xref: /linux/arch/x86/kernel/crash.c (revision b1e34412998d628dfa8ba3da042bb60dee232b6c)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Architecture specific (i386/x86_64) functions for kexec based crash dumps.
4  *
5  * Created by: Hariprasad Nellitheertha (hari@in.ibm.com)
6  *
7  * Copyright (C) IBM Corporation, 2004. All rights reserved.
8  * Copyright (C) Red Hat Inc., 2014. All rights reserved.
9  * Authors:
10  *      Vivek Goyal <vgoyal@redhat.com>
11  *
12  */
13 
14 #define pr_fmt(fmt)	"kexec: " fmt
15 
16 #include <linux/types.h>
17 #include <linux/kernel.h>
18 #include <linux/smp.h>
19 #include <linux/reboot.h>
20 #include <linux/kexec.h>
21 #include <linux/delay.h>
22 #include <linux/elf.h>
23 #include <linux/elfcore.h>
24 #include <linux/export.h>
25 #include <linux/slab.h>
26 #include <linux/vmalloc.h>
27 #include <linux/memblock.h>
28 
29 #include <asm/bootparam.h>
30 #include <asm/processor.h>
31 #include <asm/hardirq.h>
32 #include <asm/nmi.h>
33 #include <asm/hw_irq.h>
34 #include <asm/apic.h>
35 #include <asm/e820/types.h>
36 #include <asm/io_apic.h>
37 #include <asm/hpet.h>
38 #include <linux/kdebug.h>
39 #include <asm/cpu.h>
40 #include <asm/reboot.h>
41 #include <asm/intel_pt.h>
42 #include <asm/crash.h>
43 #include <asm/cmdline.h>
44 #include <asm/sev.h>
45 
46 /* Used while preparing memory map entries for second kernel */
47 struct crash_memmap_data {
48 	struct boot_params *params;
49 	/* Type of memory */
50 	unsigned int type;
51 };
52 
53 #if defined(CONFIG_SMP) && defined(CONFIG_X86_LOCAL_APIC)
54 
55 static void kdump_nmi_callback(int cpu, struct pt_regs *regs)
56 {
57 	crash_save_cpu(regs, cpu);
58 
59 	/*
60 	 * Disable Intel PT to stop its logging
61 	 */
62 	cpu_emergency_stop_pt();
63 
64 	kdump_sev_callback();
65 
66 	disable_local_APIC();
67 }
68 
69 void kdump_nmi_shootdown_cpus(void)
70 {
71 	nmi_shootdown_cpus(kdump_nmi_callback);
72 
73 	disable_local_APIC();
74 }
75 
76 /* Override the weak function in kernel/panic.c */
77 void crash_smp_send_stop(void)
78 {
79 	static int cpus_stopped;
80 
81 	if (cpus_stopped)
82 		return;
83 
84 	if (smp_ops.crash_stop_other_cpus)
85 		smp_ops.crash_stop_other_cpus();
86 	else
87 		smp_send_stop();
88 
89 	cpus_stopped = 1;
90 }
91 
92 #else
93 void crash_smp_send_stop(void)
94 {
95 	/* There are no cpus to shootdown */
96 }
97 #endif
98 
99 void native_machine_crash_shutdown(struct pt_regs *regs)
100 {
101 	/* This function is only called after the system
102 	 * has panicked or is otherwise in a critical state.
103 	 * The minimum amount of code to allow a kexec'd kernel
104 	 * to run successfully needs to happen here.
105 	 *
106 	 * In practice this means shooting down the other cpus in
107 	 * an SMP system.
108 	 */
109 	/* The kernel is broken so disable interrupts */
110 	local_irq_disable();
111 
112 	crash_smp_send_stop();
113 
114 	cpu_emergency_disable_virtualization();
115 
116 	/*
117 	 * Disable Intel PT to stop its logging
118 	 */
119 	cpu_emergency_stop_pt();
120 
121 #ifdef CONFIG_X86_IO_APIC
122 	/* Prevent crash_kexec() from deadlocking on ioapic_lock. */
123 	ioapic_zap_locks();
124 	clear_IO_APIC();
125 #endif
126 	lapic_shutdown();
127 	restore_boot_irq_mode();
128 #ifdef CONFIG_HPET_TIMER
129 	hpet_disable();
130 #endif
131 
132 	/*
133 	 * Non-crash kexec calls enc_kexec_begin() while scheduling is still
134 	 * active. This allows the callback to wait until all in-flight
135 	 * shared<->private conversions are complete. In a crash scenario,
136 	 * enc_kexec_begin() gets called after all but one CPU have been shut
137 	 * down and interrupts have been disabled. This allows the callback to
138 	 * detect a race with the conversion and report it.
139 	 */
140 	x86_platform.guest.enc_kexec_begin();
141 	x86_platform.guest.enc_kexec_finish();
142 
143 	crash_save_cpu(regs, smp_processor_id());
144 }
145 
146 #if defined(CONFIG_KEXEC_FILE) || defined(CONFIG_CRASH_HOTPLUG)
147 static int get_nr_ram_ranges_callback(struct resource *res, void *arg)
148 {
149 	unsigned int *nr_ranges = arg;
150 
151 	(*nr_ranges)++;
152 	return 0;
153 }
154 
155 /* Gather all the required information to prepare elf headers for ram regions */
156 static struct crash_mem *fill_up_crash_elf_data(void)
157 {
158 	unsigned int nr_ranges = 0;
159 	struct crash_mem *cmem;
160 
161 	walk_system_ram_res(0, -1, &nr_ranges, get_nr_ram_ranges_callback);
162 	if (!nr_ranges)
163 		return NULL;
164 
165 	/*
166 	 * Exclusion of crash region, crashk_low_res and/or crashk_cma_ranges
167 	 * may cause range splits. So add extra slots here.
168 	 */
169 	nr_ranges += 2 + crashk_cma_cnt;
170 	cmem = vzalloc(struct_size(cmem, ranges, nr_ranges));
171 	if (!cmem)
172 		return NULL;
173 
174 	cmem->max_nr_ranges = nr_ranges;
175 
176 	return cmem;
177 }
178 
179 /*
180  * Look for any unwanted ranges between mstart, mend and remove them. This
181  * might lead to split and split ranges are put in cmem->ranges[] array
182  */
183 static int elf_header_exclude_ranges(struct crash_mem *cmem)
184 {
185 	int ret = 0;
186 	int i;
187 
188 	/* Exclude the low 1M because it is always reserved */
189 	ret = crash_exclude_mem_range(cmem, 0, SZ_1M - 1);
190 	if (ret)
191 		return ret;
192 
193 	/* Exclude crashkernel region */
194 	ret = crash_exclude_mem_range(cmem, crashk_res.start, crashk_res.end);
195 	if (ret)
196 		return ret;
197 
198 	if (crashk_low_res.end)
199 		ret = crash_exclude_mem_range(cmem, crashk_low_res.start,
200 					      crashk_low_res.end);
201 	if (ret)
202 		return ret;
203 
204 	for (i = 0; i < crashk_cma_cnt; ++i) {
205 		ret = crash_exclude_mem_range(cmem, crashk_cma_ranges[i].start,
206 					      crashk_cma_ranges[i].end);
207 		if (ret)
208 			return ret;
209 	}
210 
211 	return 0;
212 }
213 
214 static int prepare_elf64_ram_headers_callback(struct resource *res, void *arg)
215 {
216 	struct crash_mem *cmem = arg;
217 
218 	cmem->ranges[cmem->nr_ranges].start = res->start;
219 	cmem->ranges[cmem->nr_ranges].end = res->end;
220 	cmem->nr_ranges++;
221 
222 	return 0;
223 }
224 
225 /* Prepare elf headers. Return addr and size */
226 static int prepare_elf_headers(void **addr, unsigned long *sz,
227 			       unsigned long *nr_mem_ranges)
228 {
229 	struct crash_mem *cmem;
230 	int ret;
231 
232 	cmem = fill_up_crash_elf_data();
233 	if (!cmem)
234 		return -ENOMEM;
235 
236 	ret = walk_system_ram_res(0, -1, cmem, prepare_elf64_ram_headers_callback);
237 	if (ret)
238 		goto out;
239 
240 	/* Exclude unwanted mem ranges */
241 	ret = elf_header_exclude_ranges(cmem);
242 	if (ret)
243 		goto out;
244 
245 	/* Return the computed number of memory ranges, for hotplug usage */
246 	*nr_mem_ranges = cmem->nr_ranges;
247 
248 	/* By default prepare 64bit headers */
249 	ret = crash_prepare_elf64_headers(cmem, IS_ENABLED(CONFIG_X86_64), addr, sz);
250 
251 out:
252 	vfree(cmem);
253 	return ret;
254 }
255 #endif
256 
257 #ifdef CONFIG_KEXEC_FILE
258 static int add_e820_entry(struct boot_params *params, struct e820_entry *entry)
259 {
260 	unsigned int nr_e820_entries;
261 
262 	nr_e820_entries = params->e820_entries;
263 	if (nr_e820_entries >= E820_MAX_ENTRIES_ZEROPAGE)
264 		return 1;
265 
266 	memcpy(&params->e820_table[nr_e820_entries], entry, sizeof(struct e820_entry));
267 	params->e820_entries++;
268 	return 0;
269 }
270 
271 static int memmap_entry_callback(struct resource *res, void *arg)
272 {
273 	struct crash_memmap_data *cmd = arg;
274 	struct boot_params *params = cmd->params;
275 	struct e820_entry ei;
276 
277 	ei.addr = res->start;
278 	ei.size = resource_size(res);
279 	ei.type = cmd->type;
280 	add_e820_entry(params, &ei);
281 
282 	return 0;
283 }
284 
285 static int memmap_exclude_ranges(struct kimage *image, struct crash_mem *cmem,
286 				 unsigned long long mstart,
287 				 unsigned long long mend)
288 {
289 	unsigned long start, end;
290 	int ret;
291 
292 	cmem->ranges[0].start = mstart;
293 	cmem->ranges[0].end = mend;
294 	cmem->nr_ranges = 1;
295 
296 	/* Exclude elf header region */
297 	start = image->elf_load_addr;
298 	end = start + image->elf_headers_sz - 1;
299 	ret = crash_exclude_mem_range(cmem, start, end);
300 
301 	if (ret)
302 		return ret;
303 
304 	/* Exclude dm crypt keys region */
305 	if (image->dm_crypt_keys_addr) {
306 		start = image->dm_crypt_keys_addr;
307 		end = start + image->dm_crypt_keys_sz - 1;
308 		return crash_exclude_mem_range(cmem, start, end);
309 	}
310 
311 	return ret;
312 }
313 
314 /* Prepare memory map for crash dump kernel */
315 int crash_setup_memmap_entries(struct kimage *image, struct boot_params *params)
316 {
317 	unsigned int nr_ranges = 0;
318 	int i, ret = 0;
319 	unsigned long flags;
320 	struct e820_entry ei;
321 	struct crash_memmap_data cmd;
322 	struct crash_mem *cmem;
323 
324 	/*
325 	 * Using random kexec_buf for passing dm crypt keys may cause a range
326 	 * split. So use two slots here.
327 	 */
328 	nr_ranges = 2;
329 	cmem = vzalloc(struct_size(cmem, ranges, nr_ranges));
330 	if (!cmem)
331 		return -ENOMEM;
332 
333 	cmem->max_nr_ranges = nr_ranges;
334 
335 	memset(&cmd, 0, sizeof(struct crash_memmap_data));
336 	cmd.params = params;
337 
338 	/* Add the low 1M */
339 	cmd.type = E820_TYPE_RAM;
340 	flags = IORESOURCE_SYSTEM_RAM | IORESOURCE_BUSY;
341 	walk_iomem_res_desc(IORES_DESC_NONE, flags, 0, (1<<20)-1, &cmd,
342 			    memmap_entry_callback);
343 
344 	/* Add ACPI tables */
345 	cmd.type = E820_TYPE_ACPI;
346 	flags = IORESOURCE_MEM | IORESOURCE_BUSY;
347 	walk_iomem_res_desc(IORES_DESC_ACPI_TABLES, flags, 0, -1, &cmd,
348 			    memmap_entry_callback);
349 
350 	/* Add ACPI Non-volatile Storage */
351 	cmd.type = E820_TYPE_NVS;
352 	walk_iomem_res_desc(IORES_DESC_ACPI_NV_STORAGE, flags, 0, -1, &cmd,
353 			    memmap_entry_callback);
354 
355 	/* Add e820 reserved ranges */
356 	cmd.type = E820_TYPE_RESERVED;
357 	flags = IORESOURCE_MEM;
358 	walk_iomem_res_desc(IORES_DESC_RESERVED, flags, 0, -1, &cmd,
359 			    memmap_entry_callback);
360 
361 	/* Add crashk_low_res region */
362 	if (crashk_low_res.end) {
363 		ei.addr = crashk_low_res.start;
364 		ei.size = resource_size(&crashk_low_res);
365 		ei.type = E820_TYPE_RAM;
366 		add_e820_entry(params, &ei);
367 	}
368 
369 	/* Exclude some ranges from crashk_res and add rest to memmap */
370 	ret = memmap_exclude_ranges(image, cmem, crashk_res.start, crashk_res.end);
371 	if (ret)
372 		goto out;
373 
374 	for (i = 0; i < cmem->nr_ranges; i++) {
375 		ei.size = cmem->ranges[i].end - cmem->ranges[i].start + 1;
376 
377 		/* If entry is less than a page, skip it */
378 		if (ei.size < PAGE_SIZE)
379 			continue;
380 		ei.addr = cmem->ranges[i].start;
381 		ei.type = E820_TYPE_RAM;
382 		add_e820_entry(params, &ei);
383 	}
384 
385 	for (i = 0; i < crashk_cma_cnt; ++i) {
386 		ei.addr = crashk_cma_ranges[i].start;
387 		ei.size = crashk_cma_ranges[i].end -
388 			  crashk_cma_ranges[i].start + 1;
389 		ei.type = E820_TYPE_RAM;
390 		add_e820_entry(params, &ei);
391 	}
392 
393 out:
394 	vfree(cmem);
395 	return ret;
396 }
397 
398 int crash_load_segments(struct kimage *image)
399 {
400 	int ret;
401 	unsigned long pnum = 0;
402 	struct kexec_buf kbuf = { .image = image, .buf_min = 0,
403 				  .buf_max = ULONG_MAX, .top_down = false };
404 
405 	/* Prepare elf headers and add a segment */
406 	ret = prepare_elf_headers(&kbuf.buffer, &kbuf.bufsz, &pnum);
407 	if (ret)
408 		return ret;
409 
410 	image->elf_headers	= kbuf.buffer;
411 	image->elf_headers_sz	= kbuf.bufsz;
412 	kbuf.memsz		= kbuf.bufsz;
413 
414 #ifdef CONFIG_CRASH_HOTPLUG
415 	/*
416 	 * The elfcorehdr segment size accounts for VMCOREINFO, kernel_map,
417 	 * maximum CPUs and maximum memory ranges.
418 	 */
419 	if (IS_ENABLED(CONFIG_MEMORY_HOTPLUG))
420 		pnum = 2 + CONFIG_NR_CPUS_DEFAULT + CONFIG_CRASH_MAX_MEMORY_RANGES;
421 	else
422 		pnum += 2 + CONFIG_NR_CPUS_DEFAULT;
423 
424 	if (pnum < (unsigned long)PN_XNUM) {
425 		kbuf.memsz = pnum * sizeof(Elf64_Phdr);
426 		kbuf.memsz += sizeof(Elf64_Ehdr);
427 
428 		image->elfcorehdr_index = image->nr_segments;
429 
430 		/* Mark as usable to crash kernel, else crash kernel fails on boot */
431 		image->elf_headers_sz = kbuf.memsz;
432 	} else {
433 		pr_err("number of Phdrs %lu exceeds max\n", pnum);
434 	}
435 #endif
436 
437 	kbuf.buf_align = ELF_CORE_HEADER_ALIGN;
438 	kbuf.mem = KEXEC_BUF_MEM_UNKNOWN;
439 	ret = kexec_add_buffer(&kbuf);
440 	if (ret)
441 		return ret;
442 	image->elf_load_addr = kbuf.mem;
443 	kexec_dprintk("Loaded ELF headers at 0x%lx bufsz=0x%lx memsz=0x%lx\n",
444 		      image->elf_load_addr, kbuf.bufsz, kbuf.memsz);
445 
446 	return ret;
447 }
448 #endif /* CONFIG_KEXEC_FILE */
449 
450 #ifdef CONFIG_CRASH_HOTPLUG
451 
452 #undef pr_fmt
453 #define pr_fmt(fmt) "crash hp: " fmt
454 
455 int arch_crash_hotplug_support(struct kimage *image, unsigned long kexec_flags)
456 {
457 
458 #ifdef CONFIG_KEXEC_FILE
459 	if (image->file_mode)
460 		return 1;
461 #endif
462 	/*
463 	 * Initially, crash hotplug support for kexec_load was added
464 	 * with the KEXEC_UPDATE_ELFCOREHDR flag. Later, this
465 	 * functionality was expanded to accommodate multiple kexec
466 	 * segment updates, leading to the introduction of the
467 	 * KEXEC_CRASH_HOTPLUG_SUPPORT kexec flag bit. Consequently,
468 	 * when the kexec tool sends either of these flags, it indicates
469 	 * that the required kexec segment (elfcorehdr) is excluded from
470 	 * the SHA calculation.
471 	 */
472 	return (kexec_flags & KEXEC_UPDATE_ELFCOREHDR ||
473 		kexec_flags & KEXEC_CRASH_HOTPLUG_SUPPORT);
474 }
475 
476 unsigned int arch_crash_get_elfcorehdr_size(void)
477 {
478 	unsigned int sz;
479 
480 	/* kernel_map, VMCOREINFO and maximum CPUs */
481 	sz = 2 + CONFIG_NR_CPUS_DEFAULT;
482 	if (IS_ENABLED(CONFIG_MEMORY_HOTPLUG))
483 		sz += CONFIG_CRASH_MAX_MEMORY_RANGES;
484 	sz *= sizeof(Elf64_Phdr);
485 	return sz;
486 }
487 
488 /**
489  * arch_crash_handle_hotplug_event() - Handle hotplug elfcorehdr changes
490  * @image: a pointer to kexec_crash_image
491  * @arg: struct memory_notify handler for memory hotplug case and
492  *       NULL for CPU hotplug case.
493  *
494  * Prepare the new elfcorehdr and replace the existing elfcorehdr.
495  */
496 void arch_crash_handle_hotplug_event(struct kimage *image, void *arg)
497 {
498 	void *elfbuf = NULL, *old_elfcorehdr;
499 	unsigned long nr_mem_ranges;
500 	unsigned long mem, memsz;
501 	unsigned long elfsz = 0;
502 
503 	/*
504 	 * As crash_prepare_elf64_headers() has already described all
505 	 * possible CPUs, there is no need to update the elfcorehdr
506 	 * for additional CPU changes.
507 	 */
508 	if ((image->file_mode || image->elfcorehdr_updated) &&
509 		((image->hp_action == KEXEC_CRASH_HP_ADD_CPU) ||
510 		(image->hp_action == KEXEC_CRASH_HP_REMOVE_CPU)))
511 		return;
512 
513 	/*
514 	 * Create the new elfcorehdr reflecting the changes to CPU and/or
515 	 * memory resources.
516 	 */
517 	if (prepare_elf_headers(&elfbuf, &elfsz, &nr_mem_ranges)) {
518 		pr_err("unable to create new elfcorehdr");
519 		goto out;
520 	}
521 
522 	/*
523 	 * Obtain address and size of the elfcorehdr segment, and
524 	 * check it against the new elfcorehdr buffer.
525 	 */
526 	mem = image->segment[image->elfcorehdr_index].mem;
527 	memsz = image->segment[image->elfcorehdr_index].memsz;
528 	if (elfsz > memsz) {
529 		pr_err("update elfcorehdr elfsz %lu > memsz %lu",
530 			elfsz, memsz);
531 		goto out;
532 	}
533 
534 	/*
535 	 * Copy new elfcorehdr over the old elfcorehdr at destination.
536 	 */
537 	old_elfcorehdr = kmap_local_page(pfn_to_page(mem >> PAGE_SHIFT));
538 	if (!old_elfcorehdr) {
539 		pr_err("mapping elfcorehdr segment failed\n");
540 		goto out;
541 	}
542 
543 	/*
544 	 * Temporarily invalidate the crash image while the
545 	 * elfcorehdr is updated.
546 	 */
547 	xchg(&kexec_crash_image, NULL);
548 	memcpy_flushcache(old_elfcorehdr, elfbuf, elfsz);
549 	xchg(&kexec_crash_image, image);
550 	kunmap_local(old_elfcorehdr);
551 	pr_debug("updated elfcorehdr\n");
552 
553 out:
554 	vfree(elfbuf);
555 }
556 #endif
557