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1 /* Main simulator entry points specific to the CRIS.
2 Copyright (C) 2004-2024 Free Software Foundation, Inc.
3 Contributed by Axis Communications.
4
5 This file is part of the GNU simulators.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 /* Based on the fr30 file, mixing in bits from the i960 and pruning of
21 dead code. */
22
23 /* This must come before any other includes. */
24 #include "defs.h"
25
26 #include <stdlib.h>
27 #include <errno.h>
28 #include <unistd.h>
29
30 #include "libiberty.h"
31 #include "bfd.h"
32 #include "bfd/elf-bfd.h"
33
34 #include "sim/callback.h"
35 #include "sim-main.h"
36 #include "sim-options.h"
37 #include "sim-hw.h"
38 #include "dis-asm.h"
39 #include "environ.h"
40
41 /* Used with get_progbounds to find out how much memory is needed for the
42 program. We don't want to allocate more, since that could mask
43 invalid memory accesses program bugs. */
44 struct progbounds {
45 USI startmem;
46 USI endmem;
47 USI end_loadmem;
48 USI start_nonloadmem;
49 };
50
51 static void free_state (SIM_DESC);
52 static void get_progbounds_iterator (bfd *, asection *, void *);
53 static SIM_RC cris_option_handler (SIM_DESC, sim_cpu *, int, char *, int);
54
55 /* Since we don't build the cgen-opcode table, we use the old
56 disassembler. */
57 static CGEN_DISASSEMBLER cris_disassemble_insn;
58
59 /* By default, we set up stack and environment variables like the Linux
60 kernel. */
61 static char cris_bare_iron = 0;
62
63 /* Whether 0x9000000xx have simulator-specific meanings. */
64 char cris_have_900000xxif = 0;
65
66 /* Used to optionally override the default start address of the
67 simulation. */
68 static USI cris_start_address = 0xffffffffu;
69
70 /* Used to optionally add offsets to the loaded image and its start
71 address. (Not used for the interpreter of dynamically loaded
72 programs or the DSO:s.) */
73 static int cris_program_offset = 0;
74
75 /* What to do when we face a more or less unknown syscall. */
76 enum cris_unknown_syscall_action_type cris_unknown_syscall_action
77 = CRIS_USYSC_MSG_STOP;
78
79 /* CRIS-specific options. */
80 typedef enum {
81 OPTION_CRIS_STATS = OPTION_START,
82 OPTION_CRIS_TRACE,
83 OPTION_CRIS_NAKED,
84 OPTION_CRIS_PROGRAM_OFFSET,
85 OPTION_CRIS_STARTADDR,
86 OPTION_CRIS_900000XXIF,
87 OPTION_CRIS_UNKNOWN_SYSCALL
88 } CRIS_OPTIONS;
89
90 static const OPTION cris_options[] =
91 {
92 { {"cris-cycles", required_argument, NULL, OPTION_CRIS_STATS},
93 '\0', "basic|unaligned|schedulable|all",
94 "Dump execution statistics",
95 cris_option_handler, NULL },
96 { {"cris-trace", required_argument, NULL, OPTION_CRIS_TRACE},
97 '\0', "basic",
98 "Emit trace information while running",
99 cris_option_handler, NULL },
100 { {"cris-naked", no_argument, NULL, OPTION_CRIS_NAKED},
101 '\0', NULL, "Don't set up stack and environment",
102 cris_option_handler, NULL },
103 #if WITH_HW
104 { {"cris-900000xx", no_argument, NULL, OPTION_CRIS_900000XXIF},
105 '\0', NULL, "Define addresses at 0x900000xx with simulator semantics",
106 cris_option_handler, NULL },
107 #endif
108 { {"cris-unknown-syscall", required_argument, NULL,
109 OPTION_CRIS_UNKNOWN_SYSCALL},
110 '\0', "stop|enosys|enosys-quiet", "Action at an unknown system call",
111 cris_option_handler, NULL },
112 { {"cris-program-offset", required_argument, NULL,
113 OPTION_CRIS_PROGRAM_OFFSET},
114 '\0', "OFFSET",
115 "Offset image addresses and default start address of a program",
116 cris_option_handler },
117 { {"cris-start-address", required_argument, NULL, OPTION_CRIS_STARTADDR},
118 '\0', "ADDRESS", "Set start address",
119 cris_option_handler },
120 { {NULL, no_argument, NULL, 0}, '\0', NULL, NULL, NULL, NULL }
121 };
122 \f
123 /* Handle CRIS-specific options. */
124
125 static SIM_RC
126 cris_option_handler (SIM_DESC sd, sim_cpu *cpu ATTRIBUTE_UNUSED, int opt,
127 char *arg, int is_command ATTRIBUTE_UNUSED)
128 {
129 /* The options are CRIS-specific, but cpu-specific option-handling is
130 broken; required to being with "--cpu0-". We store the flags in an
131 unused field in the global state structure and move the flags over
132 to the module-specific CPU data when we store things in the
133 cpu-specific structure. */
134 char *tracefp = STATE_TRACE_FLAGS (sd);
135 char *chp = arg;
136
137 switch ((CRIS_OPTIONS) opt)
138 {
139 case OPTION_CRIS_STATS:
140 if (strcmp (arg, "basic") == 0)
141 *tracefp = FLAG_CRIS_MISC_PROFILE_SIMPLE;
142 else if (strcmp (arg, "unaligned") == 0)
143 *tracefp
144 = (FLAG_CRIS_MISC_PROFILE_UNALIGNED
145 | FLAG_CRIS_MISC_PROFILE_SIMPLE);
146 else if (strcmp (arg, "schedulable") == 0)
147 *tracefp
148 = (FLAG_CRIS_MISC_PROFILE_SCHEDULABLE
149 | FLAG_CRIS_MISC_PROFILE_SIMPLE);
150 else if (strcmp (arg, "all") == 0)
151 *tracefp = FLAG_CRIS_MISC_PROFILE_ALL;
152 else
153 {
154 /* Beware; the framework does not handle the error case;
155 we have to do it ourselves. */
156 sim_io_eprintf (sd, "Unknown option `--cris-cycles=%s'\n", arg);
157 return SIM_RC_FAIL;
158 }
159 break;
160
161 case OPTION_CRIS_TRACE:
162 if (strcmp (arg, "basic") == 0)
163 *tracefp |= FLAG_CRIS_MISC_PROFILE_XSIM_TRACE;
164 else
165 {
166 sim_io_eprintf (sd, "Unknown option `--cris-trace=%s'\n", arg);
167 return SIM_RC_FAIL;
168 }
169 break;
170
171 case OPTION_CRIS_NAKED:
172 cris_bare_iron = 1;
173 break;
174
175 case OPTION_CRIS_900000XXIF:
176 cris_have_900000xxif = 1;
177 break;
178
179 case OPTION_CRIS_STARTADDR:
180 errno = 0;
181 cris_start_address = (USI) strtoul (chp, &chp, 0);
182
183 if (errno != 0 || *chp != 0)
184 {
185 sim_io_eprintf (sd, "Invalid option `--cris-start-address=%s'\n",
186 arg);
187 return SIM_RC_FAIL;
188 }
189 break;
190
191 case OPTION_CRIS_PROGRAM_OFFSET:
192 errno = 0;
193 cris_program_offset = (int) strtol (chp, &chp, 0);
194
195 if (errno != 0 || *chp != 0)
196 {
197 sim_io_eprintf (sd, "Invalid option `--cris-program-offset=%s'\n",
198 arg);
199 return SIM_RC_FAIL;
200 }
201 break;
202
203 case OPTION_CRIS_UNKNOWN_SYSCALL:
204 if (strcmp (arg, "enosys") == 0)
205 cris_unknown_syscall_action = CRIS_USYSC_MSG_ENOSYS;
206 else if (strcmp (arg, "enosys-quiet") == 0)
207 cris_unknown_syscall_action = CRIS_USYSC_QUIET_ENOSYS;
208 else if (strcmp (arg, "stop") == 0)
209 cris_unknown_syscall_action = CRIS_USYSC_MSG_STOP;
210 else
211 {
212 sim_io_eprintf (sd, "Unknown option `--cris-unknown-syscall=%s'\n",
213 arg);
214 return SIM_RC_FAIL;
215 }
216 break;
217
218 default:
219 /* We'll actually never get here; the caller handles the error
220 case. */
221 sim_io_eprintf (sd, "Unknown option `%s'\n", arg);
222 return SIM_RC_FAIL;
223 }
224
225 /* Imply --profile-model=on. */
226 return sim_profile_set_option (sd, "-model", PROFILE_MODEL_IDX, "on");
227 }
228
229 /* An ELF-specific simplified ../common/sim-load.c:sim_load_file,
230 using the program headers, not sections, in order to make sure that
231 the program headers themeselves are also loaded. The caller is
232 responsible for asserting that ABFD is an ELF file. */
233
234 static bfd_boolean
235 cris_load_elf_file (SIM_DESC sd, struct bfd *abfd, sim_write_fn do_write)
236 {
237 Elf_Internal_Phdr *phdr;
238 int n_hdrs;
239 int i;
240 bfd_boolean verbose = STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG;
241
242 phdr = elf_tdata (abfd)->phdr;
243 n_hdrs = elf_elfheader (abfd)->e_phnum;
244
245 /* We're only interested in PT_LOAD; all necessary information
246 should be covered by that. */
247 for (i = 0; i < n_hdrs; i++)
248 {
249 bfd_byte *buf;
250 bfd_vma lma = STATE_LOAD_AT_LMA_P (sd)
251 ? phdr[i].p_paddr : phdr[i].p_vaddr;
252
253 if (phdr[i].p_type != PT_LOAD)
254 continue;
255
256 buf = xmalloc (phdr[i].p_filesz);
257
258 if (verbose)
259 sim_io_printf (sd,
260 "Loading segment at 0x%" PRIx64 ", "
261 "size 0x%" PRIx64 "\n",
262 (uint64_t) lma, (uint64_t) phdr[i].p_filesz);
263
264 if (bfd_seek (abfd, phdr[i].p_offset, SEEK_SET) != 0
265 || (bfd_read (buf, phdr[i].p_filesz, abfd) != phdr[i].p_filesz))
266 {
267 sim_io_eprintf (sd,
268 "%s: could not read segment at 0x%" PRIx64 ", "
269 "size 0x%" PRIx64 "\n",
270 STATE_MY_NAME (sd), (uint64_t) lma,
271 (uint64_t) phdr[i].p_filesz);
272 free (buf);
273 return FALSE;
274 }
275
276 if (do_write (sd, lma, buf, phdr[i].p_filesz) != phdr[i].p_filesz)
277 {
278 sim_io_eprintf (sd,
279 "%s: could not load segment at 0x%" PRIx64 ", "
280 "size 0x%" PRIx64 "\n",
281 STATE_MY_NAME (sd), (uint64_t) lma,
282 (uint64_t) phdr[i].p_filesz);
283 free (buf);
284 return FALSE;
285 }
286
287 free (buf);
288 }
289
290 return TRUE;
291 }
292
293 /* Cover function of sim_state_free to free the cpu buffers as well. */
294
295 static void
296 free_state (SIM_DESC sd)
297 {
298 if (STATE_MODULES (sd) != NULL)
299 sim_module_uninstall (sd);
300 sim_cpu_free_all (sd);
301 sim_state_free (sd);
302 }
303
304 /* Helper struct for cris_set_section_offset_iterator. */
305
306 struct offsetinfo
307 {
308 SIM_DESC sd;
309 int offset;
310 };
311
312 /* BFD section iterator to offset the LMA and VMA. */
313
314 static void
315 cris_set_section_offset_iterator (bfd *abfd, asection *s, void *vp)
316 {
317 struct offsetinfo *p = (struct offsetinfo *) vp;
318 SIM_DESC sd = p->sd;
319 int offset = p->offset;
320
321 if ((bfd_section_flags (s) & SEC_ALLOC))
322 {
323 bfd_vma vma = bfd_section_vma (s);
324
325 bfd_set_section_vma (s, vma + offset);
326 }
327
328 /* This seems clumsy and inaccurate, but let's stick to doing it the
329 same way as sim_analyze_program for consistency. */
330 if (strcmp (bfd_section_name (s), ".text") == 0)
331 STATE_TEXT_START (sd) = bfd_section_vma (s);
332 }
333
334 /* Adjust the start-address, LMA and VMA of a SD. Must be called
335 after sim_analyze_program. */
336
337 static void
338 cris_offset_sections (SIM_DESC sd, int offset)
339 {
340 struct bfd *abfd = STATE_PROG_BFD (sd);
341 struct offsetinfo oi;
342
343 /* Only happens for usage error. */
344 if (abfd == NULL)
345 return;
346
347 oi.sd = sd;
348 oi.offset = offset;
349
350 bfd_map_over_sections (abfd, cris_set_section_offset_iterator, &oi);
351 bfd_set_start_address (abfd, bfd_get_start_address (abfd) + offset);
352
353 STATE_START_ADDR (sd) = bfd_get_start_address (abfd);
354 }
355
356 /* BFD section iterator to find the highest and lowest allocated and
357 non-allocated section addresses (plus one). */
358
359 static void
360 get_progbounds_iterator (bfd *abfd ATTRIBUTE_UNUSED, asection *s, void *vp)
361 {
362 struct progbounds *pbp = (struct progbounds *) vp;
363
364 if ((bfd_section_flags (s) & SEC_ALLOC))
365 {
366 bfd_size_type sec_size = bfd_section_size (s);
367 bfd_size_type sec_start = bfd_section_vma (s);
368 bfd_size_type sec_end = sec_start + sec_size;
369
370 if (sec_end > pbp->endmem)
371 pbp->endmem = sec_end;
372
373 if (sec_start < pbp->startmem)
374 pbp->startmem = sec_start;
375
376 if ((bfd_section_flags (s) & SEC_LOAD))
377 {
378 if (sec_end > pbp->end_loadmem)
379 pbp->end_loadmem = sec_end;
380 }
381 else if (sec_start < pbp->start_nonloadmem)
382 pbp->start_nonloadmem = sec_start;
383 }
384 }
385
386 /* Get the program boundaries. Because not everything is covered by
387 sections in ELF, notably the program headers, we use the program
388 headers instead. */
389
390 static void
391 cris_get_progbounds (struct bfd *abfd, struct progbounds *pbp)
392 {
393 Elf_Internal_Phdr *phdr;
394 int n_hdrs;
395 int i;
396
397 pbp->startmem = 0xffffffff;
398 pbp->endmem = 0;
399 pbp->end_loadmem = 0;
400 pbp->start_nonloadmem = 0xffffffff;
401
402 /* In case we're ever used for something other than ELF, use the
403 generic method. */
404 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
405 {
406 bfd_map_over_sections (abfd, get_progbounds_iterator, pbp);
407 return;
408 }
409
410 phdr = elf_tdata (abfd)->phdr;
411 n_hdrs = elf_elfheader (abfd)->e_phnum;
412
413 /* We're only interested in PT_LOAD; all necessary information
414 should be covered by that. */
415 for (i = 0; i < n_hdrs; i++)
416 {
417 if (phdr[i].p_type != PT_LOAD)
418 continue;
419
420 if (phdr[i].p_paddr < pbp->startmem)
421 pbp->startmem = phdr[i].p_paddr;
422
423 if (phdr[i].p_paddr + phdr[i].p_memsz > pbp->endmem)
424 pbp->endmem = phdr[i].p_paddr + phdr[i].p_memsz;
425
426 if (phdr[i].p_paddr + phdr[i].p_filesz > pbp->end_loadmem)
427 pbp->end_loadmem = phdr[i].p_paddr + phdr[i].p_filesz;
428
429 if (phdr[i].p_memsz > phdr[i].p_filesz
430 && phdr[i].p_paddr + phdr[i].p_filesz < pbp->start_nonloadmem)
431 pbp->start_nonloadmem = phdr[i].p_paddr + phdr[i].p_filesz;
432 }
433 }
434
435 /* Parameter communication by static variables, hmm... Oh well, for
436 simplicity. */
437 static bfd_vma exec_load_addr;
438 static bfd_vma interp_load_addr;
439 static bfd_vma interp_start_addr;
440
441 /* Supposed to mimic Linux' "NEW_AUX_ENT (AT_PHDR, load_addr + exec->e_phoff)". */
442
443 static USI
444 aux_ent_phdr (struct bfd *ebfd)
445 {
446 return elf_elfheader (ebfd)->e_phoff + exec_load_addr;
447 }
448
449 /* We just pass on the header info; we don't have our own idea of the
450 program header entry size. */
451
452 static USI
453 aux_ent_phent (struct bfd *ebfd)
454 {
455 return elf_elfheader (ebfd)->e_phentsize;
456 }
457
458 /* Like "NEW_AUX_ENT(AT_PHNUM, exec->e_phnum)". */
459
460 static USI
461 aux_ent_phnum (struct bfd *ebfd)
462 {
463 return elf_elfheader (ebfd)->e_phnum;
464 }
465
466 /* Like "NEW_AUX_ENT(AT_BASE, interp_load_addr)". */
467
468 static USI
469 aux_ent_base (struct bfd *ebfd)
470 {
471 return interp_load_addr;
472 }
473
474 /* Like "NEW_AUX_ENT(AT_ENTRY, exec->e_entry)". */
475
476 static USI
477 aux_ent_entry (struct bfd *ebfd)
478 {
479 ASSERT (elf_elfheader (ebfd)->e_entry == bfd_get_start_address (ebfd));
480 return elf_elfheader (ebfd)->e_entry;
481 }
482
483 /* Helper for cris_handle_interpreter: like sim_write, but load at
484 interp_load_addr offset. */
485
486 static uint64_t
487 cris_write_interp (SIM_DESC sd, uint64_t mem, const void *buf, uint64_t length)
488 {
489 return sim_write (sd, mem + interp_load_addr, buf, length);
490 }
491
492 /* Cater to the presence of an interpreter: load it and set
493 interp_start_addr. Return FALSE if there was an error, TRUE if
494 everything went fine, including an interpreter being absent and
495 the program being in a non-ELF format. */
496
497 static bfd_boolean
498 cris_handle_interpreter (SIM_DESC sd, struct bfd *abfd)
499 {
500 int i, n_hdrs;
501 char *interp = NULL;
502 struct bfd *ibfd;
503 bfd_boolean ok = FALSE;
504 Elf_Internal_Phdr *phdr;
505
506 if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
507 return TRUE;
508
509 phdr = elf_tdata (abfd)->phdr;
510 n_hdrs = aux_ent_phnum (abfd);
511
512 /* Check the program headers for presence of an interpreter. */
513 for (i = 0; i < n_hdrs; i++)
514 {
515 int interplen;
516 bfd_size_type interpsiz;
517 struct progbounds interp_bounds;
518
519 if (phdr[i].p_type != PT_INTERP)
520 continue;
521
522 /* Get the name of the interpreter, prepended with the sysroot
523 (empty if absent). */
524 interplen = phdr[i].p_filesz;
525 interp = xmalloc (interplen + strlen (simulator_sysroot));
526 strcpy (interp, simulator_sysroot);
527
528 /* Read in the name. */
529 if (bfd_seek (abfd, phdr[i].p_offset, SEEK_SET) != 0
530 || (bfd_read (interp + strlen (simulator_sysroot), interplen, abfd)
531 != interplen))
532 goto interpname_failed;
533
534 /* Like Linux, require the string to be 0-terminated. */
535 if (interp[interplen + strlen (simulator_sysroot) - 1] != 0)
536 goto interpname_failed;
537
538 /* Inspect the interpreter. */
539 ibfd = bfd_openr (interp, STATE_TARGET (sd));
540 if (ibfd == NULL)
541 goto interpname_failed;
542
543 /* The interpreter is at least something readable to BFD; make
544 sure it's an ELF non-archive file. */
545 if (!bfd_check_format (ibfd, bfd_object)
546 || bfd_get_flavour (ibfd) != bfd_target_elf_flavour)
547 goto interp_failed;
548
549 /* Check the layout of the interpreter. */
550 cris_get_progbounds (ibfd, &interp_bounds);
551
552 /* Round down to pagesize the start page and up the endpage.
553 Don't round the *load and *nonload members. */
554 interp_bounds.startmem &= ~8191;
555 interp_bounds.endmem = (interp_bounds.endmem + 8191) & ~8191;
556
557 /* Until we need a more dynamic solution, assume we can put the
558 interpreter at this fixed location. NB: this is not what
559 happens for Linux 2008-12-28, but it could and might and
560 perhaps should. */
561 interp_load_addr = 0x40000;
562 interpsiz = interp_bounds.endmem - interp_bounds.startmem;
563 /* interp_filesiz = interp_bounds.end_loadmem - interp_bounds.startmem; */
564
565 /* If we have a non-DSO or interpreter starting at the wrong
566 address, bail. */
567 if (interp_bounds.startmem != 0
568 || interpsiz + interp_load_addr >= exec_load_addr)
569 goto interp_failed;
570
571 /* We don't have the API to get the address of a simulator
572 memory area, so we go via a temporary area. Luckily, the
573 interpreter is supposed to be small, less than 0x40000
574 bytes. */
575 sim_do_commandf (sd, "memory region 0x%" PRIx64 ",0x%" PRIx64,
576 (uint64_t) interp_load_addr, (uint64_t) interpsiz);
577
578 /* Now that memory for the interpreter is defined, load it. */
579 if (!cris_load_elf_file (sd, ibfd, cris_write_interp))
580 goto interp_failed;
581
582 /* It's no use setting STATE_START_ADDR, because it gets
583 overwritten by a sim_analyze_program call in sim_load. Let's
584 just store it locally. */
585 interp_start_addr
586 = (bfd_get_start_address (ibfd)
587 - interp_bounds.startmem + interp_load_addr);
588
589 /* Linux cares only about the first PT_INTERP, so let's ignore
590 the rest. */
591 goto all_done;
592 }
593
594 /* Register R10 should hold 0 at static start (no finifunc), but
595 that's the default, so don't bother. */
596 return TRUE;
597
598 all_done:
599 ok = TRUE;
600
601 interp_failed:
602 bfd_close (ibfd);
603
604 interpname_failed:
605 if (!ok)
606 sim_io_eprintf (sd,
607 "%s: could not load ELF interpreter `%s' for program `%s'\n",
608 STATE_MY_NAME (sd),
609 interp == NULL ? "(what's-its-name)" : interp,
610 bfd_get_filename (abfd));
611 free (interp);
612 return ok;
613 }
614
615 extern const SIM_MACH * const cris_sim_machs[];
616
617 /* Create an instance of the simulator. */
618
619 SIM_DESC
620 sim_open (SIM_OPEN_KIND kind, host_callback *callback, struct bfd *abfd,
621 char * const *argv)
622 {
623 char c;
624 int i;
625 USI startmem = 0;
626 USI endmem = CRIS_DEFAULT_MEM_SIZE;
627 USI endbrk = endmem;
628 USI stack_low = 0;
629 SIM_DESC sd = sim_state_alloc (kind, callback);
630
631 static const struct auxv_entries_s
632 {
633 bfd_byte id;
634 USI (*efn) (struct bfd *ebfd);
635 USI val;
636 } auxv_entries[] =
637 {
638 #define AUX_ENT(a, b) {a, NULL, b}
639 #define AUX_ENTF(a, f) {a, f, 0}
640 AUX_ENT (AT_HWCAP, 0),
641 AUX_ENT (AT_PAGESZ, 8192),
642 AUX_ENT (AT_CLKTCK, 100),
643 AUX_ENTF (AT_PHDR, aux_ent_phdr),
644 AUX_ENTF (AT_PHENT, aux_ent_phent),
645 AUX_ENTF (AT_PHNUM, aux_ent_phnum),
646 AUX_ENTF (AT_BASE, aux_ent_base),
647 AUX_ENT (AT_FLAGS, 0),
648 AUX_ENTF (AT_ENTRY, aux_ent_entry),
649
650 /* Or is root better? Maybe have it settable? */
651 AUX_ENT (AT_UID, 500),
652 AUX_ENT (AT_EUID, 500),
653 AUX_ENT (AT_GID, 500),
654 AUX_ENT (AT_EGID, 500),
655 AUX_ENT (AT_SECURE, 0),
656 AUX_ENT (AT_NULL, 0)
657 };
658
659 /* Can't initialize to "" below. It's either a GCC bug in old
660 releases (up to and including 2.95.3 (.4 in debian) or a bug in the
661 standard ;-) that the rest of the elements won't be initialized. */
662 bfd_byte sp_init[4] = {0, 0, 0, 0};
663
664 /* Set default options before parsing user options. */
665 STATE_MACHS (sd) = cris_sim_machs;
666 STATE_MODEL_NAME (sd) = "crisv32";
667 current_target_byte_order = BFD_ENDIAN_LITTLE;
668
669 /* The cpu data is kept in a separately allocated chunk of memory. */
670 if (sim_cpu_alloc_all_extra (sd, 0, sizeof (struct cris_sim_cpu))
671 != SIM_RC_OK)
672 {
673 free_state (sd);
674 return 0;
675 }
676
677 if (sim_pre_argv_init (sd, argv[0]) != SIM_RC_OK)
678 {
679 free_state (sd);
680 return 0;
681 }
682
683 /* Add the CRIS-specific option list to the simulator. */
684 if (sim_add_option_table (sd, NULL, cris_options) != SIM_RC_OK)
685 {
686 free_state (sd);
687 return 0;
688 }
689
690 /* The parser will print an error message for us, so we silently return. */
691 if (sim_parse_args (sd, argv) != SIM_RC_OK)
692 {
693 free_state (sd);
694 return 0;
695 }
696
697 /* check for/establish the reference program image */
698 if (sim_analyze_program (sd, STATE_PROG_FILE (sd), abfd) != SIM_RC_OK)
699 {
700 /* When there's an error, sim_analyze_program has already output
701 a message. Let's just clarify it, as "not an object file"
702 perhaps doesn't ring a bell. */
703 sim_io_eprintf (sd, "(not a CRIS program)\n");
704 free_state (sd);
705 return 0;
706 }
707
708 /* We might get called with the caller expecting us to get hold of
709 the bfd for ourselves, which would happen at the
710 sim_analyze_program call above. */
711 if (abfd == NULL)
712 abfd = STATE_PROG_BFD (sd);
713
714 /* Adjust the addresses of the program at this point. Unfortunately
715 this does not affect ELF program headers, so we have to handle
716 that separately. */
717 cris_offset_sections (sd, cris_program_offset);
718
719 if (abfd != NULL && bfd_get_arch (abfd) == bfd_arch_unknown)
720 {
721 if (STATE_PROG_FILE (sd) != NULL)
722 sim_io_eprintf (sd, "%s: `%s' is not a CRIS program\n",
723 STATE_MY_NAME (sd), STATE_PROG_FILE (sd));
724 else
725 sim_io_eprintf (sd, "%s: program to be run is not a CRIS program\n",
726 STATE_MY_NAME (sd));
727 free_state (sd);
728 return 0;
729 }
730
731 /* For CRIS simulator-specific use, we need to find out the bounds of
732 the program as well, which is not done by sim_analyze_program
733 above. */
734 if (abfd != NULL)
735 {
736 struct progbounds pb;
737
738 /* The sections should now be accessible using bfd functions. */
739 cris_get_progbounds (abfd, &pb);
740
741 /* We align the area that the program uses to page boundaries. */
742 startmem = pb.startmem & ~8191;
743 endbrk = pb.endmem;
744 endmem = (endbrk + 8191) & ~8191;
745 }
746
747 /* Find out how much room is needed for the environment and argv, create
748 that memory and fill it. Only do this when there's a program
749 specified.
750
751 TODO: Move this to sim_create_inferior and use STATE_PROG_ENVP. */
752 if (abfd != NULL && !cris_bare_iron)
753 {
754 const char *name = bfd_get_filename (abfd);
755 /* We use these maps to give the same behavior as the old xsim
756 simulator. */
757 USI envtop = 0x40000000;
758 USI stacktop = 0x3e000000;
759 USI envstart;
760 int envc;
761 int len = strlen (name) + 1;
762 USI epp, epp0;
763 USI stacklen;
764 char **prog_argv = STATE_PROG_ARGV (sd);
765 int my_argc = 0;
766 USI csp;
767 bfd_byte buf[4];
768
769 /* Count in the environment as well. */
770 for (envc = 0; environ[envc] != NULL; envc++)
771 len += strlen (environ[envc]) + 1;
772
773 for (i = 0; prog_argv[i] != NULL; my_argc++, i++)
774 len += strlen (prog_argv[i]) + 1;
775
776 envstart = (envtop - len) & ~8191;
777
778 /* Create read-only block for the environment strings. */
779 sim_core_attach (sd, NULL, 0, access_read, 0,
780 envstart, (len + 8191) & ~8191,
781 0, NULL, NULL);
782
783 /* This shouldn't happen. */
784 if (envstart < stacktop)
785 stacktop = envstart - 64 * 8192;
786
787 csp = stacktop;
788
789 /* Note that the linux kernel does not correctly compute the storage
790 needs for the static-exe AUX vector. */
791
792 csp -= ARRAY_SIZE (auxv_entries) * 4 * 2;
793
794 csp -= (envc + 1) * 4;
795 csp -= (my_argc + 1) * 4;
796 csp -= 4;
797
798 /* Write the target representation of the start-up-value for the
799 stack-pointer suitable for register initialization below. */
800 bfd_putl32 (csp, sp_init);
801
802 /* If we make this 1M higher; say 8192*1024, we have to take
803 special precautions for pthreads, because pthreads assumes that
804 the memory that low isn't mmapped, and that it can mmap it
805 without fallback in case of failure (and we fail ungracefully
806 long before *that*: the memory isn't accounted for in our mmap
807 list). */
808 stack_low = (csp - (7168*1024)) & ~8191;
809
810 stacklen = stacktop - stack_low;
811
812 /* Tee hee, we have an executable stack. Well, it's necessary to
813 test GCC trampolines... */
814 sim_core_attach (sd, NULL, 0, access_read_write_exec, 0,
815 stack_low, stacklen,
816 0, NULL, NULL);
817
818 epp = epp0 = envstart;
819
820 /* Can't use sim_core_write_unaligned_4 without everything
821 initialized when tracing, and then these writes would get into
822 the trace. */
823 #define write_dword(addr, data) \
824 do \
825 { \
826 USI data_ = data; \
827 USI addr_ = addr; \
828 bfd_putl32 (data_, buf); \
829 if (sim_core_write_buffer (sd, NULL, NULL_CIA, buf, addr_, 4) != 4)\
830 goto abandon_chip; \
831 } \
832 while (0)
833
834 write_dword (csp, my_argc);
835 csp += 4;
836
837 for (i = 0; i < my_argc; i++, csp += 4)
838 {
839 size_t strln = strlen (prog_argv[i]) + 1;
840
841 if (sim_core_write_buffer (sd, NULL, NULL_CIA, prog_argv[i], epp,
842 strln)
843 != strln)
844 goto abandon_chip;
845
846 write_dword (csp, envstart + epp - epp0);
847 epp += strln;
848 }
849
850 write_dword (csp, 0);
851 csp += 4;
852
853 for (i = 0; i < envc; i++, csp += 4)
854 {
855 unsigned int strln = strlen (environ[i]) + 1;
856
857 if (sim_core_write_buffer (sd, NULL, NULL_CIA, environ[i], epp, strln)
858 != strln)
859 goto abandon_chip;
860
861 write_dword (csp, envstart + epp - epp0);
862 epp += strln;
863 }
864
865 write_dword (csp, 0);
866 csp += 4;
867
868 /* The load address of the executable could presumably be
869 different than the lowest used memory address, but let's
870 stick to simplicity until needed. And
871 cris_handle_interpreter might change startmem and endmem, so
872 let's set it now. */
873 exec_load_addr = startmem;
874
875 if (!cris_handle_interpreter (sd, abfd))
876 goto abandon_chip;
877
878 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour)
879 for (i = 0; i < ARRAY_SIZE (auxv_entries); i++)
880 {
881 write_dword (csp, auxv_entries[i].id);
882 write_dword (csp + 4,
883 auxv_entries[i].efn != NULL
884 ? (*auxv_entries[i].efn) (abfd)
885 : auxv_entries[i].val);
886 csp += 4 + 4;
887 }
888 }
889
890 /* Allocate core managed memory if none specified by user. */
891 if (sim_core_read_buffer (sd, NULL, read_map, &c, startmem, 1) == 0)
892 sim_do_commandf (sd, "memory region 0x%" PRIx32 ",0x%" PRIx32,
893 startmem, endmem - startmem);
894
895 /* Allocate simulator I/O managed memory if none specified by user. */
896 #if WITH_HW
897 if (cris_have_900000xxif)
898 sim_hw_parse (sd, "/core/%s/reg %#x %i", "cris_900000xx", 0x90000000, 0x100);
899 #else
900 /* With the option disabled, nothing should be able to set this variable.
901 We should "use" it, though, and why not assert that it isn't set. */
902 ASSERT (! cris_have_900000xxif);
903 #endif
904
905 /* Establish any remaining configuration options. */
906 if (sim_config (sd) != SIM_RC_OK)
907 {
908 abandon_chip:
909 free_state (sd);
910 return 0;
911 }
912
913 if (sim_post_argv_init (sd) != SIM_RC_OK)
914 {
915 free_state (sd);
916 return 0;
917 }
918
919 /* Open a copy of the cpu descriptor table. */
920 {
921 CGEN_CPU_DESC cd = cris_cgen_cpu_open_1 (STATE_ARCHITECTURE (sd)->printable_name,
922 CGEN_ENDIAN_LITTLE);
923 for (i = 0; i < MAX_NR_PROCESSORS; ++i)
924 {
925 SIM_CPU *cpu = STATE_CPU (sd, i);
926 struct cris_sim_cpu *cris_cpu = CRIS_SIM_CPU (cpu);
927
928 CPU_CPU_DESC (cpu) = cd;
929 CPU_DISASSEMBLER (cpu) = cris_disassemble_insn;
930
931 /* See cris_option_handler for the reason why this is needed. */
932 CPU_CRIS_MISC_PROFILE (cpu)->flags = STATE_TRACE_FLAGS (sd)[0];
933
934 /* Set SP to the stack we allocated above. */
935 (* CPU_REG_STORE (cpu)) (cpu, H_GR_SP, (const unsigned char *) sp_init, 4);
936
937 /* Set the simulator environment data. */
938 cris_cpu->highest_mmapped_page = NULL;
939 cris_cpu->endmem = endmem;
940 cris_cpu->endbrk = endbrk;
941 cris_cpu->stack_low = stack_low;
942 cris_cpu->syscalls = 0;
943 cris_cpu->m1threads = 0;
944 cris_cpu->threadno = 0;
945 cris_cpu->max_threadid = 0;
946 cris_cpu->thread_data = NULL;
947 memset (cris_cpu->sighandler, 0, sizeof (cris_cpu->sighandler));
948 cris_cpu->make_thread_cpu_data = NULL;
949 cris_cpu->thread_cpu_data_size = 0;
950 #if WITH_HW
951 cris_cpu->deliver_interrupt = NULL;
952 #endif
953 }
954 #if WITH_HW
955 /* Always be cycle-accurate and call before/after functions if
956 with-hardware. */
957 sim_profile_set_option (sd, "-model", PROFILE_MODEL_IDX, "on");
958 #endif
959 }
960
961 cris_set_callbacks (callback);
962
963 return sd;
964 }
965 \f
966 SIM_RC
967 sim_create_inferior (SIM_DESC sd, struct bfd *abfd,
968 char * const *argv,
969 char * const *env)
970 {
971 SIM_CPU *current_cpu = STATE_CPU (sd, 0);
972 host_callback *cb = STATE_CALLBACK (sd);
973 bfd_vma addr;
974
975 if (sd != NULL)
976 addr = cris_start_address != (USI) -1
977 ? cris_start_address
978 : (interp_start_addr != 0
979 ? interp_start_addr
980 : bfd_get_start_address (abfd));
981 else
982 addr = 0;
983 sim_pc_set (current_cpu, addr);
984
985 /* Standalone mode (i.e. `run`) will take care of the argv for us in
986 sim_open() -> sim_parse_args(). But in debug mode (i.e. 'target sim'
987 with `gdb`), we need to handle it because the user can change the
988 argv on the fly via gdb's 'run'. */
989 if (STATE_PROG_ARGV (sd) != argv)
990 {
991 freeargv (STATE_PROG_ARGV (sd));
992 STATE_PROG_ARGV (sd) = dupargv (argv);
993 }
994
995 if (STATE_PROG_ENVP (sd) != env)
996 {
997 freeargv (STATE_PROG_ENVP (sd));
998 STATE_PROG_ENVP (sd) = dupargv (env);
999 }
1000
1001 cb->argv = STATE_PROG_ARGV (sd);
1002 cb->envp = STATE_PROG_ENVP (sd);
1003
1004 return SIM_RC_OK;
1005 }
1006 \f
1007 /* Disassemble an instruction. */
1008
1009 static void
1010 cris_disassemble_insn (SIM_CPU *cpu,
1011 const CGEN_INSN *insn ATTRIBUTE_UNUSED,
1012 const ARGBUF *abuf ATTRIBUTE_UNUSED,
1013 IADDR pc, char *buf)
1014 {
1015 disassembler_ftype pinsn;
1016 struct disassemble_info disasm_info;
1017 SFILE sfile;
1018 SIM_DESC sd = CPU_STATE (cpu);
1019
1020 sfile.buffer = sfile.current = buf;
1021 INIT_DISASSEMBLE_INFO (disasm_info, (FILE *) &sfile,
1022 (fprintf_ftype) sim_disasm_sprintf,
1023 (fprintf_styled_ftype) sim_disasm_styled_sprintf);
1024 disasm_info.endian = BFD_ENDIAN_LITTLE;
1025 disasm_info.read_memory_func = sim_disasm_read_memory;
1026 disasm_info.memory_error_func = sim_disasm_perror_memory;
1027 disasm_info.application_data = cpu;
1028 pinsn = cris_get_disassembler (STATE_PROG_BFD (sd));
1029 (*pinsn) (pc, &disasm_info);
1030 }