fault.c revision 1.69 1 /* $NetBSD: fault.c,v 1.69 2008/08/14 09:08:42 is Exp $ */
2
3 /*
4 * Copyright 2003 Wasabi Systems, Inc.
5 * All rights reserved.
6 *
7 * Written by Steve C. Woodford for Wasabi Systems, Inc.
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. All advertising materials mentioning features or use of this software
18 * must display the following acknowledgement:
19 * This product includes software developed for the NetBSD Project by
20 * Wasabi Systems, Inc.
21 * 4. The name of Wasabi Systems, Inc. may not be used to endorse
22 * or promote products derived from this software without specific prior
23 * written permission.
24 *
25 * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
26 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
27 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
28 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL WASABI SYSTEMS, INC
29 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
30 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
31 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
32 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
33 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
34 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
35 * POSSIBILITY OF SUCH DAMAGE.
36 */
37 /*
38 * Copyright (c) 1994-1997 Mark Brinicombe.
39 * Copyright (c) 1994 Brini.
40 * All rights reserved.
41 *
42 * This code is derived from software written for Brini by Mark Brinicombe
43 *
44 * Redistribution and use in source and binary forms, with or without
45 * modification, are permitted provided that the following conditions
46 * are met:
47 * 1. Redistributions of source code must retain the above copyright
48 * notice, this list of conditions and the following disclaimer.
49 * 2. Redistributions in binary form must reproduce the above copyright
50 * notice, this list of conditions and the following disclaimer in the
51 * documentation and/or other materials provided with the distribution.
52 * 3. All advertising materials mentioning features or use of this software
53 * must display the following acknowledgement:
54 * This product includes software developed by Brini.
55 * 4. The name of the company nor the name of the author may be used to
56 * endorse or promote products derived from this software without specific
57 * prior written permission.
58 *
59 * THIS SOFTWARE IS PROVIDED BY BRINI ``AS IS'' AND ANY EXPRESS OR IMPLIED
60 * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
61 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
62 * IN NO EVENT SHALL BRINI OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
63 * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
64 * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
65 * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
66 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
67 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
68 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
69 * SUCH DAMAGE.
70 *
71 * RiscBSD kernel project
72 *
73 * fault.c
74 *
75 * Fault handlers
76 *
77 * Created : 28/11/94
78 */
79
80 #include "opt_ddb.h"
81 #include "opt_kgdb.h"
82
83 #include <sys/types.h>
84 __KERNEL_RCSID(0, "$NetBSD: fault.c,v 1.69 2008/08/14 09:08:42 is Exp $");
85
86 #include <sys/param.h>
87 #include <sys/systm.h>
88 #include <sys/proc.h>
89 #include <sys/user.h>
90 #include <sys/kernel.h>
91 #include <sys/kauth.h>
92 #include <sys/cpu.h>
93
94 #include <uvm/uvm_extern.h>
95 #include <uvm/uvm_stat.h>
96 #ifdef UVMHIST
97 #include <uvm/uvm.h>
98 #endif
99
100 #include <arm/cpuconf.h>
101
102 #include <machine/frame.h>
103 #include <arm/arm32/katelib.h>
104 #include <machine/intr.h>
105 #if defined(DDB) || defined(KGDB)
106 #include <machine/db_machdep.h>
107 #ifdef KGDB
108 #include <sys/kgdb.h>
109 #endif
110 #if !defined(DDB)
111 #define kdb_trap kgdb_trap
112 #endif
113 #endif
114
115 #include <arch/arm/arm/disassem.h>
116 #include <arm/arm32/machdep.h>
117
118 extern char fusubailout[];
119
120 #ifdef DEBUG
121 int last_fault_code; /* For the benefit of pmap_fault_fixup() */
122 #endif
123
124 #if defined(CPU_ARM3) || defined(CPU_ARM6) || \
125 defined(CPU_ARM7) || defined(CPU_ARM7TDMI)
126 /* These CPUs may need data/prefetch abort fixups */
127 #define CPU_ABORT_FIXUP_REQUIRED
128 #endif
129
130 struct data_abort {
131 int (*func)(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
132 const char *desc;
133 };
134
135 static int dab_fatal(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
136 static int dab_align(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
137 static int dab_buserr(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
138
139 static const struct data_abort data_aborts[] = {
140 {dab_fatal, "Vector Exception"},
141 {dab_align, "Alignment Fault 1"},
142 {dab_fatal, "Terminal Exception"},
143 {dab_align, "Alignment Fault 3"},
144 {dab_buserr, "External Linefetch Abort (S)"},
145 {NULL, "Translation Fault (S)"},
146 {dab_buserr, "External Linefetch Abort (P)"},
147 {NULL, "Translation Fault (P)"},
148 {dab_buserr, "External Non-Linefetch Abort (S)"},
149 {NULL, "Domain Fault (S)"},
150 {dab_buserr, "External Non-Linefetch Abort (P)"},
151 {NULL, "Domain Fault (P)"},
152 {dab_buserr, "External Translation Abort (L1)"},
153 {NULL, "Permission Fault (S)"},
154 {dab_buserr, "External Translation Abort (L2)"},
155 {NULL, "Permission Fault (P)"}
156 };
157
158 /* Determine if a fault came from user mode */
159 #define TRAP_USERMODE(tf) ((tf->tf_spsr & PSR_MODE) == PSR_USR32_MODE)
160
161 /* Determine if 'x' is a permission fault */
162 #define IS_PERMISSION_FAULT(x) \
163 (((1 << ((x) & FAULT_TYPE_MASK)) & \
164 ((1 << FAULT_PERM_P) | (1 << FAULT_PERM_S))) != 0)
165
166 #if 0
167 /* maybe one day we'll do emulations */
168 #define TRAPSIGNAL(l,k) (*(l)->l_proc->p_emul->e_trapsignal)((l), (k))
169 #else
170 #define TRAPSIGNAL(l,k) trapsignal((l), (k))
171 #endif
172
173 static inline void
174 call_trapsignal(struct lwp *l, ksiginfo_t *ksi)
175 {
176
177 TRAPSIGNAL(l, ksi);
178 }
179
180 static inline int
181 data_abort_fixup(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l)
182 {
183 #ifdef CPU_ABORT_FIXUP_REQUIRED
184 int error;
185
186 /* Call the CPU specific data abort fixup routine */
187 error = cpu_dataabt_fixup(tf);
188 if (__predict_true(error != ABORT_FIXUP_FAILED))
189 return (error);
190
191 /*
192 * Oops, couldn't fix up the instruction
193 */
194 printf("data_abort_fixup: fixup for %s mode data abort failed.\n",
195 TRAP_USERMODE(tf) ? "user" : "kernel");
196 #ifdef THUMB_CODE
197 if (tf->tf_spsr & PSR_T_bit) {
198 printf("pc = 0x%08x, opcode 0x%04x, 0x%04x, insn = ",
199 tf->tf_pc, *((u_int16 *)(tf->tf_pc & ~1)),
200 *((u_int16 *)((tf->tf_pc + 2) & ~1)));
201 }
202 else
203 #endif
204 {
205 printf("pc = 0x%08x, opcode 0x%08x, insn = ", tf->tf_pc,
206 *((u_int *)tf->tf_pc));
207 }
208 disassemble(tf->tf_pc);
209
210 /* Die now if this happened in kernel mode */
211 if (!TRAP_USERMODE(tf))
212 dab_fatal(tf, fsr, far, l, NULL);
213
214 return (error);
215 #else
216 return (ABORT_FIXUP_OK);
217 #endif /* CPU_ABORT_FIXUP_REQUIRED */
218 }
219
220 void
221 data_abort_handler(trapframe_t *tf)
222 {
223 struct vm_map *map;
224 struct pcb *pcb;
225 struct lwp *l;
226 u_int user, far, fsr;
227 vm_prot_t ftype;
228 void *onfault;
229 vaddr_t va;
230 int error;
231 ksiginfo_t ksi;
232
233 UVMHIST_FUNC("data_abort_handler");
234
235 /* Grab FAR/FSR before enabling interrupts */
236 far = cpu_faultaddress();
237 fsr = cpu_faultstatus();
238
239 UVMHIST_CALLED(maphist);
240 /* Update vmmeter statistics */
241 uvmexp.traps++;
242
243 /* Re-enable interrupts if they were enabled previously */
244 if (__predict_true((tf->tf_spsr & I32_bit) == 0))
245 enable_interrupts(I32_bit);
246
247 /* Get the current lwp structure */
248 KASSERT(curlwp != NULL);
249 l = curlwp;
250
251 UVMHIST_LOG(maphist, " (pc=0x%x, l=0x%x, far=0x%x, fsr=0x%x)",
252 tf->tf_pc, l, far, fsr);
253
254 /* Data abort came from user mode? */
255 if ((user = TRAP_USERMODE(tf)) != 0)
256 LWP_CACHE_CREDS(l, l->l_proc);
257
258 /* Grab the current pcb */
259 pcb = &l->l_addr->u_pcb;
260
261 /* Invoke the appropriate handler, if necessary */
262 if (__predict_false(data_aborts[fsr & FAULT_TYPE_MASK].func != NULL)) {
263 if ((data_aborts[fsr & FAULT_TYPE_MASK].func)(tf, fsr, far,
264 l, &ksi))
265 goto do_trapsignal;
266 goto out;
267 }
268
269 /*
270 * At this point, we're dealing with one of the following data aborts:
271 *
272 * FAULT_TRANS_S - Translation -- Section
273 * FAULT_TRANS_P - Translation -- Page
274 * FAULT_DOMAIN_S - Domain -- Section
275 * FAULT_DOMAIN_P - Domain -- Page
276 * FAULT_PERM_S - Permission -- Section
277 * FAULT_PERM_P - Permission -- Page
278 *
279 * These are the main virtual memory-related faults signalled by
280 * the MMU.
281 */
282
283 /* fusubailout is used by [fs]uswintr to avoid page faulting */
284 if (__predict_false(pcb->pcb_onfault == fusubailout)) {
285 tf->tf_r0 = EFAULT;
286 tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
287 return;
288 }
289
290 if (user)
291 l->l_addr->u_pcb.pcb_tf = tf;
292
293 /*
294 * Make sure the Program Counter is sane. We could fall foul of
295 * someone executing Thumb code, in which case the PC might not
296 * be word-aligned. This would cause a kernel alignment fault
297 * further down if we have to decode the current instruction.
298 */
299 #ifdef THUMB_CODE
300 /*
301 * XXX: It would be nice to be able to support Thumb in the kernel
302 * at some point.
303 */
304 if (__predict_false(!user && (tf->tf_pc & 3) != 0)) {
305 printf("\ndata_abort_fault: Misaligned Kernel-mode "
306 "Program Counter\n");
307 dab_fatal(tf, fsr, far, l, NULL);
308 }
309 #else
310 if (__predict_false((tf->tf_pc & 3) != 0)) {
311 if (user) {
312 /*
313 * Give the user an illegal instruction signal.
314 */
315 /* Deliver a SIGILL to the process */
316 KSI_INIT_TRAP(&ksi);
317 ksi.ksi_signo = SIGILL;
318 ksi.ksi_code = ILL_ILLOPC;
319 ksi.ksi_addr = (u_int32_t *)(intptr_t) far;
320 ksi.ksi_trap = fsr;
321 goto do_trapsignal;
322 }
323
324 /*
325 * The kernel never executes Thumb code.
326 */
327 printf("\ndata_abort_fault: Misaligned Kernel-mode "
328 "Program Counter\n");
329 dab_fatal(tf, fsr, far, l, NULL);
330 }
331 #endif
332
333 /* See if the CPU state needs to be fixed up */
334 switch (data_abort_fixup(tf, fsr, far, l)) {
335 case ABORT_FIXUP_RETURN:
336 return;
337 case ABORT_FIXUP_FAILED:
338 /* Deliver a SIGILL to the process */
339 KSI_INIT_TRAP(&ksi);
340 ksi.ksi_signo = SIGILL;
341 ksi.ksi_code = ILL_ILLOPC;
342 ksi.ksi_addr = (u_int32_t *)(intptr_t) far;
343 ksi.ksi_trap = fsr;
344 goto do_trapsignal;
345 default:
346 break;
347 }
348
349 va = trunc_page((vaddr_t)far);
350
351 /*
352 * It is only a kernel address space fault iff:
353 * 1. user == 0 and
354 * 2. pcb_onfault not set or
355 * 3. pcb_onfault set and not LDRT/LDRBT/STRT/STRBT instruction.
356 */
357 if (user == 0 && (va >= VM_MIN_KERNEL_ADDRESS ||
358 (va < VM_MIN_ADDRESS && vector_page == ARM_VECTORS_LOW)) &&
359 __predict_true((pcb->pcb_onfault == NULL ||
360 (ReadWord(tf->tf_pc) & 0x05200000) != 0x04200000))) {
361 map = kernel_map;
362
363 /* Was the fault due to the FPE/IPKDB ? */
364 if (__predict_false((tf->tf_spsr & PSR_MODE)==PSR_UND32_MODE)) {
365 KSI_INIT_TRAP(&ksi);
366 ksi.ksi_signo = SIGSEGV;
367 ksi.ksi_code = SEGV_ACCERR;
368 ksi.ksi_addr = (u_int32_t *)(intptr_t) far;
369 ksi.ksi_trap = fsr;
370
371 /*
372 * Force exit via userret()
373 * This is necessary as the FPE is an extension to
374 * userland that actually runs in a priveledged mode
375 * but uses USR mode permissions for its accesses.
376 */
377 user = 1;
378 goto do_trapsignal;
379 }
380 } else
381 map = &l->l_proc->p_vmspace->vm_map;
382
383 /*
384 * We need to know whether the page should be mapped
385 * as R or R/W. The MMU does not give us the info as
386 * to whether the fault was caused by a read or a write.
387 *
388 * However, we know that a permission fault can only be
389 * the result of a write to a read-only location, so
390 * we can deal with those quickly.
391 *
392 * Otherwise we need to disassemble the instruction
393 * responsible to determine if it was a write.
394 */
395 if (IS_PERMISSION_FAULT(fsr))
396 ftype = VM_PROT_WRITE;
397 else {
398 #ifdef THUMB_CODE
399 /* Fast track the ARM case. */
400 if (__predict_false(tf->tf_spsr & PSR_T_bit)) {
401 u_int insn = fusword((void *)(tf->tf_pc & ~1));
402 u_int insn_f8 = insn & 0xf800;
403 u_int insn_fe = insn & 0xfe00;
404
405 if (insn_f8 == 0x6000 || /* STR(1) */
406 insn_f8 == 0x7000 || /* STRB(1) */
407 insn_f8 == 0x8000 || /* STRH(1) */
408 insn_f8 == 0x9000 || /* STR(3) */
409 insn_f8 == 0xc000 || /* STM */
410 insn_fe == 0x5000 || /* STR(2) */
411 insn_fe == 0x5200 || /* STRH(2) */
412 insn_fe == 0x5400) /* STRB(2) */
413 ftype = VM_PROT_WRITE;
414 else
415 ftype = VM_PROT_READ;
416 }
417 else
418 #endif
419 {
420 u_int insn = ReadWord(tf->tf_pc);
421
422 if (((insn & 0x0c100000) == 0x04000000) || /* STR[B] */
423 ((insn & 0x0e1000b0) == 0x000000b0) || /* STR[HD]*/
424 ((insn & 0x0a100000) == 0x08000000)) /* STM/CDT*/
425 ftype = VM_PROT_WRITE;
426 else if ((insn & 0x0fb00ff0) == 0x01000090)/* SWP */
427 ftype = VM_PROT_READ | VM_PROT_WRITE;
428 else
429 ftype = VM_PROT_READ;
430 }
431 }
432
433 /*
434 * See if the fault is as a result of ref/mod emulation,
435 * or domain mismatch.
436 */
437 #ifdef DEBUG
438 last_fault_code = fsr;
439 #endif
440 if (pmap_fault_fixup(map->pmap, va, ftype, user)) {
441 UVMHIST_LOG(maphist, " <- ref/mod emul", 0, 0, 0, 0);
442 goto out;
443 }
444
445 if (__predict_false(curcpu()->ci_intr_depth > 0)) {
446 if (pcb->pcb_onfault) {
447 tf->tf_r0 = EINVAL;
448 tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
449 return;
450 }
451 printf("\nNon-emulated page fault with intr_depth > 0\n");
452 dab_fatal(tf, fsr, far, l, NULL);
453 }
454
455 onfault = pcb->pcb_onfault;
456 pcb->pcb_onfault = NULL;
457 error = uvm_fault(map, va, ftype);
458 pcb->pcb_onfault = onfault;
459
460 if (__predict_true(error == 0)) {
461 if (user)
462 uvm_grow(l->l_proc, va); /* Record any stack growth */
463 UVMHIST_LOG(maphist, " <- uvm", 0, 0, 0, 0);
464 goto out;
465 }
466
467 if (user == 0) {
468 if (pcb->pcb_onfault) {
469 tf->tf_r0 = error;
470 tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
471 return;
472 }
473
474 printf("\nuvm_fault(%p, %lx, %x) -> %x\n", map, va, ftype,
475 error);
476 dab_fatal(tf, fsr, far, l, NULL);
477 }
478
479 KSI_INIT_TRAP(&ksi);
480
481 if (error == ENOMEM) {
482 printf("UVM: pid %d (%s), uid %d killed: "
483 "out of swap\n", l->l_proc->p_pid, l->l_proc->p_comm,
484 l->l_cred ? kauth_cred_geteuid(l->l_cred) : -1);
485 ksi.ksi_signo = SIGKILL;
486 } else
487 ksi.ksi_signo = SIGSEGV;
488
489 ksi.ksi_code = (error == EACCES) ? SEGV_ACCERR : SEGV_MAPERR;
490 ksi.ksi_addr = (u_int32_t *)(intptr_t) far;
491 ksi.ksi_trap = fsr;
492 UVMHIST_LOG(maphist, " <- error (%d)", error, 0, 0, 0);
493
494 do_trapsignal:
495 call_trapsignal(l, &ksi);
496 out:
497 /* If returning to user mode, make sure to invoke userret() */
498 if (user)
499 userret(l);
500 }
501
502 /*
503 * dab_fatal() handles the following data aborts:
504 *
505 * FAULT_WRTBUF_0 - Vector Exception
506 * FAULT_WRTBUF_1 - Terminal Exception
507 *
508 * We should never see these on a properly functioning system.
509 *
510 * This function is also called by the other handlers if they
511 * detect a fatal problem.
512 *
513 * Note: If 'l' is NULL, we assume we're dealing with a prefetch abort.
514 */
515 static int
516 dab_fatal(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l, ksiginfo_t *ksi)
517 {
518 const char *mode;
519
520 mode = TRAP_USERMODE(tf) ? "user" : "kernel";
521
522 if (l != NULL) {
523 printf("Fatal %s mode data abort: '%s'\n", mode,
524 data_aborts[fsr & FAULT_TYPE_MASK].desc);
525 printf("trapframe: %p\nFSR=%08x, FAR=", tf, fsr);
526 if ((fsr & FAULT_IMPRECISE) == 0)
527 printf("%08x, ", far);
528 else
529 printf("Invalid, ");
530 printf("spsr=%08x\n", tf->tf_spsr);
531 } else {
532 printf("Fatal %s mode prefetch abort at 0x%08x\n",
533 mode, tf->tf_pc);
534 printf("trapframe: %p, spsr=%08x\n", tf, tf->tf_spsr);
535 }
536
537 printf("r0 =%08x, r1 =%08x, r2 =%08x, r3 =%08x\n",
538 tf->tf_r0, tf->tf_r1, tf->tf_r2, tf->tf_r3);
539 printf("r4 =%08x, r5 =%08x, r6 =%08x, r7 =%08x\n",
540 tf->tf_r4, tf->tf_r5, tf->tf_r6, tf->tf_r7);
541 printf("r8 =%08x, r9 =%08x, r10=%08x, r11=%08x\n",
542 tf->tf_r8, tf->tf_r9, tf->tf_r10, tf->tf_r11);
543 printf("r12=%08x, ", tf->tf_r12);
544
545 if (TRAP_USERMODE(tf))
546 printf("usp=%08x, ulr=%08x",
547 tf->tf_usr_sp, tf->tf_usr_lr);
548 else
549 printf("ssp=%08x, slr=%08x",
550 tf->tf_svc_sp, tf->tf_svc_lr);
551 printf(", pc =%08x\n\n", tf->tf_pc);
552
553 #if defined(DDB) || defined(KGDB)
554 kdb_trap(T_FAULT, tf);
555 #endif
556 panic("Fatal abort");
557 /*NOTREACHED*/
558 }
559
560 /*
561 * dab_align() handles the following data aborts:
562 *
563 * FAULT_ALIGN_0 - Alignment fault
564 * FAULT_ALIGN_0 - Alignment fault
565 *
566 * These faults are fatal if they happen in kernel mode. Otherwise, we
567 * deliver a bus error to the process.
568 */
569 static int
570 dab_align(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l, ksiginfo_t *ksi)
571 {
572
573 /* Alignment faults are always fatal if they occur in kernel mode */
574 if (!TRAP_USERMODE(tf))
575 dab_fatal(tf, fsr, far, l, NULL);
576
577 /* pcb_onfault *must* be NULL at this point */
578 KDASSERT(l->l_addr->u_pcb.pcb_onfault == NULL);
579
580 /* See if the CPU state needs to be fixed up */
581 (void) data_abort_fixup(tf, fsr, far, l);
582
583 /* Deliver a bus error signal to the process */
584 KSI_INIT_TRAP(ksi);
585 ksi->ksi_signo = SIGBUS;
586 ksi->ksi_code = BUS_ADRALN;
587 ksi->ksi_addr = (u_int32_t *)(intptr_t)far;
588 ksi->ksi_trap = fsr;
589
590 l->l_addr->u_pcb.pcb_tf = tf;
591
592 return (1);
593 }
594
595 /*
596 * dab_buserr() handles the following data aborts:
597 *
598 * FAULT_BUSERR_0 - External Abort on Linefetch -- Section
599 * FAULT_BUSERR_1 - External Abort on Linefetch -- Page
600 * FAULT_BUSERR_2 - External Abort on Non-linefetch -- Section
601 * FAULT_BUSERR_3 - External Abort on Non-linefetch -- Page
602 * FAULT_BUSTRNL1 - External abort on Translation -- Level 1
603 * FAULT_BUSTRNL2 - External abort on Translation -- Level 2
604 *
605 * If pcb_onfault is set, flag the fault and return to the handler.
606 * If the fault occurred in user mode, give the process a SIGBUS.
607 *
608 * Note: On XScale, FAULT_BUSERR_0, FAULT_BUSERR_1, and FAULT_BUSERR_2
609 * can be flagged as imprecise in the FSR. This causes a real headache
610 * since some of the machine state is lost. In this case, tf->tf_pc
611 * may not actually point to the offending instruction. In fact, if
612 * we've taken a double abort fault, it generally points somewhere near
613 * the top of "data_abort_entry" in exception.S.
614 *
615 * In all other cases, these data aborts are considered fatal.
616 */
617 static int
618 dab_buserr(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l,
619 ksiginfo_t *ksi)
620 {
621 struct pcb *pcb = &l->l_addr->u_pcb;
622
623 #ifdef __XSCALE__
624 if ((fsr & FAULT_IMPRECISE) != 0 &&
625 (tf->tf_spsr & PSR_MODE) == PSR_ABT32_MODE) {
626 /*
627 * Oops, an imprecise, double abort fault. We've lost the
628 * r14_abt/spsr_abt values corresponding to the original
629 * abort, and the spsr saved in the trapframe indicates
630 * ABT mode.
631 */
632 tf->tf_spsr &= ~PSR_MODE;
633
634 /*
635 * We use a simple heuristic to determine if the double abort
636 * happened as a result of a kernel or user mode access.
637 * If the current trapframe is at the top of the kernel stack,
638 * the fault _must_ have come from user mode.
639 */
640 if (tf != ((trapframe_t *)pcb->pcb_un.un_32.pcb32_sp) - 1) {
641 /*
642 * Kernel mode. We're either about to die a
643 * spectacular death, or pcb_onfault will come
644 * to our rescue. Either way, the current value
645 * of tf->tf_pc is irrelevant.
646 */
647 tf->tf_spsr |= PSR_SVC32_MODE;
648 if (pcb->pcb_onfault == NULL)
649 printf("\nKernel mode double abort!\n");
650 } else {
651 /*
652 * User mode. We've lost the program counter at the
653 * time of the fault (not that it was accurate anyway;
654 * it's not called an imprecise fault for nothing).
655 * About all we can do is copy r14_usr to tf_pc and
656 * hope for the best. The process is about to get a
657 * SIGBUS, so it's probably history anyway.
658 */
659 tf->tf_spsr |= PSR_USR32_MODE;
660 tf->tf_pc = tf->tf_usr_lr;
661 #ifdef THUMB_CODE
662 tf->tf_spsr &= ~PSR_T_bit;
663 if (tf->tf_usr_lr & 1)
664 tf->tf_spsr |= PSR_T_bit;
665 #endif
666 }
667 }
668
669 /* FAR is invalid for imprecise exceptions */
670 if ((fsr & FAULT_IMPRECISE) != 0)
671 far = 0;
672 #endif /* __XSCALE__ */
673
674 if (pcb->pcb_onfault) {
675 KDASSERT(TRAP_USERMODE(tf) == 0);
676 tf->tf_r0 = EFAULT;
677 tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
678 return (0);
679 }
680
681 /* See if the CPU state needs to be fixed up */
682 (void) data_abort_fixup(tf, fsr, far, l);
683
684 /*
685 * At this point, if the fault happened in kernel mode, we're toast
686 */
687 if (!TRAP_USERMODE(tf))
688 dab_fatal(tf, fsr, far, l, NULL);
689
690 /* Deliver a bus error signal to the process */
691 KSI_INIT_TRAP(ksi);
692 ksi->ksi_signo = SIGBUS;
693 ksi->ksi_code = BUS_ADRERR;
694 ksi->ksi_addr = (u_int32_t *)(intptr_t)far;
695 ksi->ksi_trap = fsr;
696
697 l->l_addr->u_pcb.pcb_tf = tf;
698
699 return (1);
700 }
701
702 static inline int
703 prefetch_abort_fixup(trapframe_t *tf)
704 {
705 #ifdef CPU_ABORT_FIXUP_REQUIRED
706 int error;
707
708 /* Call the CPU specific prefetch abort fixup routine */
709 error = cpu_prefetchabt_fixup(tf);
710 if (__predict_true(error != ABORT_FIXUP_FAILED))
711 return (error);
712
713 /*
714 * Oops, couldn't fix up the instruction
715 */
716 printf(
717 "prefetch_abort_fixup: fixup for %s mode prefetch abort failed.\n",
718 TRAP_USERMODE(tf) ? "user" : "kernel");
719 #ifdef THUMB_CODE
720 if (tf->tf_spsr & PSR_T_bit) {
721 printf("pc = 0x%08x, opcode 0x%04x, 0x%04x, insn = ",
722 tf->tf_pc, *((u_int16 *)(tf->tf_pc & ~1),
723 *((u_int16 *)((tf->tf_pc + 2) & ~1));
724 }
725 else
726 #endif
727 {
728 printf("pc = 0x%08x, opcode 0x%08x, insn = ", tf->tf_pc,
729 *((u_int *)tf->tf_pc));
730 }
731 disassemble(tf->tf_pc);
732
733 /* Die now if this happened in kernel mode */
734 if (!TRAP_USERMODE(tf))
735 dab_fatal(tf, 0, tf->tf_pc, NULL, NULL);
736
737 return (error);
738 #else
739 return (ABORT_FIXUP_OK);
740 #endif /* CPU_ABORT_FIXUP_REQUIRED */
741 }
742
743 /*
744 * void prefetch_abort_handler(trapframe_t *tf)
745 *
746 * Abort handler called when instruction execution occurs at
747 * a non existent or restricted (access permissions) memory page.
748 * If the address is invalid and we were in SVC mode then panic as
749 * the kernel should never prefetch abort.
750 * If the address is invalid and the page is mapped then the user process
751 * does no have read permission so send it a signal.
752 * Otherwise fault the page in and try again.
753 */
754 void
755 prefetch_abort_handler(trapframe_t *tf)
756 {
757 struct lwp *l;
758 struct vm_map *map;
759 vaddr_t fault_pc, va;
760 ksiginfo_t ksi;
761 int error, user;
762
763 UVMHIST_FUNC("prefetch_abort_handler"); UVMHIST_CALLED(maphist);
764
765 /* Update vmmeter statistics */
766 uvmexp.traps++;
767
768 l = curlwp;
769
770 if ((user = TRAP_USERMODE(tf)) != 0)
771 LWP_CACHE_CREDS(l, l->l_proc);
772
773 /*
774 * Enable IRQ's (disabled by the abort) This always comes
775 * from user mode so we know interrupts were not disabled.
776 * But we check anyway.
777 */
778 if (__predict_true((tf->tf_spsr & I32_bit) == 0))
779 enable_interrupts(I32_bit);
780
781 /* See if the CPU state needs to be fixed up */
782 switch (prefetch_abort_fixup(tf)) {
783 case ABORT_FIXUP_RETURN:
784 return;
785 case ABORT_FIXUP_FAILED:
786 /* Deliver a SIGILL to the process */
787 KSI_INIT_TRAP(&ksi);
788 ksi.ksi_signo = SIGILL;
789 ksi.ksi_code = ILL_ILLOPC;
790 ksi.ksi_addr = (u_int32_t *)(intptr_t) tf->tf_pc;
791 l->l_addr->u_pcb.pcb_tf = tf;
792 goto do_trapsignal;
793 default:
794 break;
795 }
796
797 /* Prefetch aborts cannot happen in kernel mode */
798 if (__predict_false(!user))
799 dab_fatal(tf, 0, tf->tf_pc, NULL, NULL);
800
801 /* Get fault address */
802 fault_pc = tf->tf_pc;
803 l = curlwp;
804 l->l_addr->u_pcb.pcb_tf = tf;
805 UVMHIST_LOG(maphist, " (pc=0x%x, l=0x%x, tf=0x%x)", fault_pc, l, tf,
806 0);
807
808 /* Ok validate the address, can only execute in USER space */
809 if (__predict_false(fault_pc >= VM_MAXUSER_ADDRESS ||
810 (fault_pc < VM_MIN_ADDRESS && vector_page == ARM_VECTORS_LOW))) {
811 KSI_INIT_TRAP(&ksi);
812 ksi.ksi_signo = SIGSEGV;
813 ksi.ksi_code = SEGV_ACCERR;
814 ksi.ksi_addr = (u_int32_t *)(intptr_t) fault_pc;
815 ksi.ksi_trap = fault_pc;
816 goto do_trapsignal;
817 }
818
819 map = &l->l_proc->p_vmspace->vm_map;
820 va = trunc_page(fault_pc);
821
822 /*
823 * See if the pmap can handle this fault on its own...
824 */
825 #ifdef DEBUG
826 last_fault_code = -1;
827 #endif
828 if (pmap_fault_fixup(map->pmap, va, VM_PROT_READ, 1)) {
829 UVMHIST_LOG (maphist, " <- emulated", 0, 0, 0, 0);
830 goto out;
831 }
832
833 #ifdef DIAGNOSTIC
834 if (__predict_false(l->l_cpu->ci_intr_depth > 0)) {
835 printf("\nNon-emulated prefetch abort with intr_depth > 0\n");
836 dab_fatal(tf, 0, tf->tf_pc, NULL, NULL);
837 }
838 #endif
839 error = uvm_fault(map, va, VM_PROT_READ);
840
841 if (__predict_true(error == 0)) {
842 UVMHIST_LOG (maphist, " <- uvm", 0, 0, 0, 0);
843 goto out;
844 }
845 KSI_INIT_TRAP(&ksi);
846
847 UVMHIST_LOG (maphist, " <- fatal (%d)", error, 0, 0, 0);
848 if (error == ENOMEM) {
849 printf("UVM: pid %d (%s), uid %d killed: "
850 "out of swap\n", l->l_proc->p_pid, l->l_proc->p_comm,
851 l->l_cred ? kauth_cred_geteuid(l->l_cred) : -1);
852 ksi.ksi_signo = SIGKILL;
853 } else
854 ksi.ksi_signo = SIGSEGV;
855
856 ksi.ksi_code = SEGV_MAPERR;
857 ksi.ksi_addr = (u_int32_t *)(intptr_t) fault_pc;
858 ksi.ksi_trap = fault_pc;
859
860 do_trapsignal:
861 call_trapsignal(l, &ksi);
862
863 out:
864 userret(l);
865 }
866
867 /*
868 * Tentatively read an 8, 16, or 32-bit value from 'addr'.
869 * If the read succeeds, the value is written to 'rptr' and zero is returned.
870 * Else, return EFAULT.
871 */
872 int
873 badaddr_read(void *addr, size_t size, void *rptr)
874 {
875 extern int badaddr_read_1(const uint8_t *, uint8_t *);
876 extern int badaddr_read_2(const uint16_t *, uint16_t *);
877 extern int badaddr_read_4(const uint32_t *, uint32_t *);
878 union {
879 uint8_t v1;
880 uint16_t v2;
881 uint32_t v4;
882 } u;
883 struct pcb *curpcb_save;
884 int rv, s;
885
886 cpu_drain_writebuf();
887
888 /*
889 * We might be called at interrupt time, so arrange to steal
890 * lwp0's PCB temporarily, if required, so that pcb_onfault
891 * handling works correctly.
892 */
893 s = splhigh();
894 if ((curpcb_save = curpcb) == NULL)
895 curpcb = &lwp0.l_addr->u_pcb;
896
897 /* Read from the test address. */
898 switch (size) {
899 case sizeof(uint8_t):
900 rv = badaddr_read_1(addr, &u.v1);
901 if (rv == 0 && rptr)
902 *(uint8_t *) rptr = u.v1;
903 break;
904
905 case sizeof(uint16_t):
906 rv = badaddr_read_2(addr, &u.v2);
907 if (rv == 0 && rptr)
908 *(uint16_t *) rptr = u.v2;
909 break;
910
911 case sizeof(uint32_t):
912 rv = badaddr_read_4(addr, &u.v4);
913 if (rv == 0 && rptr)
914 *(uint32_t *) rptr = u.v4;
915 break;
916
917 default:
918 curpcb = curpcb_save;
919 panic("badaddr: invalid size (%lu)", (u_long) size);
920 }
921
922 /* Restore curpcb */
923 curpcb = curpcb_save;
924 splx(s);
925
926 /* Return EFAULT if the address was invalid, else zero */
927 return (rv);
928 }
929