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1 /*
2 * Copyright (c) 2000-2010 Apple Computer, Inc. All rights reserved.
3 *
4 * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
5 *
6 * This file contains Original Code and/or Modifications of Original Code
7 * as defined in and that are subject to the Apple Public Source License
8 * Version 2.0 (the 'License'). You may not use this file except in
9 * compliance with the License. The rights granted to you under the License
10 * may not be used to create, or enable the creation or redistribution of,
11 * unlawful or unlicensed copies of an Apple operating system, or to
12 * circumvent, violate, or enable the circumvention or violation of, any
13 * terms of an Apple operating system software license agreement.
14 *
15 * Please obtain a copy of the License at
16 * http://www.opensource.apple.com/apsl/ and read it before using this file.
17 *
18 * The Original Code and all software distributed under the License are
19 * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
20 * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
21 * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
22 * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
23 * Please see the License for the specific language governing rights and
24 * limitations under the License.
25 *
26 * @APPLE_OSREFERENCE_LICENSE_HEADER_END@
27 */
28 /*
29 * @OSF_COPYRIGHT@
30 */
31 /*
32 * Mach Operating System
33 * Copyright (c) 1991,1990,1989, 1988 Carnegie Mellon University
34 * All Rights Reserved.
35 *
36 * Permission to use, copy, modify and distribute this software and its
37 * documentation is hereby granted, provided that both the copyright
38 * notice and this permission notice appear in all copies of the
39 * software, derivative works or modified versions, and any portions
40 * thereof, and that both notices appear in supporting documentation.
41 *
42 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
43 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND FOR
44 * ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
45 *
46 * Carnegie Mellon requests users of this software to return to
47 *
48 * Software Distribution Coordinator or Software.Distribution@CS.CMU.EDU
49 * School of Computer Science
50 * Carnegie Mellon University
51 * Pittsburgh PA 15213-3890
52 *
53 * any improvements or extensions that they make and grant Carnegie Mellon
54 * the rights to redistribute these changes.
55 */
56
57 /*
58 */
59
60 /*
61 * File: model_dep.c
62 * Author: Avadis Tevanian, Jr., Michael Wayne Young
63 *
64 * Copyright (C) 1986, Avadis Tevanian, Jr., Michael Wayne Young
65 *
66 * Basic initialization for I386 - ISA bus machines.
67 */
68
69 #include <platforms.h>
70
71 #include <mach/i386/vm_param.h>
72
73 #include <string.h>
74 #include <mach/vm_param.h>
75 #include <mach/vm_prot.h>
76 #include <mach/machine.h>
77 #include <mach/time_value.h>
78 #include <kern/spl.h>
79 #include <kern/assert.h>
80 #include <kern/debug.h>
81 #include <kern/misc_protos.h>
82 #include <kern/startup.h>
83 #include <kern/clock.h>
84 #include <kern/cpu_data.h>
85 #include <kern/machine.h>
86 #include <i386/postcode.h>
87 #include <i386/mp_desc.h>
88 #include <i386/misc_protos.h>
89 #include <i386/thread.h>
90 #include <i386/trap.h>
91 #include <i386/machine_routines.h>
92 #include <i386/mp.h> /* mp_rendezvous_break_lock */
93 #include <i386/cpuid.h>
94 #include <i386/fpu.h>
95 #include <i386/machine_cpu.h>
96 #include <i386/pmap.h>
97 #if CONFIG_MTRR
98 #include <i386/mtrr.h>
99 #endif
100 #include <i386/ucode.h>
101 #include <i386/pmCPU.h>
102 #include <architecture/i386/pio.h> /* inb() */
103 #include <pexpert/i386/boot.h>
104
105 #include <vm/pmap.h>
106 #include <vm/vm_map.h>
107 #include <vm/vm_kern.h>
108
109 #include <IOKit/IOPlatformExpert.h>
110 #include <IOKit/IOHibernatePrivate.h>
111
112 #include <pexpert/i386/efi.h>
113
114 #include <kern/thread.h>
115 #include <kern/sched.h>
116 #include <mach-o/loader.h>
117 #include <mach-o/nlist.h>
118
119 #include <libkern/kernel_mach_header.h>
120 #include <libkern/OSKextLibPrivate.h>
121
122 #if DEBUG
123 #define DPRINTF(x...) kprintf(x)
124 #else
125 #define DPRINTF(x...)
126 #endif
127
128 static void machine_conf(void);
129
130 extern int max_unsafe_quanta;
131 extern int max_poll_quanta;
132 extern unsigned int panic_is_inited;
133
134 int db_run_mode;
135
136 volatile int pbtcpu = -1;
137 hw_lock_data_t pbtlock; /* backtrace print lock */
138 uint32_t pbtcnt = 0;
139
140 volatile int panic_double_fault_cpu = -1;
141
142 #if defined (__i386__)
143 #define PRINT_ARGS_FROM_STACK_FRAME 1
144 #elif defined (__x86_64__)
145 #define PRINT_ARGS_FROM_STACK_FRAME 0
146 #else
147 #error unsupported architecture
148 #endif
149
150 typedef struct _cframe_t {
151 struct _cframe_t *prev;
152 uintptr_t caller;
153 #if PRINT_ARGS_FROM_STACK_FRAME
154 unsigned args[0];
155 #endif
156 } cframe_t;
157
158 static unsigned panic_io_port;
159 static unsigned commit_paniclog_to_nvram;
160
161 unsigned int debug_boot_arg;
162
163 void
164 machine_startup(void)
165 {
166 int boot_arg;
167
168 #if 0
169 if( PE_get_hotkey( kPEControlKey ))
170 halt_in_debugger = halt_in_debugger ? 0 : 1;
171 #endif
172
173 if (PE_parse_boot_argn("debug", &debug_boot_arg, sizeof (debug_boot_arg))) {
174 panicDebugging = TRUE;
175 if (debug_boot_arg & DB_HALT) halt_in_debugger=1;
176 if (debug_boot_arg & DB_PRT) disable_debug_output=FALSE;
177 if (debug_boot_arg & DB_SLOG) systemLogDiags=TRUE;
178 if (debug_boot_arg & DB_LOG_PI_SCRN) logPanicDataToScreen=TRUE;
179 } else {
180 debug_boot_arg = 0;
181 }
182
183 if (!PE_parse_boot_argn("nvram_paniclog", &commit_paniclog_to_nvram, sizeof (commit_paniclog_to_nvram)))
184 commit_paniclog_to_nvram = 1;
185
186 /*
187 * Entering the debugger will put the CPUs into a "safe"
188 * power mode.
189 */
190 if (PE_parse_boot_argn("pmsafe_debug", &boot_arg, sizeof (boot_arg)))
191 pmsafe_debug = boot_arg;
192
193 #if NOTYET
194 hw_lock_init(&debugger_lock); /* initialize debugger lock */
195 #endif
196 hw_lock_init(&pbtlock); /* initialize print backtrace lock */
197
198 if (PE_parse_boot_argn("preempt", &boot_arg, sizeof (boot_arg))) {
199 default_preemption_rate = boot_arg;
200 }
201 if (PE_parse_boot_argn("unsafe", &boot_arg, sizeof (boot_arg))) {
202 max_unsafe_quanta = boot_arg;
203 }
204 if (PE_parse_boot_argn("poll", &boot_arg, sizeof (boot_arg))) {
205 max_poll_quanta = boot_arg;
206 }
207 if (PE_parse_boot_argn("yield", &boot_arg, sizeof (boot_arg))) {
208 sched_poll_yield_shift = boot_arg;
209 }
210 /* The I/O port to issue a read from, in the event of a panic. Useful for
211 * triggering logic analyzers.
212 */
213 if (PE_parse_boot_argn("panic_io_port", &boot_arg, sizeof (boot_arg))) {
214 /*I/O ports range from 0 through 0xFFFF */
215 panic_io_port = boot_arg & 0xffff;
216 }
217
218 machine_conf();
219
220 /*
221 * Start the system.
222 */
223 kernel_bootstrap();
224 /*NOTREACHED*/
225 }
226
227
228 static void
229 machine_conf(void)
230 {
231 machine_info.memory_size = (typeof(machine_info.memory_size))mem_size;
232 }
233
234
235 extern void *gPEEFIRuntimeServices;
236 extern void *gPEEFISystemTable;
237
238 /*-
239 * COPYRIGHT (C) 1986 Gary S. Brown. You may use this program, or
240 * code or tables extracted from it, as desired without restriction.
241 *
242 * First, the polynomial itself and its table of feedback terms. The
243 * polynomial is
244 * X^32+X^26+X^23+X^22+X^16+X^12+X^11+X^10+X^8+X^7+X^5+X^4+X^2+X^1+X^0
245 *
246 * Note that we take it "backwards" and put the highest-order term in
247 * the lowest-order bit. The X^32 term is "implied"; the LSB is the
248 * X^31 term, etc. The X^0 term (usually shown as "+1") results in
249 * the MSB being 1
250 *
251 * Note that the usual hardware shift register implementation, which
252 * is what we're using (we're merely optimizing it by doing eight-bit
253 * chunks at a time) shifts bits into the lowest-order term. In our
254 * implementation, that means shifting towards the right. Why do we
255 * do it this way? Because the calculated CRC must be transmitted in
256 * order from highest-order term to lowest-order term. UARTs transmit
257 * characters in order from LSB to MSB. By storing the CRC this way
258 * we hand it to the UART in the order low-byte to high-byte; the UART
259 * sends each low-bit to hight-bit; and the result is transmission bit
260 * by bit from highest- to lowest-order term without requiring any bit
261 * shuffling on our part. Reception works similarly
262 *
263 * The feedback terms table consists of 256, 32-bit entries. Notes
264 *
265 * The table can be generated at runtime if desired; code to do so
266 * is shown later. It might not be obvious, but the feedback
267 * terms simply represent the results of eight shift/xor opera
268 * tions for all combinations of data and CRC register values
269 *
270 * The values must be right-shifted by eight bits by the "updcrc
271 * logic; the shift must be unsigned (bring in zeroes). On some
272 * hardware you could probably optimize the shift in assembler by
273 * using byte-swap instructions
274 * polynomial $edb88320
275 *
276 *
277 * CRC32 code derived from work by Gary S. Brown.
278 */
279
280 static uint32_t crc32_tab[] = {
281 0x00000000, 0x77073096, 0xee0e612c, 0x990951ba, 0x076dc419, 0x706af48f,
282 0xe963a535, 0x9e6495a3, 0x0edb8832, 0x79dcb8a4, 0xe0d5e91e, 0x97d2d988,
283 0x09b64c2b, 0x7eb17cbd, 0xe7b82d07, 0x90bf1d91, 0x1db71064, 0x6ab020f2,
284 0xf3b97148, 0x84be41de, 0x1adad47d, 0x6ddde4eb, 0xf4d4b551, 0x83d385c7,
285 0x136c9856, 0x646ba8c0, 0xfd62f97a, 0x8a65c9ec, 0x14015c4f, 0x63066cd9,
286 0xfa0f3d63, 0x8d080df5, 0x3b6e20c8, 0x4c69105e, 0xd56041e4, 0xa2677172,
287 0x3c03e4d1, 0x4b04d447, 0xd20d85fd, 0xa50ab56b, 0x35b5a8fa, 0x42b2986c,
288 0xdbbbc9d6, 0xacbcf940, 0x32d86ce3, 0x45df5c75, 0xdcd60dcf, 0xabd13d59,
289 0x26d930ac, 0x51de003a, 0xc8d75180, 0xbfd06116, 0x21b4f4b5, 0x56b3c423,
290 0xcfba9599, 0xb8bda50f, 0x2802b89e, 0x5f058808, 0xc60cd9b2, 0xb10be924,
291 0x2f6f7c87, 0x58684c11, 0xc1611dab, 0xb6662d3d, 0x76dc4190, 0x01db7106,
292 0x98d220bc, 0xefd5102a, 0x71b18589, 0x06b6b51f, 0x9fbfe4a5, 0xe8b8d433,
293 0x7807c9a2, 0x0f00f934, 0x9609a88e, 0xe10e9818, 0x7f6a0dbb, 0x086d3d2d,
294 0x91646c97, 0xe6635c01, 0x6b6b51f4, 0x1c6c6162, 0x856530d8, 0xf262004e,
295 0x6c0695ed, 0x1b01a57b, 0x8208f4c1, 0xf50fc457, 0x65b0d9c6, 0x12b7e950,
296 0x8bbeb8ea, 0xfcb9887c, 0x62dd1ddf, 0x15da2d49, 0x8cd37cf3, 0xfbd44c65,
297 0x4db26158, 0x3ab551ce, 0xa3bc0074, 0xd4bb30e2, 0x4adfa541, 0x3dd895d7,
298 0xa4d1c46d, 0xd3d6f4fb, 0x4369e96a, 0x346ed9fc, 0xad678846, 0xda60b8d0,
299 0x44042d73, 0x33031de5, 0xaa0a4c5f, 0xdd0d7cc9, 0x5005713c, 0x270241aa,
300 0xbe0b1010, 0xc90c2086, 0x5768b525, 0x206f85b3, 0xb966d409, 0xce61e49f,
301 0x5edef90e, 0x29d9c998, 0xb0d09822, 0xc7d7a8b4, 0x59b33d17, 0x2eb40d81,
302 0xb7bd5c3b, 0xc0ba6cad, 0xedb88320, 0x9abfb3b6, 0x03b6e20c, 0x74b1d29a,
303 0xead54739, 0x9dd277af, 0x04db2615, 0x73dc1683, 0xe3630b12, 0x94643b84,
304 0x0d6d6a3e, 0x7a6a5aa8, 0xe40ecf0b, 0x9309ff9d, 0x0a00ae27, 0x7d079eb1,
305 0xf00f9344, 0x8708a3d2, 0x1e01f268, 0x6906c2fe, 0xf762575d, 0x806567cb,
306 0x196c3671, 0x6e6b06e7, 0xfed41b76, 0x89d32be0, 0x10da7a5a, 0x67dd4acc,
307 0xf9b9df6f, 0x8ebeeff9, 0x17b7be43, 0x60b08ed5, 0xd6d6a3e8, 0xa1d1937e,
308 0x38d8c2c4, 0x4fdff252, 0xd1bb67f1, 0xa6bc5767, 0x3fb506dd, 0x48b2364b,
309 0xd80d2bda, 0xaf0a1b4c, 0x36034af6, 0x41047a60, 0xdf60efc3, 0xa867df55,
310 0x316e8eef, 0x4669be79, 0xcb61b38c, 0xbc66831a, 0x256fd2a0, 0x5268e236,
311 0xcc0c7795, 0xbb0b4703, 0x220216b9, 0x5505262f, 0xc5ba3bbe, 0xb2bd0b28,
312 0x2bb45a92, 0x5cb36a04, 0xc2d7ffa7, 0xb5d0cf31, 0x2cd99e8b, 0x5bdeae1d,
313 0x9b64c2b0, 0xec63f226, 0x756aa39c, 0x026d930a, 0x9c0906a9, 0xeb0e363f,
314 0x72076785, 0x05005713, 0x95bf4a82, 0xe2b87a14, 0x7bb12bae, 0x0cb61b38,
315 0x92d28e9b, 0xe5d5be0d, 0x7cdcefb7, 0x0bdbdf21, 0x86d3d2d4, 0xf1d4e242,
316 0x68ddb3f8, 0x1fda836e, 0x81be16cd, 0xf6b9265b, 0x6fb077e1, 0x18b74777,
317 0x88085ae6, 0xff0f6a70, 0x66063bca, 0x11010b5c, 0x8f659eff, 0xf862ae69,
318 0x616bffd3, 0x166ccf45, 0xa00ae278, 0xd70dd2ee, 0x4e048354, 0x3903b3c2,
319 0xa7672661, 0xd06016f7, 0x4969474d, 0x3e6e77db, 0xaed16a4a, 0xd9d65adc,
320 0x40df0b66, 0x37d83bf0, 0xa9bcae53, 0xdebb9ec5, 0x47b2cf7f, 0x30b5ffe9,
321 0xbdbdf21c, 0xcabac28a, 0x53b39330, 0x24b4a3a6, 0xbad03605, 0xcdd70693,
322 0x54de5729, 0x23d967bf, 0xb3667a2e, 0xc4614ab8, 0x5d681b02, 0x2a6f2b94,
323 0xb40bbe37, 0xc30c8ea1, 0x5a05df1b, 0x2d02ef8d
324 };
325
326 static uint32_t
327 crc32(uint32_t crc, const void *buf, size_t size)
328 {
329 const uint8_t *p;
330
331 p = buf;
332 crc = crc ^ ~0U;
333
334 while (size--)
335 crc = crc32_tab[(crc ^ *p++) & 0xFF] ^ (crc >> 8);
336
337 return crc ^ ~0U;
338 }
339
340 static void
341 efi_set_tables_64(EFI_SYSTEM_TABLE_64 * system_table)
342 {
343 EFI_RUNTIME_SERVICES_64 *runtime;
344 uint32_t hdr_cksum;
345 uint32_t cksum;
346
347 DPRINTF("Processing 64-bit EFI tables at %p\n", system_table);
348 do {
349 DPRINTF("Header:\n");
350 DPRINTF(" Signature: 0x%016llx\n", system_table->Hdr.Signature);
351 DPRINTF(" Revision: 0x%08x\n", system_table->Hdr.Revision);
352 DPRINTF(" HeaderSize: 0x%08x\n", system_table->Hdr.HeaderSize);
353 DPRINTF(" CRC32: 0x%08x\n", system_table->Hdr.CRC32);
354 DPRINTF("RuntimeServices: 0x%016llx\n", system_table->RuntimeServices);
355 if (system_table->Hdr.Signature != EFI_SYSTEM_TABLE_SIGNATURE) {
356 kprintf("Bad EFI system table signature\n");
357 break;
358 }
359 // Verify signature of the system table
360 hdr_cksum = system_table->Hdr.CRC32;
361 system_table->Hdr.CRC32 = 0;
362 cksum = crc32(0L, system_table, system_table->Hdr.HeaderSize);
363
364 DPRINTF("System table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum);
365 system_table->Hdr.CRC32 = hdr_cksum;
366 if (cksum != hdr_cksum) {
367 kprintf("Bad EFI system table checksum\n");
368 break;
369 }
370
371 gPEEFISystemTable = system_table;
372
373 if (!cpu_mode_is64bit()) {
374 kprintf("Skipping 64-bit EFI runtime services for 32-bit legacy mode\n");
375 break;
376 }
377
378 if(system_table->RuntimeServices == 0) {
379 kprintf("No runtime table present\n");
380 break;
381 }
382 DPRINTF("RuntimeServices table at 0x%qx\n", system_table->RuntimeServices);
383 // 64-bit virtual address is OK for 64-bit EFI and 64/32-bit kernel.
384 runtime = (EFI_RUNTIME_SERVICES_64 *) (uintptr_t)system_table->RuntimeServices;
385 DPRINTF("Checking runtime services table %p\n", runtime);
386 if (runtime->Hdr.Signature != EFI_RUNTIME_SERVICES_SIGNATURE) {
387 kprintf("Bad EFI runtime table signature\n");
388 break;
389 }
390
391 // Verify signature of runtime services table
392 hdr_cksum = runtime->Hdr.CRC32;
393 runtime->Hdr.CRC32 = 0;
394 cksum = crc32(0L, runtime, runtime->Hdr.HeaderSize);
395
396 DPRINTF("Runtime table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum);
397 runtime->Hdr.CRC32 = hdr_cksum;
398 if (cksum != hdr_cksum) {
399 kprintf("Bad EFI runtime table checksum\n");
400 break;
401 }
402
403 gPEEFIRuntimeServices = runtime;
404 }
405 while (FALSE);
406 }
407
408 static void
409 efi_set_tables_32(EFI_SYSTEM_TABLE_32 * system_table)
410 {
411 EFI_RUNTIME_SERVICES_32 *runtime;
412 uint32_t hdr_cksum;
413 uint32_t cksum;
414
415 DPRINTF("Processing 32-bit EFI tables at %p\n", system_table);
416 do {
417 DPRINTF("Header:\n");
418 DPRINTF(" Signature: 0x%016llx\n", system_table->Hdr.Signature);
419 DPRINTF(" Revision: 0x%08x\n", system_table->Hdr.Revision);
420 DPRINTF(" HeaderSize: 0x%08x\n", system_table->Hdr.HeaderSize);
421 DPRINTF(" CRC32: 0x%08x\n", system_table->Hdr.CRC32);
422 DPRINTF("RuntimeServices: 0x%08x\n", system_table->RuntimeServices);
423 if (system_table->Hdr.Signature != EFI_SYSTEM_TABLE_SIGNATURE) {
424 kprintf("Bad EFI system table signature\n");
425 break;
426 }
427 // Verify signature of the system table
428 hdr_cksum = system_table->Hdr.CRC32;
429 system_table->Hdr.CRC32 = 0;
430 DPRINTF("System table at %p HeaderSize 0x%x\n", system_table, system_table->Hdr.HeaderSize);
431 cksum = crc32(0L, system_table, system_table->Hdr.HeaderSize);
432
433 DPRINTF("System table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum);
434 system_table->Hdr.CRC32 = hdr_cksum;
435 if (cksum != hdr_cksum) {
436 kprintf("Bad EFI system table checksum\n");
437 break;
438 }
439
440 gPEEFISystemTable = system_table;
441
442 if(system_table->RuntimeServices == 0) {
443 kprintf("No runtime table present\n");
444 break;
445 }
446 DPRINTF("RuntimeServices table at 0x%x\n", system_table->RuntimeServices);
447 // 32-bit virtual address is OK for 32-bit EFI and 32-bit kernel.
448 // For a 64-bit kernel, booter provides a virtual address mod 4G
449 runtime = (EFI_RUNTIME_SERVICES_32 *)
450 #ifdef __x86_64__
451 (system_table->RuntimeServices | VM_MIN_KERNEL_ADDRESS);
452 #else
453 system_table->RuntimeServices;
454 #endif
455 DPRINTF("Runtime table addressed at %p\n", runtime);
456 if (runtime->Hdr.Signature != EFI_RUNTIME_SERVICES_SIGNATURE) {
457 kprintf("Bad EFI runtime table signature\n");
458 break;
459 }
460
461 // Verify signature of runtime services table
462 hdr_cksum = runtime->Hdr.CRC32;
463 runtime->Hdr.CRC32 = 0;
464 cksum = crc32(0L, runtime, runtime->Hdr.HeaderSize);
465
466 DPRINTF("Runtime table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum);
467 runtime->Hdr.CRC32 = hdr_cksum;
468 if (cksum != hdr_cksum) {
469 kprintf("Bad EFI runtime table checksum\n");
470 break;
471 }
472
473 DPRINTF("Runtime functions\n");
474 DPRINTF(" GetTime : 0x%x\n", runtime->GetTime);
475 DPRINTF(" SetTime : 0x%x\n", runtime->SetTime);
476 DPRINTF(" GetWakeupTime : 0x%x\n", runtime->GetWakeupTime);
477 DPRINTF(" SetWakeupTime : 0x%x\n", runtime->SetWakeupTime);
478 DPRINTF(" SetVirtualAddressMap : 0x%x\n", runtime->SetVirtualAddressMap);
479 DPRINTF(" ConvertPointer : 0x%x\n", runtime->ConvertPointer);
480 DPRINTF(" GetVariable : 0x%x\n", runtime->GetVariable);
481 DPRINTF(" GetNextVariableName : 0x%x\n", runtime->GetNextVariableName);
482 DPRINTF(" SetVariable : 0x%x\n", runtime->SetVariable);
483 DPRINTF(" GetNextHighMonotonicCount: 0x%x\n", runtime->GetNextHighMonotonicCount);
484 DPRINTF(" ResetSystem : 0x%x\n", runtime->ResetSystem);
485
486 gPEEFIRuntimeServices = runtime;
487 }
488 while (FALSE);
489 }
490
491
492 /* Map in EFI runtime areas. */
493 static void
494 efi_init(void)
495 {
496 boot_args *args = (boot_args *)PE_state.bootArgs;
497
498 kprintf("Initializing EFI runtime services\n");
499
500 do
501 {
502 vm_offset_t vm_size, vm_addr;
503 vm_map_offset_t phys_addr;
504 EfiMemoryRange *mptr;
505 unsigned int msize, mcount;
506 unsigned int i;
507
508 msize = args->MemoryMapDescriptorSize;
509 mcount = args->MemoryMapSize / msize;
510
511 DPRINTF("efi_init() kernel base: 0x%x size: 0x%x\n",
512 args->kaddr, args->ksize);
513 DPRINTF(" efiSystemTable physical: 0x%x virtual: %p\n",
514 args->efiSystemTable,
515 (void *) ml_static_ptovirt(args->efiSystemTable));
516 DPRINTF(" efiRuntimeServicesPageStart: 0x%x\n",
517 args->efiRuntimeServicesPageStart);
518 DPRINTF(" efiRuntimeServicesPageCount: 0x%x\n",
519 args->efiRuntimeServicesPageCount);
520 DPRINTF(" efiRuntimeServicesVirtualPageStart: 0x%016llx\n",
521 args->efiRuntimeServicesVirtualPageStart);
522 mptr = (EfiMemoryRange *)ml_static_ptovirt(args->MemoryMap);
523 for (i=0; i < mcount; i++, mptr = (EfiMemoryRange *)(((vm_offset_t)mptr) + msize)) {
524 if (((mptr->Attribute & EFI_MEMORY_RUNTIME) == EFI_MEMORY_RUNTIME) ) {
525 vm_size = (vm_offset_t)i386_ptob((uint32_t)mptr->NumberOfPages);
526 vm_addr = (vm_offset_t) mptr->VirtualStart;
527 #ifdef __x86_64__
528 /* For K64 on EFI32, shadow-map into high KVA */
529 if (vm_addr < VM_MIN_KERNEL_ADDRESS)
530 vm_addr |= VM_MIN_KERNEL_ADDRESS;
531 #endif
532 phys_addr = (vm_map_offset_t) mptr->PhysicalStart;
533 DPRINTF(" Type: %x phys: %p EFIv: %p kv: %p size: %p\n",
534 mptr->Type,
535 (void *) (uintptr_t) phys_addr,
536 (void *) (uintptr_t) mptr->VirtualStart,
537 (void *) vm_addr,
538 (void *) vm_size);
539 pmap_map_bd(vm_addr, phys_addr, phys_addr + round_page(vm_size),
540 (mptr->Type == kEfiRuntimeServicesCode) ? VM_PROT_READ | VM_PROT_EXECUTE : VM_PROT_READ|VM_PROT_WRITE,
541 (mptr->Type == EfiMemoryMappedIO) ? VM_WIMG_IO : VM_WIMG_USE_DEFAULT);
542 }
543 }
544
545 if (args->Version != kBootArgsVersion2)
546 panic("Incompatible boot args version %d revision %d\n", args->Version, args->Revision);
547
548 DPRINTF("Boot args version %d revision %d mode %d\n", args->Version, args->Revision, args->efiMode);
549 if (args->efiMode == kBootArgsEfiMode64) {
550 efi_set_tables_64((EFI_SYSTEM_TABLE_64 *) ml_static_ptovirt(args->efiSystemTable));
551 } else {
552 efi_set_tables_32((EFI_SYSTEM_TABLE_32 *) ml_static_ptovirt(args->efiSystemTable));
553 }
554 }
555 while (FALSE);
556
557 return;
558 }
559
560 /* Remap EFI runtime areas. */
561 void
562 hibernate_newruntime_map(void * map, vm_size_t map_size, uint32_t system_table_offset)
563 {
564 boot_args *args = (boot_args *)PE_state.bootArgs;
565
566 kprintf("Reinitializing EFI runtime services\n");
567
568 do
569 {
570 vm_offset_t vm_size, vm_addr;
571 vm_map_offset_t phys_addr;
572 EfiMemoryRange *mptr;
573 unsigned int msize, mcount;
574 unsigned int i;
575
576 gPEEFISystemTable = 0;
577 gPEEFIRuntimeServices = 0;
578
579 system_table_offset += ptoa_32(args->efiRuntimeServicesPageStart);
580
581 kprintf("Old system table 0x%x, new 0x%x\n",
582 (uint32_t)args->efiSystemTable, system_table_offset);
583
584 args->efiSystemTable = system_table_offset;
585
586 kprintf("Old map:\n");
587 msize = args->MemoryMapDescriptorSize;
588 mcount = args->MemoryMapSize / msize;
589 mptr = (EfiMemoryRange *)ml_static_ptovirt(args->MemoryMap);
590 for (i=0; i < mcount; i++, mptr = (EfiMemoryRange *)(((vm_offset_t)mptr) + msize)) {
591 if ((mptr->Attribute & EFI_MEMORY_RUNTIME) == EFI_MEMORY_RUNTIME) {
592
593 vm_size = (vm_offset_t)i386_ptob((uint32_t)mptr->NumberOfPages);
594 vm_addr = (vm_offset_t) mptr->VirtualStart;
595 #ifdef __x86_64__
596 /* K64 on EFI32 */
597 if (vm_addr < VM_MIN_KERNEL_ADDRESS)
598 vm_addr |= VM_MIN_KERNEL_ADDRESS;
599 #endif
600 phys_addr = (vm_map_offset_t) mptr->PhysicalStart;
601
602 kprintf("mapping[%u] %qx @ %lx, %llu\n", mptr->Type, phys_addr, (unsigned long)vm_addr, mptr->NumberOfPages);
603 }
604 }
605
606 pmap_remove(kernel_pmap, i386_ptob(args->efiRuntimeServicesPageStart),
607 i386_ptob(args->efiRuntimeServicesPageStart + args->efiRuntimeServicesPageCount));
608
609 kprintf("New map:\n");
610 msize = args->MemoryMapDescriptorSize;
611 mcount = (unsigned int )(map_size / msize);
612 mptr = map;
613 for (i=0; i < mcount; i++, mptr = (EfiMemoryRange *)(((vm_offset_t)mptr) + msize)) {
614 if ((mptr->Attribute & EFI_MEMORY_RUNTIME) == EFI_MEMORY_RUNTIME) {
615
616 vm_size = (vm_offset_t)i386_ptob((uint32_t)mptr->NumberOfPages);
617 vm_addr = (vm_offset_t) mptr->VirtualStart;
618 #ifdef __x86_64__
619 if (vm_addr < VM_MIN_KERNEL_ADDRESS)
620 vm_addr |= VM_MIN_KERNEL_ADDRESS;
621 #endif
622 phys_addr = (vm_map_offset_t) mptr->PhysicalStart;
623
624 kprintf("mapping[%u] %qx @ %lx, %llu\n", mptr->Type, phys_addr, (unsigned long)vm_addr, mptr->NumberOfPages);
625
626 pmap_map(vm_addr, phys_addr, phys_addr + round_page(vm_size),
627 (mptr->Type == kEfiRuntimeServicesCode) ? VM_PROT_READ | VM_PROT_EXECUTE : VM_PROT_READ|VM_PROT_WRITE,
628 (mptr->Type == EfiMemoryMappedIO) ? VM_WIMG_IO : VM_WIMG_USE_DEFAULT);
629 }
630 }
631
632 if (args->Version != kBootArgsVersion2)
633 panic("Incompatible boot args version %d revision %d\n", args->Version, args->Revision);
634
635 kprintf("Boot args version %d revision %d mode %d\n", args->Version, args->Revision, args->efiMode);
636 if (args->efiMode == kBootArgsEfiMode64) {
637 efi_set_tables_64((EFI_SYSTEM_TABLE_64 *) ml_static_ptovirt(args->efiSystemTable));
638 } else {
639 efi_set_tables_32((EFI_SYSTEM_TABLE_32 *) ml_static_ptovirt(args->efiSystemTable));
640 }
641 }
642 while (FALSE);
643
644 kprintf("Done reinitializing EFI runtime services\n");
645
646 return;
647 }
648
649 /*
650 * Find devices. The system is alive.
651 */
652 void
653 machine_init(void)
654 {
655 #if __x86_64__
656 /* Now with VM up, switch to dynamically allocated cpu data */
657 cpu_data_realloc();
658 #endif
659
660 /* Ensure panic buffer is initialized. */
661 debug_log_init();
662
663 /*
664 * Display CPU identification
665 */
666 cpuid_cpu_display("CPU identification");
667 cpuid_feature_display("CPU features");
668 cpuid_extfeature_display("CPU extended features");
669
670 /*
671 * Initialize EFI runtime services.
672 */
673 efi_init();
674
675 smp_init();
676
677 /*
678 * Set up to use floating point.
679 */
680 init_fpu();
681
682 /*
683 * Configure clock devices.
684 */
685 clock_config();
686
687 #if CONFIG_MTRR
688 /*
689 * Initialize MTRR from boot processor.
690 */
691 mtrr_init();
692
693 /*
694 * Set up PAT for boot processor.
695 */
696 pat_init();
697 #endif
698
699 /*
700 * Free lowmem pages and complete other setup
701 */
702 pmap_lowmem_finalize();
703 }
704
705 /*
706 * Halt a cpu.
707 */
708 void
709 halt_cpu(void)
710 {
711 halt_all_cpus(FALSE);
712 }
713
714 int reset_mem_on_reboot = 1;
715
716 /*
717 * Halt the system or reboot.
718 */
719 void
720 halt_all_cpus(boolean_t reboot)
721 {
722 if (reboot) {
723 printf("MACH Reboot\n");
724 PEHaltRestart( kPERestartCPU );
725 } else {
726 printf("CPU halted\n");
727 PEHaltRestart( kPEHaltCPU );
728 }
729 while(1);
730 }
731
732
733 /* Issue an I/O port read if one has been requested - this is an event logic
734 * analyzers can use as a trigger point.
735 */
736
737 void
738 panic_io_port_read(void) {
739 if (panic_io_port)
740 (void)inb(panic_io_port);
741 }
742
743 /* For use with the MP rendezvous mechanism
744 */
745
746 uint64_t panic_restart_timeout = ~(0ULL);
747
748 #define PANIC_RESTART_TIMEOUT (3ULL * NSEC_PER_SEC)
749
750 static void
751 machine_halt_cpu(void) {
752 uint64_t deadline;
753
754 panic_io_port_read();
755
756 /* Halt here forever if we're not rebooting */
757 if (!PE_reboot_on_panic() && panic_restart_timeout == ~(0ULL)) {
758 pmCPUHalt(PM_HALT_DEBUG);
759 return;
760 }
761
762 if (PE_reboot_on_panic())
763 deadline = mach_absolute_time() + PANIC_RESTART_TIMEOUT;
764 else
765 deadline = mach_absolute_time() + panic_restart_timeout;
766
767 while (mach_absolute_time() < deadline)
768 cpu_pause();
769
770 kprintf("Invoking PE_halt_restart\n");
771 /* Attempt restart via ACPI RESET_REG; at the time of this
772 * writing, this is routine is chained through AppleSMC->
773 * AppleACPIPlatform
774 */
775 if (PE_halt_restart)
776 (*PE_halt_restart)(kPERestartCPU);
777 pmCPUHalt(PM_HALT_DEBUG);
778 }
779
780 void
781 DebuggerWithContext(
782 __unused unsigned int reason,
783 __unused void *ctx,
784 const char *message)
785 {
786 Debugger(message);
787 }
788
789 void
790 Debugger(
791 const char *message)
792 {
793 unsigned long pi_size = 0;
794 void *stackptr;
795 int cn = cpu_number();
796
797 hw_atomic_add(&debug_mode, 1);
798 if (!panic_is_inited) {
799 postcode(PANIC_HLT);
800 asm("hlt");
801 }
802
803 printf("Debugger called: <%s>\n", message);
804 kprintf("Debugger called: <%s>\n", message);
805
806 /*
807 * Skip the graphical panic box if no panic string.
808 * This is the case if we're being called from
809 * host_reboot(,HOST_REBOOT_DEBUGGER)
810 * as a quiet way into the debugger.
811 */
812
813 if (panicstr) {
814 disable_preemption();
815
816 /* Issue an I/O port read if one has been requested - this is an event logic
817 * analyzers can use as a trigger point.
818 */
819 panic_io_port_read();
820
821 /* Obtain current frame pointer */
822 #if defined (__i386__)
823 __asm__ volatile("movl %%ebp, %0" : "=m" (stackptr));
824 #elif defined (__x86_64__)
825 __asm__ volatile("movq %%rbp, %0" : "=m" (stackptr));
826 #endif
827
828 /* Print backtrace - callee is internally synchronized */
829 panic_i386_backtrace(stackptr, ((panic_double_fault_cpu == cn) ? 80: 48), NULL, FALSE, NULL);
830
831 /* everything should be printed now so copy to NVRAM
832 */
833
834 if( debug_buf_size > 0) {
835 /* Optionally sync the panic log, if any, to NVRAM
836 * This is the default.
837 */
838 if (commit_paniclog_to_nvram) {
839 unsigned int bufpos;
840 uintptr_t cr0;
841
842 debug_putc(0);
843
844 /* Now call the compressor */
845 /* XXX Consider using the WKdm compressor in the
846 * future, rather than just packing - would need to
847 * be co-ordinated with crashreporter, which decodes
848 * this post-restart. The compressor should be
849 * capable of in-place compression.
850 */
851 bufpos = packA(debug_buf,
852 (unsigned int) (debug_buf_ptr - debug_buf), debug_buf_size);
853 /* If compression was successful,
854 * use the compressed length
855 */
856 pi_size = bufpos ? bufpos : (unsigned) (debug_buf_ptr - debug_buf);
857
858 /* Save panic log to non-volatile store
859 * Panic info handler must truncate data that is
860 * too long for this platform.
861 * This call must save data synchronously,
862 * since we can subsequently halt the system.
863 */
864
865
866 /* The following sequence is a workaround for:
867 * <rdar://problem/5915669> SnowLeopard10A67: AppleEFINVRAM should not invoke
868 * any routines that use floating point (MMX in this case) when saving panic
869 * logs to nvram/flash.
870 */
871 cr0 = get_cr0();
872 clear_ts();
873
874 kprintf("Attempting to commit panic log to NVRAM\n");
875 pi_size = PESavePanicInfo((unsigned char *)debug_buf,
876 (uint32_t)pi_size );
877 set_cr0(cr0);
878
879 /* Uncompress in-place, to permit examination of
880 * the panic log by debuggers.
881 */
882
883 if (bufpos) {
884 unpackA(debug_buf, bufpos);
885 }
886 }
887 }
888
889 if (!panicDebugging) {
890 unsigned cnum;
891 /* Clear the MP rendezvous function lock, in the event
892 * that a panic occurred while in that codepath.
893 */
894 mp_rendezvous_break_lock();
895
896 /* Non-maskably interrupt all other processors
897 * If a restart timeout is specified, this processor
898 * will attempt a restart.
899 */
900 kprintf("Invoking machine_halt_cpu on CPU %d\n", cn);
901 for (cnum = 0; cnum < real_ncpus; cnum++) {
902 if (cnum != (unsigned) cn) {
903 cpu_NMI_interrupt(cnum);
904 }
905 }
906 machine_halt_cpu();
907 /* NOT REACHED */
908 }
909 }
910
911 __asm__("int3");
912 hw_atomic_sub(&debug_mode, 1);
913 }
914
915 char *
916 machine_boot_info(char *buf, __unused vm_size_t size)
917 {
918 *buf ='\0';
919 return buf;
920 }
921
922 /* Routines for address - symbol translation. Not called unless the "keepsyms"
923 * boot-arg is supplied.
924 */
925
926 static int
927 panic_print_macho_symbol_name(kernel_mach_header_t *mh, vm_address_t search, const char *module_name)
928 {
929 kernel_nlist_t *sym = NULL;
930 struct load_command *cmd;
931 kernel_segment_command_t *orig_ts = NULL, *orig_le = NULL;
932 struct symtab_command *orig_st = NULL;
933 unsigned int i;
934 char *strings, *bestsym = NULL;
935 vm_address_t bestaddr = 0, diff, curdiff;
936
937 /* Assume that if it's loaded and linked into the kernel, it's a valid Mach-O */
938
939 cmd = (struct load_command *) &mh[1];
940 for (i = 0; i < mh->ncmds; i++) {
941 if (cmd->cmd == LC_SEGMENT_KERNEL) {
942 kernel_segment_command_t *orig_sg = (kernel_segment_command_t *) cmd;
943
944 if (strncmp(SEG_TEXT, orig_sg->segname,
945 sizeof(orig_sg->segname)) == 0)
946 orig_ts = orig_sg;
947 else if (strncmp(SEG_LINKEDIT, orig_sg->segname,
948 sizeof(orig_sg->segname)) == 0)
949 orig_le = orig_sg;
950 else if (strncmp("", orig_sg->segname,
951 sizeof(orig_sg->segname)) == 0)
952 orig_ts = orig_sg; /* pre-Lion i386 kexts have a single unnamed segment */
953 }
954 else if (cmd->cmd == LC_SYMTAB)
955 orig_st = (struct symtab_command *) cmd;
956
957 cmd = (struct load_command *) ((uintptr_t) cmd + cmd->cmdsize);
958 }
959
960 if ((orig_ts == NULL) || (orig_st == NULL) || (orig_le == NULL))
961 return 0;
962
963 if ((search < orig_ts->vmaddr) ||
964 (search >= orig_ts->vmaddr + orig_ts->vmsize)) {
965 /* search out of range for this mach header */
966 return 0;
967 }
968
969 sym = (kernel_nlist_t *)(uintptr_t)(orig_le->vmaddr + orig_st->symoff - orig_le->fileoff);
970 strings = (char *)(uintptr_t)(orig_le->vmaddr + orig_st->stroff - orig_le->fileoff);
971 diff = search;
972
973 for (i = 0; i < orig_st->nsyms; i++) {
974 if (sym[i].n_type & N_STAB) continue;
975
976 if (sym[i].n_value <= search) {
977 curdiff = search - (vm_address_t)sym[i].n_value;
978 if (curdiff < diff) {
979 diff = curdiff;
980 bestaddr = sym[i].n_value;
981 bestsym = strings + sym[i].n_un.n_strx;
982 }
983 }
984 }
985
986 if (bestsym != NULL) {
987 if (diff != 0) {
988 kdb_printf("%s : %s + 0x%lx", module_name, bestsym, (unsigned long)diff);
989 } else {
990 kdb_printf("%s : %s", module_name, bestsym);
991 }
992 return 1;
993 }
994 return 0;
995 }
996
997 extern kmod_info_t * kmod; /* the list of modules */
998
999 static void
1000 panic_print_kmod_symbol_name(vm_address_t search)
1001 {
1002 u_int i;
1003
1004 if (gLoadedKextSummaries == NULL)
1005 return;
1006 for (i = 0; i < gLoadedKextSummaries->numSummaries; ++i) {
1007 OSKextLoadedKextSummary *summary = gLoadedKextSummaries->summaries + i;
1008
1009 if ((search >= summary->address) &&
1010 (search < (summary->address + summary->size)))
1011 {
1012 kernel_mach_header_t *header = (kernel_mach_header_t *)(uintptr_t) summary->address;
1013 if (panic_print_macho_symbol_name(header, search, summary->name) == 0) {
1014 kdb_printf("%s + %llu", summary->name, (unsigned long)search - summary->address);
1015 }
1016 break;
1017 }
1018 }
1019 }
1020
1021 static void
1022 panic_print_symbol_name(vm_address_t search)
1023 {
1024 /* try searching in the kernel */
1025 if (panic_print_macho_symbol_name(&_mh_execute_header, search, "mach_kernel") == 0) {
1026 /* that failed, now try to search for the right kext */
1027 panic_print_kmod_symbol_name(search);
1028 }
1029 }
1030
1031 /* Generate a backtrace, given a frame pointer - this routine
1032 * should walk the stack safely. The trace is appended to the panic log
1033 * and conditionally, to the console. If the trace contains kernel module
1034 * addresses, display the module name, load address and dependencies.
1035 */
1036
1037 #define DUMPFRAMES 32
1038 #define PBT_TIMEOUT_CYCLES (5 * 1000 * 1000 * 1000ULL)
1039 void
1040 panic_i386_backtrace(void *_frame, int nframes, const char *msg, boolean_t regdump, x86_saved_state_t *regs)
1041 {
1042 cframe_t *frame = (cframe_t *)_frame;
1043 vm_offset_t raddrs[DUMPFRAMES];
1044 vm_offset_t PC = 0;
1045 int frame_index;
1046 volatile uint32_t *ppbtcnt = &pbtcnt;
1047 uint64_t bt_tsc_timeout;
1048 boolean_t keepsyms = FALSE;
1049 int cn = cpu_number();
1050
1051 if(pbtcpu != cn) {
1052 hw_atomic_add(&pbtcnt, 1);
1053 /* Spin on print backtrace lock, which serializes output
1054 * Continue anyway if a timeout occurs.
1055 */
1056 hw_lock_to(&pbtlock, LockTimeOutTSC*2);
1057 pbtcpu = cn;
1058 }
1059
1060 PE_parse_boot_argn("keepsyms", &keepsyms, sizeof (keepsyms));
1061
1062 if (msg != NULL) {
1063 kdb_printf("%s", msg);
1064 }
1065
1066 if ((regdump == TRUE) && (regs != NULL)) {
1067 #if defined(__x86_64__)
1068 x86_saved_state64_t *ss64p = saved_state64(regs);
1069 kdb_printf(
1070 "RAX: 0x%016llx, RBX: 0x%016llx, RCX: 0x%016llx, RDX: 0x%016llx\n"
1071 "RSP: 0x%016llx, RBP: 0x%016llx, RSI: 0x%016llx, RDI: 0x%016llx\n"
1072 "R8: 0x%016llx, R9: 0x%016llx, R10: 0x%016llx, R11: 0x%016llx\n"
1073 "R12: 0x%016llx, R13: 0x%016llx, R14: 0x%016llx, R15: 0x%016llx\n"
1074 "RFL: 0x%016llx, RIP: 0x%016llx, CS: 0x%016llx, SS: 0x%016llx\n",
1075 ss64p->rax, ss64p->rbx, ss64p->rcx, ss64p->rdx,
1076 ss64p->isf.rsp, ss64p->rbp, ss64p->rsi, ss64p->rdi,
1077 ss64p->r8, ss64p->r9, ss64p->r10, ss64p->r11,
1078 ss64p->r12, ss64p->r13, ss64p->r14, ss64p->r15,
1079 ss64p->isf.rflags, ss64p->isf.rip, ss64p->isf.cs,
1080 ss64p->isf.ss);
1081 PC = ss64p->isf.rip;
1082 #else
1083 x86_saved_state32_t *ss32p = saved_state32(regs);
1084 kdb_printf(
1085 "EAX: 0x%08x, EBX: 0x%08x, ECX: 0x%08x, EDX: 0x%08x\n"
1086 "CR2: 0x%08x, EBP: 0x%08x, ESI: 0x%08x, EDI: 0x%08x\n"
1087 "EFL: 0x%08x, EIP: 0x%08x, CS: 0x%08x, DS: 0x%08x\n",
1088 ss32p->eax,ss32p->ebx,ss32p->ecx,ss32p->edx,
1089 ss32p->cr2,ss32p->ebp,ss32p->esi,ss32p->edi,
1090 ss32p->efl,ss32p->eip,ss32p->cs, ss32p->ds);
1091 PC = ss32p->eip;
1092 #endif
1093 }
1094
1095 kdb_printf("Backtrace (CPU %d), "
1096 #if PRINT_ARGS_FROM_STACK_FRAME
1097 "Frame : Return Address (4 potential args on stack)\n", cn);
1098 #else
1099 "Frame : Return Address\n", cn);
1100 #endif
1101
1102 for (frame_index = 0; frame_index < nframes; frame_index++) {
1103 vm_offset_t curframep = (vm_offset_t) frame;
1104
1105 if (!curframep)
1106 break;
1107
1108 if (curframep & 0x3) {
1109 kdb_printf("Unaligned frame\n");
1110 goto invalid;
1111 }
1112
1113 if (!kvtophys(curframep) ||
1114 !kvtophys(curframep + sizeof(cframe_t) - 1)) {
1115 kdb_printf("No mapping exists for frame pointer\n");
1116 goto invalid;
1117 }
1118
1119 kdb_printf("%p : 0x%lx ", frame, frame->caller);
1120 if (frame_index < DUMPFRAMES)
1121 raddrs[frame_index] = frame->caller;
1122
1123 #if PRINT_ARGS_FROM_STACK_FRAME
1124 if (kvtophys((vm_offset_t)&(frame->args[3])))
1125 kdb_printf("(0x%x 0x%x 0x%x 0x%x) ",
1126 frame->args[0], frame->args[1],
1127 frame->args[2], frame->args[3]);
1128 #endif
1129
1130 /* Display address-symbol translation only if the "keepsyms"
1131 * boot-arg is suppplied, since we unload LINKEDIT otherwise.
1132 * This routine is potentially unsafe; also, function
1133 * boundary identification is unreliable after a strip -x.
1134 */
1135 if (keepsyms)
1136 panic_print_symbol_name((vm_address_t)frame->caller);
1137
1138 kdb_printf("\n");
1139
1140 frame = frame->prev;
1141 }
1142
1143 if (frame_index >= nframes)
1144 kdb_printf("\tBacktrace continues...\n");
1145
1146 goto out;
1147
1148 invalid:
1149 kdb_printf("Backtrace terminated-invalid frame pointer %p\n",frame);
1150 out:
1151
1152 /* Identify kernel modules in the backtrace and display their
1153 * load addresses and dependencies. This routine should walk
1154 * the kmod list safely.
1155 */
1156 if (frame_index)
1157 kmod_panic_dump((vm_offset_t *)&raddrs[0], frame_index);
1158
1159 if (PC != 0)
1160 kmod_panic_dump(&PC, 1);
1161
1162 panic_display_system_configuration();
1163
1164 /* Release print backtrace lock, to permit other callers in the
1165 * event of panics on multiple processors.
1166 */
1167 hw_lock_unlock(&pbtlock);
1168 hw_atomic_sub(&pbtcnt, 1);
1169 /* Wait for other processors to complete output
1170 * Timeout and continue after PBT_TIMEOUT_CYCLES.
1171 */
1172 bt_tsc_timeout = rdtsc64() + PBT_TIMEOUT_CYCLES;
1173 while(*ppbtcnt && (rdtsc64() < bt_tsc_timeout));
1174 }