mm: move MAP_SYNC to asm-generic/mman-common.h
[linux-2.6-block.git] / kernel / kexec.c
CommitLineData
40b0b3f8 1// SPDX-License-Identifier: GPL-2.0-only
dc009d92 2/*
2965faa5 3 * kexec.c - kexec_load system call
dc009d92 4 * Copyright (C) 2002-2004 Eric Biederman <ebiederm@xmission.com>
dc009d92
EB
5 */
6
de90a6bc
MH
7#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
8
c59ede7b 9#include <linux/capability.h>
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10#include <linux/mm.h>
11#include <linux/file.h>
a210fd32 12#include <linux/security.h>
dc009d92 13#include <linux/kexec.h>
8c5a1cf0 14#include <linux/mutex.h>
dc009d92 15#include <linux/list.h>
dc009d92 16#include <linux/syscalls.h>
a43cac0d 17#include <linux/vmalloc.h>
2965faa5 18#include <linux/slab.h>
dc009d92 19
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DY
20#include "kexec_internal.h"
21
dabe7862
VG
22static int copy_user_segment_list(struct kimage *image,
23 unsigned long nr_segments,
24 struct kexec_segment __user *segments)
dc009d92 25{
dabe7862 26 int ret;
dc009d92 27 size_t segment_bytes;
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28
29 /* Read in the segments */
30 image->nr_segments = nr_segments;
31 segment_bytes = nr_segments * sizeof(*segments);
dabe7862
VG
32 ret = copy_from_user(image->segment, segments, segment_bytes);
33 if (ret)
34 ret = -EFAULT;
35
36 return ret;
37}
38
255aedd9
VG
39static int kimage_alloc_init(struct kimage **rimage, unsigned long entry,
40 unsigned long nr_segments,
41 struct kexec_segment __user *segments,
42 unsigned long flags)
dc009d92 43{
255aedd9 44 int ret;
dc009d92 45 struct kimage *image;
255aedd9
VG
46 bool kexec_on_panic = flags & KEXEC_ON_CRASH;
47
48 if (kexec_on_panic) {
49 /* Verify we have a valid entry point */
43546d86
RK
50 if ((entry < phys_to_boot_phys(crashk_res.start)) ||
51 (entry > phys_to_boot_phys(crashk_res.end)))
255aedd9
VG
52 return -EADDRNOTAVAIL;
53 }
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54
55 /* Allocate and initialize a controlling structure */
dabe7862
VG
56 image = do_kimage_alloc_init();
57 if (!image)
58 return -ENOMEM;
59
60 image->start = entry;
61
255aedd9
VG
62 ret = copy_user_segment_list(image, nr_segments, segments);
63 if (ret)
dabe7862
VG
64 goto out_free_image;
65
255aedd9 66 if (kexec_on_panic) {
cdf4b3fa 67 /* Enable special crash kernel control page alloc policy. */
255aedd9
VG
68 image->control_page = crashk_res.start;
69 image->type = KEXEC_TYPE_CRASH;
70 }
71
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XP
72 ret = sanity_check_segment_list(image);
73 if (ret)
74 goto out_free_image;
75
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76 /*
77 * Find a location for the control code buffer, and add it
78 * the vector of segments so that it's pages will also be
79 * counted as destination pages.
80 */
255aedd9 81 ret = -ENOMEM;
dc009d92 82 image->control_code_page = kimage_alloc_control_pages(image,
163f6876 83 get_order(KEXEC_CONTROL_PAGE_SIZE));
dc009d92 84 if (!image->control_code_page) {
e1bebcf4 85 pr_err("Could not allocate control_code_buffer\n");
dabe7862 86 goto out_free_image;
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87 }
88
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VG
89 if (!kexec_on_panic) {
90 image->swap_page = kimage_alloc_control_pages(image, 0);
91 if (!image->swap_page) {
92 pr_err("Could not allocate swap buffer\n");
93 goto out_free_control_pages;
94 }
3ab83521
HY
95 }
96
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97 *rimage = image;
98 return 0;
dabe7862 99out_free_control_pages:
b92e7e0d 100 kimage_free_page_list(&image->control_pages);
dabe7862 101out_free_image:
b92e7e0d 102 kfree(image);
255aedd9 103 return ret;
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104}
105
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MH
106static int do_kexec_load(unsigned long entry, unsigned long nr_segments,
107 struct kexec_segment __user *segments, unsigned long flags)
108{
109 struct kimage **dest_image, *image;
110 unsigned long i;
111 int ret;
112
113 if (flags & KEXEC_ON_CRASH) {
114 dest_image = &kexec_crash_image;
115 if (kexec_crash_image)
116 arch_kexec_unprotect_crashkres();
117 } else {
118 dest_image = &kexec_image;
119 }
120
121 if (nr_segments == 0) {
122 /* Uninstall image */
123 kimage_free(xchg(dest_image, NULL));
124 return 0;
125 }
126 if (flags & KEXEC_ON_CRASH) {
127 /*
128 * Loading another kernel to switch to if this one
129 * crashes. Free any current crash dump kernel before
130 * we corrupt it.
131 */
132 kimage_free(xchg(&kexec_crash_image, NULL));
133 }
134
135 ret = kimage_alloc_init(&image, entry, nr_segments, segments, flags);
136 if (ret)
137 return ret;
138
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MH
139 if (flags & KEXEC_PRESERVE_CONTEXT)
140 image->preserve_context = 1;
141
142 ret = machine_kexec_prepare(image);
143 if (ret)
144 goto out;
145
1229384f
XP
146 /*
147 * Some architecture(like S390) may touch the crash memory before
148 * machine_kexec_prepare(), we must copy vmcoreinfo data after it.
149 */
150 ret = kimage_crash_copy_vmcoreinfo(image);
151 if (ret)
152 goto out;
153
0eea0867
MH
154 for (i = 0; i < nr_segments; i++) {
155 ret = kimage_load_segment(image, &image->segment[i]);
156 if (ret)
157 goto out;
158 }
159
160 kimage_terminate(image);
161
162 /* Install the new kernel and uninstall the old */
163 image = xchg(dest_image, image);
164
165out:
166 if ((flags & KEXEC_ON_CRASH) && kexec_crash_image)
167 arch_kexec_protect_crashkres();
168
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MH
169 kimage_free(image);
170 return ret;
171}
172
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173/*
174 * Exec Kernel system call: for obvious reasons only root may call it.
175 *
176 * This call breaks up into three pieces.
177 * - A generic part which loads the new kernel from the current
178 * address space, and very carefully places the data in the
179 * allocated pages.
180 *
181 * - A generic part that interacts with the kernel and tells all of
182 * the devices to shut down. Preventing on-going dmas, and placing
183 * the devices in a consistent state so a later kernel can
184 * reinitialize them.
185 *
186 * - A machine specific part that includes the syscall number
002ace78 187 * and then copies the image to it's final destination. And
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EB
188 * jumps into the image at entry.
189 *
190 * kexec does not sync, or unmount filesystems so if you need
191 * that to happen you need to do that yourself.
192 */
8c5a1cf0 193
6b27aef0
DB
194static inline int kexec_load_check(unsigned long nr_segments,
195 unsigned long flags)
dc009d92 196{
a210fd32
MZ
197 int result;
198
dc009d92 199 /* We only trust the superuser with rebooting the system. */
7984754b 200 if (!capable(CAP_SYS_BOOT) || kexec_load_disabled)
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201 return -EPERM;
202
a210fd32
MZ
203 /* Permit LSMs and IMA to fail the kexec */
204 result = security_kernel_load_data(LOADING_KEXEC_IMAGE);
205 if (result < 0)
206 return result;
207
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208 /*
209 * Verify we have a legal set of flags
210 * This leaves us room for future extensions.
211 */
212 if ((flags & KEXEC_FLAGS) != (flags & ~KEXEC_ARCH_MASK))
213 return -EINVAL;
214
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215 /* Put an artificial cap on the number
216 * of segments passed to kexec_load.
217 */
218 if (nr_segments > KEXEC_SEGMENT_MAX)
219 return -EINVAL;
220
6b27aef0
DB
221 return 0;
222}
223
224SYSCALL_DEFINE4(kexec_load, unsigned long, entry, unsigned long, nr_segments,
225 struct kexec_segment __user *, segments, unsigned long, flags)
226{
227 int result;
228
229 result = kexec_load_check(nr_segments, flags);
230 if (result)
231 return result;
232
233 /* Verify we are on the appropriate architecture */
234 if (((flags & KEXEC_ARCH_MASK) != KEXEC_ARCH) &&
235 ((flags & KEXEC_ARCH_MASK) != KEXEC_ARCH_DEFAULT))
236 return -EINVAL;
237
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238 /* Because we write directly to the reserved memory
239 * region when loading crash kernels we need a mutex here to
240 * prevent multiple crash kernels from attempting to load
241 * simultaneously, and to prevent a crash kernel from loading
242 * over the top of a in use crash kernel.
243 *
244 * KISS: always take the mutex.
245 */
8c5a1cf0 246 if (!mutex_trylock(&kexec_mutex))
dc009d92 247 return -EBUSY;
72414d3f 248
0eea0867 249 result = do_kexec_load(entry, nr_segments, segments, flags);
dc009d92 250
8c5a1cf0 251 mutex_unlock(&kexec_mutex);
72414d3f 252
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EB
253 return result;
254}
255
256#ifdef CONFIG_COMPAT
ca2c405a
HC
257COMPAT_SYSCALL_DEFINE4(kexec_load, compat_ulong_t, entry,
258 compat_ulong_t, nr_segments,
259 struct compat_kexec_segment __user *, segments,
260 compat_ulong_t, flags)
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EB
261{
262 struct compat_kexec_segment in;
263 struct kexec_segment out, __user *ksegments;
264 unsigned long i, result;
265
6b27aef0
DB
266 result = kexec_load_check(nr_segments, flags);
267 if (result)
268 return result;
269
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270 /* Don't allow clients that don't understand the native
271 * architecture to do anything.
272 */
72414d3f 273 if ((flags & KEXEC_ARCH_MASK) == KEXEC_ARCH_DEFAULT)
dc009d92 274 return -EINVAL;
dc009d92 275
dc009d92 276 ksegments = compat_alloc_user_space(nr_segments * sizeof(out));
e1bebcf4 277 for (i = 0; i < nr_segments; i++) {
dc009d92 278 result = copy_from_user(&in, &segments[i], sizeof(in));
72414d3f 279 if (result)
dc009d92 280 return -EFAULT;
dc009d92
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281
282 out.buf = compat_ptr(in.buf);
283 out.bufsz = in.bufsz;
284 out.mem = in.mem;
285 out.memsz = in.memsz;
286
287 result = copy_to_user(&ksegments[i], &out, sizeof(out));
72414d3f 288 if (result)
dc009d92 289 return -EFAULT;
dc009d92
EB
290 }
291
6b27aef0
DB
292 /* Because we write directly to the reserved memory
293 * region when loading crash kernels we need a mutex here to
294 * prevent multiple crash kernels from attempting to load
295 * simultaneously, and to prevent a crash kernel from loading
296 * over the top of a in use crash kernel.
297 *
298 * KISS: always take the mutex.
299 */
300 if (!mutex_trylock(&kexec_mutex))
301 return -EBUSY;
302
303 result = do_kexec_load(entry, nr_segments, ksegments, flags);
304
305 mutex_unlock(&kexec_mutex);
306
307 return result;
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EB
308}
309#endif