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1 /*
2 * Generic Dynamic compiler generator
3 *
4 * Copyright (c) 2003 Fabrice Bellard
5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software
18 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
19 */
20 #include <stdlib.h>
21 #include <stdio.h>
22 #include <string.h>
23 #include <stdarg.h>
24 #include <inttypes.h>
25 #include <unistd.h>
26 #include <fcntl.h>
27
28 #include "config.h"
29
30 /* elf format definitions. We use these macros to test the CPU to
31 allow cross compilation (this tool must be ran on the build
32 platform) */
33 #if defined(HOST_I386)
34
35 #define ELF_CLASS ELFCLASS32
36 #define ELF_ARCH EM_386
37 #define elf_check_arch(x) ( ((x) == EM_386) || ((x) == EM_486) )
38 #undef ELF_USES_RELOCA
39
40 #elif defined(HOST_PPC)
41
42 #define ELF_CLASS ELFCLASS32
43 #define ELF_ARCH EM_PPC
44 #define elf_check_arch(x) ((x) == EM_PPC)
45 #define ELF_USES_RELOCA
46
47 #elif defined(HOST_S390)
48
49 #define ELF_CLASS ELFCLASS32
50 #define ELF_ARCH EM_S390
51 #define elf_check_arch(x) ((x) == EM_S390)
52 #define ELF_USES_RELOCA
53
54 #elif defined(HOST_ALPHA)
55
56 #define ELF_CLASS ELFCLASS64
57 #define ELF_ARCH EM_ALPHA
58 #define elf_check_arch(x) ((x) == EM_ALPHA)
59 #define ELF_USES_RELOCA
60
61 #elif defined(HOST_IA64)
62
63 #define ELF_CLASS ELFCLASS64
64 #define ELF_ARCH EM_IA_64
65 #define elf_check_arch(x) ((x) == EM_IA_64)
66 #define ELF_USES_RELOCA
67
68 #elif defined(HOST_SPARC)
69
70 #define ELF_CLASS ELFCLASS32
71 #define ELF_ARCH EM_SPARC
72 #define elf_check_arch(x) ((x) == EM_SPARC || (x) == EM_SPARC32PLUS)
73 #define ELF_USES_RELOCA
74
75 #elif defined(HOST_SPARC64)
76
77 #define ELF_CLASS ELFCLASS64
78 #define ELF_ARCH EM_SPARCV9
79 #define elf_check_arch(x) ((x) == EM_SPARCV9)
80 #define ELF_USES_RELOCA
81
82 #elif defined(HOST_ARM)
83
84 #define ELF_CLASS ELFCLASS32
85 #define ELF_ARCH EM_ARM
86 #define elf_check_arch(x) ((x) == EM_ARM)
87 #define ELF_USES_RELOC
88
89 #else
90 #error unsupported CPU - please update the code
91 #endif
92
93 #include "elf.h"
94
95 #if ELF_CLASS == ELFCLASS32
96 typedef int32_t host_long;
97 typedef uint32_t host_ulong;
98 #define swabls(x) swab32s(x)
99 #else
100 typedef int64_t host_long;
101 typedef uint64_t host_ulong;
102 #define swabls(x) swab64s(x)
103 #endif
104
105 #ifdef ELF_USES_RELOCA
106 #define SHT_RELOC SHT_RELA
107 #else
108 #define SHT_RELOC SHT_REL
109 #endif
110
111 #include "thunk.h"
112
113 enum {
114 OUT_GEN_OP,
115 OUT_CODE,
116 OUT_INDEX_OP,
117 };
118
119 /* all dynamically generated functions begin with this code */
120 #define OP_PREFIX "op_"
121
122 int elf_must_swap(struct elfhdr *h)
123 {
124 union {
125 uint32_t i;
126 uint8_t b[4];
127 } swaptest;
128
129 swaptest.i = 1;
130 return (h->e_ident[EI_DATA] == ELFDATA2MSB) !=
131 (swaptest.b[0] == 0);
132 }
133
134 void swab16s(uint16_t *p)
135 {
136 *p = bswap16(*p);
137 }
138
139 void swab32s(uint32_t *p)
140 {
141 *p = bswap32(*p);
142 }
143
144 void swab64s(uint64_t *p)
145 {
146 *p = bswap64(*p);
147 }
148
149 void elf_swap_ehdr(struct elfhdr *h)
150 {
151 swab16s(&h->e_type); /* Object file type */
152 swab16s(&h-> e_machine); /* Architecture */
153 swab32s(&h-> e_version); /* Object file version */
154 swabls(&h-> e_entry); /* Entry point virtual address */
155 swabls(&h-> e_phoff); /* Program header table file offset */
156 swabls(&h-> e_shoff); /* Section header table file offset */
157 swab32s(&h-> e_flags); /* Processor-specific flags */
158 swab16s(&h-> e_ehsize); /* ELF header size in bytes */
159 swab16s(&h-> e_phentsize); /* Program header table entry size */
160 swab16s(&h-> e_phnum); /* Program header table entry count */
161 swab16s(&h-> e_shentsize); /* Section header table entry size */
162 swab16s(&h-> e_shnum); /* Section header table entry count */
163 swab16s(&h-> e_shstrndx); /* Section header string table index */
164 }
165
166 void elf_swap_shdr(struct elf_shdr *h)
167 {
168 swab32s(&h-> sh_name); /* Section name (string tbl index) */
169 swab32s(&h-> sh_type); /* Section type */
170 swabls(&h-> sh_flags); /* Section flags */
171 swabls(&h-> sh_addr); /* Section virtual addr at execution */
172 swabls(&h-> sh_offset); /* Section file offset */
173 swabls(&h-> sh_size); /* Section size in bytes */
174 swab32s(&h-> sh_link); /* Link to another section */
175 swab32s(&h-> sh_info); /* Additional section information */
176 swabls(&h-> sh_addralign); /* Section alignment */
177 swabls(&h-> sh_entsize); /* Entry size if section holds table */
178 }
179
180 void elf_swap_phdr(struct elf_phdr *h)
181 {
182 swab32s(&h->p_type); /* Segment type */
183 swabls(&h->p_offset); /* Segment file offset */
184 swabls(&h->p_vaddr); /* Segment virtual address */
185 swabls(&h->p_paddr); /* Segment physical address */
186 swabls(&h->p_filesz); /* Segment size in file */
187 swabls(&h->p_memsz); /* Segment size in memory */
188 swab32s(&h->p_flags); /* Segment flags */
189 swabls(&h->p_align); /* Segment alignment */
190 }
191
192 void elf_swap_rel(ELF_RELOC *rel)
193 {
194 swabls(&rel->r_offset);
195 swabls(&rel->r_info);
196 #ifdef ELF_USES_RELOCA
197 swabls(&rel->r_addend);
198 #endif
199 }
200
201 /* ELF file info */
202 int do_swap;
203 struct elf_shdr *shdr;
204 uint8_t **sdata;
205 struct elfhdr ehdr;
206 ElfW(Sym) *symtab;
207 int nb_syms;
208 char *strtab;
209 int text_shndx;
210
211 uint16_t get16(uint16_t *p)
212 {
213 uint16_t val;
214 val = *p;
215 if (do_swap)
216 val = bswap16(val);
217 return val;
218 }
219
220 uint32_t get32(uint32_t *p)
221 {
222 uint32_t val;
223 val = *p;
224 if (do_swap)
225 val = bswap32(val);
226 return val;
227 }
228
229 void put16(uint16_t *p, uint16_t val)
230 {
231 if (do_swap)
232 val = bswap16(val);
233 *p = val;
234 }
235
236 void put32(uint32_t *p, uint32_t val)
237 {
238 if (do_swap)
239 val = bswap32(val);
240 *p = val;
241 }
242
243 void __attribute__((noreturn)) __attribute__((format (printf, 1, 2))) error(const char *fmt, ...)
244 {
245 va_list ap;
246 va_start(ap, fmt);
247 fprintf(stderr, "dyngen: ");
248 vfprintf(stderr, fmt, ap);
249 fprintf(stderr, "\n");
250 va_end(ap);
251 exit(1);
252 }
253
254
255 struct elf_shdr *find_elf_section(struct elf_shdr *shdr, int shnum, const char *shstr,
256 const char *name)
257 {
258 int i;
259 const char *shname;
260 struct elf_shdr *sec;
261
262 for(i = 0; i < shnum; i++) {
263 sec = &shdr[i];
264 if (!sec->sh_name)
265 continue;
266 shname = shstr + sec->sh_name;
267 if (!strcmp(shname, name))
268 return sec;
269 }
270 return NULL;
271 }
272
273 int find_reloc(int sh_index)
274 {
275 struct elf_shdr *sec;
276 int i;
277
278 for(i = 0; i < ehdr.e_shnum; i++) {
279 sec = &shdr[i];
280 if (sec->sh_type == SHT_RELOC && sec->sh_info == sh_index)
281 return i;
282 }
283 return 0;
284 }
285
286 void *load_data(int fd, long offset, unsigned int size)
287 {
288 char *data;
289
290 data = malloc(size);
291 if (!data)
292 return NULL;
293 lseek(fd, offset, SEEK_SET);
294 if (read(fd, data, size) != size) {
295 free(data);
296 return NULL;
297 }
298 return data;
299 }
300
301 int strstart(const char *str, const char *val, const char **ptr)
302 {
303 const char *p, *q;
304 p = str;
305 q = val;
306 while (*q != '\0') {
307 if (*p != *q)
308 return 0;
309 p++;
310 q++;
311 }
312 if (ptr)
313 *ptr = p;
314 return 1;
315 }
316
317 #ifdef HOST_ARM
318
319 int arm_emit_ldr_info(const char *name, unsigned long start_offset,
320 FILE *outfile, uint8_t *p_start, uint8_t *p_end,
321 ELF_RELOC *relocs, int nb_relocs)
322 {
323 uint8_t *p;
324 uint32_t insn;
325 int offset, min_offset, pc_offset, data_size;
326 uint8_t data_allocated[1024];
327 unsigned int data_index;
328
329 memset(data_allocated, 0, sizeof(data_allocated));
330
331 p = p_start;
332 min_offset = p_end - p_start;
333 while (p < p_start + min_offset) {
334 insn = get32((uint32_t *)p);
335 if ((insn & 0x0d5f0000) == 0x051f0000) {
336 /* ldr reg, [pc, #im] */
337 offset = insn & 0xfff;
338 if (!(insn & 0x00800000))
339 offset = -offset;
340 if ((offset & 3) !=0)
341 error("%s:%04x: ldr pc offset must be 32 bit aligned",
342 name, start_offset + p - p_start);
343 pc_offset = p - p_start + offset + 8;
344 if (pc_offset <= (p - p_start) ||
345 pc_offset >= (p_end - p_start))
346 error("%s:%04x: ldr pc offset must point inside the function code",
347 name, start_offset + p - p_start);
348 if (pc_offset < min_offset)
349 min_offset = pc_offset;
350 if (outfile) {
351 /* ldr position */
352 fprintf(outfile, " arm_ldr_ptr->ptr = gen_code_ptr + %d;\n",
353 p - p_start);
354 /* ldr data index */
355 data_index = ((p_end - p_start) - pc_offset - 4) >> 2;
356 fprintf(outfile, " arm_ldr_ptr->data_ptr = arm_data_ptr + %d;\n",
357 data_index);
358 fprintf(outfile, " arm_ldr_ptr++;\n");
359 if (data_index >= sizeof(data_allocated))
360 error("%s: too many data", name);
361 if (!data_allocated[data_index]) {
362 ELF_RELOC *rel;
363 int i, addend, type;
364 const char *sym_name, *p;
365 char relname[1024];
366
367 data_allocated[data_index] = 1;
368
369 /* data value */
370 addend = get32((uint32_t *)(p_start + pc_offset));
371 relname[0] = '\0';
372 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
373 if (rel->r_offset == (pc_offset + start_offset)) {
374 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
375 /* the compiler leave some unnecessary references to the code */
376 if (strstart(sym_name, "__op_param", &p)) {
377 snprintf(relname, sizeof(relname), "param%s", p);
378 } else {
379 snprintf(relname, sizeof(relname), "(long)(&%s)", sym_name);
380 }
381 type = ELF32_R_TYPE(rel->r_info);
382 if (type != R_ARM_ABS32)
383 error("%s: unsupported data relocation", name);
384 break;
385 }
386 }
387 fprintf(outfile, " arm_data_ptr[%d] = 0x%x",
388 data_index, addend);
389 if (relname[0] != '\0')
390 fprintf(outfile, " + %s", relname);
391 fprintf(outfile, ";\n");
392 }
393 }
394 }
395 p += 4;
396 }
397 data_size = (p_end - p_start) - min_offset;
398 if (data_size > 0 && outfile) {
399 fprintf(outfile, " arm_data_ptr += %d;\n", data_size >> 2);
400 }
401
402 /* the last instruction must be a mov pc, lr */
403 if (p == p_start)
404 goto arm_ret_error;
405 p -= 4;
406 insn = get32((uint32_t *)p);
407 if ((insn & 0xffff0000) != 0xe91b0000) {
408 arm_ret_error:
409 if (!outfile)
410 printf("%s: invalid epilog\n", name);
411 }
412 return p - p_start;
413 }
414 #endif
415
416
417 #define MAX_ARGS 3
418
419 /* generate op code */
420 void gen_code(const char *name, host_ulong offset, host_ulong size,
421 FILE *outfile, uint8_t *text, ELF_RELOC *relocs, int nb_relocs,
422 int gen_switch)
423 {
424 int copy_size = 0;
425 uint8_t *p_start, *p_end;
426 host_ulong start_offset;
427 int nb_args, i, n;
428 uint8_t args_present[MAX_ARGS];
429 const char *sym_name, *p;
430 ELF_RELOC *rel;
431
432 /* Compute exact size excluding prologue and epilogue instructions.
433 * Increment start_offset to skip epilogue instructions, then compute
434 * copy_size the indicate the size of the remaining instructions (in
435 * bytes).
436 */
437 p_start = text + offset;
438 p_end = p_start + size;
439 start_offset = offset;
440 switch(ELF_ARCH) {
441 case EM_386:
442 {
443 int len;
444 len = p_end - p_start;
445 if (len == 0)
446 error("empty code for %s", name);
447 if (p_end[-1] == 0xc3) {
448 len--;
449 } else {
450 error("ret or jmp expected at the end of %s", name);
451 }
452 copy_size = len;
453 }
454 break;
455 case EM_PPC:
456 {
457 uint8_t *p;
458 p = (void *)(p_end - 4);
459 if (p == p_start)
460 error("empty code for %s", name);
461 if (get32((uint32_t *)p) != 0x4e800020)
462 error("blr expected at the end of %s", name);
463 copy_size = p - p_start;
464 }
465 break;
466 case EM_S390:
467 {
468 uint8_t *p;
469 p = (void *)(p_end - 2);
470 if (p == p_start)
471 error("empty code for %s", name);
472 if (get16((uint16_t *)p) != 0x07fe && get16((uint16_t *)p) != 0x07f4)
473 error("br %%r14 expected at the end of %s", name);
474 copy_size = p - p_start;
475 }
476 break;
477 case EM_ALPHA:
478 {
479 uint8_t *p;
480 p = p_end - 4;
481 if (p == p_start)
482 error("empty code for %s", name);
483 if (get32((uint32_t *)p) != 0x6bfa8001)
484 error("ret expected at the end of %s", name);
485 copy_size = p - p_start;
486 }
487 break;
488 case EM_IA_64:
489 {
490 uint8_t *p;
491 p = (void *)(p_end - 4);
492 if (p == p_start)
493 error("empty code for %s", name);
494 /* br.ret.sptk.many b0;; */
495 /* 08 00 84 00 */
496 if (get32((uint32_t *)p) != 0x00840008)
497 error("br.ret.sptk.many b0;; expected at the end of %s", name);
498 copy_size = p - p_start;
499 }
500 break;
501 case EM_SPARC:
502 case EM_SPARC32PLUS:
503 {
504 uint32_t start_insn, end_insn1, end_insn2;
505 uint8_t *p;
506 p = (void *)(p_end - 8);
507 if (p <= p_start)
508 error("empty code for %s", name);
509 start_insn = get32((uint32_t *)(p_start + 0x0));
510 end_insn1 = get32((uint32_t *)(p + 0x0));
511 end_insn2 = get32((uint32_t *)(p + 0x4));
512 if ((start_insn & ~0x1fff) == 0x9de3a000) {
513 p_start += 0x4;
514 start_offset += 0x4;
515 if ((int)(start_insn | ~0x1fff) < -128)
516 error("Found bogus save at the start of %s", name);
517 if (end_insn1 != 0x81c7e008 || end_insn2 != 0x81e80000)
518 error("ret; restore; not found at end of %s", name);
519 } else {
520 error("No save at the beginning of %s", name);
521 }
522 #if 0
523 /* Skip a preceeding nop, if present. */
524 if (p > p_start) {
525 skip_insn = get32((uint32_t *)(p - 0x4));
526 if (skip_insn == 0x01000000)
527 p -= 4;
528 }
529 #endif
530 copy_size = p - p_start;
531 }
532 break;
533 case EM_SPARCV9:
534 {
535 uint32_t start_insn, end_insn1, end_insn2, skip_insn;
536 uint8_t *p;
537 p = (void *)(p_end - 8);
538 if (p <= p_start)
539 error("empty code for %s", name);
540 start_insn = get32((uint32_t *)(p_start + 0x0));
541 end_insn1 = get32((uint32_t *)(p + 0x0));
542 end_insn2 = get32((uint32_t *)(p + 0x4));
543 if ((start_insn & ~0x1fff) == 0x9de3a000) {
544 p_start += 0x4;
545 start_offset += 0x4;
546 if ((int)(start_insn | ~0x1fff) < -256)
547 error("Found bogus save at the start of %s", name);
548 if (end_insn1 != 0x81c7e008 || end_insn2 != 0x81e80000)
549 error("ret; restore; not found at end of %s", name);
550 } else {
551 error("No save at the beginning of %s", name);
552 }
553
554 /* Skip a preceeding nop, if present. */
555 if (p > p_start) {
556 skip_insn = get32((uint32_t *)(p - 0x4));
557 if (skip_insn == 0x01000000)
558 p -= 4;
559 }
560
561 copy_size = p - p_start;
562 }
563 break;
564 #ifdef HOST_ARM
565 case EM_ARM:
566 if ((p_end - p_start) <= 16)
567 error("%s: function too small", name);
568 if (get32((uint32_t *)p_start) != 0xe1a0c00d ||
569 (get32((uint32_t *)(p_start + 4)) & 0xffff0000) != 0xe92d0000 ||
570 get32((uint32_t *)(p_start + 8)) != 0xe24cb004)
571 error("%s: invalid prolog", name);
572 p_start += 12;
573 start_offset += 12;
574 copy_size = arm_emit_ldr_info(name, start_offset, NULL, p_start, p_end,
575 relocs, nb_relocs);
576 break;
577 #endif
578 default:
579 error("unknown ELF architecture");
580 }
581
582 /* compute the number of arguments by looking at the relocations */
583 for(i = 0;i < MAX_ARGS; i++)
584 args_present[i] = 0;
585
586 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
587 if (rel->r_offset >= start_offset &&
588 rel->r_offset < start_offset + (p_end - p_start)) {
589 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
590 if (strstart(sym_name, "__op_param", &p)) {
591 n = strtoul(p, NULL, 10);
592 if (n > MAX_ARGS)
593 error("too many arguments in %s", name);
594 args_present[n - 1] = 1;
595 }
596 }
597 }
598
599 nb_args = 0;
600 while (nb_args < MAX_ARGS && args_present[nb_args])
601 nb_args++;
602 for(i = nb_args; i < MAX_ARGS; i++) {
603 if (args_present[i])
604 error("inconsistent argument numbering in %s", name);
605 }
606
607 if (gen_switch == 2) {
608 fprintf(outfile, "DEF(%s, %d, %d)\n", name + 3, nb_args, copy_size);
609 } else if (gen_switch == 1) {
610
611 /* output C code */
612 fprintf(outfile, "case INDEX_%s: {\n", name);
613 if (nb_args > 0) {
614 fprintf(outfile, " long ");
615 for(i = 0; i < nb_args; i++) {
616 if (i != 0)
617 fprintf(outfile, ", ");
618 fprintf(outfile, "param%d", i + 1);
619 }
620 fprintf(outfile, ";\n");
621 }
622 fprintf(outfile, " extern void %s();\n", name);
623
624 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
625 if (rel->r_offset >= start_offset &&
626 rel->r_offset < start_offset + (p_end - p_start)) {
627 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
628 if (*sym_name &&
629 !strstart(sym_name, "__op_param", NULL) &&
630 !strstart(sym_name, "__op_jmp", NULL)) {
631 #if defined(HOST_SPARC)
632 if (sym_name[0] == '.') {
633 fprintf(outfile,
634 "extern char __dot_%s __asm__(\"%s\");\n",
635 sym_name+1, sym_name);
636 continue;
637 }
638 #endif
639 fprintf(outfile, "extern char %s;\n", sym_name);
640 }
641 }
642 }
643
644 fprintf(outfile, " memcpy(gen_code_ptr, (void *)((char *)&%s+%d), %d);\n", name, start_offset - offset, copy_size);
645
646 /* emit code offset information */
647 {
648 ElfW(Sym) *sym;
649 const char *sym_name, *p;
650 target_ulong val;
651 int n;
652
653 for(i = 0, sym = symtab; i < nb_syms; i++, sym++) {
654 sym_name = strtab + sym->st_name;
655 if (strstart(sym_name, "__op_label", &p)) {
656 uint8_t *ptr;
657 int addend;
658 unsigned long offset;
659
660 /* test if the variable refers to a label inside
661 the code we are generating */
662 ptr = sdata[sym->st_shndx];
663 if (!ptr)
664 error("__op_labelN in invalid section");
665 offset = sym->st_value;
666 addend = 0;
667 #ifdef ELF_USES_RELOCA
668 {
669 int reloc_shndx, nb_relocs1, j;
670
671 /* try to find a matching relocation */
672 reloc_shndx = find_reloc(sym->st_shndx);
673 if (reloc_shndx) {
674 nb_relocs1 = shdr[reloc_shndx].sh_size /
675 shdr[reloc_shndx].sh_entsize;
676 rel = (ELF_RELOC *)sdata[reloc_shndx];
677 for(j = 0; j < nb_relocs1; j++) {
678 if (rel->r_offset == offset) {
679 addend = rel->r_addend;
680 break;
681 }
682 rel++;
683 }
684 }
685 }
686 #endif
687 val = *(target_ulong *)(ptr + offset);
688 val += addend;
689
690 if (val >= start_offset && val < start_offset + copy_size) {
691 n = strtol(p, NULL, 10);
692 fprintf(outfile, " label_offsets[%d] = %d + (gen_code_ptr - gen_code_buf);\n", n, val - start_offset);
693 }
694 }
695 }
696 }
697
698 /* load parameres in variables */
699 for(i = 0; i < nb_args; i++) {
700 fprintf(outfile, " param%d = *opparam_ptr++;\n", i + 1);
701 }
702
703 /* patch relocations */
704 #if defined(HOST_I386)
705 {
706 char name[256];
707 int type;
708 int addend;
709 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
710 if (rel->r_offset >= start_offset &&
711 rel->r_offset < start_offset + copy_size) {
712 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
713 if (strstart(sym_name, "__op_param", &p)) {
714 snprintf(name, sizeof(name), "param%s", p);
715 } else {
716 snprintf(name, sizeof(name), "(long)(&%s)", sym_name);
717 }
718 type = ELF32_R_TYPE(rel->r_info);
719 addend = get32((uint32_t *)(text + rel->r_offset));
720 switch(type) {
721 case R_386_32:
722 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s + %d;\n",
723 rel->r_offset - start_offset, name, addend);
724 break;
725 case R_386_PC32:
726 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s - (long)(gen_code_ptr + %d) + %d;\n",
727 rel->r_offset - start_offset, name, rel->r_offset - start_offset, addend);
728 break;
729 default:
730 error("unsupported i386 relocation (%d)", type);
731 }
732 }
733 }
734 }
735 #elif defined(HOST_PPC)
736 {
737 char name[256];
738 int type;
739 int addend;
740 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
741 if (rel->r_offset >= start_offset &&
742 rel->r_offset < start_offset + copy_size) {
743 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
744 if (strstart(sym_name, "__op_jmp", &p)) {
745 int n;
746 n = strtol(p, NULL, 10);
747 /* __op_jmp relocations are done at
748 runtime to do translated block
749 chaining: the offset of the instruction
750 needs to be stored */
751 fprintf(outfile, " jmp_offsets[%d] = %d + (gen_code_ptr - gen_code_buf);\n",
752 n, rel->r_offset - start_offset);
753 continue;
754 }
755
756 if (strstart(sym_name, "__op_param", &p)) {
757 snprintf(name, sizeof(name), "param%s", p);
758 } else {
759 snprintf(name, sizeof(name), "(long)(&%s)", sym_name);
760 }
761 type = ELF32_R_TYPE(rel->r_info);
762 addend = rel->r_addend;
763 switch(type) {
764 case R_PPC_ADDR32:
765 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s + %d;\n",
766 rel->r_offset - start_offset, name, addend);
767 break;
768 case R_PPC_ADDR16_LO:
769 fprintf(outfile, " *(uint16_t *)(gen_code_ptr + %d) = (%s + %d);\n",
770 rel->r_offset - start_offset, name, addend);
771 break;
772 case R_PPC_ADDR16_HI:
773 fprintf(outfile, " *(uint16_t *)(gen_code_ptr + %d) = (%s + %d) >> 16;\n",
774 rel->r_offset - start_offset, name, addend);
775 break;
776 case R_PPC_ADDR16_HA:
777 fprintf(outfile, " *(uint16_t *)(gen_code_ptr + %d) = (%s + %d + 0x8000) >> 16;\n",
778 rel->r_offset - start_offset, name, addend);
779 break;
780 case R_PPC_REL24:
781 /* warning: must be at 32 MB distancy */
782 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = (*(uint32_t *)(gen_code_ptr + %d) & ~0x03fffffc) | ((%s - (long)(gen_code_ptr + %d) + %d) & 0x03fffffc);\n",
783 rel->r_offset - start_offset, rel->r_offset - start_offset, name, rel->r_offset - start_offset, addend);
784 break;
785 default:
786 error("unsupported powerpc relocation (%d)", type);
787 }
788 }
789 }
790 }
791 #elif defined(HOST_S390)
792 {
793 char name[256];
794 int type;
795 int addend;
796 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
797 if (rel->r_offset >= start_offset &&
798 rel->r_offset < start_offset + copy_size) {
799 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
800 if (strstart(sym_name, "__op_param", &p)) {
801 snprintf(name, sizeof(name), "param%s", p);
802 } else {
803 snprintf(name, sizeof(name), "(long)(&%s)", sym_name);
804 }
805 type = ELF32_R_TYPE(rel->r_info);
806 addend = rel->r_addend;
807 switch(type) {
808 case R_390_32:
809 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s + %d;\n",
810 rel->r_offset - start_offset, name, addend);
811 break;
812 case R_390_16:
813 fprintf(outfile, " *(uint16_t *)(gen_code_ptr + %d) = %s + %d;\n",
814 rel->r_offset - start_offset, name, addend);
815 break;
816 case R_390_8:
817 fprintf(outfile, " *(uint8_t *)(gen_code_ptr + %d) = %s + %d;\n",
818 rel->r_offset - start_offset, name, addend);
819 break;
820 default:
821 error("unsupported s390 relocation (%d)", type);
822 }
823 }
824 }
825 }
826 #elif defined(HOST_ALPHA)
827 {
828 for (i = 0, rel = relocs; i < nb_relocs; i++, rel++) {
829 if (rel->r_offset >= start_offset && rel->r_offset < start_offset + copy_size) {
830 int type;
831
832 type = ELF64_R_TYPE(rel->r_info);
833 sym_name = strtab + symtab[ELF64_R_SYM(rel->r_info)].st_name;
834 switch (type) {
835 case R_ALPHA_GPDISP:
836 /* The gp is just 32 bit, and never changes, so it's easiest to emit it
837 as an immediate instead of constructing it from the pv or ra. */
838 fprintf(outfile, " immediate_ldah(gen_code_ptr + %ld, gp);\n",
839 rel->r_offset - start_offset);
840 fprintf(outfile, " immediate_lda(gen_code_ptr + %ld, gp);\n",
841 rel->r_offset - start_offset + rel->r_addend);
842 break;
843 case R_ALPHA_LITUSE:
844 /* jsr to literal hint. Could be used to optimize to bsr. Ignore for
845 now, since some called functions (libc) need pv to be set up. */
846 break;
847 case R_ALPHA_HINT:
848 /* Branch target prediction hint. Ignore for now. Should be already
849 correct for in-function jumps. */
850 break;
851 case R_ALPHA_LITERAL:
852 /* Load a literal from the GOT relative to the gp. Since there's only a
853 single gp, nothing is to be done. */
854 break;
855 case R_ALPHA_GPRELHIGH:
856 /* Handle fake relocations against __op_param symbol. Need to emit the
857 high part of the immediate value instead. Other symbols need no
858 special treatment. */
859 if (strstart(sym_name, "__op_param", &p))
860 fprintf(outfile, " immediate_ldah(gen_code_ptr + %ld, param%s);\n",
861 rel->r_offset - start_offset, p);
862 break;
863 case R_ALPHA_GPRELLOW:
864 if (strstart(sym_name, "__op_param", &p))
865 fprintf(outfile, " immediate_lda(gen_code_ptr + %ld, param%s);\n",
866 rel->r_offset - start_offset, p);
867 break;
868 case R_ALPHA_BRSGP:
869 /* PC-relative jump. Tweak offset to skip the two instructions that try to
870 set up the gp from the pv. */
871 fprintf(outfile, " fix_bsr(gen_code_ptr + %ld, (uint8_t *) &%s - (gen_code_ptr + %ld + 4) + 8);\n",
872 rel->r_offset - start_offset, sym_name, rel->r_offset - start_offset);
873 break;
874 default:
875 error("unsupported Alpha relocation (%d)", type);
876 }
877 }
878 }
879 }
880 #elif defined(HOST_IA64)
881 {
882 char name[256];
883 int type;
884 int addend;
885 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
886 if (rel->r_offset >= start_offset && rel->r_offset < start_offset + copy_size) {
887 sym_name = strtab + symtab[ELF64_R_SYM(rel->r_info)].st_name;
888 if (strstart(sym_name, "__op_param", &p)) {
889 snprintf(name, sizeof(name), "param%s", p);
890 } else {
891 snprintf(name, sizeof(name), "(long)(&%s)", sym_name);
892 }
893 type = ELF64_R_TYPE(rel->r_info);
894 addend = rel->r_addend;
895 switch(type) {
896 case R_IA64_LTOFF22:
897 error("must implemnt R_IA64_LTOFF22 relocation");
898 case R_IA64_PCREL21B:
899 error("must implemnt R_IA64_PCREL21B relocation");
900 default:
901 error("unsupported ia64 relocation (%d)", type);
902 }
903 }
904 }
905 }
906 #elif defined(HOST_SPARC)
907 {
908 char name[256];
909 int type;
910 int addend;
911 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
912 if (rel->r_offset >= start_offset &&
913 rel->r_offset < start_offset + copy_size) {
914 sym_name = strtab + symtab[ELF32_R_SYM(rel->r_info)].st_name;
915 if (strstart(sym_name, "__op_param", &p)) {
916 snprintf(name, sizeof(name), "param%s", p);
917 } else {
918 if (sym_name[0] == '.')
919 snprintf(name, sizeof(name),
920 "(long)(&__dot_%s)",
921 sym_name + 1);
922 else
923 snprintf(name, sizeof(name),
924 "(long)(&%s)", sym_name);
925 }
926 type = ELF32_R_TYPE(rel->r_info);
927 addend = rel->r_addend;
928 switch(type) {
929 case R_SPARC_32:
930 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s + %d;\n",
931 rel->r_offset - start_offset, name, addend);
932 break;
933 case R_SPARC_HI22:
934 fprintf(outfile,
935 " *(uint32_t *)(gen_code_ptr + %d) = "
936 "((*(uint32_t *)(gen_code_ptr + %d)) "
937 " & ~0x3fffff) "
938 " | (((%s + %d) >> 10) & 0x3fffff);\n",
939 rel->r_offset - start_offset,
940 rel->r_offset - start_offset,
941 name, addend);
942 break;
943 case R_SPARC_LO10:
944 fprintf(outfile,
945 " *(uint32_t *)(gen_code_ptr + %d) = "
946 "((*(uint32_t *)(gen_code_ptr + %d)) "
947 " & ~0x3ff) "
948 " | ((%s + %d) & 0x3ff);\n",
949 rel->r_offset - start_offset,
950 rel->r_offset - start_offset,
951 name, addend);
952 break;
953 case R_SPARC_WDISP30:
954 fprintf(outfile,
955 " *(uint32_t *)(gen_code_ptr + %d) = "
956 "((*(uint32_t *)(gen_code_ptr + %d)) "
957 " & ~0x3fffffff) "
958 " | ((((%s + %d) - (long)(gen_code_ptr + %d))>>2) "
959 " & 0x3fffffff);\n",
960 rel->r_offset - start_offset,
961 rel->r_offset - start_offset,
962 name, addend,
963 rel->r_offset - start_offset);
964 break;
965 default:
966 error("unsupported sparc relocation (%d)", type);
967 }
968 }
969 }
970 }
971 #elif defined(HOST_SPARC64)
972 {
973 char name[256];
974 int type;
975 int addend;
976 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
977 if (rel->r_offset >= start_offset &&
978 rel->r_offset < start_offset + copy_size) {
979 sym_name = strtab + symtab[ELF64_R_SYM(rel->r_info)].st_name;
980 if (strstart(sym_name, "__op_param", &p)) {
981 snprintf(name, sizeof(name), "param%s", p);
982 } else {
983 snprintf(name, sizeof(name), "(long)(&%s)", sym_name);
984 }
985 type = ELF64_R_TYPE(rel->r_info);
986 addend = rel->r_addend;
987 switch(type) {
988 case R_SPARC_32:
989 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s + %d;\n",
990 rel->r_offset - start_offset, name, addend);
991 break;
992 case R_SPARC_HI22:
993 fprintf(outfile,
994 " *(uint32_t *)(gen_code_ptr + %d) = "
995 "((*(uint32_t *)(gen_code_ptr + %d)) "
996 " & ~0x3fffff) "
997 " | (((%s + %d) >> 10) & 0x3fffff);\n",
998 rel->r_offset - start_offset,
999 rel->r_offset - start_offset,
1000 name, addend);
1001 break;
1002 case R_SPARC_LO10:
1003 fprintf(outfile,
1004 " *(uint32_t *)(gen_code_ptr + %d) = "
1005 "((*(uint32_t *)(gen_code_ptr + %d)) "
1006 " & ~0x3ff) "
1007 " | ((%s + %d) & 0x3ff);\n",
1008 rel->r_offset - start_offset,
1009 rel->r_offset - start_offset,
1010 name, addend);
1011 break;
1012 case R_SPARC_WDISP30:
1013 fprintf(outfile,
1014 " *(uint32_t *)(gen_code_ptr + %d) = "
1015 "((*(uint32_t *)(gen_code_ptr + %d)) "
1016 " & ~0x3fffffff) "
1017 " | ((((%s + %d) - (long)(gen_code_ptr + %d))>>2) "
1018 " & 0x3fffffff);\n",
1019 rel->r_offset - start_offset,
1020 rel->r_offset - start_offset,
1021 name, addend,
1022 rel->r_offset - start_offset);
1023 break;
1024 default:
1025 error("unsupported sparc64 relocation (%d)", type);
1026 }
1027 }
1028 }
1029 }
1030 #elif defined(HOST_ARM)
1031 {
1032 char name[256];
1033 int type;
1034 int addend;
1035
1036 arm_emit_ldr_info(name, start_offset, outfile, p_start, p_end,
1037 relocs, nb_relocs);
1038
1039 for(i = 0, rel = relocs;i < nb_relocs; i++, rel++) {
1040 if (rel->r_offset >= start_offset &&
1041 rel->r_offset < start_offset + copy_size) {
1042 sym_name = strtab + symtab[ELFW(R_SYM)(rel->r_info)].st_name;
1043 /* the compiler leave some unnecessary references to the code */
1044 if (sym_name[0] == '\0')
1045 continue;
1046 if (strstart(sym_name, "__op_param", &p)) {
1047 snprintf(name, sizeof(name), "param%s", p);
1048 } else {
1049 snprintf(name, sizeof(name), "(long)(&%s)", sym_name);
1050 }
1051 type = ELF32_R_TYPE(rel->r_info);
1052 addend = get32((uint32_t *)(text + rel->r_offset));
1053 switch(type) {
1054 case R_ARM_ABS32:
1055 fprintf(outfile, " *(uint32_t *)(gen_code_ptr + %d) = %s + %d;\n",
1056 rel->r_offset - start_offset, name, addend);
1057 break;
1058 case R_ARM_PC24:
1059 fprintf(outfile, " arm_reloc_pc24((uint32_t *)(gen_code_ptr + %d), 0x%x, %s);\n",
1060 rel->r_offset - start_offset, addend, name);
1061 break;
1062 default:
1063 error("unsupported arm relocation (%d)", type);
1064 }
1065 }
1066 }
1067 }
1068 #else
1069 #error unsupported CPU
1070 #endif
1071 fprintf(outfile, " gen_code_ptr += %d;\n", copy_size);
1072 fprintf(outfile, "}\n");
1073 fprintf(outfile, "break;\n\n");
1074 } else {
1075 fprintf(outfile, "static inline void gen_%s(", name);
1076 if (nb_args == 0) {
1077 fprintf(outfile, "void");
1078 } else {
1079 for(i = 0; i < nb_args; i++) {
1080 if (i != 0)
1081 fprintf(outfile, ", ");
1082 fprintf(outfile, "long param%d", i + 1);
1083 }
1084 }
1085 fprintf(outfile, ")\n");
1086 fprintf(outfile, "{\n");
1087 for(i = 0; i < nb_args; i++) {
1088 fprintf(outfile, " *gen_opparam_ptr++ = param%d;\n", i + 1);
1089 }
1090 fprintf(outfile, " *gen_opc_ptr++ = INDEX_%s;\n", name);
1091 fprintf(outfile, "}\n\n");
1092 }
1093 }
1094
1095 /* load an elf object file */
1096 int load_elf(const char *filename, FILE *outfile, int out_type)
1097 {
1098 int fd;
1099 struct elf_shdr *sec, *symtab_sec, *strtab_sec, *text_sec;
1100 int i, j;
1101 ElfW(Sym) *sym;
1102 char *shstr;
1103 uint8_t *text;
1104 ELF_RELOC *relocs;
1105 int nb_relocs;
1106 ELF_RELOC *rel;
1107
1108 fd = open(filename, O_RDONLY);
1109 if (fd < 0)
1110 error("can't open file '%s'", filename);
1111
1112 /* Read ELF header. */
1113 if (read(fd, &ehdr, sizeof (ehdr)) != sizeof (ehdr))
1114 error("unable to read file header");
1115
1116 /* Check ELF identification. */
1117 if (ehdr.e_ident[EI_MAG0] != ELFMAG0
1118 || ehdr.e_ident[EI_MAG1] != ELFMAG1
1119 || ehdr.e_ident[EI_MAG2] != ELFMAG2
1120 || ehdr.e_ident[EI_MAG3] != ELFMAG3
1121 || ehdr.e_ident[EI_VERSION] != EV_CURRENT) {
1122 error("bad ELF header");
1123 }
1124
1125 do_swap = elf_must_swap(&ehdr);
1126 if (do_swap)
1127 elf_swap_ehdr(&ehdr);
1128 if (ehdr.e_ident[EI_CLASS] != ELF_CLASS)
1129 error("Unsupported ELF class");
1130 if (ehdr.e_type != ET_REL)
1131 error("ELF object file expected");
1132 if (ehdr.e_version != EV_CURRENT)
1133 error("Invalid ELF version");
1134 if (!elf_check_arch(ehdr.e_machine))
1135 error("Unsupported CPU (e_machine=%d)", ehdr.e_machine);
1136
1137 /* read section headers */
1138 shdr = load_data(fd, ehdr.e_shoff, ehdr.e_shnum * sizeof(struct elf_shdr));
1139 if (do_swap) {
1140 for(i = 0; i < ehdr.e_shnum; i++) {
1141 elf_swap_shdr(&shdr[i]);
1142 }
1143 }
1144
1145 /* read all section data */
1146 sdata = malloc(sizeof(void *) * ehdr.e_shnum);
1147 memset(sdata, 0, sizeof(void *) * ehdr.e_shnum);
1148
1149 for(i = 0;i < ehdr.e_shnum; i++) {
1150 sec = &shdr[i];
1151 if (sec->sh_type != SHT_NOBITS)
1152 sdata[i] = load_data(fd, sec->sh_offset, sec->sh_size);
1153 }
1154
1155 sec = &shdr[ehdr.e_shstrndx];
1156 shstr = sdata[ehdr.e_shstrndx];
1157
1158 /* swap relocations */
1159 for(i = 0; i < ehdr.e_shnum; i++) {
1160 sec = &shdr[i];
1161 if (sec->sh_type == SHT_RELOC) {
1162 nb_relocs = sec->sh_size / sec->sh_entsize;
1163 if (do_swap) {
1164 for(j = 0, rel = (ELF_RELOC *)sdata[i]; j < nb_relocs; j++, rel++)
1165 elf_swap_rel(rel);
1166 }
1167 }
1168 }
1169 /* text section */
1170
1171 text_sec = find_elf_section(shdr, ehdr.e_shnum, shstr, ".text");
1172 if (!text_sec)
1173 error("could not find .text section");
1174 text_shndx = text_sec - shdr;
1175 text = sdata[text_shndx];
1176
1177 /* find text relocations, if any */
1178 relocs = NULL;
1179 nb_relocs = 0;
1180 i = find_reloc(text_shndx);
1181 if (i != 0) {
1182 relocs = (ELF_RELOC *)sdata[i];
1183 nb_relocs = shdr[i].sh_size / shdr[i].sh_entsize;
1184 }
1185
1186 symtab_sec = find_elf_section(shdr, ehdr.e_shnum, shstr, ".symtab");
1187 if (!symtab_sec)
1188 error("could not find .symtab section");
1189 strtab_sec = &shdr[symtab_sec->sh_link];
1190
1191 symtab = (ElfW(Sym) *)sdata[symtab_sec - shdr];
1192 strtab = sdata[symtab_sec->sh_link];
1193
1194 nb_syms = symtab_sec->sh_size / sizeof(ElfW(Sym));
1195 if (do_swap) {
1196 for(i = 0, sym = symtab; i < nb_syms; i++, sym++) {
1197 swab32s(&sym->st_name);
1198 swabls(&sym->st_value);
1199 swabls(&sym->st_size);
1200 swab16s(&sym->st_shndx);
1201 }
1202 }
1203
1204 if (out_type == OUT_INDEX_OP) {
1205 fprintf(outfile, "DEF(end, 0, 0)\n");
1206 for(i = 0, sym = symtab; i < nb_syms; i++, sym++) {
1207 const char *name, *p;
1208 name = strtab + sym->st_name;
1209 if (strstart(name, OP_PREFIX, &p)) {
1210 gen_code(name, sym->st_value, sym->st_size, outfile,
1211 text, relocs, nb_relocs, 2);
1212 }
1213 }
1214 } else if (out_type == OUT_GEN_OP) {
1215 /* generate gen_xxx functions */
1216
1217 for(i = 0, sym = symtab; i < nb_syms; i++, sym++) {
1218 const char *name;
1219 name = strtab + sym->st_name;
1220 if (strstart(name, OP_PREFIX, NULL)) {
1221 if (sym->st_shndx != (text_sec - shdr))
1222 error("invalid section for opcode (0x%x)", sym->st_shndx);
1223 gen_code(name, sym->st_value, sym->st_size, outfile,
1224 text, relocs, nb_relocs, 0);
1225 }
1226 }
1227
1228 } else {
1229 /* generate big code generation switch */
1230 fprintf(outfile,
1231 "int dyngen_code(uint8_t *gen_code_buf,\n"
1232 " uint16_t *label_offsets, uint16_t *jmp_offsets,\n"
1233 " const uint16_t *opc_buf, const uint32_t *opparam_buf)\n"
1234 "{\n"
1235 " uint8_t *gen_code_ptr;\n"
1236 " const uint16_t *opc_ptr;\n"
1237 " const uint32_t *opparam_ptr;\n");
1238
1239 #ifdef HOST_ARM
1240 fprintf(outfile,
1241 " uint8_t *last_gen_code_ptr = gen_code_buf;\n"
1242 " LDREntry *arm_ldr_ptr = arm_ldr_table;\n"
1243 " uint32_t *arm_data_ptr = arm_data_table;\n");
1244 #endif
1245
1246 fprintf(outfile,
1247 "\n"
1248 " gen_code_ptr = gen_code_buf;\n"
1249 " opc_ptr = opc_buf;\n"
1250 " opparam_ptr = opparam_buf;\n");
1251
1252 /* Generate prologue, if needed. */
1253
1254 fprintf(outfile,
1255 " for(;;) {\n"
1256 " switch(*opc_ptr++) {\n"
1257 );
1258
1259 for(i = 0, sym = symtab; i < nb_syms; i++, sym++) {
1260 const char *name;
1261 name = strtab + sym->st_name;
1262 if (strstart(name, OP_PREFIX, NULL)) {
1263 #if 0
1264 printf("%4d: %s pos=0x%08x len=%d\n",
1265 i, name, sym->st_value, sym->st_size);
1266 #endif
1267 if (sym->st_shndx != (text_sec - shdr))
1268 error("invalid section for opcode (0x%x)", sym->st_shndx);
1269 gen_code(name, sym->st_value, sym->st_size, outfile,
1270 text, relocs, nb_relocs, 1);
1271 }
1272 }
1273
1274 fprintf(outfile,
1275 " default:\n"
1276 " goto the_end;\n"
1277 " }\n");
1278
1279 #ifdef HOST_ARM
1280 /* generate constant table if needed */
1281 fprintf(outfile,
1282 " if ((gen_code_ptr - last_gen_code_ptr) >= (MAX_FRAG_SIZE - MAX_OP_SIZE)) {\n"
1283 " gen_code_ptr = arm_flush_ldr(gen_code_ptr, arm_ldr_table, arm_ldr_ptr, arm_data_table, arm_data_ptr, 1);\n"
1284 " last_gen_code_ptr = gen_code_ptr;\n"
1285 " arm_ldr_ptr = arm_ldr_table;\n"
1286 " arm_data_ptr = arm_data_table;\n"
1287 " }\n");
1288 #endif
1289
1290
1291 fprintf(outfile,
1292 " }\n"
1293 " the_end:\n"
1294 );
1295
1296 /* generate epilogue */
1297 switch(ELF_ARCH) {
1298 case EM_386:
1299 fprintf(outfile, "*gen_code_ptr++ = 0xc3; /* ret */\n");
1300 break;
1301 case EM_PPC:
1302 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x4e800020; /* blr */\n");
1303 break;
1304 case EM_S390:
1305 fprintf(outfile, "*((uint16_t *)gen_code_ptr)++ = 0x07fe; /* br %%r14 */\n");
1306 break;
1307 case EM_ALPHA:
1308 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x6bfa8001; /* ret */\n");
1309 break;
1310 case EM_IA_64:
1311 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x00840008; /* br.ret.sptk.many b0;; */\n");
1312 break;
1313 case EM_SPARC:
1314 case EM_SPARC32PLUS:
1315 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x81c62008; /* jmpl %%i0 + 8, %%g0 */\n");
1316 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x01000000; /* nop */\n");
1317 break;
1318 case EM_SPARCV9:
1319 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x81c7e008; /* ret */\n");
1320 fprintf(outfile, "*((uint32_t *)gen_code_ptr)++ = 0x81e80000; /* restore */\n");
1321 break;
1322 case EM_ARM:
1323 fprintf(outfile, "gen_code_ptr = arm_flush_ldr(gen_code_ptr, arm_ldr_table, arm_ldr_ptr, arm_data_table, arm_data_ptr, 0);\n");
1324 break;
1325 default:
1326 error("unknown ELF architecture");
1327 }
1328 /* flush instruction cache */
1329 fprintf(outfile, "flush_icache_range((unsigned long)gen_code_buf, (unsigned long)gen_code_ptr);\n");
1330
1331 fprintf(outfile, "return gen_code_ptr - gen_code_buf;\n");
1332 fprintf(outfile, "}\n\n");
1333
1334 }
1335
1336 close(fd);
1337 return 0;
1338 }
1339
1340 void usage(void)
1341 {
1342 printf("dyngen (c) 2003 Fabrice Bellard\n"
1343 "usage: dyngen [-o outfile] [-c] objfile\n"
1344 "Generate a dynamic code generator from an object file\n"
1345 "-c output enum of operations\n"
1346 "-g output gen_op_xx() functions\n"
1347 );
1348 exit(1);
1349 }
1350
1351 int main(int argc, char **argv)
1352 {
1353 int c, out_type;
1354 const char *filename, *outfilename;
1355 FILE *outfile;
1356
1357 outfilename = "out.c";
1358 out_type = OUT_CODE;
1359 for(;;) {
1360 c = getopt(argc, argv, "ho:cg");
1361 if (c == -1)
1362 break;
1363 switch(c) {
1364 case 'h':
1365 usage();
1366 break;
1367 case 'o':
1368 outfilename = optarg;
1369 break;
1370 case 'c':
1371 out_type = OUT_INDEX_OP;
1372 break;
1373 case 'g':
1374 out_type = OUT_GEN_OP;
1375 break;
1376 }
1377 }
1378 if (optind >= argc)
1379 usage();
1380 filename = argv[optind];
1381 outfile = fopen(outfilename, "w");
1382 if (!outfile)
1383 error("could not open '%s'", outfilename);
1384 load_elf(filename, outfile, out_type);
1385 fclose(outfile);
1386 return 0;
1387 }