fscrypt: handle blocksize < PAGE_SIZE in fscrypt_zeroout_range()
[linux-block.git] / fs / crypto / crypto.c
CommitLineData
09c434b8 1// SPDX-License-Identifier: GPL-2.0-only
0b81d077
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2/*
3 * This contains encryption functions for per-file encryption.
4 *
5 * Copyright (C) 2015, Google, Inc.
6 * Copyright (C) 2015, Motorola Mobility
7 *
8 * Written by Michael Halcrow, 2014.
9 *
10 * Filename encryption additions
11 * Uday Savagaonkar, 2014
12 * Encryption policy handling additions
13 * Ildar Muslukhov, 2014
14 * Add fscrypt_pullback_bio_page()
15 * Jaegeuk Kim, 2015.
16 *
17 * This has not yet undergone a rigorous security audit.
18 *
19 * The usage of AES-XTS should conform to recommendations in NIST
20 * Special Publication 800-38E and IEEE P1619/D16.
21 */
22
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23#include <linux/pagemap.h>
24#include <linux/mempool.h>
25#include <linux/module.h>
26#include <linux/scatterlist.h>
27#include <linux/ratelimit.h>
0b81d077 28#include <linux/dcache.h>
03a8bb0e 29#include <linux/namei.h>
b7e7cf7a 30#include <crypto/aes.h>
a575784c 31#include <crypto/skcipher.h>
cc4e0df0 32#include "fscrypt_private.h"
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33
34static unsigned int num_prealloc_crypto_pages = 32;
35static unsigned int num_prealloc_crypto_ctxs = 128;
36
37module_param(num_prealloc_crypto_pages, uint, 0444);
38MODULE_PARM_DESC(num_prealloc_crypto_pages,
39 "Number of crypto pages to preallocate");
40module_param(num_prealloc_crypto_ctxs, uint, 0444);
41MODULE_PARM_DESC(num_prealloc_crypto_ctxs,
42 "Number of crypto contexts to preallocate");
43
44static mempool_t *fscrypt_bounce_page_pool = NULL;
45
46static LIST_HEAD(fscrypt_free_ctxs);
47static DEFINE_SPINLOCK(fscrypt_ctx_lock);
48
0cb8dae4 49static struct workqueue_struct *fscrypt_read_workqueue;
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50static DEFINE_MUTEX(fscrypt_init_mutex);
51
52static struct kmem_cache *fscrypt_ctx_cachep;
53struct kmem_cache *fscrypt_info_cachep;
54
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55void fscrypt_enqueue_decrypt_work(struct work_struct *work)
56{
57 queue_work(fscrypt_read_workqueue, work);
58}
59EXPORT_SYMBOL(fscrypt_enqueue_decrypt_work);
60
0b81d077 61/**
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62 * fscrypt_release_ctx() - Release a decryption context
63 * @ctx: The decryption context to release.
0b81d077 64 *
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65 * If the decryption context was allocated from the pre-allocated pool, return
66 * it to that pool. Else, free it.
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67 */
68void fscrypt_release_ctx(struct fscrypt_ctx *ctx)
69{
70 unsigned long flags;
71
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72 if (ctx->flags & FS_CTX_REQUIRES_FREE_ENCRYPT_FL) {
73 kmem_cache_free(fscrypt_ctx_cachep, ctx);
74 } else {
75 spin_lock_irqsave(&fscrypt_ctx_lock, flags);
76 list_add(&ctx->free_list, &fscrypt_free_ctxs);
77 spin_unlock_irqrestore(&fscrypt_ctx_lock, flags);
78 }
79}
80EXPORT_SYMBOL(fscrypt_release_ctx);
81
82/**
2a415a02 83 * fscrypt_get_ctx() - Get a decryption context
b32e4482 84 * @gfp_flags: The gfp flag for memory allocation
0b81d077 85 *
2a415a02 86 * Allocate and initialize a decryption context.
0b81d077 87 *
2a415a02 88 * Return: A new decryption context on success; an ERR_PTR() otherwise.
0b81d077 89 */
cd0265fc 90struct fscrypt_ctx *fscrypt_get_ctx(gfp_t gfp_flags)
0b81d077 91{
cd0265fc 92 struct fscrypt_ctx *ctx;
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93 unsigned long flags;
94
0b81d077 95 /*
d2d0727b
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96 * First try getting a ctx from the free list so that we don't have to
97 * call into the slab allocator.
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98 */
99 spin_lock_irqsave(&fscrypt_ctx_lock, flags);
100 ctx = list_first_entry_or_null(&fscrypt_free_ctxs,
101 struct fscrypt_ctx, free_list);
102 if (ctx)
103 list_del(&ctx->free_list);
104 spin_unlock_irqrestore(&fscrypt_ctx_lock, flags);
105 if (!ctx) {
b32e4482 106 ctx = kmem_cache_zalloc(fscrypt_ctx_cachep, gfp_flags);
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107 if (!ctx)
108 return ERR_PTR(-ENOMEM);
109 ctx->flags |= FS_CTX_REQUIRES_FREE_ENCRYPT_FL;
110 } else {
111 ctx->flags &= ~FS_CTX_REQUIRES_FREE_ENCRYPT_FL;
112 }
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113 return ctx;
114}
115EXPORT_SYMBOL(fscrypt_get_ctx);
116
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117struct page *fscrypt_alloc_bounce_page(gfp_t gfp_flags)
118{
119 return mempool_alloc(fscrypt_bounce_page_pool, gfp_flags);
120}
121
122/**
123 * fscrypt_free_bounce_page() - free a ciphertext bounce page
124 *
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125 * Free a bounce page that was allocated by fscrypt_encrypt_pagecache_blocks(),
126 * or by fscrypt_alloc_bounce_page() directly.
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127 */
128void fscrypt_free_bounce_page(struct page *bounce_page)
129{
130 if (!bounce_page)
131 return;
132 set_page_private(bounce_page, (unsigned long)NULL);
133 ClearPagePrivate(bounce_page);
134 mempool_free(bounce_page, fscrypt_bounce_page_pool);
135}
136EXPORT_SYMBOL(fscrypt_free_bounce_page);
137
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138void fscrypt_generate_iv(union fscrypt_iv *iv, u64 lblk_num,
139 const struct fscrypt_info *ci)
140{
141 memset(iv, 0, ci->ci_mode->ivsize);
142 iv->lblk_num = cpu_to_le64(lblk_num);
143
144 if (ci->ci_flags & FS_POLICY_FLAG_DIRECT_KEY)
145 memcpy(iv->nonce, ci->ci_nonce, FS_KEY_DERIVATION_NONCE_SIZE);
146
147 if (ci->ci_essiv_tfm != NULL)
148 crypto_cipher_encrypt_one(ci->ci_essiv_tfm, iv->raw, iv->raw);
149}
150
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151/* Encrypt or decrypt a single filesystem block of file contents */
152int fscrypt_crypt_block(const struct inode *inode, fscrypt_direction_t rw,
153 u64 lblk_num, struct page *src_page,
154 struct page *dest_page, unsigned int len,
155 unsigned int offs, gfp_t gfp_flags)
0b81d077 156{
8094c3ce 157 union fscrypt_iv iv;
d407574e 158 struct skcipher_request *req = NULL;
d0082e1a 159 DECLARE_CRYPTO_WAIT(wait);
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160 struct scatterlist dst, src;
161 struct fscrypt_info *ci = inode->i_crypt_info;
d407574e 162 struct crypto_skcipher *tfm = ci->ci_ctfm;
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163 int res = 0;
164
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165 if (WARN_ON_ONCE(len <= 0))
166 return -EINVAL;
167 if (WARN_ON_ONCE(len % FS_CRYPTO_BLOCK_SIZE != 0))
168 return -EINVAL;
1400451f 169
8094c3ce 170 fscrypt_generate_iv(&iv, lblk_num, ci);
b7e7cf7a 171
b32e4482 172 req = skcipher_request_alloc(tfm, gfp_flags);
c90fd775 173 if (!req)
0b81d077 174 return -ENOMEM;
0b81d077 175
d407574e 176 skcipher_request_set_callback(
0b81d077 177 req, CRYPTO_TFM_REQ_MAY_BACKLOG | CRYPTO_TFM_REQ_MAY_SLEEP,
d0082e1a 178 crypto_req_done, &wait);
0b81d077 179
0b81d077 180 sg_init_table(&dst, 1);
1400451f 181 sg_set_page(&dst, dest_page, len, offs);
0b81d077 182 sg_init_table(&src, 1);
1400451f 183 sg_set_page(&src, src_page, len, offs);
b7e7cf7a 184 skcipher_request_set_crypt(req, &src, &dst, len, &iv);
0b81d077 185 if (rw == FS_DECRYPT)
d0082e1a 186 res = crypto_wait_req(crypto_skcipher_decrypt(req), &wait);
0b81d077 187 else
d0082e1a 188 res = crypto_wait_req(crypto_skcipher_encrypt(req), &wait);
d407574e 189 skcipher_request_free(req);
0b81d077 190 if (res) {
544d08fd
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191 fscrypt_err(inode->i_sb,
192 "%scryption failed for inode %lu, block %llu: %d",
193 (rw == FS_DECRYPT ? "de" : "en"),
194 inode->i_ino, lblk_num, res);
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195 return res;
196 }
197 return 0;
198}
199
0b81d077 200/**
53bc1d85
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201 * fscrypt_encrypt_pagecache_blocks() - Encrypt filesystem blocks from a pagecache page
202 * @page: The locked pagecache page containing the block(s) to encrypt
203 * @len: Total size of the block(s) to encrypt. Must be a nonzero
204 * multiple of the filesystem's block size.
205 * @offs: Byte offset within @page of the first block to encrypt. Must be
206 * a multiple of the filesystem's block size.
207 * @gfp_flags: Memory allocation flags
208 *
209 * A new bounce page is allocated, and the specified block(s) are encrypted into
210 * it. In the bounce page, the ciphertext block(s) will be located at the same
211 * offsets at which the plaintext block(s) were located in the source page; any
212 * other parts of the bounce page will be left uninitialized. However, normally
213 * blocksize == PAGE_SIZE and the whole page is encrypted at once.
0b81d077 214 *
53bc1d85 215 * This is for use by the filesystem's ->writepages() method.
0b81d077 216 *
53bc1d85 217 * Return: the new encrypted bounce page on success; an ERR_PTR() on failure
0b81d077 218 */
53bc1d85
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219struct page *fscrypt_encrypt_pagecache_blocks(struct page *page,
220 unsigned int len,
221 unsigned int offs,
222 gfp_t gfp_flags)
7821d4dd 223
0b81d077 224{
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225 const struct inode *inode = page->mapping->host;
226 const unsigned int blockbits = inode->i_blkbits;
227 const unsigned int blocksize = 1 << blockbits;
03569f2f 228 struct page *ciphertext_page;
53bc1d85
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229 u64 lblk_num = ((u64)page->index << (PAGE_SHIFT - blockbits)) +
230 (offs >> blockbits);
231 unsigned int i;
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232 int err;
233
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234 if (WARN_ON_ONCE(!PageLocked(page)))
235 return ERR_PTR(-EINVAL);
bd7b8290 236
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237 if (WARN_ON_ONCE(len <= 0 || !IS_ALIGNED(len | offs, blocksize)))
238 return ERR_PTR(-EINVAL);
239
d2d0727b
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240 ciphertext_page = fscrypt_alloc_bounce_page(gfp_flags);
241 if (!ciphertext_page)
242 return ERR_PTR(-ENOMEM);
0b81d077 243
53bc1d85
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244 for (i = offs; i < offs + len; i += blocksize, lblk_num++) {
245 err = fscrypt_crypt_block(inode, FS_ENCRYPT, lblk_num,
246 page, ciphertext_page,
247 blocksize, i, gfp_flags);
248 if (err) {
249 fscrypt_free_bounce_page(ciphertext_page);
250 return ERR_PTR(err);
251 }
0b81d077 252 }
9e532772 253 SetPagePrivate(ciphertext_page);
d2d0727b 254 set_page_private(ciphertext_page, (unsigned long)page);
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255 return ciphertext_page;
256}
53bc1d85 257EXPORT_SYMBOL(fscrypt_encrypt_pagecache_blocks);
0b81d077 258
03569f2f
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259/**
260 * fscrypt_encrypt_block_inplace() - Encrypt a filesystem block in-place
261 * @inode: The inode to which this block belongs
262 * @page: The page containing the block to encrypt
263 * @len: Size of block to encrypt. Doesn't need to be a multiple of the
264 * fs block size, but must be a multiple of FS_CRYPTO_BLOCK_SIZE.
265 * @offs: Byte offset within @page at which the block to encrypt begins
266 * @lblk_num: Filesystem logical block number of the block, i.e. the 0-based
267 * number of the block within the file
268 * @gfp_flags: Memory allocation flags
269 *
270 * Encrypt a possibly-compressed filesystem block that is located in an
271 * arbitrary page, not necessarily in the original pagecache page. The @inode
272 * and @lblk_num must be specified, as they can't be determined from @page.
273 *
274 * Return: 0 on success; -errno on failure
275 */
276int fscrypt_encrypt_block_inplace(const struct inode *inode, struct page *page,
277 unsigned int len, unsigned int offs,
278 u64 lblk_num, gfp_t gfp_flags)
279{
280 return fscrypt_crypt_block(inode, FS_ENCRYPT, lblk_num, page, page,
281 len, offs, gfp_flags);
282}
283EXPORT_SYMBOL(fscrypt_encrypt_block_inplace);
284
0b81d077 285/**
7821d4dd 286 * fscrypt_decrypt_page() - Decrypts a page in-place
1400451f
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287 * @inode: The corresponding inode for the page to decrypt.
288 * @page: The page to decrypt. Must be locked in case
bd7b8290 289 * it is a writeback page (FS_CFLG_OWN_PAGES unset).
1400451f
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290 * @len: Number of bytes in @page to be decrypted.
291 * @offs: Start of data in @page.
292 * @lblk_num: Logical block number.
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293 *
294 * Decrypts page in-place using the ctx encryption context.
295 *
296 * Called from the read completion callback.
297 *
298 * Return: Zero on success, non-zero otherwise.
299 */
0b93e1b9 300int fscrypt_decrypt_page(const struct inode *inode, struct page *page,
1400451f 301 unsigned int len, unsigned int offs, u64 lblk_num)
0b81d077 302{
eeacfdc6
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303 if (WARN_ON_ONCE(!PageLocked(page) &&
304 !(inode->i_sb->s_cop->flags & FS_CFLG_OWN_PAGES)))
305 return -EINVAL;
bd7b8290 306
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307 return fscrypt_crypt_block(inode, FS_DECRYPT, lblk_num, page, page,
308 len, offs, GFP_NOFS);
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309}
310EXPORT_SYMBOL(fscrypt_decrypt_page);
311
0b81d077 312/*
6cc24868
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313 * Validate dentries in encrypted directories to make sure we aren't potentially
314 * caching stale dentries after a key has been added.
0b81d077
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315 */
316static int fscrypt_d_revalidate(struct dentry *dentry, unsigned int flags)
317{
d7d75352 318 struct dentry *dir;
6cc24868
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319 int err;
320 int valid;
321
322 /*
323 * Plaintext names are always valid, since fscrypt doesn't support
324 * reverting to ciphertext names without evicting the directory's inode
325 * -- which implies eviction of the dentries in the directory.
326 */
327 if (!(dentry->d_flags & DCACHE_ENCRYPTED_NAME))
328 return 1;
329
330 /*
331 * Ciphertext name; valid if the directory's key is still unavailable.
332 *
333 * Although fscrypt forbids rename() on ciphertext names, we still must
334 * use dget_parent() here rather than use ->d_parent directly. That's
335 * because a corrupted fs image may contain directory hard links, which
336 * the VFS handles by moving the directory's dentry tree in the dcache
337 * each time ->lookup() finds the directory and it already has a dentry
338 * elsewhere. Thus ->d_parent can be changing, and we must safely grab
339 * a reference to some ->d_parent to prevent it from being freed.
340 */
0b81d077 341
03a8bb0e
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342 if (flags & LOOKUP_RCU)
343 return -ECHILD;
344
d7d75352 345 dir = dget_parent(dentry);
6cc24868
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346 err = fscrypt_get_encryption_info(d_inode(dir));
347 valid = !fscrypt_has_encryption_key(d_inode(dir));
d7d75352 348 dput(dir);
0b81d077 349
6cc24868
EB
350 if (err < 0)
351 return err;
352
353 return valid;
0b81d077
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354}
355
356const struct dentry_operations fscrypt_d_ops = {
357 .d_revalidate = fscrypt_d_revalidate,
358};
0b81d077 359
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360static void fscrypt_destroy(void)
361{
362 struct fscrypt_ctx *pos, *n;
363
364 list_for_each_entry_safe(pos, n, &fscrypt_free_ctxs, free_list)
365 kmem_cache_free(fscrypt_ctx_cachep, pos);
366 INIT_LIST_HEAD(&fscrypt_free_ctxs);
367 mempool_destroy(fscrypt_bounce_page_pool);
368 fscrypt_bounce_page_pool = NULL;
369}
370
371/**
372 * fscrypt_initialize() - allocate major buffers for fs encryption.
f32d7ac2 373 * @cop_flags: fscrypt operations flags
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374 *
375 * We only call this when we start accessing encrypted files, since it
376 * results in memory getting allocated that wouldn't otherwise be used.
377 *
378 * Return: Zero on success, non-zero otherwise.
379 */
f32d7ac2 380int fscrypt_initialize(unsigned int cop_flags)
0b81d077
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381{
382 int i, res = -ENOMEM;
383
a0b3bc85
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384 /* No need to allocate a bounce page pool if this FS won't use it. */
385 if (cop_flags & FS_CFLG_OWN_PAGES)
0b81d077
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386 return 0;
387
388 mutex_lock(&fscrypt_init_mutex);
389 if (fscrypt_bounce_page_pool)
390 goto already_initialized;
391
392 for (i = 0; i < num_prealloc_crypto_ctxs; i++) {
393 struct fscrypt_ctx *ctx;
394
395 ctx = kmem_cache_zalloc(fscrypt_ctx_cachep, GFP_NOFS);
396 if (!ctx)
397 goto fail;
398 list_add(&ctx->free_list, &fscrypt_free_ctxs);
399 }
400
401 fscrypt_bounce_page_pool =
402 mempool_create_page_pool(num_prealloc_crypto_pages, 0);
403 if (!fscrypt_bounce_page_pool)
404 goto fail;
405
406already_initialized:
407 mutex_unlock(&fscrypt_init_mutex);
408 return 0;
409fail:
410 fscrypt_destroy();
411 mutex_unlock(&fscrypt_init_mutex);
412 return res;
413}
0b81d077 414
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415void fscrypt_msg(struct super_block *sb, const char *level,
416 const char *fmt, ...)
417{
418 static DEFINE_RATELIMIT_STATE(rs, DEFAULT_RATELIMIT_INTERVAL,
419 DEFAULT_RATELIMIT_BURST);
420 struct va_format vaf;
421 va_list args;
422
423 if (!__ratelimit(&rs))
424 return;
425
426 va_start(args, fmt);
427 vaf.fmt = fmt;
428 vaf.va = &args;
429 if (sb)
430 printk("%sfscrypt (%s): %pV\n", level, sb->s_id, &vaf);
431 else
432 printk("%sfscrypt: %pV\n", level, &vaf);
433 va_end(args);
434}
435
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436/**
437 * fscrypt_init() - Set up for fs encryption.
438 */
439static int __init fscrypt_init(void)
440{
36dd26e0
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441 /*
442 * Use an unbound workqueue to allow bios to be decrypted in parallel
443 * even when they happen to complete on the same CPU. This sacrifices
444 * locality, but it's worthwhile since decryption is CPU-intensive.
445 *
446 * Also use a high-priority workqueue to prioritize decryption work,
447 * which blocks reads from completing, over regular application tasks.
448 */
0b81d077 449 fscrypt_read_workqueue = alloc_workqueue("fscrypt_read_queue",
36dd26e0
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450 WQ_UNBOUND | WQ_HIGHPRI,
451 num_online_cpus());
0b81d077
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452 if (!fscrypt_read_workqueue)
453 goto fail;
454
455 fscrypt_ctx_cachep = KMEM_CACHE(fscrypt_ctx, SLAB_RECLAIM_ACCOUNT);
456 if (!fscrypt_ctx_cachep)
457 goto fail_free_queue;
458
459 fscrypt_info_cachep = KMEM_CACHE(fscrypt_info, SLAB_RECLAIM_ACCOUNT);
460 if (!fscrypt_info_cachep)
461 goto fail_free_ctx;
462
463 return 0;
464
465fail_free_ctx:
466 kmem_cache_destroy(fscrypt_ctx_cachep);
467fail_free_queue:
468 destroy_workqueue(fscrypt_read_workqueue);
469fail:
470 return -ENOMEM;
471}
472module_init(fscrypt_init)
473
474/**
475 * fscrypt_exit() - Shutdown the fs encryption system
476 */
477static void __exit fscrypt_exit(void)
478{
479 fscrypt_destroy();
480
481 if (fscrypt_read_workqueue)
482 destroy_workqueue(fscrypt_read_workqueue);
483 kmem_cache_destroy(fscrypt_ctx_cachep);
484 kmem_cache_destroy(fscrypt_info_cachep);
b7e7cf7a
DW
485
486 fscrypt_essiv_cleanup();
0b81d077
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487}
488module_exit(fscrypt_exit);
489
490MODULE_LICENSE("GPL");