fault.c revision 1.5 1 1.5 thorpej /* $NetBSD: fault.c,v 1.5 2001/11/22 18:34:33 thorpej Exp $ */
2 1.1 chris
3 1.1 chris /*
4 1.1 chris * Copyright (c) 1994-1997 Mark Brinicombe.
5 1.1 chris * Copyright (c) 1994 Brini.
6 1.1 chris * All rights reserved.
7 1.1 chris *
8 1.1 chris * This code is derived from software written for Brini by Mark Brinicombe
9 1.1 chris *
10 1.1 chris * Redistribution and use in source and binary forms, with or without
11 1.1 chris * modification, are permitted provided that the following conditions
12 1.1 chris * are met:
13 1.1 chris * 1. Redistributions of source code must retain the above copyright
14 1.1 chris * notice, this list of conditions and the following disclaimer.
15 1.1 chris * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 chris * notice, this list of conditions and the following disclaimer in the
17 1.1 chris * documentation and/or other materials provided with the distribution.
18 1.1 chris * 3. All advertising materials mentioning features or use of this software
19 1.1 chris * must display the following acknowledgement:
20 1.1 chris * This product includes software developed by Brini.
21 1.1 chris * 4. The name of the company nor the name of the author may be used to
22 1.1 chris * endorse or promote products derived from this software without specific
23 1.1 chris * prior written permission.
24 1.1 chris *
25 1.1 chris * THIS SOFTWARE IS PROVIDED BY BRINI ``AS IS'' AND ANY EXPRESS OR IMPLIED
26 1.1 chris * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
27 1.1 chris * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
28 1.1 chris * IN NO EVENT SHALL BRINI OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
29 1.1 chris * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
30 1.1 chris * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
31 1.1 chris * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
32 1.1 chris * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
33 1.1 chris * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
34 1.1 chris * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
35 1.1 chris * SUCH DAMAGE.
36 1.1 chris *
37 1.1 chris * RiscBSD kernel project
38 1.1 chris *
39 1.1 chris * fault.c
40 1.1 chris *
41 1.1 chris * Fault handlers
42 1.1 chris *
43 1.1 chris * Created : 28/11/94
44 1.1 chris */
45 1.1 chris
46 1.1 chris #include "opt_ddb.h"
47 1.1 chris #include "opt_pmap_debug.h"
48 1.1 chris
49 1.1 chris #include <sys/types.h>
50 1.1 chris #include <sys/param.h>
51 1.1 chris #include <sys/systm.h>
52 1.1 chris #include <sys/proc.h>
53 1.1 chris #include <sys/user.h>
54 1.1 chris #include <sys/kernel.h>
55 1.1 chris
56 1.1 chris #include <uvm/uvm_extern.h>
57 1.1 chris
58 1.1 chris #include <machine/frame.h>
59 1.5 thorpej #include <arm/arm32/katelib.h>
60 1.1 chris #include <machine/cpu.h>
61 1.1 chris #include <machine/pte.h>
62 1.2 matt #include <machine/intr.h>
63 1.1 chris #ifdef DDB
64 1.1 chris #include <machine/db_machdep.h>
65 1.1 chris #endif
66 1.1 chris
67 1.1 chris #include <arch/arm/arm/disassem.h>
68 1.1 chris
69 1.1 chris int cowfault __P((vaddr_t));
70 1.1 chris int fetchuserword __P((u_int address, u_int *location));
71 1.1 chris extern char fusubailout[];
72 1.1 chris
73 1.1 chris /* Abort code */
74 1.1 chris
75 1.1 chris /* Define text descriptions of the different aborts */
76 1.1 chris
77 1.1 chris static const char *aborts[16] = {
78 1.1 chris "Write buffer fault",
79 1.1 chris "Alignment fault",
80 1.1 chris "Write buffer fault",
81 1.1 chris "Alignment fault",
82 1.1 chris "Bus error (LF section)",
83 1.1 chris "Translation fault (section)",
84 1.1 chris "Bus error (page)",
85 1.1 chris "Translation fault (page)",
86 1.1 chris "Bus error (section)",
87 1.1 chris "Domain error (section)",
88 1.1 chris "Bus error (page)",
89 1.1 chris "Domain error (page)",
90 1.1 chris "Bus error trans (L1)",
91 1.1 chris "Permission error (section)",
92 1.1 chris "Bus error trans (L2)",
93 1.1 chris "Permission error (page)"
94 1.1 chris };
95 1.1 chris
96 1.1 chris void
97 1.1 chris report_abort(prefix, fault_status, fault_address, fault_pc)
98 1.1 chris const char *prefix;
99 1.1 chris u_int fault_status;
100 1.1 chris u_int fault_address;
101 1.1 chris u_int fault_pc;
102 1.1 chris {
103 1.1 chris #ifndef DEBUG
104 1.1 chris if (prefix == NULL) {
105 1.1 chris #endif
106 1.1 chris if (prefix)
107 1.1 chris printf("%s ", prefix);
108 1.1 chris printf("Data abort: '%s' status=%03x address=%08x PC=%08x\n",
109 1.1 chris aborts[fault_status & FAULT_TYPE_MASK],
110 1.1 chris fault_status & 0xfff, fault_address, fault_pc);
111 1.1 chris #ifndef DEBUG
112 1.1 chris }
113 1.1 chris #endif
114 1.1 chris }
115 1.1 chris
116 1.3 thorpej static __volatile int data_abort_expected;
117 1.3 thorpej static __volatile int data_abort_received;
118 1.3 thorpej
119 1.3 thorpej int
120 1.3 thorpej badaddr_read(void *addr, size_t size, void *rptr)
121 1.3 thorpej {
122 1.3 thorpej u_long rcpt;
123 1.3 thorpej int rv;
124 1.3 thorpej
125 1.3 thorpej /* Tell the Data Abort handler that we're expecting one. */
126 1.3 thorpej data_abort_received = 0;
127 1.3 thorpej data_abort_expected = 1;
128 1.3 thorpej
129 1.3 thorpej cpu_drain_writebuf();
130 1.3 thorpej
131 1.3 thorpej /* Read from the test address. */
132 1.3 thorpej switch (size) {
133 1.3 thorpej case sizeof(uint8_t):
134 1.3 thorpej __asm __volatile("ldrb %0, [%1]"
135 1.3 thorpej : "=r" (rcpt)
136 1.3 thorpej : "r" (addr));
137 1.3 thorpej break;
138 1.3 thorpej
139 1.3 thorpej case sizeof(uint16_t):
140 1.3 thorpej __asm __volatile("ldrh %0, [%1]"
141 1.3 thorpej : "=r" (rcpt)
142 1.3 thorpej : "r" (addr));
143 1.3 thorpej break;
144 1.3 thorpej
145 1.3 thorpej case sizeof(uint32_t):
146 1.3 thorpej __asm __volatile("ldr %0, [%1]"
147 1.3 thorpej : "=r" (rcpt)
148 1.3 thorpej : "r" (addr));
149 1.3 thorpej break;
150 1.3 thorpej
151 1.3 thorpej default:
152 1.3 thorpej data_abort_expected = 0;
153 1.3 thorpej panic("badaddr: invalid size (%lu)\n", (u_long) size);
154 1.3 thorpej }
155 1.3 thorpej
156 1.3 thorpej /* Disallow further Data Aborts. */
157 1.3 thorpej data_abort_expected = 0;
158 1.3 thorpej
159 1.3 thorpej rv = data_abort_received;
160 1.3 thorpej data_abort_received = 0;
161 1.3 thorpej
162 1.3 thorpej /* Copy the data back if no fault occurred. */
163 1.3 thorpej if (rptr != NULL && rv == 0) {
164 1.3 thorpej switch (size) {
165 1.3 thorpej case sizeof(uint8_t):
166 1.3 thorpej *(uint8_t *) rptr = rcpt;
167 1.3 thorpej break;
168 1.3 thorpej
169 1.3 thorpej case sizeof(uint16_t):
170 1.3 thorpej *(uint16_t *) rptr = rcpt;
171 1.3 thorpej break;
172 1.3 thorpej
173 1.3 thorpej case sizeof(uint32_t):
174 1.3 thorpej *(uint32_t *) rptr = rcpt;
175 1.3 thorpej break;
176 1.3 thorpej }
177 1.3 thorpej }
178 1.3 thorpej
179 1.3 thorpej /* Return true if the address was invalid. */
180 1.3 thorpej return (rv);
181 1.3 thorpej }
182 1.3 thorpej
183 1.1 chris /*
184 1.1 chris * void data_abort_handler(trapframe_t *frame)
185 1.1 chris *
186 1.1 chris * Abort handler called when read/write occurs at an address of
187 1.1 chris * a non existent or restricted (access permissions) memory page.
188 1.1 chris * We first need to identify the type of page fault.
189 1.1 chris */
190 1.1 chris
191 1.1 chris #define TRAP_CODE ((fault_status & 0x0f) | (fault_address & 0xfffffff0))
192 1.1 chris
193 1.1 chris void
194 1.1 chris data_abort_handler(frame)
195 1.1 chris trapframe_t *frame;
196 1.1 chris {
197 1.1 chris struct proc *p;
198 1.1 chris struct pcb *pcb;
199 1.1 chris u_int fault_address;
200 1.1 chris u_int fault_status;
201 1.1 chris u_int fault_pc;
202 1.1 chris u_int fault_instruction;
203 1.1 chris int fault_code;
204 1.1 chris int user;
205 1.1 chris int error;
206 1.1 chris void *onfault;
207 1.3 thorpej
208 1.3 thorpej /*
209 1.3 thorpej * If we were expecting a Data Abort, signal that we got
210 1.3 thorpej * one, adjust the PC to skip the faulting insn, and
211 1.3 thorpej * return.
212 1.3 thorpej */
213 1.3 thorpej if (data_abort_expected) {
214 1.3 thorpej data_abort_received = 1;
215 1.3 thorpej frame->tf_pc += INSN_SIZE;
216 1.3 thorpej return;
217 1.3 thorpej }
218 1.1 chris
219 1.1 chris /*
220 1.1 chris * Must get fault address and status from the CPU before
221 1.1 chris * re-enabling interrupts. (Interrupt handlers may take
222 1.1 chris * R/M emulation faults.)
223 1.1 chris */
224 1.1 chris fault_address = cpu_faultaddress();
225 1.1 chris fault_status = cpu_faultstatus();
226 1.1 chris fault_pc = frame->tf_pc;
227 1.1 chris
228 1.1 chris /*
229 1.1 chris * Enable IRQ's (disabled by CPU on abort) if trapframe
230 1.1 chris * shows they were enabled.
231 1.1 chris */
232 1.1 chris if (!(frame->tf_spsr & I32_bit))
233 1.1 chris enable_interrupts(I32_bit);
234 1.1 chris
235 1.1 chris #ifdef DEBUG
236 1.1 chris if ((GetCPSR() & PSR_MODE) != PSR_SVC32_MODE)
237 1.1 chris panic("data_abort_handler: not in SVC32 mode");
238 1.1 chris #endif
239 1.1 chris
240 1.1 chris /* Update vmmeter statistics */
241 1.1 chris uvmexp.traps++;
242 1.1 chris
243 1.1 chris /* Extract the fault code from the fault status */
244 1.1 chris fault_code = fault_status & FAULT_TYPE_MASK;
245 1.1 chris
246 1.1 chris /* Get the current proc structure or proc0 if there is none */
247 1.1 chris if ((p = curproc) == NULL)
248 1.1 chris p = &proc0;
249 1.1 chris
250 1.1 chris /*
251 1.1 chris * can't use curpcb, as it might be NULL; and we have p in
252 1.1 chris * a register anyway
253 1.1 chris */
254 1.1 chris pcb = &p->p_addr->u_pcb;
255 1.1 chris
256 1.1 chris /* fusubailout is used by [fs]uswintr to avoid page faulting */
257 1.1 chris if (pcb->pcb_onfault
258 1.1 chris && ((fault_code != FAULT_TRANS_S && fault_code != FAULT_TRANS_P &&
259 1.1 chris fault_code != FAULT_PERM_S && fault_code != FAULT_PERM_P)
260 1.1 chris || pcb->pcb_onfault == fusubailout)) {
261 1.1 chris
262 1.1 chris copyfault:
263 1.1 chris #ifdef DEBUG
264 1.1 chris printf("Using pcb_onfault=%p addr=%08x st=%08x p=%p\n",
265 1.1 chris pcb->pcb_onfault, fault_address, fault_status, p);
266 1.1 chris #endif
267 1.1 chris frame->tf_pc = (u_int)pcb->pcb_onfault;
268 1.1 chris if ((frame->tf_spsr & PSR_MODE) == PSR_USR32_MODE)
269 1.1 chris panic("Yikes pcb_onfault=%p during USR mode fault\n",
270 1.1 chris pcb->pcb_onfault);
271 1.1 chris return;
272 1.1 chris }
273 1.1 chris
274 1.1 chris /* More debug stuff */
275 1.1 chris
276 1.1 chris fault_instruction = ReadWord(fault_pc);
277 1.1 chris
278 1.1 chris #ifdef PMAP_DEBUG
279 1.1 chris if (pmap_debug_level >= 0) {
280 1.1 chris report_abort(NULL, fault_status, fault_address, fault_pc);
281 1.1 chris printf("Instruction @V%08x = %08x\n",
282 1.1 chris fault_pc, fault_instruction);
283 1.1 chris }
284 1.1 chris #endif
285 1.1 chris
286 1.1 chris /* Call the cpu specific abort fixup routine */
287 1.1 chris error = cpu_dataabt_fixup(frame);
288 1.1 chris if (error == ABORT_FIXUP_RETURN)
289 1.1 chris return;
290 1.1 chris if (error == ABORT_FIXUP_FAILED) {
291 1.1 chris printf("pc = 0x%08x, insn = ", fault_pc);
292 1.1 chris disassemble(fault_pc);
293 1.1 chris panic("data abort fixup failed\n");
294 1.1 chris }
295 1.1 chris
296 1.1 chris #ifdef PMAP_DEBUG
297 1.1 chris if (pmap_debug_level >= 0)
298 1.1 chris printf("fault in process %p\n", p);
299 1.1 chris #endif
300 1.1 chris
301 1.1 chris #ifdef DEBUG
302 1.1 chris /* Is this needed ? */
303 1.1 chris if (pcb != curpcb) {
304 1.1 chris printf("data_abort: Alert ! pcb(%p) != curpcb(%p)\n",
305 1.1 chris pcb, curpcb);
306 1.1 chris printf("data_abort: Alert ! proc(%p), curproc(%p)\n",
307 1.1 chris p, curproc);
308 1.1 chris }
309 1.1 chris #endif /* DEBUG */
310 1.1 chris
311 1.1 chris /* Were we in user mode when the abort occurred ? */
312 1.1 chris if ((frame->tf_spsr & PSR_MODE) == PSR_USR32_MODE) {
313 1.1 chris /*
314 1.1 chris * Note that the fault was from USR mode.
315 1.1 chris */
316 1.1 chris user = 1;
317 1.1 chris p->p_addr->u_pcb.pcb_tf = frame;
318 1.1 chris } else
319 1.1 chris user = 0;
320 1.1 chris
321 1.1 chris /* Now act on the fault type */
322 1.1 chris switch (fault_code) {
323 1.1 chris case FAULT_WRTBUF_0: /* Write Buffer Fault */
324 1.1 chris case FAULT_WRTBUF_1: /* Write Buffer Fault */
325 1.1 chris /* If this happens forget it no point in continuing */
326 1.1 chris
327 1.1 chris /* FALLTHROUGH */
328 1.1 chris
329 1.1 chris case FAULT_ALIGN_0: /* Alignment Fault */
330 1.1 chris case FAULT_ALIGN_1: /* Alignment Fault */
331 1.1 chris /*
332 1.1 chris * Really this should just kill the process.
333 1.1 chris * Alignment faults are turned off in the kernel
334 1.1 chris * in order to get better performance from shorts with
335 1.1 chris * GCC so an alignment fault means somebody has played
336 1.1 chris * with the control register in the CPU. Might as well
337 1.1 chris * panic as the kernel was not compiled for aligned accesses.
338 1.1 chris */
339 1.1 chris
340 1.1 chris /* FALLTHROUGH */
341 1.1 chris
342 1.1 chris case FAULT_BUSERR_0: /* Bus Error LF Section */
343 1.1 chris case FAULT_BUSERR_1: /* Bus Error Page */
344 1.1 chris case FAULT_BUSERR_2: /* Bus Error Section */
345 1.1 chris case FAULT_BUSERR_3: /* Bus Error Page */
346 1.1 chris /* What will accutally cause a bus error ? */
347 1.1 chris /* Real bus errors are not a process problem but hardware */
348 1.1 chris
349 1.1 chris /* FALLTHROUGH */
350 1.1 chris
351 1.1 chris case FAULT_DOMAIN_S: /* Section Domain Error Fault */
352 1.1 chris case FAULT_DOMAIN_P: /* Page Domain Error Fault*/
353 1.1 chris /*
354 1.1 chris * Right well we dont use domains, everything is
355 1.1 chris * always a client and thus subject to access permissions.
356 1.1 chris * If we get a domain error then we have corrupts PTE's
357 1.1 chris * so we might as well die !
358 1.1 chris * I suppose eventually this should just kill the process
359 1.1 chris * who owns the PTE's but if this happens it implies a
360 1.1 chris * kernel problem.
361 1.1 chris */
362 1.1 chris
363 1.1 chris /* FALLTHROUGH */
364 1.1 chris
365 1.1 chris case FAULT_BUSTRNL1: /* Bus Error Trans L1 Fault */
366 1.1 chris case FAULT_BUSTRNL2: /* Bus Error Trans L2 Fault */
367 1.1 chris /*
368 1.1 chris * These faults imply that the PTE is corrupt.
369 1.1 chris * Likely to be a kernel fault so we had better stop.
370 1.1 chris */
371 1.1 chris
372 1.1 chris /* FALLTHROUGH */
373 1.1 chris
374 1.1 chris default :
375 1.1 chris /* Are there any combinations I have missed ? */
376 1.1 chris report_abort(NULL, fault_status, fault_address, fault_pc);
377 1.1 chris
378 1.1 chris we_re_toast:
379 1.1 chris /*
380 1.1 chris * Were are dead, try and provide some debug
381 1.1 chris * information before dying.
382 1.1 chris */
383 1.1 chris #ifdef DDB
384 1.1 chris printf("Unhandled trap (frame = %p)\n", frame);
385 1.1 chris report_abort(NULL, fault_status, fault_address, fault_pc);
386 1.1 chris kdb_trap(-1, frame);
387 1.1 chris return;
388 1.1 chris #else
389 1.1 chris panic("Unhandled trap (frame = %p)", frame);
390 1.1 chris #endif /* DDB */
391 1.1 chris
392 1.1 chris case FAULT_TRANS_P: /* Page Translation Fault */
393 1.1 chris case FAULT_PERM_P: /* Page Permission Fault */
394 1.1 chris case FAULT_TRANS_S: /* Section Translation Fault */
395 1.1 chris case FAULT_PERM_S: /* Section Permission Fault */
396 1.1 chris /*
397 1.1 chris * Page/section translation/permission fault -- need to fault in
398 1.1 chris * the page and possibly the page table page.
399 1.1 chris */
400 1.1 chris {
401 1.1 chris register vaddr_t va;
402 1.1 chris register struct vmspace *vm = p->p_vmspace;
403 1.1 chris register struct vm_map *map;
404 1.1 chris int rv;
405 1.1 chris vm_prot_t ftype;
406 1.1 chris extern struct vm_map *kernel_map;
407 1.1 chris
408 1.1 chris va = trunc_page((vaddr_t)fault_address);
409 1.1 chris
410 1.1 chris #ifdef PMAP_DEBUG
411 1.1 chris if (pmap_debug_level >= 0)
412 1.1 chris printf("page fault: addr=V%08lx ", va);
413 1.1 chris #endif
414 1.1 chris
415 1.1 chris /*
416 1.1 chris * It is only a kernel address space fault iff:
417 1.1 chris * 1. user == 0 and
418 1.1 chris * 2. pcb_onfault not set or
419 1.1 chris * 3. pcb_onfault set but supervisor space fault
420 1.1 chris * The last can occur during an exec() copyin where the
421 1.1 chris * argument space is lazy-allocated.
422 1.1 chris */
423 1.1 chris if (!user &&
424 1.1 chris (va >= VM_MIN_KERNEL_ADDRESS || va < VM_MIN_ADDRESS)) {
425 1.1 chris /* Was the fault due to the FPE/IPKDB ? */
426 1.1 chris if ((frame->tf_spsr & PSR_MODE) == PSR_UND32_MODE) {
427 1.1 chris report_abort("UND32", fault_status,
428 1.1 chris fault_address, fault_pc);
429 1.1 chris trapsignal(p, SIGSEGV, TRAP_CODE);
430 1.1 chris
431 1.1 chris /*
432 1.1 chris * Force exit via userret()
433 1.1 chris * This is necessary as the FPE is an extension
434 1.1 chris * to userland that actually runs in a
435 1.1 chris * priveledged mode but uses USR mode
436 1.1 chris * permissions for its accesses.
437 1.1 chris */
438 1.1 chris userret(p);
439 1.1 chris return;
440 1.1 chris }
441 1.1 chris map = kernel_map;
442 1.1 chris } else
443 1.1 chris map = &vm->vm_map;
444 1.1 chris
445 1.1 chris #ifdef PMAP_DEBUG
446 1.1 chris if (pmap_debug_level >= 0)
447 1.1 chris printf("vmmap=%p ", map);
448 1.1 chris #endif
449 1.1 chris
450 1.1 chris if (map == NULL)
451 1.1 chris panic("No map for fault address\n");
452 1.1 chris
453 1.1 chris /*
454 1.1 chris * We need to know whether the page should be mapped
455 1.1 chris * as R or R/W. The MMU does not give us the info as
456 1.1 chris * to whether the fault was caused by a read or a write.
457 1.1 chris * This means we need to disassemble the instruction
458 1.1 chris * responsible and determine if it was a read or write
459 1.1 chris * instruction.
460 1.1 chris */
461 1.1 chris /* STR instruction ? */
462 1.1 chris if ((fault_instruction & 0x0c100000) == 0x04000000)
463 1.1 chris ftype = VM_PROT_READ | VM_PROT_WRITE;
464 1.1 chris /* STM or CDT instruction ? */
465 1.1 chris else if ((fault_instruction & 0x0a100000) == 0x08000000)
466 1.1 chris ftype = VM_PROT_READ | VM_PROT_WRITE;
467 1.1 chris /* STRH, STRSH or STRSB instruction ? */
468 1.1 chris else if ((fault_instruction & 0x0e100090) == 0x00000090)
469 1.1 chris ftype = VM_PROT_READ | VM_PROT_WRITE;
470 1.1 chris /* SWP instruction ? */
471 1.1 chris else if ((fault_instruction & 0x0fb00ff0) == 0x01000090)
472 1.1 chris ftype = VM_PROT_READ | VM_PROT_WRITE;
473 1.1 chris else
474 1.1 chris ftype = VM_PROT_READ;
475 1.1 chris
476 1.1 chris #ifdef PMAP_DEBUG
477 1.1 chris if (pmap_debug_level >= 0)
478 1.1 chris printf("fault protection = %d\n", ftype);
479 1.1 chris #endif
480 1.1 chris
481 1.1 chris if ((ftype & VM_PROT_WRITE) ?
482 1.1 chris pmap_modified_emulation(map->pmap, va) :
483 1.1 chris pmap_handled_emulation(map->pmap, va))
484 1.1 chris goto out;
485 1.1 chris
486 1.1 chris if (current_intr_depth > 0) {
487 1.1 chris #ifdef DDB
488 1.1 chris printf("Non-emulated page fault with intr_depth > 0\n");
489 1.1 chris report_abort(NULL, fault_status, fault_address, fault_pc);
490 1.1 chris kdb_trap(-1, frame);
491 1.1 chris return;
492 1.1 chris #else
493 1.1 chris panic("Fault with intr_depth > 0");
494 1.1 chris #endif /* DDB */
495 1.1 chris }
496 1.1 chris
497 1.1 chris onfault = pcb->pcb_onfault;
498 1.1 chris pcb->pcb_onfault = NULL;
499 1.1 chris rv = uvm_fault(map, va, 0, ftype);
500 1.1 chris pcb->pcb_onfault = onfault;
501 1.1 chris if (rv == 0)
502 1.1 chris goto out;
503 1.1 chris
504 1.1 chris if (user == 0) {
505 1.1 chris if (pcb->pcb_onfault)
506 1.1 chris goto copyfault;
507 1.1 chris printf("[u]vm_fault(%p, %lx, %x, 0) -> %x\n",
508 1.1 chris map, va, ftype, rv);
509 1.1 chris goto we_re_toast;
510 1.1 chris }
511 1.1 chris
512 1.1 chris report_abort("", fault_status, fault_address, fault_pc);
513 1.1 chris if (rv == ENOMEM) {
514 1.1 chris printf("UVM: pid %d (%s), uid %d killed: "
515 1.1 chris "out of swap\n", p->p_pid, p->p_comm,
516 1.1 chris p->p_cred && p->p_ucred ?
517 1.1 chris p->p_ucred->cr_uid : -1);
518 1.1 chris trapsignal(p, SIGKILL, TRAP_CODE);
519 1.1 chris } else
520 1.1 chris trapsignal(p, SIGSEGV, TRAP_CODE);
521 1.1 chris break;
522 1.1 chris }
523 1.1 chris }
524 1.1 chris
525 1.1 chris out:
526 1.1 chris /* Call userret() if it was a USR mode fault */
527 1.1 chris if (user)
528 1.1 chris userret(p);
529 1.1 chris }
530 1.1 chris
531 1.1 chris
532 1.1 chris /*
533 1.1 chris * void prefetch_abort_handler(trapframe_t *frame)
534 1.1 chris *
535 1.1 chris * Abort handler called when instruction execution occurs at
536 1.1 chris * a non existent or restricted (access permissions) memory page.
537 1.1 chris * If the address is invalid and we were in SVC mode then panic as
538 1.1 chris * the kernel should never prefetch abort.
539 1.1 chris * If the address is invalid and the page is mapped then the user process
540 1.1 chris * does no have read permission so send it a signal.
541 1.1 chris * Otherwise fault the page in and try again.
542 1.1 chris */
543 1.1 chris
544 1.1 chris extern int kernel_debug;
545 1.1 chris
546 1.1 chris void
547 1.1 chris prefetch_abort_handler(frame)
548 1.1 chris trapframe_t *frame;
549 1.1 chris {
550 1.1 chris register u_int fault_pc;
551 1.1 chris register struct proc *p;
552 1.1 chris register struct pcb *pcb;
553 1.1 chris u_int fault_instruction;
554 1.1 chris pt_entry_t *pte;
555 1.1 chris int error;
556 1.1 chris
557 1.1 chris /*
558 1.1 chris * Enable IRQ's (disabled by the abort) This always comes
559 1.1 chris * from user mode so we know interrupts were not disabled.
560 1.1 chris * But we check anyway.
561 1.1 chris */
562 1.1 chris if (!(frame->tf_spsr & I32_bit))
563 1.1 chris enable_interrupts(I32_bit);
564 1.1 chris
565 1.1 chris #ifdef DEBUG
566 1.1 chris if ((GetCPSR() & PSR_MODE) != PSR_SVC32_MODE)
567 1.1 chris panic("prefetch_abort_handler: not in SVC32 mode");
568 1.1 chris #endif
569 1.1 chris
570 1.1 chris /* Update vmmeter statistics */
571 1.1 chris uvmexp.traps++;
572 1.1 chris
573 1.1 chris /* Call the cpu specific abort fixup routine */
574 1.1 chris error = cpu_prefetchabt_fixup(frame);
575 1.1 chris if (error == ABORT_FIXUP_RETURN)
576 1.1 chris return;
577 1.1 chris if (error == ABORT_FIXUP_FAILED)
578 1.1 chris panic("prefetch abort fixup failed\n");
579 1.1 chris
580 1.1 chris /* Get the current proc structure or proc0 if there is none */
581 1.1 chris if ((p = curproc) == 0) {
582 1.1 chris p = &proc0;
583 1.1 chris #ifdef DEBUG
584 1.1 chris printf("Prefetch abort with curproc == 0\n");
585 1.1 chris #endif
586 1.1 chris }
587 1.1 chris
588 1.1 chris #ifdef PMAP_DEBUG
589 1.1 chris if (pmap_debug_level >= 0)
590 1.1 chris printf("prefetch fault in process %p %s\n", p, p->p_comm);
591 1.1 chris #endif
592 1.1 chris /*
593 1.1 chris * can't use curpcb, as it might be NULL; and we have p in a
594 1.1 chris * register anyway
595 1.1 chris */
596 1.1 chris pcb = &p->p_addr->u_pcb;
597 1.1 chris if (pcb == 0)
598 1.1 chris panic("prefetch_abort_handler: no pcb ... we're toast !\n");
599 1.1 chris
600 1.1 chris #ifdef DEBUG
601 1.1 chris if (pcb != curpcb) {
602 1.1 chris printf("data_abort: Alert ! pcb(%p) != curpcb(%p)\n",
603 1.1 chris pcb, curpcb);
604 1.1 chris printf("data_abort: Alert ! proc(%p), curproc(%p)\n",
605 1.1 chris p, curproc);
606 1.1 chris }
607 1.1 chris #endif /* DEBUG */
608 1.1 chris
609 1.4 thorpej /* Get fault address */
610 1.4 thorpej fault_pc = frame->tf_pc;
611 1.4 thorpej
612 1.1 chris /* Was the prefectch abort from USR32 mode ? */
613 1.1 chris if ((frame->tf_spsr & PSR_MODE) == PSR_USR32_MODE) {
614 1.1 chris p->p_addr->u_pcb.pcb_tf = frame;
615 1.1 chris } else {
616 1.1 chris /*
617 1.1 chris * All the kernel code pages are loaded at boot time
618 1.1 chris * and do not get paged
619 1.1 chris */
620 1.4 thorpej panic("Prefetch abort in non-USR mode (frame=%p PC=0x%08x)\n",
621 1.4 thorpej frame, fault_pc);
622 1.1 chris }
623 1.1 chris
624 1.1 chris #ifdef PMAP_DEBUG
625 1.1 chris if (pmap_debug_level >= 0)
626 1.1 chris printf("prefetch_abort: PC = %08x\n", fault_pc);
627 1.1 chris #endif
628 1.1 chris /* Ok validate the address, can only execute in USER space */
629 1.1 chris if (fault_pc < VM_MIN_ADDRESS || fault_pc >= VM_MAXUSER_ADDRESS) {
630 1.1 chris #ifdef DEBUG
631 1.1 chris printf("prefetch: pc (%08x) not in user process space\n",
632 1.1 chris fault_pc);
633 1.1 chris #endif
634 1.1 chris trapsignal(p, SIGSEGV, fault_pc);
635 1.1 chris userret(p);
636 1.1 chris return;
637 1.1 chris }
638 1.1 chris
639 1.1 chris /* Is the page already mapped ? */
640 1.1 chris /* This is debugging for rev K SA110 silicon */
641 1.1 chris pte = pmap_pte(p->p_vmspace->vm_map.pmap, (vaddr_t)fault_pc);
642 1.1 chris if (pte && *pte != 0) {
643 1.1 chris if (kernel_debug & 1) {
644 1.1 chris printf("prefetch_abort: page is already mapped - pte=%p *pte=%08x\n",
645 1.1 chris pte, *pte);
646 1.1 chris printf("prefetch_abort: pc=%08x proc=%p process=%s\n", fault_pc, p, p->p_comm);
647 1.1 chris printf("prefetch_abort: far=%08x fs=%x\n", cpu_faultaddress(), cpu_faultstatus());
648 1.1 chris printf("prefetch_abort: trapframe=%08x\n", (u_int)frame);
649 1.1 chris }
650 1.1 chris #ifdef DDB
651 1.1 chris if (kernel_debug & 2)
652 1.1 chris Debugger();
653 1.1 chris #endif
654 1.1 chris }
655 1.1 chris
656 1.1 chris /* Ok read the fault address. This will fault the page in for us */
657 1.1 chris if (fetchuserword(fault_pc, &fault_instruction) != 0) {
658 1.1 chris #ifdef DEBUG
659 1.1 chris printf("prefetch: faultin failed for address %08x\n",
660 1.1 chris fault_pc);
661 1.1 chris #endif
662 1.1 chris trapsignal(p, SIGSEGV, fault_pc);
663 1.1 chris } else {
664 1.1 chris
665 1.1 chris #ifdef DIAGNOSTIC
666 1.1 chris /* More debug stuff */
667 1.1 chris
668 1.1 chris #ifdef PMAP_DEBUG
669 1.1 chris if (pmap_debug_level >= 0) {
670 1.1 chris printf("Instruction @V%08x = %08x\n", fault_pc,
671 1.1 chris fault_instruction);
672 1.1 chris disassemble(fault_pc);
673 1.1 chris printf("return addr=%08x", frame->tf_pc);
674 1.1 chris pte = pmap_pte(p->p_vmspace->vm_map.pmap,
675 1.1 chris (vaddr_t)fault_pc);
676 1.1 chris if (pte)
677 1.1 chris printf(" pte=%p *pte=%08x\n", pte, *pte);
678 1.1 chris else
679 1.1 chris printf("\n");
680 1.1 chris
681 1.1 chris }
682 1.1 chris #endif /* PMAP_DEBUG */
683 1.1 chris #endif /* DIAGNOSTIC */
684 1.1 chris }
685 1.1 chris
686 1.1 chris userret(p);
687 1.1 chris }
688 1.1 chris
689 1.1 chris int
690 1.1 chris cowfault(va)
691 1.1 chris vaddr_t va;
692 1.1 chris {
693 1.1 chris struct vmspace *vm;
694 1.1 chris int error;
695 1.1 chris
696 1.1 chris if (va >= VM_MAXUSER_ADDRESS)
697 1.1 chris return (EFAULT);
698 1.1 chris
699 1.1 chris /* uvm_fault can't be called from within an interrupt */
700 1.1 chris KASSERT(current_intr_depth == 0);
701 1.1 chris
702 1.1 chris vm = curproc->p_vmspace;
703 1.1 chris error = uvm_fault(&vm->vm_map, va, 0, VM_PROT_READ | VM_PROT_WRITE);
704 1.1 chris return error;
705 1.1 chris }
706 1.1 chris
707 1.1 chris /* End of fault.c */
708