(0xEA000000); /* b */
2000 last_itod_magic=ind;
2001 o(0x4F800000); /* 4294967296.0f */
2003 o(0xBE000100|dsize|(r2<<16)|(r2<<12)|r); /* adflt */
2005 #endif
2006 return;
2007 } else if(bt == VT_LLONG) {
2008 int func;
2009 CType *func_type = 0;
2010 if((t & VT_BTYPE) == VT_FLOAT) {
2011 func_type = &func_float_type;
2012 if(vtop->type.t & VT_UNSIGNED)
2013 func=TOK___floatundisf;
2014 else
2015 func=TOK___floatdisf;
2016 #if LDOUBLE_SIZE != 8
2017 } else if((t & VT_BTYPE) == VT_LDOUBLE) {
2018 func_type = &func_ldouble_type;
2019 if(vtop->type.t & VT_UNSIGNED)
2020 func=TOK___floatundixf;
2021 else
2022 func=TOK___floatdixf;
2023 } else if((t & VT_BTYPE) == VT_DOUBLE) {
2024 #else
2025 } else if((t & VT_BTYPE) == VT_DOUBLE || (t & VT_BTYPE) == VT_LDOUBLE) {
2026 #endif
2027 func_type = &func_double_type;
2028 if(vtop->type.t & VT_UNSIGNED)
2029 func=TOK___floatundidf;
2030 else
2031 func=TOK___floatdidf;
2033 if(func_type) {
2034 vpush_global_sym(func_type, func);
2035 vswap();
2036 gfunc_call(1);
2037 vpushi(0);
2038 vtop->r=TREG_F0;
2039 return;
2042 tcc_error("unimplemented gen_cvt_itof %x!",vtop->type.t);
2045 /* convert fp to int 't' type */
2046 void gen_cvt_ftoi(int t)
2048 uint32_t r, r2;
2049 int u, func = 0;
2050 u=t&VT_UNSIGNED;
2051 t&=VT_BTYPE;
2052 r2=vtop->type.t & VT_BTYPE;
2053 if(t==VT_INT) {
2054 #ifdef TCC_ARM_VFP
2055 r=vfpr(gv(RC_FLOAT));
2056 u=u?0:0x10000;
2057 o(0xEEBC0AC0|(r<<12)|r|T2CPR(r2)|u); /* ftoXizY */
2058 r2=intr(vtop->r=get_reg(RC_INT));
2059 o(0xEE100A10|(r<<16)|(r2<<12));
2060 return;
2061 #else
2062 if(u) {
2063 if(r2 == VT_FLOAT)
2064 func=TOK___fixunssfsi;
2065 #if LDOUBLE_SIZE != 8
2066 else if(r2 == VT_LDOUBLE)
2067 func=TOK___fixunsxfsi;
2068 else if(r2 == VT_DOUBLE)
2069 #else
2070 else if(r2 == VT_LDOUBLE || r2 == VT_DOUBLE)
2071 #endif
2072 func=TOK___fixunsdfsi;
2073 } else {
2074 r=fpr(gv(RC_FLOAT));
2075 r2=intr(vtop->r=get_reg(RC_INT));
2076 o(0xEE100170|(r2<<12)|r);
2077 return;
2079 #endif
2080 } else if(t == VT_LLONG) { // unsigned handled in gen_cvt_ftoi1
2081 if(r2 == VT_FLOAT)
2082 func=TOK___fixsfdi;
2083 #if LDOUBLE_SIZE != 8
2084 else if(r2 == VT_LDOUBLE)
2085 func=TOK___fixxfdi;
2086 else if(r2 == VT_DOUBLE)
2087 #else
2088 else if(r2 == VT_LDOUBLE || r2 == VT_DOUBLE)
2089 #endif
2090 func=TOK___fixdfdi;
2092 if(func) {
2093 vpush_global_sym(&func_old_type, func);
2094 vswap();
2095 gfunc_call(1);
2096 vpushi(0);
2097 if(t == VT_LLONG)
2098 vtop->r2 = REG_LRET;
2099 vtop->r = REG_IRET;
2100 return;
2102 tcc_error("unimplemented gen_cvt_ftoi!");
2105 /* convert from one floating point type to another */
2106 void gen_cvt_ftof(int t)
2108 #ifdef TCC_ARM_VFP
2109 if(((vtop->type.t & VT_BTYPE) == VT_FLOAT) != ((t & VT_BTYPE) == VT_FLOAT)) {
2110 uint32_t r = vfpr(gv(RC_FLOAT));
2111 o(0xEEB70AC0|(r<<12)|r|T2CPR(vtop->type.t));
2113 #else
2114 /* all we have to do on i386 and FPA ARM is to put the float in a register */
2115 gv(RC_FLOAT);
2116 #endif
2119 /* computed goto support */
2120 void ggoto(void)
2122 gcall_or_jmp(1);
2123 vtop--;
2126 /* Save the stack pointer onto the stack and return the location of its address */
2127 ST_FUNC void gen_vla_sp_save(int addr) {
2128 SValue v;
2129 v.type.t = VT_PTR;
2130 v.r = VT_LOCAL | VT_LVAL;
2131 v.c.i = addr;
2132 store(TREG_SP, &v);
2135 /* Restore the SP from a location on the stack */
2136 ST_FUNC void gen_vla_sp_restore(int addr) {
2137 SValue v;
2138 v.type.t = VT_PTR;
2139 v.r = VT_LOCAL | VT_LVAL;
2140 v.c.i = addr;
2141 load(TREG_SP, &v);
2144 /* Subtract from the stack pointer, and push the resulting value onto the stack */
2145 ST_FUNC void gen_vla_alloc(CType *type, int align) {
2146 int r = intr(gv(RC_INT));
2147 o(0xE04D0000|(r<<12)|r); /* sub r, sp, r */
2148 #ifdef TCC_ARM_EABI
2149 if (align < 8)
2150 align = 8;
2151 #else
2152 if (align < 4)
2153 align = 4;
2154 #endif
2155 if (align & (align - 1))
2156 tcc_error("alignment is not a power of 2: %i", align);
2157 o(stuff_const(0xE3C0D000|(r<<16), align - 1)); /* bic sp, r, #align-1 */
2158 vpop();
2161 /* end of ARM code generator */
2162 /*************************************************************/
2163 #endif
2164 /*************************************************************/