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1 /* Simulator for Analog Devices Blackfin processors.
2
3 Copyright (C) 2005-2016 Free Software Foundation, Inc.
4 Contributed by Analog Devices, Inc.
5
6 This file is part of simulators.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program. If not, see <http://www.gnu.org/licenses/>. */
20
21 #include "config.h"
22
23 #include <stdio.h>
24 #include <stdlib.h>
25 #include <string.h>
26 #include <signal.h>
27 #include <errno.h>
28 #include <fcntl.h>
29 #include <unistd.h>
30 #include <sys/time.h>
31
32 #include "gdb/callback.h"
33 #include "gdb/signals.h"
34 #include "sim-main.h"
35 #include "sim-syscall.h"
36 #include "sim-hw.h"
37
38 #include "targ-vals.h"
39
40 /* The numbers here do not matter. They just need to be unique. They also
41 need not be static across releases -- they're used internally only. The
42 mapping from the Linux ABI to the CB values is in linux-targ-map.h. */
43 #define CB_SYS_ioctl 201
44 #define CB_SYS_mmap2 202
45 #define CB_SYS_munmap 203
46 #define CB_SYS_dup2 204
47 #define CB_SYS_getuid 205
48 #define CB_SYS_getuid32 206
49 #define CB_SYS_getgid 207
50 #define CB_SYS_getgid32 208
51 #define CB_SYS_setuid 209
52 #define CB_SYS_setuid32 210
53 #define CB_SYS_setgid 211
54 #define CB_SYS_setgid32 212
55 #define CB_SYS_pread 213
56 #define CB_SYS__llseek 214
57 #define CB_SYS_getcwd 215
58 #define CB_SYS_stat64 216
59 #define CB_SYS_lstat64 217
60 #define CB_SYS_fstat64 218
61 #define CB_SYS_ftruncate64 219
62 #define CB_SYS_gettimeofday 220
63 #define CB_SYS_access 221
64 #include "linux-targ-map.h"
65 #include "linux-fixed-code.h"
66
67 #include "elf/common.h"
68 #include "elf/external.h"
69 #include "elf/internal.h"
70 #include "elf/bfin.h"
71 #include "elf-bfd.h"
72
73 #include "dv-bfin_cec.h"
74 #include "dv-bfin_mmu.h"
75
76 #ifndef HAVE_GETUID
77 # define getuid() 0
78 #endif
79 #ifndef HAVE_GETGID
80 # define getgid() 0
81 #endif
82 #ifndef HAVE_GETEUID
83 # define geteuid() 0
84 #endif
85 #ifndef HAVE_GETEGID
86 # define getegid() 0
87 #endif
88 #ifndef HAVE_SETUID
89 # define setuid(uid) -1
90 #endif
91 #ifndef HAVE_SETGID
92 # define setgid(gid) -1
93 #endif
94
95 static const char cb_linux_stat_map_32[] =
96 /* Linux kernel 32bit layout: */
97 "st_dev,2:space,2:st_ino,4:st_mode,2:st_nlink,2:st_uid,2:st_gid,2:st_rdev,2:"
98 "space,2:st_size,4:st_blksize,4:st_blocks,4:st_atime,4:st_atimensec,4:"
99 "st_mtime,4:st_mtimensec,4:st_ctime,4:st_ctimensec,4:space,4:space,4";
100 /* uClibc public ABI 32bit layout:
101 "st_dev,8:space,2:space,2:st_ino,4:st_mode,4:st_nlink,4:st_uid,4:st_gid,4:"
102 "st_rdev,8:space,2:space,2:st_size,4:st_blksiez,4:st_blocks,4:st_atime,4:"
103 "st_atimensec,4:st_mtime,4:st_mtimensec,4:st_ctime,4:st_ctimensec,4:space,4:"
104 "space,4"; */
105 static const char cb_linux_stat_map_64[] =
106 "st_dev,8:space,4:space,4:st_mode,4:st_nlink,4:st_uid,4:st_gid,4:st_rdev,8:"
107 "space,4:st_size,8:st_blksize,4:st_blocks,8:st_atime,4:st_atimensec,4:"
108 "st_mtime,4:st_mtimensec,4:st_ctime,4:st_ctimensec,4:st_ino,8";
109 static const char cb_libgloss_stat_map_32[] =
110 "st_dev,2:st_ino,2:st_mode,4:st_nlink,2:st_uid,2:st_gid,2:st_rdev,2:"
111 "st_size,4:st_atime,4:space,4:st_mtime,4:space,4:st_ctime,4:"
112 "space,4:st_blksize,4:st_blocks,4:space,8";
113 static const char *stat_map_32, *stat_map_64;
114
115 /* Simulate a monitor trap, put the result into r0 and errno into r1
116 return offset by which to adjust pc. */
117
118 void
119 bfin_syscall (SIM_CPU *cpu)
120 {
121 SIM_DESC sd = CPU_STATE (cpu);
122 const char * const *argv = (void *)STATE_PROG_ARGV (sd);
123 host_callback *cb = STATE_CALLBACK (sd);
124 bu32 args[6];
125 CB_SYSCALL sc;
126 char *p;
127 char _tbuf[1024 * 3], *tbuf = _tbuf, tstr[1024];
128 int fmt_ret_hex = 0;
129
130 CB_SYSCALL_INIT (&sc);
131
132 if (STATE_ENVIRONMENT (sd) == USER_ENVIRONMENT)
133 {
134 /* Linux syscall. */
135 sc.func = PREG (0);
136 sc.arg1 = args[0] = DREG (0);
137 sc.arg2 = args[1] = DREG (1);
138 sc.arg3 = args[2] = DREG (2);
139 sc.arg4 = args[3] = DREG (3);
140 /*sc.arg5 =*/ args[4] = DREG (4);
141 /*sc.arg6 =*/ args[5] = DREG (5);
142 }
143 else
144 {
145 /* libgloss syscall. */
146 sc.func = PREG (0);
147 sc.arg1 = args[0] = GET_LONG (DREG (0));
148 sc.arg2 = args[1] = GET_LONG (DREG (0) + 4);
149 sc.arg3 = args[2] = GET_LONG (DREG (0) + 8);
150 sc.arg4 = args[3] = GET_LONG (DREG (0) + 12);
151 /*sc.arg5 =*/ args[4] = GET_LONG (DREG (0) + 16);
152 /*sc.arg6 =*/ args[5] = GET_LONG (DREG (0) + 20);
153 }
154 sc.p1 = (PTR) sd;
155 sc.p2 = (PTR) cpu;
156 sc.read_mem = sim_syscall_read_mem;
157 sc.write_mem = sim_syscall_write_mem;
158
159 /* Common cb_syscall() handles most functions. */
160 switch (cb_target_to_host_syscall (cb, sc.func))
161 {
162 case CB_SYS_exit:
163 tbuf += sprintf (tbuf, "exit(%i)", args[0]);
164 sim_engine_halt (sd, cpu, NULL, PCREG, sim_exited, sc.arg1);
165
166 #ifdef CB_SYS_argc
167 case CB_SYS_argc:
168 tbuf += sprintf (tbuf, "argc()");
169 sc.result = countargv ((char **)argv);
170 break;
171 case CB_SYS_argnlen:
172 {
173 tbuf += sprintf (tbuf, "argnlen(%u)", args[0]);
174 if (sc.arg1 < countargv ((char **)argv))
175 sc.result = strlen (argv[sc.arg1]);
176 else
177 sc.result = -1;
178 }
179 break;
180 case CB_SYS_argn:
181 {
182 tbuf += sprintf (tbuf, "argn(%u)", args[0]);
183 if (sc.arg1 < countargv ((char **)argv))
184 {
185 const char *argn = argv[sc.arg1];
186 int len = strlen (argn);
187 int written = sc.write_mem (cb, &sc, sc.arg2, argn, len + 1);
188 if (written == len + 1)
189 sc.result = sc.arg2;
190 else
191 sc.result = -1;
192 }
193 else
194 sc.result = -1;
195 }
196 break;
197 #endif
198
199 case CB_SYS_gettimeofday:
200 {
201 struct timeval _tv, *tv = &_tv;
202 struct timezone _tz, *tz = &_tz;
203
204 tbuf += sprintf (tbuf, "gettimeofday(%#x, %#x)", args[0], args[1]);
205
206 if (sc.arg1 == 0)
207 tv = NULL;
208 if (sc.arg2 == 0)
209 tz = NULL;
210 sc.result = gettimeofday (tv, tz);
211
212 if (sc.result == 0)
213 {
214 bu32 t;
215
216 if (tv)
217 {
218 t = tv->tv_sec;
219 sc.write_mem (cb, &sc, sc.arg1, (void *)&t, 4);
220 t = tv->tv_usec;
221 sc.write_mem (cb, &sc, sc.arg1 + 4, (void *)&t, 4);
222 }
223
224 if (sc.arg2)
225 {
226 t = tz->tz_minuteswest;
227 sc.write_mem (cb, &sc, sc.arg1, (void *)&t, 4);
228 t = tz->tz_dsttime;
229 sc.write_mem (cb, &sc, sc.arg1 + 4, (void *)&t, 4);
230 }
231 }
232 else
233 goto sys_finish;
234 }
235 break;
236
237 case CB_SYS_ioctl:
238 /* XXX: hack just enough to get basic stdio w/uClibc ... */
239 tbuf += sprintf (tbuf, "ioctl(%i, %#x, %u)", args[0], args[1], args[2]);
240 if (sc.arg2 == 0x5401)
241 {
242 sc.result = !isatty (sc.arg1);
243 sc.errcode = 0;
244 }
245 else
246 {
247 sc.result = -1;
248 sc.errcode = TARGET_EINVAL;
249 }
250 break;
251
252 case CB_SYS_mmap2:
253 {
254 static bu32 heap = BFIN_DEFAULT_MEM_SIZE / 2;
255
256 fmt_ret_hex = 1;
257 tbuf += sprintf (tbuf, "mmap2(%#x, %u, %#x, %#x, %i, %u)",
258 args[0], args[1], args[2], args[3], args[4], args[5]);
259
260 sc.errcode = 0;
261
262 if (sc.arg4 & 0x20 /*MAP_ANONYMOUS*/)
263 /* XXX: We don't handle zeroing, but default is all zeros. */;
264 else if (args[4] >= MAX_CALLBACK_FDS)
265 sc.errcode = TARGET_ENOSYS;
266 else
267 {
268 #ifdef HAVE_PREAD
269 char *data = xmalloc (sc.arg2);
270
271 /* XXX: Should add a cb->pread. */
272 if (pread (cb->fdmap[args[4]], data, sc.arg2, args[5] << 12) == sc.arg2)
273 sc.write_mem (cb, &sc, heap, data, sc.arg2);
274 else
275 sc.errcode = TARGET_EINVAL;
276
277 free (data);
278 #else
279 sc.errcode = TARGET_ENOSYS;
280 #endif
281 }
282
283 if (sc.errcode)
284 {
285 sc.result = -1;
286 break;
287 }
288
289 sc.result = heap;
290 heap += sc.arg2;
291 /* Keep it page aligned. */
292 heap = ALIGN (heap, 4096);
293
294 break;
295 }
296
297 case CB_SYS_munmap:
298 /* XXX: meh, just lie for mmap(). */
299 tbuf += sprintf (tbuf, "munmap(%#x, %u)", args[0], args[1]);
300 sc.result = 0;
301 break;
302
303 case CB_SYS_dup2:
304 tbuf += sprintf (tbuf, "dup2(%i, %i)", args[0], args[1]);
305 if (sc.arg1 >= MAX_CALLBACK_FDS || sc.arg2 >= MAX_CALLBACK_FDS)
306 {
307 sc.result = -1;
308 sc.errcode = TARGET_EINVAL;
309 }
310 else
311 {
312 sc.result = dup2 (cb->fdmap[sc.arg1], cb->fdmap[sc.arg2]);
313 goto sys_finish;
314 }
315 break;
316
317 case CB_SYS__llseek:
318 tbuf += sprintf (tbuf, "llseek(%i, %u, %u, %#x, %u)",
319 args[0], args[1], args[2], args[3], args[4]);
320 sc.func = TARGET_LINUX_SYS_lseek;
321 if (sc.arg2)
322 {
323 sc.result = -1;
324 sc.errcode = TARGET_EINVAL;
325 }
326 else
327 {
328 sc.arg2 = sc.arg3;
329 sc.arg3 = args[4];
330 cb_syscall (cb, &sc);
331 if (sc.result != -1)
332 {
333 bu32 z = 0;
334 sc.write_mem (cb, &sc, args[3], (void *)&sc.result, 4);
335 sc.write_mem (cb, &sc, args[3] + 4, (void *)&z, 4);
336 }
337 }
338 break;
339
340 /* XXX: Should add a cb->pread. */
341 case CB_SYS_pread:
342 tbuf += sprintf (tbuf, "pread(%i, %#x, %u, %i)",
343 args[0], args[1], args[2], args[3]);
344 if (sc.arg1 >= MAX_CALLBACK_FDS)
345 {
346 sc.result = -1;
347 sc.errcode = TARGET_EINVAL;
348 }
349 else
350 {
351 long old_pos, read_result, read_errcode;
352
353 /* Get current filepos. */
354 sc.func = TARGET_LINUX_SYS_lseek;
355 sc.arg2 = 0;
356 sc.arg3 = SEEK_CUR;
357 cb_syscall (cb, &sc);
358 if (sc.result == -1)
359 break;
360 old_pos = sc.result;
361
362 /* Move to the new pos. */
363 sc.func = TARGET_LINUX_SYS_lseek;
364 sc.arg2 = args[3];
365 sc.arg3 = SEEK_SET;
366 cb_syscall (cb, &sc);
367 if (sc.result == -1)
368 break;
369
370 /* Read the data. */
371 sc.func = TARGET_LINUX_SYS_read;
372 sc.arg2 = args[1];
373 sc.arg3 = args[2];
374 cb_syscall (cb, &sc);
375 read_result = sc.result;
376 read_errcode = sc.errcode;
377
378 /* Move back to the old pos. */
379 sc.func = TARGET_LINUX_SYS_lseek;
380 sc.arg2 = old_pos;
381 sc.arg3 = SEEK_SET;
382 cb_syscall (cb, &sc);
383
384 sc.result = read_result;
385 sc.errcode = read_errcode;
386 }
387 break;
388
389 case CB_SYS_getcwd:
390 tbuf += sprintf (tbuf, "getcwd(%#x, %u)", args[0], args[1]);
391
392 p = alloca (sc.arg2);
393 if (getcwd (p, sc.arg2) == NULL)
394 {
395 sc.result = -1;
396 sc.errcode = TARGET_EINVAL;
397 }
398 else
399 {
400 sc.write_mem (cb, &sc, sc.arg1, p, sc.arg2);
401 sc.result = sc.arg1;
402 }
403 break;
404
405 case CB_SYS_stat64:
406 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
407 strcpy (tstr, "???");
408 tbuf += sprintf (tbuf, "stat64(%#x:\"%s\", %u)", args[0], tstr, args[1]);
409 cb->stat_map = stat_map_64;
410 sc.func = TARGET_LINUX_SYS_stat;
411 cb_syscall (cb, &sc);
412 cb->stat_map = stat_map_32;
413 break;
414 case CB_SYS_lstat64:
415 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
416 strcpy (tstr, "???");
417 tbuf += sprintf (tbuf, "lstat64(%#x:\"%s\", %u)", args[0], tstr, args[1]);
418 cb->stat_map = stat_map_64;
419 sc.func = TARGET_LINUX_SYS_lstat;
420 cb_syscall (cb, &sc);
421 cb->stat_map = stat_map_32;
422 break;
423 case CB_SYS_fstat64:
424 tbuf += sprintf (tbuf, "fstat64(%#x, %u)", args[0], args[1]);
425 cb->stat_map = stat_map_64;
426 sc.func = TARGET_LINUX_SYS_fstat;
427 cb_syscall (cb, &sc);
428 cb->stat_map = stat_map_32;
429 break;
430
431 case CB_SYS_ftruncate64:
432 tbuf += sprintf (tbuf, "ftruncate64(%u, %u)", args[0], args[1]);
433 sc.func = TARGET_LINUX_SYS_ftruncate;
434 cb_syscall (cb, &sc);
435 break;
436
437 case CB_SYS_getuid:
438 case CB_SYS_getuid32:
439 tbuf += sprintf (tbuf, "getuid()");
440 sc.result = getuid ();
441 goto sys_finish;
442 case CB_SYS_getgid:
443 case CB_SYS_getgid32:
444 tbuf += sprintf (tbuf, "getgid()");
445 sc.result = getgid ();
446 goto sys_finish;
447 case CB_SYS_setuid:
448 sc.arg1 &= 0xffff;
449 case CB_SYS_setuid32:
450 tbuf += sprintf (tbuf, "setuid(%u)", args[0]);
451 sc.result = setuid (sc.arg1);
452 goto sys_finish;
453 case CB_SYS_setgid:
454 sc.arg1 &= 0xffff;
455 case CB_SYS_setgid32:
456 tbuf += sprintf (tbuf, "setgid(%u)", args[0]);
457 sc.result = setgid (sc.arg1);
458 goto sys_finish;
459
460 case CB_SYS_getpid:
461 tbuf += sprintf (tbuf, "getpid()");
462 sc.result = getpid ();
463 goto sys_finish;
464 case CB_SYS_kill:
465 tbuf += sprintf (tbuf, "kill(%u, %i)", args[0], args[1]);
466 /* Only let the app kill itself. */
467 if (sc.arg1 != getpid ())
468 {
469 sc.result = -1;
470 sc.errcode = TARGET_EPERM;
471 }
472 else
473 {
474 #ifdef HAVE_KILL
475 sc.result = kill (sc.arg1, sc.arg2);
476 goto sys_finish;
477 #else
478 sc.result = -1;
479 sc.errcode = TARGET_ENOSYS;
480 #endif
481 }
482 break;
483
484 case CB_SYS_open:
485 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
486 strcpy (tstr, "???");
487 tbuf += sprintf (tbuf, "open(%#x:\"%s\", %#x, %o)",
488 args[0], tstr, args[1], args[2]);
489 goto case_default;
490 case CB_SYS_close:
491 tbuf += sprintf (tbuf, "close(%i)", args[0]);
492 goto case_default;
493 case CB_SYS_read:
494 tbuf += sprintf (tbuf, "read(%i, %#x, %u)", args[0], args[1], args[2]);
495 goto case_default;
496 case CB_SYS_write:
497 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[1]))
498 strcpy (tstr, "???");
499 tbuf += sprintf (tbuf, "write(%i, %#x:\"%s\", %u)",
500 args[0], args[1], tstr, args[2]);
501 goto case_default;
502 case CB_SYS_lseek:
503 tbuf += sprintf (tbuf, "lseek(%i, %i, %i)", args[0], args[1], args[2]);
504 goto case_default;
505 case CB_SYS_unlink:
506 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
507 strcpy (tstr, "???");
508 tbuf += sprintf (tbuf, "unlink(%#x:\"%s\")", args[0], tstr);
509 goto case_default;
510 case CB_SYS_truncate:
511 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
512 strcpy (tstr, "???");
513 tbuf += sprintf (tbuf, "truncate(%#x:\"%s\", %i)", args[0], tstr, args[1]);
514 goto case_default;
515 case CB_SYS_ftruncate:
516 tbuf += sprintf (tbuf, "ftruncate(%i, %i)", args[0], args[1]);
517 goto case_default;
518 case CB_SYS_rename:
519 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
520 strcpy (tstr, "???");
521 tbuf += sprintf (tbuf, "rename(%#x:\"%s\", ", args[0], tstr);
522 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[1]))
523 strcpy (tstr, "???");
524 tbuf += sprintf (tbuf, "%#x:\"%s\")", args[1], tstr);
525 goto case_default;
526 case CB_SYS_stat:
527 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
528 strcpy (tstr, "???");
529 tbuf += sprintf (tbuf, "stat(%#x:\"%s\", %#x)", args[0], tstr, args[1]);
530 goto case_default;
531 case CB_SYS_fstat:
532 tbuf += sprintf (tbuf, "fstat(%i, %#x)", args[0], args[1]);
533 goto case_default;
534 case CB_SYS_lstat:
535 if (cb_get_string (cb, &sc, tstr, sizeof (tstr), args[0]))
536 strcpy (tstr, "???");
537 tbuf += sprintf (tbuf, "lstat(%#x:\"%s\", %#x)", args[0], tstr, args[1]);
538 goto case_default;
539 case CB_SYS_pipe:
540 tbuf += sprintf (tbuf, "pipe(%#x, %#x)", args[0], args[1]);
541 goto case_default;
542
543 default:
544 tbuf += sprintf (tbuf, "???_%i(%#x, %#x, %#x, %#x, %#x, %#x)", sc.func,
545 args[0], args[1], args[2], args[3], args[4], args[5]);
546 case_default:
547 cb_syscall (cb, &sc);
548 break;
549
550 sys_finish:
551 if (sc.result == -1)
552 {
553 cb->last_errno = errno;
554 sc.errcode = cb->get_errno (cb);
555 }
556 }
557
558 TRACE_EVENTS (cpu, "syscall_%i(%#x, %#x, %#x, %#x, %#x, %#x) = %li (error = %i)",
559 sc.func, args[0], args[1], args[2], args[3], args[4], args[5],
560 sc.result, sc.errcode);
561
562 tbuf += sprintf (tbuf, " = ");
563 if (STATE_ENVIRONMENT (sd) == USER_ENVIRONMENT)
564 {
565 if (sc.result == -1)
566 {
567 tbuf += sprintf (tbuf, "-1 (error = %i)", sc.errcode);
568 if (sc.errcode == cb_host_to_target_errno (cb, ENOSYS))
569 {
570 sim_io_eprintf (sd, "bfin-sim: %#x: unimplemented syscall %i\n",
571 PCREG, sc.func);
572 }
573 SET_DREG (0, -sc.errcode);
574 }
575 else
576 {
577 if (fmt_ret_hex)
578 tbuf += sprintf (tbuf, "%#lx", sc.result);
579 else
580 tbuf += sprintf (tbuf, "%lu", sc.result);
581 SET_DREG (0, sc.result);
582 }
583 }
584 else
585 {
586 tbuf += sprintf (tbuf, "%lu (error = %i)", sc.result, sc.errcode);
587 SET_DREG (0, sc.result);
588 SET_DREG (1, sc.result2);
589 SET_DREG (2, sc.errcode);
590 }
591
592 TRACE_SYSCALL (cpu, "%s", _tbuf);
593 }
594
595 /* Execute a single instruction. */
596
597 static sim_cia
598 step_once (SIM_CPU *cpu)
599 {
600 SIM_DESC sd = CPU_STATE (cpu);
601 bu32 insn_len, oldpc = PCREG;
602 int i;
603 bool ssstep;
604
605 if (TRACE_ANY_P (cpu))
606 trace_prefix (sd, cpu, NULL_CIA, oldpc, TRACE_LINENUM_P (cpu),
607 NULL, 0, " "); /* Use a space for gcc warnings. */
608
609 TRACE_DISASM (cpu, oldpc);
610
611 /* Handle hardware single stepping when lower than EVT3, and when SYSCFG
612 has already had the SSSTEP bit enabled. */
613 ssstep = false;
614 if (STATE_ENVIRONMENT (sd) == OPERATING_ENVIRONMENT
615 && (SYSCFGREG & SYSCFG_SSSTEP))
616 {
617 int ivg = cec_get_ivg (cpu);
618 if (ivg == -1 || ivg > 3)
619 ssstep = true;
620 }
621
622 #if 0
623 /* XXX: Is this what happens on the hardware ? */
624 if (cec_get_ivg (cpu) == EVT_EMU)
625 cec_return (cpu, EVT_EMU);
626 #endif
627
628 BFIN_CPU_STATE.did_jump = false;
629
630 insn_len = interp_insn_bfin (cpu, oldpc);
631
632 /* If we executed this insn successfully, then we always decrement
633 the loop counter. We don't want to update the PC though if the
634 last insn happened to be a change in code flow (jump/etc...). */
635 if (!BFIN_CPU_STATE.did_jump)
636 SET_PCREG (hwloop_get_next_pc (cpu, oldpc, insn_len));
637 for (i = 1; i >= 0; --i)
638 if (LCREG (i) && oldpc == LBREG (i))
639 {
640 SET_LCREG (i, LCREG (i) - 1);
641 if (LCREG (i))
642 break;
643 }
644
645 ++ PROFILE_TOTAL_INSN_COUNT (CPU_PROFILE_DATA (cpu));
646
647 /* Handle hardware single stepping only if we're still lower than EVT3.
648 XXX: May not be entirely correct wrt EXCPT insns. */
649 if (ssstep)
650 {
651 int ivg = cec_get_ivg (cpu);
652 if (ivg == -1 || ivg > 3)
653 {
654 INSN_LEN = 0;
655 cec_exception (cpu, VEC_STEP);
656 }
657 }
658
659 return oldpc;
660 }
661
662 void
663 sim_engine_run (SIM_DESC sd,
664 int next_cpu_nr, /* ignore */
665 int nr_cpus, /* ignore */
666 int siggnal) /* ignore */
667 {
668 bu32 ticks;
669 SIM_CPU *cpu;
670
671 SIM_ASSERT (STATE_MAGIC (sd) == SIM_MAGIC_NUMBER);
672
673 cpu = STATE_CPU (sd, 0);
674
675 while (1)
676 {
677 step_once (cpu);
678 /* Process any events -- can't use tickn because it may
679 advance right over the next event. */
680 for (ticks = 0; ticks < CYCLE_DELAY; ++ticks)
681 if (sim_events_tick (sd))
682 sim_events_process (sd);
683 }
684 }
685
686 /* Cover function of sim_state_free to free the cpu buffers as well. */
687
688 static void
689 free_state (SIM_DESC sd)
690 {
691 if (STATE_MODULES (sd) != NULL)
692 sim_module_uninstall (sd);
693 sim_cpu_free_all (sd);
694 sim_state_free (sd);
695 }
696
697 /* Create an instance of the simulator. */
698
699 static void
700 bfin_initialize_cpu (SIM_DESC sd, SIM_CPU *cpu)
701 {
702 memset (&cpu->state, 0, sizeof (cpu->state));
703
704 PROFILE_TOTAL_INSN_COUNT (CPU_PROFILE_DATA (cpu)) = 0;
705
706 bfin_model_cpu_init (sd, cpu);
707
708 /* Set default stack to top of scratch pad. */
709 SET_SPREG (BFIN_DEFAULT_MEM_SIZE);
710 SET_KSPREG (BFIN_DEFAULT_MEM_SIZE);
711 SET_USPREG (BFIN_DEFAULT_MEM_SIZE);
712
713 /* This is what the hardware likes. */
714 SET_SYSCFGREG (0x30);
715 }
716
717 SIM_DESC
718 sim_open (SIM_OPEN_KIND kind, host_callback *callback,
719 struct bfd *abfd, char **argv)
720 {
721 char c;
722 int i;
723 SIM_DESC sd = sim_state_alloc (kind, callback);
724
725 /* The cpu data is kept in a separately allocated chunk of memory. */
726 if (sim_cpu_alloc_all (sd, 1, /*cgen_cpu_max_extra_bytes ()*/0) != SIM_RC_OK)
727 {
728 free_state (sd);
729 return 0;
730 }
731
732 {
733 /* XXX: Only first core gets profiled ? */
734 SIM_CPU *cpu = STATE_CPU (sd, 0);
735 STATE_WATCHPOINTS (sd)->pc = &PCREG;
736 STATE_WATCHPOINTS (sd)->sizeof_pc = sizeof (PCREG);
737 }
738
739 if (sim_pre_argv_init (sd, argv[0]) != SIM_RC_OK)
740 {
741 free_state (sd);
742 return 0;
743 }
744
745 /* XXX: Default to the Virtual environment. */
746 if (STATE_ENVIRONMENT (sd) == ALL_ENVIRONMENT)
747 STATE_ENVIRONMENT (sd) = VIRTUAL_ENVIRONMENT;
748
749 /* These options override any module options.
750 Obviously ambiguity should be avoided, however the caller may wish to
751 augment the meaning of an option. */
752 #define e_sim_add_option_table(sd, options) \
753 do { \
754 extern const OPTION options[]; \
755 sim_add_option_table (sd, NULL, options); \
756 } while (0)
757 e_sim_add_option_table (sd, bfin_mmu_options);
758 e_sim_add_option_table (sd, bfin_mach_options);
759
760 /* The parser will print an error message for us, so we silently return. */
761 if (sim_parse_args (sd, argv) != SIM_RC_OK)
762 {
763 free_state (sd);
764 return 0;
765 }
766
767 /* Allocate external memory if none specified by user.
768 Use address 4 here in case the user wanted address 0 unmapped. */
769 if (sim_core_read_buffer (sd, NULL, read_map, &c, 4, 1) == 0)
770 {
771 bu16 emuexcpt = 0x25;
772 sim_do_commandf (sd, "memory-size 0x%lx", BFIN_DEFAULT_MEM_SIZE);
773 sim_write (sd, 0, (void *)&emuexcpt, 2);
774 }
775
776 /* Check for/establish the a reference program image. */
777 if (sim_analyze_program (sd,
778 (STATE_PROG_ARGV (sd) != NULL
779 ? *STATE_PROG_ARGV (sd)
780 : NULL), abfd) != SIM_RC_OK)
781 {
782 free_state (sd);
783 return 0;
784 }
785
786 /* Establish any remaining configuration options. */
787 if (sim_config (sd) != SIM_RC_OK)
788 {
789 free_state (sd);
790 return 0;
791 }
792
793 if (sim_post_argv_init (sd) != SIM_RC_OK)
794 {
795 free_state (sd);
796 return 0;
797 }
798
799 /* CPU specific initialization. */
800 for (i = 0; i < MAX_NR_PROCESSORS; ++i)
801 {
802 SIM_CPU *cpu = STATE_CPU (sd, i);
803 bfin_initialize_cpu (sd, cpu);
804 }
805
806 return sd;
807 }
808
809 /* Some utils don't like having a NULL environ. */
810 static const char * const simple_env[] = { "HOME=/", "PATH=/bin", NULL };
811
812 static bu32 fdpic_load_offset;
813
814 static bool
815 bfin_fdpic_load (SIM_DESC sd, SIM_CPU *cpu, struct bfd *abfd, bu32 *sp,
816 bu32 *elf_addrs, char **ldso_path)
817 {
818 bool ret;
819 int i;
820
821 Elf_Internal_Ehdr *iehdr;
822 Elf32_External_Ehdr ehdr;
823 Elf_Internal_Phdr *phdrs;
824 unsigned char *data;
825 long phdr_size;
826 int phdrc;
827 bu32 nsegs;
828
829 bu32 max_load_addr;
830
831 unsigned char null[4] = { 0, 0, 0, 0 };
832
833 ret = false;
834 *ldso_path = NULL;
835
836 /* See if this an FDPIC ELF. */
837 phdrs = NULL;
838 if (!abfd)
839 goto skip_fdpic_init;
840 if (bfd_seek (abfd, 0, SEEK_SET) != 0)
841 goto skip_fdpic_init;
842 if (bfd_bread (&ehdr, sizeof (ehdr), abfd) != sizeof (ehdr))
843 goto skip_fdpic_init;
844 iehdr = elf_elfheader (abfd);
845 if (!(iehdr->e_flags & EF_BFIN_FDPIC))
846 goto skip_fdpic_init;
847
848 if (STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG)
849 sim_io_printf (sd, "Loading FDPIC ELF %s\n Load base: %#x\n ELF entry: %#x\n",
850 bfd_get_filename (abfd), fdpic_load_offset, elf_addrs[0]);
851
852 /* Grab the Program Headers to set up the loadsegs on the stack. */
853 phdr_size = bfd_get_elf_phdr_upper_bound (abfd);
854 if (phdr_size == -1)
855 goto skip_fdpic_init;
856 phdrs = xmalloc (phdr_size);
857 phdrc = bfd_get_elf_phdrs (abfd, phdrs);
858 if (phdrc == -1)
859 goto skip_fdpic_init;
860
861 /* Push the Ehdr onto the stack. */
862 *sp -= sizeof (ehdr);
863 elf_addrs[3] = *sp;
864 sim_write (sd, *sp, (void *)&ehdr, sizeof (ehdr));
865 if (STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG)
866 sim_io_printf (sd, " Elf_Ehdr: %#x\n", *sp);
867
868 /* Since we're relocating things ourselves, we need to relocate
869 the start address as well. */
870 elf_addrs[0] = bfd_get_start_address (abfd) + fdpic_load_offset;
871
872 /* And the Exec's Phdrs onto the stack. */
873 if (STATE_PROG_BFD (sd) == abfd)
874 {
875 elf_addrs[4] = elf_addrs[0];
876
877 phdr_size = iehdr->e_phentsize * iehdr->e_phnum;
878 if (bfd_seek (abfd, iehdr->e_phoff, SEEK_SET) != 0)
879 goto skip_fdpic_init;
880 data = xmalloc (phdr_size);
881 if (bfd_bread (data, phdr_size, abfd) != phdr_size)
882 goto skip_fdpic_init;
883 *sp -= phdr_size;
884 elf_addrs[1] = *sp;
885 elf_addrs[2] = phdrc;
886 sim_write (sd, *sp, data, phdr_size);
887 free (data);
888 if (STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG)
889 sim_io_printf (sd, " Elf_Phdrs: %#x\n", *sp);
890 }
891
892 /* Now push all the loadsegs. */
893 nsegs = 0;
894 max_load_addr = 0;
895 for (i = phdrc; i >= 0; --i)
896 if (phdrs[i].p_type == PT_LOAD)
897 {
898 Elf_Internal_Phdr *p = &phdrs[i];
899 bu32 paddr, vaddr, memsz, filesz;
900
901 paddr = p->p_paddr + fdpic_load_offset;
902 vaddr = p->p_vaddr;
903 memsz = p->p_memsz;
904 filesz = p->p_filesz;
905
906 if (STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG)
907 sim_io_printf (sd, " PHDR %i: vma %#x lma %#x filesz %#x memsz %#x\n",
908 i, vaddr, paddr, filesz, memsz);
909
910 data = xmalloc (memsz);
911 if (memsz != filesz)
912 memset (data + filesz, 0, memsz - filesz);
913
914 if (bfd_seek (abfd, p->p_offset, SEEK_SET) == 0
915 && bfd_bread (data, filesz, abfd) == filesz)
916 sim_write (sd, paddr, data, memsz);
917
918 free (data);
919
920 max_load_addr = max (paddr + memsz, max_load_addr);
921
922 *sp -= 12;
923 sim_write (sd, *sp+0, (void *)&paddr, 4); /* loadseg.addr */
924 sim_write (sd, *sp+4, (void *)&vaddr, 4); /* loadseg.p_vaddr */
925 sim_write (sd, *sp+8, (void *)&memsz, 4); /* loadseg.p_memsz */
926 ++nsegs;
927 }
928 else if (phdrs[i].p_type == PT_DYNAMIC)
929 {
930 elf_addrs[5] = phdrs[i].p_paddr + fdpic_load_offset;
931 if (STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG)
932 sim_io_printf (sd, " PT_DYNAMIC: %#x\n", elf_addrs[5]);
933 }
934 else if (phdrs[i].p_type == PT_INTERP)
935 {
936 uint32_t off = phdrs[i].p_offset;
937 uint32_t len = phdrs[i].p_filesz;
938
939 *ldso_path = xmalloc (len);
940 if (bfd_seek (abfd, off, SEEK_SET) != 0
941 || bfd_bread (*ldso_path, len, abfd) != len)
942 {
943 free (*ldso_path);
944 *ldso_path = NULL;
945 }
946 else if (STATE_OPEN_KIND (sd) == SIM_OPEN_DEBUG)
947 sim_io_printf (sd, " PT_INTERP: %s\n", *ldso_path);
948 }
949
950 /* Update the load offset with a few extra pages. */
951 fdpic_load_offset = ALIGN (max (max_load_addr, fdpic_load_offset), 0x10000);
952 fdpic_load_offset += 0x10000;
953
954 /* Push the summary loadmap info onto the stack last. */
955 *sp -= 4;
956 sim_write (sd, *sp+0, null, 2); /* loadmap.version */
957 sim_write (sd, *sp+2, (void *)&nsegs, 2); /* loadmap.nsegs */
958
959 ret = true;
960 skip_fdpic_init:
961 free (phdrs);
962
963 return ret;
964 }
965
966 static void
967 bfin_user_init (SIM_DESC sd, SIM_CPU *cpu, struct bfd *abfd,
968 const char * const *argv, const char * const *env)
969 {
970 /* XXX: Missing host -> target endian ... */
971 /* Linux starts the user app with the stack:
972 argc
973 argv[0] -- pointers to the actual strings
974 argv[1..N]
975 NULL
976 env[0]
977 env[1..N]
978 NULL
979 auxvt[0].type -- ELF Auxiliary Vector Table
980 auxvt[0].value
981 auxvt[1..N]
982 AT_NULL
983 0
984 argv[0..N][0..M] -- actual argv/env strings
985 env[0..N][0..M]
986 FDPIC loadmaps -- for FDPIC apps
987 So set things up the same way. */
988 int i, argc, envc;
989 bu32 argv_flat, env_flat;
990
991 bu32 sp, sp_flat;
992
993 /* start, at_phdr, at_phnum, at_base, at_entry, pt_dynamic */
994 bu32 elf_addrs[6];
995 bu32 auxvt;
996 bu32 exec_loadmap, ldso_loadmap;
997 char *ldso_path;
998
999 unsigned char null[4] = { 0, 0, 0, 0 };
1000
1001 host_callback *cb = STATE_CALLBACK (sd);
1002
1003 elf_addrs[0] = elf_addrs[4] = bfd_get_start_address (abfd);
1004 elf_addrs[1] = elf_addrs[2] = elf_addrs[3] = elf_addrs[5] = 0;
1005
1006 /* Keep the load addresses consistent between runs. Also make sure we make
1007 space for the fixed code region (part of the Blackfin Linux ABI). */
1008 fdpic_load_offset = 0x1000;
1009
1010 /* First try to load this as an FDPIC executable. */
1011 sp = SPREG;
1012 if (!bfin_fdpic_load (sd, cpu, STATE_PROG_BFD (sd), &sp, elf_addrs, &ldso_path))
1013 goto skip_fdpic_init;
1014 exec_loadmap = sp;
1015
1016 /* If that worked, then load the fixed code region. We only do this for
1017 FDPIC ELFs atm because they are PIEs and let us relocate them without
1018 manual fixups. FLAT files however require location processing which
1019 we do not do ourselves, and they link with a VMA of 0. */
1020 sim_write (sd, 0x400, bfin_linux_fixed_code, sizeof (bfin_linux_fixed_code));
1021
1022 /* If the FDPIC needs an interpreter, then load it up too. */
1023 if (ldso_path)
1024 {
1025 const char *ldso_full_path = concat (simulator_sysroot, ldso_path, NULL);
1026 struct bfd *ldso_bfd;
1027
1028 ldso_bfd = bfd_openr (ldso_full_path, STATE_TARGET (sd));
1029 if (!ldso_bfd)
1030 {
1031 sim_io_eprintf (sd, "bfin-sim: bfd open failed: %s\n", ldso_full_path);
1032 goto static_fdpic;
1033 }
1034 if (!bfd_check_format (ldso_bfd, bfd_object))
1035 sim_io_eprintf (sd, "bfin-sim: bfd format not valid: %s\n", ldso_full_path);
1036 bfd_set_arch_info (ldso_bfd, STATE_ARCHITECTURE (sd));
1037
1038 if (!bfin_fdpic_load (sd, cpu, ldso_bfd, &sp, elf_addrs, &ldso_path))
1039 sim_io_eprintf (sd, "bfin-sim: FDPIC ldso failed to load: %s\n", ldso_full_path);
1040 if (ldso_path)
1041 sim_io_eprintf (sd, "bfin-sim: FDPIC ldso (%s) needs an interpreter (%s) !?\n",
1042 ldso_full_path, ldso_path);
1043
1044 ldso_loadmap = sp;
1045 }
1046 else
1047 static_fdpic:
1048 ldso_loadmap = 0;
1049
1050 /* Finally setup the registers required by the FDPIC ABI. */
1051 SET_DREG (7, 0); /* Zero out FINI funcptr -- ldso will set this up. */
1052 SET_PREG (0, exec_loadmap); /* Exec loadmap addr. */
1053 SET_PREG (1, ldso_loadmap); /* Interp loadmap addr. */
1054 SET_PREG (2, elf_addrs[5]); /* PT_DYNAMIC map addr. */
1055
1056 auxvt = 1;
1057 SET_SPREG (sp);
1058 skip_fdpic_init:
1059 sim_pc_set (cpu, elf_addrs[0]);
1060
1061 /* Figure out how much storage the argv/env strings need. */
1062 argc = countargv ((char **)argv);
1063 if (argc == -1)
1064 argc = 0;
1065 argv_flat = argc; /* NUL bytes */
1066 for (i = 0; i < argc; ++i)
1067 argv_flat += strlen (argv[i]);
1068
1069 if (!env)
1070 env = simple_env;
1071 envc = countargv ((char **)env);
1072 env_flat = envc; /* NUL bytes */
1073 for (i = 0; i < envc; ++i)
1074 env_flat += strlen (env[i]);
1075
1076 /* Push the Auxiliary Vector Table between argv/env and actual strings. */
1077 sp_flat = sp = ALIGN (SPREG - argv_flat - env_flat - 4, 4);
1078 if (auxvt)
1079 {
1080 # define AT_PUSH(at, val) \
1081 auxvt_size += 8; \
1082 sp -= 4; \
1083 auxvt = (val); \
1084 sim_write (sd, sp, (void *)&auxvt, 4); \
1085 sp -= 4; \
1086 auxvt = (at); \
1087 sim_write (sd, sp, (void *)&auxvt, 4)
1088 unsigned int egid = getegid (), gid = getgid ();
1089 unsigned int euid = geteuid (), uid = getuid ();
1090 bu32 auxvt_size = 0;
1091 AT_PUSH (AT_NULL, 0);
1092 AT_PUSH (AT_SECURE, egid != gid || euid != uid);
1093 AT_PUSH (AT_EGID, egid);
1094 AT_PUSH (AT_GID, gid);
1095 AT_PUSH (AT_EUID, euid);
1096 AT_PUSH (AT_UID, uid);
1097 AT_PUSH (AT_ENTRY, elf_addrs[4]);
1098 AT_PUSH (AT_FLAGS, 0);
1099 AT_PUSH (AT_BASE, elf_addrs[3]);
1100 AT_PUSH (AT_PHNUM, elf_addrs[2]);
1101 AT_PUSH (AT_PHENT, sizeof (Elf32_External_Phdr));
1102 AT_PUSH (AT_PHDR, elf_addrs[1]);
1103 AT_PUSH (AT_CLKTCK, 100); /* XXX: This ever not 100 ? */
1104 AT_PUSH (AT_PAGESZ, 4096);
1105 AT_PUSH (AT_HWCAP, 0);
1106 #undef AT_PUSH
1107 }
1108 SET_SPREG (sp);
1109
1110 /* Push the argc/argv/env after the auxvt. */
1111 sp -= ((1 + argc + 1 + envc + 1) * 4);
1112 SET_SPREG (sp);
1113
1114 /* First push the argc value. */
1115 sim_write (sd, sp, (void *)&argc, 4);
1116 sp += 4;
1117
1118 /* Then the actual argv strings so we know where to point argv[]. */
1119 for (i = 0; i < argc; ++i)
1120 {
1121 unsigned len = strlen (argv[i]) + 1;
1122 sim_write (sd, sp_flat, (void *)argv[i], len);
1123 sim_write (sd, sp, (void *)&sp_flat, 4);
1124 sp_flat += len;
1125 sp += 4;
1126 }
1127 sim_write (sd, sp, null, 4);
1128 sp += 4;
1129
1130 /* Then the actual env strings so we know where to point env[]. */
1131 for (i = 0; i < envc; ++i)
1132 {
1133 unsigned len = strlen (env[i]) + 1;
1134 sim_write (sd, sp_flat, (void *)env[i], len);
1135 sim_write (sd, sp, (void *)&sp_flat, 4);
1136 sp_flat += len;
1137 sp += 4;
1138 }
1139
1140 /* Set some callbacks. */
1141 cb->syscall_map = cb_linux_syscall_map;
1142 cb->errno_map = cb_linux_errno_map;
1143 cb->open_map = cb_linux_open_map;
1144 cb->signal_map = cb_linux_signal_map;
1145 cb->stat_map = stat_map_32 = cb_linux_stat_map_32;
1146 stat_map_64 = cb_linux_stat_map_64;
1147 }
1148
1149 static void
1150 bfin_os_init (SIM_DESC sd, SIM_CPU *cpu, const char * const *argv)
1151 {
1152 /* Pass the command line via a string in R0 like Linux expects. */
1153 int i;
1154 bu8 byte;
1155 bu32 cmdline = BFIN_L1_SRAM_SCRATCH;
1156
1157 SET_DREG (0, cmdline);
1158 if (argv && argv[0])
1159 {
1160 i = 1;
1161 byte = ' ';
1162 while (argv[i])
1163 {
1164 bu32 len = strlen (argv[i]);
1165 sim_write (sd, cmdline, (void *)argv[i], len);
1166 cmdline += len;
1167 sim_write (sd, cmdline, &byte, 1);
1168 ++cmdline;
1169 ++i;
1170 }
1171 }
1172 byte = 0;
1173 sim_write (sd, cmdline, &byte, 1);
1174 }
1175
1176 static void
1177 bfin_virtual_init (SIM_DESC sd, SIM_CPU *cpu)
1178 {
1179 host_callback *cb = STATE_CALLBACK (sd);
1180
1181 cb->stat_map = stat_map_32 = cb_libgloss_stat_map_32;
1182 stat_map_64 = NULL;
1183 }
1184
1185 SIM_RC
1186 sim_create_inferior (SIM_DESC sd, struct bfd *abfd,
1187 char **argv, char **env)
1188 {
1189 SIM_CPU *cpu = STATE_CPU (sd, 0);
1190 SIM_ADDR addr;
1191
1192 /* Set the PC. */
1193 if (abfd != NULL)
1194 addr = bfd_get_start_address (abfd);
1195 else
1196 addr = 0;
1197 sim_pc_set (cpu, addr);
1198
1199 /* Standalone mode (i.e. `run`) will take care of the argv for us in
1200 sim_open() -> sim_parse_args(). But in debug mode (i.e. 'target sim'
1201 with `gdb`), we need to handle it because the user can change the
1202 argv on the fly via gdb's 'run'. */
1203 if (STATE_PROG_ARGV (sd) != argv)
1204 {
1205 freeargv (STATE_PROG_ARGV (sd));
1206 STATE_PROG_ARGV (sd) = dupargv (argv);
1207 }
1208
1209 switch (STATE_ENVIRONMENT (sd))
1210 {
1211 case USER_ENVIRONMENT:
1212 bfin_user_init (sd, cpu, abfd, (void *)argv, (void *)env);
1213 break;
1214 case OPERATING_ENVIRONMENT:
1215 bfin_os_init (sd, cpu, (void *)argv);
1216 break;
1217 default:
1218 bfin_virtual_init (sd, cpu);
1219 break;
1220 }
1221
1222 return SIM_RC_OK;
1223 }