]>
Commit | Line | Data |
---|---|---|
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 | #if NOTYET | |
221 | ml_thrm_init(); /* Start thermal monitoring on this processor */ | |
222 | #endif | |
223 | ||
224 | /* | |
225 | * Start the system. | |
226 | */ | |
227 | kernel_bootstrap(); | |
228 | /*NOTREACHED*/ | |
229 | } | |
230 | ||
231 | ||
232 | static void | |
233 | machine_conf(void) | |
234 | { | |
235 | machine_info.memory_size = (typeof(machine_info.memory_size))mem_size; | |
236 | } | |
237 | ||
238 | ||
239 | extern void *gPEEFIRuntimeServices; | |
240 | extern void *gPEEFISystemTable; | |
241 | ||
242 | /*- | |
243 | * COPYRIGHT (C) 1986 Gary S. Brown. You may use this program, or | |
244 | * code or tables extracted from it, as desired without restriction. | |
245 | * | |
246 | * First, the polynomial itself and its table of feedback terms. The | |
247 | * polynomial is | |
248 | * 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 | |
249 | * | |
250 | * Note that we take it "backwards" and put the highest-order term in | |
251 | * the lowest-order bit. The X^32 term is "implied"; the LSB is the | |
252 | * X^31 term, etc. The X^0 term (usually shown as "+1") results in | |
253 | * the MSB being 1 | |
254 | * | |
255 | * Note that the usual hardware shift register implementation, which | |
256 | * is what we're using (we're merely optimizing it by doing eight-bit | |
257 | * chunks at a time) shifts bits into the lowest-order term. In our | |
258 | * implementation, that means shifting towards the right. Why do we | |
259 | * do it this way? Because the calculated CRC must be transmitted in | |
260 | * order from highest-order term to lowest-order term. UARTs transmit | |
261 | * characters in order from LSB to MSB. By storing the CRC this way | |
262 | * we hand it to the UART in the order low-byte to high-byte; the UART | |
263 | * sends each low-bit to hight-bit; and the result is transmission bit | |
264 | * by bit from highest- to lowest-order term without requiring any bit | |
265 | * shuffling on our part. Reception works similarly | |
266 | * | |
267 | * The feedback terms table consists of 256, 32-bit entries. Notes | |
268 | * | |
269 | * The table can be generated at runtime if desired; code to do so | |
270 | * is shown later. It might not be obvious, but the feedback | |
271 | * terms simply represent the results of eight shift/xor opera | |
272 | * tions for all combinations of data and CRC register values | |
273 | * | |
274 | * The values must be right-shifted by eight bits by the "updcrc | |
275 | * logic; the shift must be unsigned (bring in zeroes). On some | |
276 | * hardware you could probably optimize the shift in assembler by | |
277 | * using byte-swap instructions | |
278 | * polynomial $edb88320 | |
279 | * | |
280 | * | |
281 | * CRC32 code derived from work by Gary S. Brown. | |
282 | */ | |
283 | ||
284 | static uint32_t crc32_tab[] = { | |
285 | 0x00000000, 0x77073096, 0xee0e612c, 0x990951ba, 0x076dc419, 0x706af48f, | |
286 | 0xe963a535, 0x9e6495a3, 0x0edb8832, 0x79dcb8a4, 0xe0d5e91e, 0x97d2d988, | |
287 | 0x09b64c2b, 0x7eb17cbd, 0xe7b82d07, 0x90bf1d91, 0x1db71064, 0x6ab020f2, | |
288 | 0xf3b97148, 0x84be41de, 0x1adad47d, 0x6ddde4eb, 0xf4d4b551, 0x83d385c7, | |
289 | 0x136c9856, 0x646ba8c0, 0xfd62f97a, 0x8a65c9ec, 0x14015c4f, 0x63066cd9, | |
290 | 0xfa0f3d63, 0x8d080df5, 0x3b6e20c8, 0x4c69105e, 0xd56041e4, 0xa2677172, | |
291 | 0x3c03e4d1, 0x4b04d447, 0xd20d85fd, 0xa50ab56b, 0x35b5a8fa, 0x42b2986c, | |
292 | 0xdbbbc9d6, 0xacbcf940, 0x32d86ce3, 0x45df5c75, 0xdcd60dcf, 0xabd13d59, | |
293 | 0x26d930ac, 0x51de003a, 0xc8d75180, 0xbfd06116, 0x21b4f4b5, 0x56b3c423, | |
294 | 0xcfba9599, 0xb8bda50f, 0x2802b89e, 0x5f058808, 0xc60cd9b2, 0xb10be924, | |
295 | 0x2f6f7c87, 0x58684c11, 0xc1611dab, 0xb6662d3d, 0x76dc4190, 0x01db7106, | |
296 | 0x98d220bc, 0xefd5102a, 0x71b18589, 0x06b6b51f, 0x9fbfe4a5, 0xe8b8d433, | |
297 | 0x7807c9a2, 0x0f00f934, 0x9609a88e, 0xe10e9818, 0x7f6a0dbb, 0x086d3d2d, | |
298 | 0x91646c97, 0xe6635c01, 0x6b6b51f4, 0x1c6c6162, 0x856530d8, 0xf262004e, | |
299 | 0x6c0695ed, 0x1b01a57b, 0x8208f4c1, 0xf50fc457, 0x65b0d9c6, 0x12b7e950, | |
300 | 0x8bbeb8ea, 0xfcb9887c, 0x62dd1ddf, 0x15da2d49, 0x8cd37cf3, 0xfbd44c65, | |
301 | 0x4db26158, 0x3ab551ce, 0xa3bc0074, 0xd4bb30e2, 0x4adfa541, 0x3dd895d7, | |
302 | 0xa4d1c46d, 0xd3d6f4fb, 0x4369e96a, 0x346ed9fc, 0xad678846, 0xda60b8d0, | |
303 | 0x44042d73, 0x33031de5, 0xaa0a4c5f, 0xdd0d7cc9, 0x5005713c, 0x270241aa, | |
304 | 0xbe0b1010, 0xc90c2086, 0x5768b525, 0x206f85b3, 0xb966d409, 0xce61e49f, | |
305 | 0x5edef90e, 0x29d9c998, 0xb0d09822, 0xc7d7a8b4, 0x59b33d17, 0x2eb40d81, | |
306 | 0xb7bd5c3b, 0xc0ba6cad, 0xedb88320, 0x9abfb3b6, 0x03b6e20c, 0x74b1d29a, | |
307 | 0xead54739, 0x9dd277af, 0x04db2615, 0x73dc1683, 0xe3630b12, 0x94643b84, | |
308 | 0x0d6d6a3e, 0x7a6a5aa8, 0xe40ecf0b, 0x9309ff9d, 0x0a00ae27, 0x7d079eb1, | |
309 | 0xf00f9344, 0x8708a3d2, 0x1e01f268, 0x6906c2fe, 0xf762575d, 0x806567cb, | |
310 | 0x196c3671, 0x6e6b06e7, 0xfed41b76, 0x89d32be0, 0x10da7a5a, 0x67dd4acc, | |
311 | 0xf9b9df6f, 0x8ebeeff9, 0x17b7be43, 0x60b08ed5, 0xd6d6a3e8, 0xa1d1937e, | |
312 | 0x38d8c2c4, 0x4fdff252, 0xd1bb67f1, 0xa6bc5767, 0x3fb506dd, 0x48b2364b, | |
313 | 0xd80d2bda, 0xaf0a1b4c, 0x36034af6, 0x41047a60, 0xdf60efc3, 0xa867df55, | |
314 | 0x316e8eef, 0x4669be79, 0xcb61b38c, 0xbc66831a, 0x256fd2a0, 0x5268e236, | |
315 | 0xcc0c7795, 0xbb0b4703, 0x220216b9, 0x5505262f, 0xc5ba3bbe, 0xb2bd0b28, | |
316 | 0x2bb45a92, 0x5cb36a04, 0xc2d7ffa7, 0xb5d0cf31, 0x2cd99e8b, 0x5bdeae1d, | |
317 | 0x9b64c2b0, 0xec63f226, 0x756aa39c, 0x026d930a, 0x9c0906a9, 0xeb0e363f, | |
318 | 0x72076785, 0x05005713, 0x95bf4a82, 0xe2b87a14, 0x7bb12bae, 0x0cb61b38, | |
319 | 0x92d28e9b, 0xe5d5be0d, 0x7cdcefb7, 0x0bdbdf21, 0x86d3d2d4, 0xf1d4e242, | |
320 | 0x68ddb3f8, 0x1fda836e, 0x81be16cd, 0xf6b9265b, 0x6fb077e1, 0x18b74777, | |
321 | 0x88085ae6, 0xff0f6a70, 0x66063bca, 0x11010b5c, 0x8f659eff, 0xf862ae69, | |
322 | 0x616bffd3, 0x166ccf45, 0xa00ae278, 0xd70dd2ee, 0x4e048354, 0x3903b3c2, | |
323 | 0xa7672661, 0xd06016f7, 0x4969474d, 0x3e6e77db, 0xaed16a4a, 0xd9d65adc, | |
324 | 0x40df0b66, 0x37d83bf0, 0xa9bcae53, 0xdebb9ec5, 0x47b2cf7f, 0x30b5ffe9, | |
325 | 0xbdbdf21c, 0xcabac28a, 0x53b39330, 0x24b4a3a6, 0xbad03605, 0xcdd70693, | |
326 | 0x54de5729, 0x23d967bf, 0xb3667a2e, 0xc4614ab8, 0x5d681b02, 0x2a6f2b94, | |
327 | 0xb40bbe37, 0xc30c8ea1, 0x5a05df1b, 0x2d02ef8d | |
328 | }; | |
329 | ||
330 | static uint32_t | |
331 | crc32(uint32_t crc, const void *buf, size_t size) | |
332 | { | |
333 | const uint8_t *p; | |
334 | ||
335 | p = buf; | |
336 | crc = crc ^ ~0U; | |
337 | ||
338 | while (size--) | |
339 | crc = crc32_tab[(crc ^ *p++) & 0xFF] ^ (crc >> 8); | |
340 | ||
341 | return crc ^ ~0U; | |
342 | } | |
343 | ||
344 | static void | |
345 | efi_set_tables_64(EFI_SYSTEM_TABLE_64 * system_table) | |
346 | { | |
347 | EFI_RUNTIME_SERVICES_64 *runtime; | |
348 | uint32_t hdr_cksum; | |
349 | uint32_t cksum; | |
350 | ||
351 | DPRINTF("Processing 64-bit EFI tables at %p\n", system_table); | |
352 | do { | |
353 | DPRINTF("Header:\n"); | |
354 | DPRINTF(" Signature: 0x%016llx\n", system_table->Hdr.Signature); | |
355 | DPRINTF(" Revision: 0x%08x\n", system_table->Hdr.Revision); | |
356 | DPRINTF(" HeaderSize: 0x%08x\n", system_table->Hdr.HeaderSize); | |
357 | DPRINTF(" CRC32: 0x%08x\n", system_table->Hdr.CRC32); | |
358 | DPRINTF("RuntimeServices: 0x%016llx\n", system_table->RuntimeServices); | |
359 | if (system_table->Hdr.Signature != EFI_SYSTEM_TABLE_SIGNATURE) { | |
360 | kprintf("Bad EFI system table signature\n"); | |
361 | break; | |
362 | } | |
363 | // Verify signature of the system table | |
364 | hdr_cksum = system_table->Hdr.CRC32; | |
365 | system_table->Hdr.CRC32 = 0; | |
366 | cksum = crc32(0L, system_table, system_table->Hdr.HeaderSize); | |
367 | ||
368 | DPRINTF("System table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum); | |
369 | system_table->Hdr.CRC32 = hdr_cksum; | |
370 | if (cksum != hdr_cksum) { | |
371 | kprintf("Bad EFI system table checksum\n"); | |
372 | break; | |
373 | } | |
374 | ||
375 | gPEEFISystemTable = system_table; | |
376 | ||
377 | if (!cpu_mode_is64bit()) { | |
378 | kprintf("Skipping 64-bit EFI runtime services for 32-bit legacy mode\n"); | |
379 | break; | |
380 | } | |
381 | ||
382 | if(system_table->RuntimeServices == 0) { | |
383 | kprintf("No runtime table present\n"); | |
384 | break; | |
385 | } | |
386 | DPRINTF("RuntimeServices table at 0x%qx\n", system_table->RuntimeServices); | |
387 | // 64-bit virtual address is OK for 64-bit EFI and 64/32-bit kernel. | |
388 | runtime = (EFI_RUNTIME_SERVICES_64 *) (uintptr_t)system_table->RuntimeServices; | |
389 | DPRINTF("Checking runtime services table %p\n", runtime); | |
390 | if (runtime->Hdr.Signature != EFI_RUNTIME_SERVICES_SIGNATURE) { | |
391 | kprintf("Bad EFI runtime table signature\n"); | |
392 | break; | |
393 | } | |
394 | ||
395 | // Verify signature of runtime services table | |
396 | hdr_cksum = runtime->Hdr.CRC32; | |
397 | runtime->Hdr.CRC32 = 0; | |
398 | cksum = crc32(0L, runtime, runtime->Hdr.HeaderSize); | |
399 | ||
400 | DPRINTF("Runtime table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum); | |
401 | runtime->Hdr.CRC32 = hdr_cksum; | |
402 | if (cksum != hdr_cksum) { | |
403 | kprintf("Bad EFI runtime table checksum\n"); | |
404 | break; | |
405 | } | |
406 | ||
407 | gPEEFIRuntimeServices = runtime; | |
408 | } | |
409 | while (FALSE); | |
410 | } | |
411 | ||
412 | static void | |
413 | efi_set_tables_32(EFI_SYSTEM_TABLE_32 * system_table) | |
414 | { | |
415 | EFI_RUNTIME_SERVICES_32 *runtime; | |
416 | uint32_t hdr_cksum; | |
417 | uint32_t cksum; | |
418 | ||
419 | DPRINTF("Processing 32-bit EFI tables at %p\n", system_table); | |
420 | do { | |
421 | DPRINTF("Header:\n"); | |
422 | DPRINTF(" Signature: 0x%016llx\n", system_table->Hdr.Signature); | |
423 | DPRINTF(" Revision: 0x%08x\n", system_table->Hdr.Revision); | |
424 | DPRINTF(" HeaderSize: 0x%08x\n", system_table->Hdr.HeaderSize); | |
425 | DPRINTF(" CRC32: 0x%08x\n", system_table->Hdr.CRC32); | |
426 | DPRINTF("RuntimeServices: 0x%08x\n", system_table->RuntimeServices); | |
427 | if (system_table->Hdr.Signature != EFI_SYSTEM_TABLE_SIGNATURE) { | |
428 | kprintf("Bad EFI system table signature\n"); | |
429 | break; | |
430 | } | |
431 | // Verify signature of the system table | |
432 | hdr_cksum = system_table->Hdr.CRC32; | |
433 | system_table->Hdr.CRC32 = 0; | |
434 | DPRINTF("System table at %p HeaderSize 0x%x\n", system_table, system_table->Hdr.HeaderSize); | |
435 | cksum = crc32(0L, system_table, system_table->Hdr.HeaderSize); | |
436 | ||
437 | DPRINTF("System table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum); | |
438 | system_table->Hdr.CRC32 = hdr_cksum; | |
439 | if (cksum != hdr_cksum) { | |
440 | kprintf("Bad EFI system table checksum\n"); | |
441 | break; | |
442 | } | |
443 | ||
444 | gPEEFISystemTable = system_table; | |
445 | ||
446 | if(system_table->RuntimeServices == 0) { | |
447 | kprintf("No runtime table present\n"); | |
448 | break; | |
449 | } | |
450 | DPRINTF("RuntimeServices table at 0x%x\n", system_table->RuntimeServices); | |
451 | // 32-bit virtual address is OK for 32-bit EFI and 32-bit kernel. | |
452 | // For a 64-bit kernel, booter provides a virtual address mod 4G | |
453 | runtime = (EFI_RUNTIME_SERVICES_32 *) | |
454 | #ifdef __x86_64__ | |
455 | (system_table->RuntimeServices | VM_MIN_KERNEL_ADDRESS); | |
456 | #else | |
457 | system_table->RuntimeServices; | |
458 | #endif | |
459 | DPRINTF("Runtime table addressed at %p\n", runtime); | |
460 | if (runtime->Hdr.Signature != EFI_RUNTIME_SERVICES_SIGNATURE) { | |
461 | kprintf("Bad EFI runtime table signature\n"); | |
462 | break; | |
463 | } | |
464 | ||
465 | // Verify signature of runtime services table | |
466 | hdr_cksum = runtime->Hdr.CRC32; | |
467 | runtime->Hdr.CRC32 = 0; | |
468 | cksum = crc32(0L, runtime, runtime->Hdr.HeaderSize); | |
469 | ||
470 | DPRINTF("Runtime table calculated CRC32 = 0x%x, header = 0x%x\n", cksum, hdr_cksum); | |
471 | runtime->Hdr.CRC32 = hdr_cksum; | |
472 | if (cksum != hdr_cksum) { | |
473 | kprintf("Bad EFI runtime table checksum\n"); | |
474 | break; | |
475 | } | |
476 | ||
477 | DPRINTF("Runtime functions\n"); | |
478 | DPRINTF(" GetTime : 0x%x\n", runtime->GetTime); | |
479 | DPRINTF(" SetTime : 0x%x\n", runtime->SetTime); | |
480 | DPRINTF(" GetWakeupTime : 0x%x\n", runtime->GetWakeupTime); | |
481 | DPRINTF(" SetWakeupTime : 0x%x\n", runtime->SetWakeupTime); | |
482 | DPRINTF(" SetVirtualAddressMap : 0x%x\n", runtime->SetVirtualAddressMap); | |
483 | DPRINTF(" ConvertPointer : 0x%x\n", runtime->ConvertPointer); | |
484 | DPRINTF(" GetVariable : 0x%x\n", runtime->GetVariable); | |
485 | DPRINTF(" GetNextVariableName : 0x%x\n", runtime->GetNextVariableName); | |
486 | DPRINTF(" SetVariable : 0x%x\n", runtime->SetVariable); | |
487 | DPRINTF(" GetNextHighMonotonicCount: 0x%x\n", runtime->GetNextHighMonotonicCount); | |
488 | DPRINTF(" ResetSystem : 0x%x\n", runtime->ResetSystem); | |
489 | ||
490 | gPEEFIRuntimeServices = runtime; | |
491 | } | |
492 | while (FALSE); | |
493 | } | |
494 | ||
495 | ||
496 | /* Map in EFI runtime areas. */ | |
497 | static void | |
498 | efi_init(void) | |
499 | { | |
500 | boot_args *args = (boot_args *)PE_state.bootArgs; | |
501 | ||
502 | kprintf("Initializing EFI runtime services\n"); | |
503 | ||
504 | do | |
505 | { | |
506 | vm_offset_t vm_size, vm_addr; | |
507 | vm_map_offset_t phys_addr; | |
508 | EfiMemoryRange *mptr; | |
509 | unsigned int msize, mcount; | |
510 | unsigned int i; | |
511 | ||
512 | msize = args->MemoryMapDescriptorSize; | |
513 | mcount = args->MemoryMapSize / msize; | |
514 | ||
515 | DPRINTF("efi_init() kernel base: 0x%x size: 0x%x\n", | |
516 | args->kaddr, args->ksize); | |
517 | DPRINTF(" efiSystemTable physical: 0x%x virtual: %p\n", | |
518 | args->efiSystemTable, | |
519 | (void *) ml_static_ptovirt(args->efiSystemTable)); | |
520 | DPRINTF(" efiRuntimeServicesPageStart: 0x%x\n", | |
521 | args->efiRuntimeServicesPageStart); | |
522 | DPRINTF(" efiRuntimeServicesPageCount: 0x%x\n", | |
523 | args->efiRuntimeServicesPageCount); | |
524 | DPRINTF(" efiRuntimeServicesVirtualPageStart: 0x%016llx\n", | |
525 | args->efiRuntimeServicesVirtualPageStart); | |
526 | mptr = (EfiMemoryRange *)ml_static_ptovirt(args->MemoryMap); | |
527 | for (i=0; i < mcount; i++, mptr = (EfiMemoryRange *)(((vm_offset_t)mptr) + msize)) { | |
528 | if (((mptr->Attribute & EFI_MEMORY_RUNTIME) == EFI_MEMORY_RUNTIME) ) { | |
529 | vm_size = (vm_offset_t)i386_ptob((uint32_t)mptr->NumberOfPages); | |
530 | vm_addr = (vm_offset_t) mptr->VirtualStart; | |
531 | #ifdef __x86_64__ | |
532 | /* For K64 on EFI32, shadow-map into high KVA */ | |
533 | if (vm_addr < VM_MIN_KERNEL_ADDRESS) | |
534 | vm_addr |= VM_MIN_KERNEL_ADDRESS; | |
535 | #endif | |
536 | phys_addr = (vm_map_offset_t) mptr->PhysicalStart; | |
537 | DPRINTF(" Type: %x phys: %p EFIv: %p kv: %p size: %p\n", | |
538 | mptr->Type, | |
539 | (void *) (uintptr_t) phys_addr, | |
540 | (void *) (uintptr_t) mptr->VirtualStart, | |
541 | (void *) vm_addr, | |
542 | (void *) vm_size); | |
543 | pmap_map_bd(vm_addr, phys_addr, phys_addr + round_page(vm_size), | |
544 | (mptr->Type == kEfiRuntimeServicesCode) ? VM_PROT_READ | VM_PROT_EXECUTE : VM_PROT_READ|VM_PROT_WRITE, | |
545 | (mptr->Type == EfiMemoryMappedIO) ? VM_WIMG_IO : VM_WIMG_USE_DEFAULT); | |
546 | } | |
547 | } | |
548 | ||
549 | if (args->Version != kBootArgsVersion2) | |
550 | panic("Incompatible boot args version %d revision %d\n", args->Version, args->Revision); | |
551 | ||
552 | DPRINTF("Boot args version %d revision %d mode %d\n", args->Version, args->Revision, args->efiMode); | |
553 | if (args->efiMode == kBootArgsEfiMode64) { | |
554 | efi_set_tables_64((EFI_SYSTEM_TABLE_64 *) ml_static_ptovirt(args->efiSystemTable)); | |
555 | } else { | |
556 | efi_set_tables_32((EFI_SYSTEM_TABLE_32 *) ml_static_ptovirt(args->efiSystemTable)); | |
557 | } | |
558 | } | |
559 | while (FALSE); | |
560 | ||
561 | return; | |
562 | } | |
563 | ||
564 | /* Remap EFI runtime areas. */ | |
565 | void | |
566 | hibernate_newruntime_map(void * map, vm_size_t map_size, uint32_t system_table_offset) | |
567 | { | |
568 | boot_args *args = (boot_args *)PE_state.bootArgs; | |
569 | ||
570 | kprintf("Reinitializing EFI runtime services\n"); | |
571 | ||
572 | do | |
573 | { | |
574 | vm_offset_t vm_size, vm_addr; | |
575 | vm_map_offset_t phys_addr; | |
576 | EfiMemoryRange *mptr; | |
577 | unsigned int msize, mcount; | |
578 | unsigned int i; | |
579 | ||
580 | gPEEFISystemTable = 0; | |
581 | gPEEFIRuntimeServices = 0; | |
582 | ||
583 | system_table_offset += ptoa_32(args->efiRuntimeServicesPageStart); | |
584 | ||
585 | kprintf("Old system table 0x%x, new 0x%x\n", | |
586 | (uint32_t)args->efiSystemTable, system_table_offset); | |
587 | ||
588 | args->efiSystemTable = system_table_offset; | |
589 | ||
590 | kprintf("Old map:\n"); | |
591 | msize = args->MemoryMapDescriptorSize; | |
592 | mcount = args->MemoryMapSize / msize; | |
593 | mptr = (EfiMemoryRange *)ml_static_ptovirt(args->MemoryMap); | |
594 | for (i=0; i < mcount; i++, mptr = (EfiMemoryRange *)(((vm_offset_t)mptr) + msize)) { | |
595 | if ((mptr->Attribute & EFI_MEMORY_RUNTIME) == EFI_MEMORY_RUNTIME) { | |
596 | ||
597 | vm_size = (vm_offset_t)i386_ptob((uint32_t)mptr->NumberOfPages); | |
598 | vm_addr = (vm_offset_t) mptr->VirtualStart; | |
599 | #ifdef __x86_64__ | |
600 | /* K64 on EFI32 */ | |
601 | if (vm_addr < VM_MIN_KERNEL_ADDRESS) | |
602 | vm_addr |= VM_MIN_KERNEL_ADDRESS; | |
603 | #endif | |
604 | phys_addr = (vm_map_offset_t) mptr->PhysicalStart; | |
605 | ||
606 | kprintf("mapping[%u] %qx @ %lx, %llu\n", mptr->Type, phys_addr, (unsigned long)vm_addr, mptr->NumberOfPages); | |
607 | } | |
608 | } | |
609 | ||
610 | pmap_remove(kernel_pmap, i386_ptob(args->efiRuntimeServicesPageStart), | |
611 | i386_ptob(args->efiRuntimeServicesPageStart + args->efiRuntimeServicesPageCount)); | |
612 | ||
613 | kprintf("New map:\n"); | |
614 | msize = args->MemoryMapDescriptorSize; | |
615 | mcount = (unsigned int )(map_size / msize); | |
616 | mptr = map; | |
617 | for (i=0; i < mcount; i++, mptr = (EfiMemoryRange *)(((vm_offset_t)mptr) + msize)) { | |
618 | if ((mptr->Attribute & EFI_MEMORY_RUNTIME) == EFI_MEMORY_RUNTIME) { | |
619 | ||
620 | vm_size = (vm_offset_t)i386_ptob((uint32_t)mptr->NumberOfPages); | |
621 | vm_addr = (vm_offset_t) mptr->VirtualStart; | |
622 | #ifdef __x86_64__ | |
623 | if (vm_addr < VM_MIN_KERNEL_ADDRESS) | |
624 | vm_addr |= VM_MIN_KERNEL_ADDRESS; | |
625 | #endif | |
626 | phys_addr = (vm_map_offset_t) mptr->PhysicalStart; | |
627 | ||
628 | kprintf("mapping[%u] %qx @ %lx, %llu\n", mptr->Type, phys_addr, (unsigned long)vm_addr, mptr->NumberOfPages); | |
629 | ||
630 | pmap_map(vm_addr, phys_addr, phys_addr + round_page(vm_size), | |
631 | (mptr->Type == kEfiRuntimeServicesCode) ? VM_PROT_READ | VM_PROT_EXECUTE : VM_PROT_READ|VM_PROT_WRITE, | |
632 | (mptr->Type == EfiMemoryMappedIO) ? VM_WIMG_IO : VM_WIMG_USE_DEFAULT); | |
633 | } | |
634 | } | |
635 | ||
636 | if (args->Version != kBootArgsVersion2) | |
637 | panic("Incompatible boot args version %d revision %d\n", args->Version, args->Revision); | |
638 | ||
639 | kprintf("Boot args version %d revision %d mode %d\n", args->Version, args->Revision, args->efiMode); | |
640 | if (args->efiMode == kBootArgsEfiMode64) { | |
641 | efi_set_tables_64((EFI_SYSTEM_TABLE_64 *) ml_static_ptovirt(args->efiSystemTable)); | |
642 | } else { | |
643 | efi_set_tables_32((EFI_SYSTEM_TABLE_32 *) ml_static_ptovirt(args->efiSystemTable)); | |
644 | } | |
645 | } | |
646 | while (FALSE); | |
647 | ||
648 | kprintf("Done reinitializing EFI runtime services\n"); | |
649 | ||
650 | return; | |
651 | } | |
652 | ||
653 | /* | |
654 | * Find devices. The system is alive. | |
655 | */ | |
656 | void | |
657 | machine_init(void) | |
658 | { | |
659 | #if __x86_64__ | |
660 | /* Now with VM up, switch to dynamically allocated cpu data */ | |
661 | cpu_data_realloc(); | |
662 | #endif | |
663 | ||
664 | /* Ensure panic buffer is initialized. */ | |
665 | debug_log_init(); | |
666 | ||
667 | /* | |
668 | * Display CPU identification | |
669 | */ | |
670 | cpuid_cpu_display("CPU identification"); | |
671 | cpuid_feature_display("CPU features"); | |
672 | cpuid_extfeature_display("CPU extended features"); | |
673 | ||
674 | /* | |
675 | * Initialize EFI runtime services. | |
676 | */ | |
677 | efi_init(); | |
678 | ||
679 | smp_init(); | |
680 | ||
681 | /* | |
682 | * Set up to use floating point. | |
683 | */ | |
684 | init_fpu(); | |
685 | ||
686 | /* | |
687 | * Configure clock devices. | |
688 | */ | |
689 | clock_config(); | |
690 | ||
691 | #if CONFIG_MTRR | |
692 | /* | |
693 | * Initialize MTRR from boot processor. | |
694 | */ | |
695 | mtrr_init(); | |
696 | ||
697 | /* | |
698 | * Set up PAT for boot processor. | |
699 | */ | |
700 | pat_init(); | |
701 | #endif | |
702 | ||
703 | /* | |
704 | * Free lowmem pages and complete other setup | |
705 | */ | |
706 | pmap_lowmem_finalize(); | |
707 | } | |
708 | ||
709 | /* | |
710 | * Halt a cpu. | |
711 | */ | |
712 | void | |
713 | halt_cpu(void) | |
714 | { | |
715 | halt_all_cpus(FALSE); | |
716 | } | |
717 | ||
718 | int reset_mem_on_reboot = 1; | |
719 | ||
720 | /* | |
721 | * Halt the system or reboot. | |
722 | */ | |
723 | void | |
724 | halt_all_cpus(boolean_t reboot) | |
725 | { | |
726 | if (reboot) { | |
727 | printf("MACH Reboot\n"); | |
728 | PEHaltRestart( kPERestartCPU ); | |
729 | } else { | |
730 | printf("CPU halted\n"); | |
731 | PEHaltRestart( kPEHaltCPU ); | |
732 | } | |
733 | while(1); | |
734 | } | |
735 | ||
736 | ||
737 | /* Issue an I/O port read if one has been requested - this is an event logic | |
738 | * analyzers can use as a trigger point. | |
739 | */ | |
740 | ||
741 | void | |
742 | panic_io_port_read(void) { | |
743 | if (panic_io_port) | |
744 | (void)inb(panic_io_port); | |
745 | } | |
746 | ||
747 | /* For use with the MP rendezvous mechanism | |
748 | */ | |
749 | ||
750 | uint64_t panic_restart_timeout = ~(0ULL); | |
751 | ||
752 | #define PANIC_RESTART_TIMEOUT (3ULL * NSEC_PER_SEC) | |
753 | ||
754 | static void | |
755 | machine_halt_cpu(void) { | |
756 | uint64_t deadline; | |
757 | ||
758 | panic_io_port_read(); | |
759 | ||
760 | /* Halt here forever if we're not rebooting */ | |
761 | if (!PE_reboot_on_panic() && panic_restart_timeout == ~(0ULL)) { | |
762 | pmCPUHalt(PM_HALT_DEBUG); | |
763 | return; | |
764 | } | |
765 | ||
766 | if (PE_reboot_on_panic()) | |
767 | deadline = mach_absolute_time() + PANIC_RESTART_TIMEOUT; | |
768 | else | |
769 | deadline = mach_absolute_time() + panic_restart_timeout; | |
770 | ||
771 | while (mach_absolute_time() < deadline) | |
772 | cpu_pause(); | |
773 | ||
774 | kprintf("Invoking PE_halt_restart\n"); | |
775 | /* Attempt restart via ACPI RESET_REG; at the time of this | |
776 | * writing, this is routine is chained through AppleSMC-> | |
777 | * AppleACPIPlatform | |
778 | */ | |
779 | if (PE_halt_restart) | |
780 | (*PE_halt_restart)(kPERestartCPU); | |
781 | pmCPUHalt(PM_HALT_DEBUG); | |
782 | } | |
783 | ||
784 | void | |
785 | DebuggerWithContext( | |
786 | __unused unsigned int reason, | |
787 | __unused void *ctx, | |
788 | const char *message) | |
789 | { | |
790 | Debugger(message); | |
791 | } | |
792 | ||
793 | void | |
794 | Debugger( | |
795 | const char *message) | |
796 | { | |
797 | unsigned long pi_size = 0; | |
798 | void *stackptr; | |
799 | int cn = cpu_number(); | |
800 | ||
801 | hw_atomic_add(&debug_mode, 1); | |
802 | if (!panic_is_inited) { | |
803 | postcode(PANIC_HLT); | |
804 | asm("hlt"); | |
805 | } | |
806 | ||
807 | printf("Debugger called: <%s>\n", message); | |
808 | kprintf("Debugger called: <%s>\n", message); | |
809 | ||
810 | /* | |
811 | * Skip the graphical panic box if no panic string. | |
812 | * This is the case if we're being called from | |
813 | * host_reboot(,HOST_REBOOT_DEBUGGER) | |
814 | * as a quiet way into the debugger. | |
815 | */ | |
816 | ||
817 | if (panicstr) { | |
818 | disable_preemption(); | |
819 | ||
820 | /* Issue an I/O port read if one has been requested - this is an event logic | |
821 | * analyzers can use as a trigger point. | |
822 | */ | |
823 | panic_io_port_read(); | |
824 | ||
825 | /* Obtain current frame pointer */ | |
826 | #if defined (__i386__) | |
827 | __asm__ volatile("movl %%ebp, %0" : "=m" (stackptr)); | |
828 | #elif defined (__x86_64__) | |
829 | __asm__ volatile("movq %%rbp, %0" : "=m" (stackptr)); | |
830 | #endif | |
831 | ||
832 | /* Print backtrace - callee is internally synchronized */ | |
833 | panic_i386_backtrace(stackptr, ((panic_double_fault_cpu == cn) ? 80: 48), NULL, FALSE, NULL); | |
834 | ||
835 | /* everything should be printed now so copy to NVRAM | |
836 | */ | |
837 | ||
838 | if( debug_buf_size > 0) { | |
839 | /* Optionally sync the panic log, if any, to NVRAM | |
840 | * This is the default. | |
841 | */ | |
842 | if (commit_paniclog_to_nvram) { | |
843 | unsigned int bufpos; | |
844 | uintptr_t cr0; | |
845 | ||
846 | debug_putc(0); | |
847 | ||
848 | /* Now call the compressor */ | |
849 | /* XXX Consider using the WKdm compressor in the | |
850 | * future, rather than just packing - would need to | |
851 | * be co-ordinated with crashreporter, which decodes | |
852 | * this post-restart. The compressor should be | |
853 | * capable of in-place compression. | |
854 | */ | |
855 | bufpos = packA(debug_buf, | |
856 | (unsigned int) (debug_buf_ptr - debug_buf), debug_buf_size); | |
857 | /* If compression was successful, | |
858 | * use the compressed length | |
859 | */ | |
860 | pi_size = bufpos ? bufpos : (unsigned) (debug_buf_ptr - debug_buf); | |
861 | ||
862 | /* Save panic log to non-volatile store | |
863 | * Panic info handler must truncate data that is | |
864 | * too long for this platform. | |
865 | * This call must save data synchronously, | |
866 | * since we can subsequently halt the system. | |
867 | */ | |
868 | ||
869 | ||
870 | /* The following sequence is a workaround for: | |
871 | * <rdar://problem/5915669> SnowLeopard10A67: AppleEFINVRAM should not invoke | |
872 | * any routines that use floating point (MMX in this case) when saving panic | |
873 | * logs to nvram/flash. | |
874 | */ | |
875 | cr0 = get_cr0(); | |
876 | clear_ts(); | |
877 | ||
878 | kprintf("Attempting to commit panic log to NVRAM\n"); | |
879 | pi_size = PESavePanicInfo((unsigned char *)debug_buf, | |
880 | (uint32_t)pi_size ); | |
881 | set_cr0(cr0); | |
882 | ||
883 | /* Uncompress in-place, to permit examination of | |
884 | * the panic log by debuggers. | |
885 | */ | |
886 | ||
887 | if (bufpos) { | |
888 | unpackA(debug_buf, bufpos); | |
889 | } | |
890 | } | |
891 | } | |
892 | ||
893 | /* If the user won't be able to read the dialog, | |
894 | * don't bother trying to show it | |
895 | */ | |
896 | if (!PE_reboot_on_panic()) | |
897 | draw_panic_dialog(); | |
898 | ||
899 | if (!panicDebugging) { | |
900 | unsigned cnum; | |
901 | /* Clear the MP rendezvous function lock, in the event | |
902 | * that a panic occurred while in that codepath. | |
903 | */ | |
904 | mp_rendezvous_break_lock(); | |
905 | ||
906 | /* Non-maskably interrupt all other processors | |
907 | * If a restart timeout is specified, this processor | |
908 | * will attempt a restart. | |
909 | */ | |
910 | kprintf("Invoking machine_halt_cpu on CPU %d\n", cn); | |
911 | for (cnum = 0; cnum < real_ncpus; cnum++) { | |
912 | if (cnum != (unsigned) cn) { | |
913 | cpu_NMI_interrupt(cnum); | |
914 | } | |
915 | } | |
916 | machine_halt_cpu(); | |
917 | /* NOT REACHED */ | |
918 | } | |
919 | } | |
920 | ||
921 | __asm__("int3"); | |
922 | hw_atomic_sub(&debug_mode, 1); | |
923 | } | |
924 | ||
925 | char * | |
926 | machine_boot_info(char *buf, __unused vm_size_t size) | |
927 | { | |
928 | *buf ='\0'; | |
929 | return buf; | |
930 | } | |
931 | ||
932 | /* Routines for address - symbol translation. Not called unless the "keepsyms" | |
933 | * boot-arg is supplied. | |
934 | */ | |
935 | ||
936 | static int | |
937 | panic_print_macho_symbol_name(kernel_mach_header_t *mh, vm_address_t search, const char *module_name) | |
938 | { | |
939 | kernel_nlist_t *sym = NULL; | |
940 | struct load_command *cmd; | |
941 | kernel_segment_command_t *orig_ts = NULL, *orig_le = NULL; | |
942 | struct symtab_command *orig_st = NULL; | |
943 | unsigned int i; | |
944 | char *strings, *bestsym = NULL; | |
945 | vm_address_t bestaddr = 0, diff, curdiff; | |
946 | ||
947 | /* Assume that if it's loaded and linked into the kernel, it's a valid Mach-O */ | |
948 | ||
949 | cmd = (struct load_command *) &mh[1]; | |
950 | for (i = 0; i < mh->ncmds; i++) { | |
951 | if (cmd->cmd == LC_SEGMENT_KERNEL) { | |
952 | kernel_segment_command_t *orig_sg = (kernel_segment_command_t *) cmd; | |
953 | ||
954 | if (strncmp(SEG_TEXT, orig_sg->segname, | |
955 | sizeof(orig_sg->segname)) == 0) | |
956 | orig_ts = orig_sg; | |
957 | else if (strncmp(SEG_LINKEDIT, orig_sg->segname, | |
958 | sizeof(orig_sg->segname)) == 0) | |
959 | orig_le = orig_sg; | |
960 | else if (strncmp("", orig_sg->segname, | |
961 | sizeof(orig_sg->segname)) == 0) | |
962 | orig_ts = orig_sg; /* pre-Lion i386 kexts have a single unnamed segment */ | |
963 | } | |
964 | else if (cmd->cmd == LC_SYMTAB) | |
965 | orig_st = (struct symtab_command *) cmd; | |
966 | ||
967 | cmd = (struct load_command *) ((uintptr_t) cmd + cmd->cmdsize); | |
968 | } | |
969 | ||
970 | if ((orig_ts == NULL) || (orig_st == NULL) || (orig_le == NULL)) | |
971 | return 0; | |
972 | ||
973 | if ((search < orig_ts->vmaddr) || | |
974 | (search >= orig_ts->vmaddr + orig_ts->vmsize)) { | |
975 | /* search out of range for this mach header */ | |
976 | return 0; | |
977 | } | |
978 | ||
979 | sym = (kernel_nlist_t *)(uintptr_t)(orig_le->vmaddr + orig_st->symoff - orig_le->fileoff); | |
980 | strings = (char *)(uintptr_t)(orig_le->vmaddr + orig_st->stroff - orig_le->fileoff); | |
981 | diff = search; | |
982 | ||
983 | for (i = 0; i < orig_st->nsyms; i++) { | |
984 | if (sym[i].n_type & N_STAB) continue; | |
985 | ||
986 | if (sym[i].n_value <= search) { | |
987 | curdiff = search - (vm_address_t)sym[i].n_value; | |
988 | if (curdiff < diff) { | |
989 | diff = curdiff; | |
990 | bestaddr = sym[i].n_value; | |
991 | bestsym = strings + sym[i].n_un.n_strx; | |
992 | } | |
993 | } | |
994 | } | |
995 | ||
996 | if (bestsym != NULL) { | |
997 | if (diff != 0) { | |
998 | kdb_printf("%s : %s + 0x%lx", module_name, bestsym, (unsigned long)diff); | |
999 | } else { | |
1000 | kdb_printf("%s : %s", module_name, bestsym); | |
1001 | } | |
1002 | return 1; | |
1003 | } | |
1004 | return 0; | |
1005 | } | |
1006 | ||
1007 | extern kmod_info_t * kmod; /* the list of modules */ | |
1008 | ||
1009 | static void | |
1010 | panic_print_kmod_symbol_name(vm_address_t search) | |
1011 | { | |
1012 | u_int i; | |
1013 | ||
1014 | if (gLoadedKextSummaries == NULL) | |
1015 | return; | |
1016 | for (i = 0; i < gLoadedKextSummaries->numSummaries; ++i) { | |
1017 | OSKextLoadedKextSummary *summary = gLoadedKextSummaries->summaries + i; | |
1018 | ||
1019 | if ((search >= summary->address) && | |
1020 | (search < (summary->address + summary->size))) | |
1021 | { | |
1022 | kernel_mach_header_t *header = (kernel_mach_header_t *)(uintptr_t) summary->address; | |
1023 | if (panic_print_macho_symbol_name(header, search, summary->name) == 0) { | |
1024 | kdb_printf("%s + %llu", summary->name, (unsigned long)search - summary->address); | |
1025 | } | |
1026 | break; | |
1027 | } | |
1028 | } | |
1029 | } | |
1030 | ||
1031 | static void | |
1032 | panic_print_symbol_name(vm_address_t search) | |
1033 | { | |
1034 | /* try searching in the kernel */ | |
1035 | if (panic_print_macho_symbol_name(&_mh_execute_header, search, "mach_kernel") == 0) { | |
1036 | /* that failed, now try to search for the right kext */ | |
1037 | panic_print_kmod_symbol_name(search); | |
1038 | } | |
1039 | } | |
1040 | ||
1041 | /* Generate a backtrace, given a frame pointer - this routine | |
1042 | * should walk the stack safely. The trace is appended to the panic log | |
1043 | * and conditionally, to the console. If the trace contains kernel module | |
1044 | * addresses, display the module name, load address and dependencies. | |
1045 | */ | |
1046 | ||
1047 | #define DUMPFRAMES 32 | |
1048 | #define PBT_TIMEOUT_CYCLES (5 * 1000 * 1000 * 1000ULL) | |
1049 | void | |
1050 | panic_i386_backtrace(void *_frame, int nframes, const char *msg, boolean_t regdump, x86_saved_state_t *regs) | |
1051 | { | |
1052 | cframe_t *frame = (cframe_t *)_frame; | |
1053 | vm_offset_t raddrs[DUMPFRAMES]; | |
1054 | vm_offset_t PC = 0; | |
1055 | int frame_index; | |
1056 | volatile uint32_t *ppbtcnt = &pbtcnt; | |
1057 | uint64_t bt_tsc_timeout; | |
1058 | boolean_t keepsyms = FALSE; | |
1059 | int cn = cpu_number(); | |
1060 | ||
1061 | if(pbtcpu != cn) { | |
1062 | hw_atomic_add(&pbtcnt, 1); | |
1063 | /* Spin on print backtrace lock, which serializes output | |
1064 | * Continue anyway if a timeout occurs. | |
1065 | */ | |
1066 | hw_lock_to(&pbtlock, LockTimeOutTSC*2); | |
1067 | pbtcpu = cn; | |
1068 | } | |
1069 | ||
1070 | PE_parse_boot_argn("keepsyms", &keepsyms, sizeof (keepsyms)); | |
1071 | ||
1072 | if (msg != NULL) { | |
1073 | kdb_printf("%s", msg); | |
1074 | } | |
1075 | ||
1076 | if ((regdump == TRUE) && (regs != NULL)) { | |
1077 | #if defined(__x86_64__) | |
1078 | x86_saved_state64_t *ss64p = saved_state64(regs); | |
1079 | kdb_printf( | |
1080 | "RAX: 0x%016llx, RBX: 0x%016llx, RCX: 0x%016llx, RDX: 0x%016llx\n" | |
1081 | "RSP: 0x%016llx, RBP: 0x%016llx, RSI: 0x%016llx, RDI: 0x%016llx\n" | |
1082 | "R8: 0x%016llx, R9: 0x%016llx, R10: 0x%016llx, R11: 0x%016llx\n" | |
1083 | "R12: 0x%016llx, R13: 0x%016llx, R14: 0x%016llx, R15: 0x%016llx\n" | |
1084 | "RFL: 0x%016llx, RIP: 0x%016llx, CS: 0x%016llx, SS: 0x%016llx\n", | |
1085 | ss64p->rax, ss64p->rbx, ss64p->rcx, ss64p->rdx, | |
1086 | ss64p->isf.rsp, ss64p->rbp, ss64p->rsi, ss64p->rdi, | |
1087 | ss64p->r8, ss64p->r9, ss64p->r10, ss64p->r11, | |
1088 | ss64p->r12, ss64p->r13, ss64p->r14, ss64p->r15, | |
1089 | ss64p->isf.rflags, ss64p->isf.rip, ss64p->isf.cs, | |
1090 | ss64p->isf.ss); | |
1091 | PC = ss64p->isf.rip; | |
1092 | #else | |
1093 | x86_saved_state32_t *ss32p = saved_state32(regs); | |
1094 | kdb_printf( | |
1095 | "EAX: 0x%08x, EBX: 0x%08x, ECX: 0x%08x, EDX: 0x%08x\n" | |
1096 | "CR2: 0x%08x, EBP: 0x%08x, ESI: 0x%08x, EDI: 0x%08x\n" | |
1097 | "EFL: 0x%08x, EIP: 0x%08x, CS: 0x%08x, DS: 0x%08x\n", | |
1098 | ss32p->eax,ss32p->ebx,ss32p->ecx,ss32p->edx, | |
1099 | ss32p->cr2,ss32p->ebp,ss32p->esi,ss32p->edi, | |
1100 | ss32p->efl,ss32p->eip,ss32p->cs, ss32p->ds); | |
1101 | PC = ss32p->eip; | |
1102 | #endif | |
1103 | } | |
1104 | ||
1105 | kdb_printf("Backtrace (CPU %d), " | |
1106 | #if PRINT_ARGS_FROM_STACK_FRAME | |
1107 | "Frame : Return Address (4 potential args on stack)\n", cn); | |
1108 | #else | |
1109 | "Frame : Return Address\n", cn); | |
1110 | #endif | |
1111 | ||
1112 | for (frame_index = 0; frame_index < nframes; frame_index++) { | |
1113 | vm_offset_t curframep = (vm_offset_t) frame; | |
1114 | ||
1115 | if (!curframep) | |
1116 | break; | |
1117 | ||
1118 | if (curframep & 0x3) { | |
1119 | kdb_printf("Unaligned frame\n"); | |
1120 | goto invalid; | |
1121 | } | |
1122 | ||
1123 | if (!kvtophys(curframep) || | |
1124 | !kvtophys(curframep + sizeof(cframe_t) - 1)) { | |
1125 | kdb_printf("No mapping exists for frame pointer\n"); | |
1126 | goto invalid; | |
1127 | } | |
1128 | ||
1129 | kdb_printf("%p : 0x%lx ", frame, frame->caller); | |
1130 | if (frame_index < DUMPFRAMES) | |
1131 | raddrs[frame_index] = frame->caller; | |
1132 | ||
1133 | #if PRINT_ARGS_FROM_STACK_FRAME | |
1134 | if (kvtophys((vm_offset_t)&(frame->args[3]))) | |
1135 | kdb_printf("(0x%x 0x%x 0x%x 0x%x) ", | |
1136 | frame->args[0], frame->args[1], | |
1137 | frame->args[2], frame->args[3]); | |
1138 | #endif | |
1139 | ||
1140 | /* Display address-symbol translation only if the "keepsyms" | |
1141 | * boot-arg is suppplied, since we unload LINKEDIT otherwise. | |
1142 | * This routine is potentially unsafe; also, function | |
1143 | * boundary identification is unreliable after a strip -x. | |
1144 | */ | |
1145 | if (keepsyms) | |
1146 | panic_print_symbol_name((vm_address_t)frame->caller); | |
1147 | ||
1148 | kdb_printf("\n"); | |
1149 | ||
1150 | frame = frame->prev; | |
1151 | } | |
1152 | ||
1153 | if (frame_index >= nframes) | |
1154 | kdb_printf("\tBacktrace continues...\n"); | |
1155 | ||
1156 | goto out; | |
1157 | ||
1158 | invalid: | |
1159 | kdb_printf("Backtrace terminated-invalid frame pointer %p\n",frame); | |
1160 | out: | |
1161 | ||
1162 | /* Identify kernel modules in the backtrace and display their | |
1163 | * load addresses and dependencies. This routine should walk | |
1164 | * the kmod list safely. | |
1165 | */ | |
1166 | if (frame_index) | |
1167 | kmod_panic_dump((vm_offset_t *)&raddrs[0], frame_index); | |
1168 | ||
1169 | if (PC != 0) | |
1170 | kmod_panic_dump(&PC, 1); | |
1171 | ||
1172 | panic_display_system_configuration(); | |
1173 | ||
1174 | /* Release print backtrace lock, to permit other callers in the | |
1175 | * event of panics on multiple processors. | |
1176 | */ | |
1177 | hw_lock_unlock(&pbtlock); | |
1178 | hw_atomic_sub(&pbtcnt, 1); | |
1179 | /* Wait for other processors to complete output | |
1180 | * Timeout and continue after PBT_TIMEOUT_CYCLES. | |
1181 | */ | |
1182 | bt_tsc_timeout = rdtsc64() + PBT_TIMEOUT_CYCLES; | |
1183 | while(*ppbtcnt && (rdtsc64() < bt_tsc_timeout)); | |
1184 | } |