mirror of
https://github.com/BobTheBlinker/android_kernel_motorola_sm6375.git
synced 2026-10-05 19:31:57 -04:00
We introduce blk-crypto, which manages programming keyslots for struct bios. With blk-crypto, filesystems only need to call bio_crypt_set_ctx with the encryption key, algorithm and data_unit_num; they don't have to worry about getting a keyslot for each encryption context, as blk-crypto handles that. Blk-crypto also makes it possible for layered devices like device mapper to make use of inline encryption hardware. Blk-crypto delegates crypto operations to inline encryption hardware when available, and also contains a software fallback to the kernel crypto API. For more details, refer to Documentation/block/inline-encryption.rst. Bug: 137270441 Test: tested as series; see Ie1b77f7615d6a7a60fdc9105c7ab2200d17636a8 Change-Id: I7df59fef0c1e90043b1899c5a95973e23afac0c5 Signed-off-by: Satya Tangirala <satyat@google.com> Link: https://patchwork.kernel.org/patch/11214731/
798 lines
22 KiB
C
798 lines
22 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* Copyright 2019 Google LLC
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*/
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/*
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* Refer to Documentation/block/inline-encryption.rst for detailed explanation.
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*/
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#define pr_fmt(fmt) "blk-crypto: " fmt
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#include <linux/blk-crypto.h>
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#include <linux/keyslot-manager.h>
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#include <linux/mempool.h>
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#include <linux/blk-cgroup.h>
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#include <linux/crypto.h>
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#include <crypto/skcipher.h>
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#include <crypto/algapi.h>
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#include <linux/module.h>
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#include <linux/sched/mm.h>
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/* Represents a crypto mode supported by blk-crypto */
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struct blk_crypto_mode {
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const char *cipher_str; /* crypto API name (for fallback case) */
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size_t keysize; /* key size in bytes */
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};
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static const struct blk_crypto_mode blk_crypto_modes[] = {
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[BLK_ENCRYPTION_MODE_AES_256_XTS] = {
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.cipher_str = "xts(aes)",
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.keysize = 64,
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},
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};
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static unsigned int num_prealloc_bounce_pg = 32;
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module_param(num_prealloc_bounce_pg, uint, 0);
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MODULE_PARM_DESC(num_prealloc_bounce_pg,
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"Number of preallocated bounce pages for blk-crypto to use during crypto API fallback encryption");
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#define BLK_CRYPTO_MAX_KEY_SIZE 64
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static int blk_crypto_num_keyslots = 100;
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module_param_named(num_keyslots, blk_crypto_num_keyslots, int, 0);
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MODULE_PARM_DESC(num_keyslots,
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"Number of keyslots for crypto API fallback in blk-crypto.");
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static struct blk_crypto_keyslot {
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struct crypto_skcipher *tfm;
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enum blk_crypto_mode_num crypto_mode;
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u8 key[BLK_CRYPTO_MAX_KEY_SIZE];
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struct crypto_skcipher *tfms[ARRAY_SIZE(blk_crypto_modes)];
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} *blk_crypto_keyslots;
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/*
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* Allocating a crypto tfm during I/O can deadlock, so we have to preallocate
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* all of a mode's tfms when that mode starts being used. Since each mode may
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* need all the keyslots at some point, each mode needs its own tfm for each
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* keyslot; thus, a keyslot may contain tfms for multiple modes. However, to
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* match the behavior of real inline encryption hardware (which only supports a
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* single encryption context per keyslot), we only allow one tfm per keyslot to
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* be used at a time - the rest of the unused tfms have their keys cleared.
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*/
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static struct mutex tfms_lock[ARRAY_SIZE(blk_crypto_modes)];
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static bool tfms_inited[ARRAY_SIZE(blk_crypto_modes)];
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struct work_mem {
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struct work_struct crypto_work;
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struct bio *bio;
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};
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/* The following few vars are only used during the crypto API fallback */
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static struct keyslot_manager *blk_crypto_ksm;
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static struct workqueue_struct *blk_crypto_wq;
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static mempool_t *blk_crypto_page_pool;
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static struct kmem_cache *blk_crypto_work_mem_cache;
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bool bio_crypt_swhandled(struct bio *bio)
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{
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return bio_has_crypt_ctx(bio) &&
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bio->bi_crypt_context->processing_ksm == blk_crypto_ksm;
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}
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static u8 blank_key[BLK_CRYPTO_MAX_KEY_SIZE];
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static void evict_keyslot(unsigned int slot)
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{
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struct blk_crypto_keyslot *slotp = &blk_crypto_keyslots[slot];
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enum blk_crypto_mode_num crypto_mode = slotp->crypto_mode;
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int err;
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WARN_ON(slotp->crypto_mode == BLK_ENCRYPTION_MODE_INVALID);
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/* Clear the key in the skcipher */
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err = crypto_skcipher_setkey(slotp->tfms[crypto_mode], blank_key,
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blk_crypto_modes[crypto_mode].keysize);
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WARN_ON(err);
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memzero_explicit(slotp->key, BLK_CRYPTO_MAX_KEY_SIZE);
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slotp->crypto_mode = BLK_ENCRYPTION_MODE_INVALID;
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}
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static int blk_crypto_keyslot_program(void *priv, const u8 *key,
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enum blk_crypto_mode_num crypto_mode,
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unsigned int data_unit_size,
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unsigned int slot)
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{
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struct blk_crypto_keyslot *slotp = &blk_crypto_keyslots[slot];
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const struct blk_crypto_mode *mode = &blk_crypto_modes[crypto_mode];
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size_t keysize = mode->keysize;
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int err;
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if (crypto_mode != slotp->crypto_mode &&
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slotp->crypto_mode != BLK_ENCRYPTION_MODE_INVALID) {
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evict_keyslot(slot);
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}
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if (!slotp->tfms[crypto_mode])
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return -ENOMEM;
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slotp->crypto_mode = crypto_mode;
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err = crypto_skcipher_setkey(slotp->tfms[crypto_mode], key, keysize);
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if (err) {
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evict_keyslot(slot);
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return err;
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}
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memcpy(slotp->key, key, keysize);
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return 0;
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}
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static int blk_crypto_keyslot_evict(void *priv, const u8 *key,
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enum blk_crypto_mode_num crypto_mode,
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unsigned int data_unit_size,
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unsigned int slot)
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{
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evict_keyslot(slot);
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return 0;
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}
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static int blk_crypto_keyslot_find(void *priv,
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const u8 *key,
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enum blk_crypto_mode_num crypto_mode,
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unsigned int data_unit_size_bytes)
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{
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int slot;
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const size_t keysize = blk_crypto_modes[crypto_mode].keysize;
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for (slot = 0; slot < blk_crypto_num_keyslots; slot++) {
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if (blk_crypto_keyslots[slot].crypto_mode == crypto_mode &&
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!crypto_memneq(blk_crypto_keyslots[slot].key, key, keysize))
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return slot;
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}
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return -ENOKEY;
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}
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static bool blk_crypto_mode_supported(void *priv,
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enum blk_crypto_mode_num crypt_mode,
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unsigned int data_unit_size)
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{
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/* All blk_crypto_modes are required to have a crypto API fallback. */
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return true;
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}
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/*
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* The crypto API fallback KSM ops - only used for a bio when it specifies a
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* blk_crypto_mode for which we failed to get a keyslot in the device's inline
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* encryption hardware (which probably means the device doesn't have inline
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* encryption hardware that supports that crypto mode).
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*/
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static const struct keyslot_mgmt_ll_ops blk_crypto_ksm_ll_ops = {
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.keyslot_program = blk_crypto_keyslot_program,
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.keyslot_evict = blk_crypto_keyslot_evict,
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.keyslot_find = blk_crypto_keyslot_find,
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.crypto_mode_supported = blk_crypto_mode_supported,
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};
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static void blk_crypto_encrypt_endio(struct bio *enc_bio)
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{
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struct bio *src_bio = enc_bio->bi_private;
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int i;
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for (i = 0; i < enc_bio->bi_vcnt; i++)
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mempool_free(enc_bio->bi_io_vec[i].bv_page,
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blk_crypto_page_pool);
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src_bio->bi_status = enc_bio->bi_status;
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bio_put(enc_bio);
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bio_endio(src_bio);
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}
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static struct bio *blk_crypto_clone_bio(struct bio *bio_src)
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{
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struct bvec_iter iter;
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struct bio_vec bv;
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struct bio *bio;
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bio = bio_alloc_bioset(GFP_NOIO, bio_segments(bio_src), NULL);
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if (!bio)
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return NULL;
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bio->bi_disk = bio_src->bi_disk;
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bio->bi_opf = bio_src->bi_opf;
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bio->bi_ioprio = bio_src->bi_ioprio;
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bio->bi_write_hint = bio_src->bi_write_hint;
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bio->bi_iter.bi_sector = bio_src->bi_iter.bi_sector;
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bio->bi_iter.bi_size = bio_src->bi_iter.bi_size;
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bio_for_each_segment(bv, bio_src, iter)
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bio->bi_io_vec[bio->bi_vcnt++] = bv;
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if (bio_integrity(bio_src) &&
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bio_integrity_clone(bio, bio_src, GFP_NOIO) < 0) {
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bio_put(bio);
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return NULL;
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}
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bio_clone_blkg_association(bio, bio_src);
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blkcg_bio_issue_init(bio);
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return bio;
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}
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/* Check that all I/O segments are data unit aligned */
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static int bio_crypt_check_alignment(struct bio *bio)
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{
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int data_unit_size = 1 << bio->bi_crypt_context->data_unit_size_bits;
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struct bvec_iter iter;
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struct bio_vec bv;
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bio_for_each_segment(bv, bio, iter) {
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if (!IS_ALIGNED(bv.bv_len | bv.bv_offset, data_unit_size))
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return -EIO;
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}
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return 0;
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}
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static int blk_crypto_alloc_cipher_req(struct bio *src_bio,
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struct skcipher_request **ciph_req_ptr,
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struct crypto_wait *wait)
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{
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int slot;
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struct skcipher_request *ciph_req;
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struct blk_crypto_keyslot *slotp;
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slot = bio_crypt_get_keyslot(src_bio);
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slotp = &blk_crypto_keyslots[slot];
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ciph_req = skcipher_request_alloc(slotp->tfms[slotp->crypto_mode],
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GFP_NOIO);
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if (!ciph_req) {
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src_bio->bi_status = BLK_STS_RESOURCE;
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return -ENOMEM;
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}
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skcipher_request_set_callback(ciph_req,
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CRYPTO_TFM_REQ_MAY_BACKLOG |
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CRYPTO_TFM_REQ_MAY_SLEEP,
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crypto_req_done, wait);
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*ciph_req_ptr = ciph_req;
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return 0;
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}
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static int blk_crypto_split_bio_if_needed(struct bio **bio_ptr)
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{
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struct bio *bio = *bio_ptr;
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unsigned int i = 0;
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unsigned int num_sectors = 0;
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struct bio_vec bv;
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struct bvec_iter iter;
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bio_for_each_segment(bv, bio, iter) {
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num_sectors += bv.bv_len >> SECTOR_SHIFT;
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if (++i == BIO_MAX_PAGES)
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break;
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}
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if (num_sectors < bio_sectors(bio)) {
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struct bio *split_bio;
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split_bio = bio_split(bio, num_sectors, GFP_NOIO, NULL);
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if (!split_bio) {
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bio->bi_status = BLK_STS_RESOURCE;
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return -ENOMEM;
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}
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bio_chain(split_bio, bio);
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generic_make_request(bio);
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*bio_ptr = split_bio;
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}
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return 0;
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}
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/*
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* The crypto API fallback's encryption routine.
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* Allocate a bounce bio for encryption, encrypt the input bio using
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* crypto API, and replace *bio_ptr with the bounce bio. May split input
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* bio if it's too large.
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*/
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static int blk_crypto_encrypt_bio(struct bio **bio_ptr)
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{
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struct bio *src_bio;
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struct skcipher_request *ciph_req = NULL;
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DECLARE_CRYPTO_WAIT(wait);
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int err = 0;
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u64 curr_dun;
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union {
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__le64 dun;
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u8 bytes[16];
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} iv;
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struct scatterlist src, dst;
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struct bio *enc_bio;
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struct bio_vec *enc_bvec;
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int i, j;
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int data_unit_size;
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/* Split the bio if it's too big for single page bvec */
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err = blk_crypto_split_bio_if_needed(bio_ptr);
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if (err)
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return err;
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src_bio = *bio_ptr;
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data_unit_size = 1 << src_bio->bi_crypt_context->data_unit_size_bits;
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/* Allocate bounce bio for encryption */
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enc_bio = blk_crypto_clone_bio(src_bio);
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if (!enc_bio) {
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src_bio->bi_status = BLK_STS_RESOURCE;
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return -ENOMEM;
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}
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/*
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* Use the crypto API fallback keyslot manager to get a crypto_skcipher
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* for the algorithm and key specified for this bio.
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*/
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err = bio_crypt_ctx_acquire_keyslot(src_bio, blk_crypto_ksm);
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if (err) {
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src_bio->bi_status = BLK_STS_IOERR;
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goto out_put_enc_bio;
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}
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/* and then allocate an skcipher_request for it */
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err = blk_crypto_alloc_cipher_req(src_bio, &ciph_req, &wait);
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if (err)
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goto out_release_keyslot;
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curr_dun = bio_crypt_data_unit_num(src_bio);
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sg_init_table(&src, 1);
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sg_init_table(&dst, 1);
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skcipher_request_set_crypt(ciph_req, &src, &dst,
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data_unit_size, iv.bytes);
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/* Encrypt each page in the bounce bio */
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for (i = 0, enc_bvec = enc_bio->bi_io_vec; i < enc_bio->bi_vcnt;
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enc_bvec++, i++) {
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struct page *plaintext_page = enc_bvec->bv_page;
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struct page *ciphertext_page =
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mempool_alloc(blk_crypto_page_pool, GFP_NOIO);
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enc_bvec->bv_page = ciphertext_page;
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if (!ciphertext_page) {
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src_bio->bi_status = BLK_STS_RESOURCE;
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err = -ENOMEM;
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goto out_free_bounce_pages;
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}
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sg_set_page(&src, plaintext_page, data_unit_size,
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enc_bvec->bv_offset);
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sg_set_page(&dst, ciphertext_page, data_unit_size,
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enc_bvec->bv_offset);
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/* Encrypt each data unit in this page */
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for (j = 0; j < enc_bvec->bv_len; j += data_unit_size) {
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memset(&iv, 0, sizeof(iv));
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iv.dun = cpu_to_le64(curr_dun);
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err = crypto_wait_req(crypto_skcipher_encrypt(ciph_req),
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&wait);
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if (err) {
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i++;
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src_bio->bi_status = BLK_STS_RESOURCE;
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goto out_free_bounce_pages;
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}
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curr_dun++;
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src.offset += data_unit_size;
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dst.offset += data_unit_size;
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}
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}
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enc_bio->bi_private = src_bio;
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enc_bio->bi_end_io = blk_crypto_encrypt_endio;
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*bio_ptr = enc_bio;
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enc_bio = NULL;
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err = 0;
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goto out_free_ciph_req;
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out_free_bounce_pages:
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while (i > 0)
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mempool_free(enc_bio->bi_io_vec[--i].bv_page,
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blk_crypto_page_pool);
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out_free_ciph_req:
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skcipher_request_free(ciph_req);
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out_release_keyslot:
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bio_crypt_ctx_release_keyslot(src_bio);
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out_put_enc_bio:
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if (enc_bio)
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bio_put(enc_bio);
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return err;
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}
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/*
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* The crypto API fallback's main decryption routine.
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* Decrypts input bio in place.
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*/
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static void blk_crypto_decrypt_bio(struct work_struct *w)
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{
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struct work_mem *work_mem =
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container_of(w, struct work_mem, crypto_work);
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struct bio *bio = work_mem->bio;
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struct skcipher_request *ciph_req = NULL;
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DECLARE_CRYPTO_WAIT(wait);
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struct bio_vec bv;
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struct bvec_iter iter;
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u64 curr_dun;
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union {
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__le64 dun;
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u8 bytes[16];
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} iv;
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struct scatterlist sg;
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int data_unit_size = 1 << bio->bi_crypt_context->data_unit_size_bits;
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int i;
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int err;
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/*
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* Use the crypto API fallback keyslot manager to get a crypto_skcipher
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* for the algorithm and key specified for this bio.
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*/
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if (bio_crypt_ctx_acquire_keyslot(bio, blk_crypto_ksm)) {
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bio->bi_status = BLK_STS_RESOURCE;
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goto out_no_keyslot;
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}
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/* and then allocate an skcipher_request for it */
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err = blk_crypto_alloc_cipher_req(bio, &ciph_req, &wait);
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if (err)
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goto out;
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curr_dun = bio_crypt_sw_data_unit_num(bio);
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sg_init_table(&sg, 1);
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skcipher_request_set_crypt(ciph_req, &sg, &sg, data_unit_size,
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iv.bytes);
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/* Decrypt each segment in the bio */
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__bio_for_each_segment(bv, bio, iter,
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bio->bi_crypt_context->crypt_iter) {
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struct page *page = bv.bv_page;
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sg_set_page(&sg, page, data_unit_size, bv.bv_offset);
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/* Decrypt each data unit in the segment */
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for (i = 0; i < bv.bv_len; i += data_unit_size) {
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memset(&iv, 0, sizeof(iv));
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iv.dun = cpu_to_le64(curr_dun);
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if (crypto_wait_req(crypto_skcipher_decrypt(ciph_req),
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&wait)) {
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bio->bi_status = BLK_STS_IOERR;
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goto out;
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}
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curr_dun++;
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sg.offset += data_unit_size;
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}
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}
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out:
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skcipher_request_free(ciph_req);
|
|
bio_crypt_ctx_release_keyslot(bio);
|
|
out_no_keyslot:
|
|
kmem_cache_free(blk_crypto_work_mem_cache, work_mem);
|
|
bio_endio(bio);
|
|
}
|
|
|
|
/* Queue bio for decryption */
|
|
static void blk_crypto_queue_decrypt_bio(struct bio *bio)
|
|
{
|
|
struct work_mem *work_mem =
|
|
kmem_cache_zalloc(blk_crypto_work_mem_cache, GFP_ATOMIC);
|
|
|
|
if (!work_mem) {
|
|
bio->bi_status = BLK_STS_RESOURCE;
|
|
bio_endio(bio);
|
|
return;
|
|
}
|
|
|
|
INIT_WORK(&work_mem->crypto_work, blk_crypto_decrypt_bio);
|
|
work_mem->bio = bio;
|
|
queue_work(blk_crypto_wq, &work_mem->crypto_work);
|
|
}
|
|
|
|
/**
|
|
* blk_crypto_submit_bio - handle submitting bio for inline encryption
|
|
*
|
|
* @bio_ptr: pointer to original bio pointer
|
|
*
|
|
* If the bio doesn't have inline encryption enabled or the submitter already
|
|
* specified a keyslot for the target device, do nothing. Else, a raw key must
|
|
* have been provided, so acquire a device keyslot for it if supported. Else,
|
|
* use the crypto API fallback.
|
|
*
|
|
* When the crypto API fallback is used for encryption, blk-crypto may choose to
|
|
* split the bio into 2 - the first one that will continue to be processed and
|
|
* the second one that will be resubmitted via generic_make_request.
|
|
* A bounce bio will be allocated to encrypt the contents of the aforementioned
|
|
* "first one", and *bio_ptr will be updated to this bounce bio.
|
|
*
|
|
* Return: 0 if bio submission should continue; nonzero if bio_endio() was
|
|
* already called so bio submission should abort.
|
|
*/
|
|
int blk_crypto_submit_bio(struct bio **bio_ptr)
|
|
{
|
|
struct bio *bio = *bio_ptr;
|
|
struct request_queue *q;
|
|
int err;
|
|
struct bio_crypt_ctx *crypt_ctx;
|
|
|
|
if (!bio_has_crypt_ctx(bio) || !bio_has_data(bio))
|
|
return 0;
|
|
|
|
/*
|
|
* When a read bio is marked for sw decryption, its bi_iter is saved
|
|
* so that when we decrypt the bio later, we know what part of it was
|
|
* marked for sw decryption (when the bio is passed down after
|
|
* blk_crypto_submit bio, it may be split or advanced so we cannot rely
|
|
* on the bi_iter while decrypting in blk_crypto_endio)
|
|
*/
|
|
if (bio_crypt_swhandled(bio))
|
|
return 0;
|
|
|
|
err = bio_crypt_check_alignment(bio);
|
|
if (err) {
|
|
bio->bi_status = BLK_STS_IOERR;
|
|
goto out;
|
|
}
|
|
|
|
crypt_ctx = bio->bi_crypt_context;
|
|
q = bio->bi_disk->queue;
|
|
|
|
if (bio_crypt_has_keyslot(bio)) {
|
|
/* Key already programmed into device? */
|
|
if (q->ksm == crypt_ctx->processing_ksm)
|
|
return 0;
|
|
|
|
/* Nope, release the existing keyslot. */
|
|
bio_crypt_ctx_release_keyslot(bio);
|
|
}
|
|
|
|
/* Get device keyslot if supported */
|
|
if (q->ksm) {
|
|
err = bio_crypt_ctx_acquire_keyslot(bio, q->ksm);
|
|
if (!err)
|
|
return 0;
|
|
|
|
pr_warn_once("Failed to acquire keyslot for %s (err=%d). Falling back to crypto API.\n",
|
|
bio->bi_disk->disk_name, err);
|
|
}
|
|
|
|
/* Fallback to crypto API */
|
|
if (!READ_ONCE(tfms_inited[bio->bi_crypt_context->crypto_mode])) {
|
|
err = -EIO;
|
|
bio->bi_status = BLK_STS_IOERR;
|
|
goto out;
|
|
}
|
|
|
|
if (bio_data_dir(bio) == WRITE) {
|
|
/* Encrypt the data now */
|
|
err = blk_crypto_encrypt_bio(bio_ptr);
|
|
if (err)
|
|
goto out;
|
|
} else {
|
|
/* Mark bio as swhandled */
|
|
bio->bi_crypt_context->processing_ksm = blk_crypto_ksm;
|
|
bio->bi_crypt_context->crypt_iter = bio->bi_iter;
|
|
bio->bi_crypt_context->sw_data_unit_num =
|
|
bio->bi_crypt_context->data_unit_num;
|
|
}
|
|
return 0;
|
|
out:
|
|
bio_endio(*bio_ptr);
|
|
return err;
|
|
}
|
|
|
|
/**
|
|
* blk_crypto_endio - clean up bio w.r.t inline encryption during bio_endio
|
|
*
|
|
* @bio - the bio to clean up
|
|
*
|
|
* If blk_crypto_submit_bio decided to fallback to crypto API for this
|
|
* bio, we queue the bio for decryption into a workqueue and return false,
|
|
* and call bio_endio(bio) at a later time (after the bio has been decrypted).
|
|
*
|
|
* If the bio is not to be decrypted by the crypto API, this function releases
|
|
* the reference to the keyslot that blk_crypto_submit_bio got.
|
|
*
|
|
* Return: true if bio_endio should continue; false otherwise (bio_endio will
|
|
* be called again when bio has been decrypted).
|
|
*/
|
|
bool blk_crypto_endio(struct bio *bio)
|
|
{
|
|
if (!bio_has_crypt_ctx(bio))
|
|
return true;
|
|
|
|
if (bio_crypt_swhandled(bio)) {
|
|
/*
|
|
* The only bios that are swhandled when they reach here
|
|
* are those with bio_data_dir(bio) == READ, since WRITE
|
|
* bios that are encrypted by the crypto API fallback are
|
|
* handled by blk_crypto_encrypt_endio.
|
|
*/
|
|
|
|
/* If there was an IO error, don't decrypt. */
|
|
if (bio->bi_status)
|
|
return true;
|
|
|
|
blk_crypto_queue_decrypt_bio(bio);
|
|
return false;
|
|
}
|
|
|
|
if (bio_crypt_has_keyslot(bio))
|
|
bio_crypt_ctx_release_keyslot(bio);
|
|
|
|
return true;
|
|
}
|
|
|
|
/**
|
|
* blk_crypto_start_using_mode() - Allocate skciphers for a
|
|
* mode_num for all keyslots
|
|
* @mode_num - the blk_crypto_mode we want to allocate ciphers for.
|
|
*
|
|
* Upper layers (filesystems) should call this function to ensure that a
|
|
* the crypto API fallback has transforms for this algorithm, if they become
|
|
* necessary.
|
|
*
|
|
* Return: 0 on success and -err on error.
|
|
*/
|
|
int blk_crypto_start_using_mode(enum blk_crypto_mode_num mode_num,
|
|
unsigned int data_unit_size,
|
|
struct request_queue *q)
|
|
{
|
|
struct blk_crypto_keyslot *slotp;
|
|
int err = 0;
|
|
int i;
|
|
|
|
/*
|
|
* Fast path
|
|
* Ensure that updates to blk_crypto_keyslots[i].tfms[mode_num]
|
|
* for each i are visible before we try to access them.
|
|
*/
|
|
if (likely(smp_load_acquire(&tfms_inited[mode_num])))
|
|
return 0;
|
|
|
|
/*
|
|
* If the keyslot manager of the request queue supports this
|
|
* crypto mode, then we don't need to allocate this mode.
|
|
*/
|
|
if (keyslot_manager_crypto_mode_supported(q->ksm, mode_num,
|
|
data_unit_size)) {
|
|
return 0;
|
|
}
|
|
|
|
mutex_lock(&tfms_lock[mode_num]);
|
|
if (likely(tfms_inited[mode_num]))
|
|
goto out;
|
|
|
|
for (i = 0; i < blk_crypto_num_keyslots; i++) {
|
|
slotp = &blk_crypto_keyslots[i];
|
|
slotp->tfms[mode_num] = crypto_alloc_skcipher(
|
|
blk_crypto_modes[mode_num].cipher_str,
|
|
0, 0);
|
|
if (IS_ERR(slotp->tfms[mode_num])) {
|
|
err = PTR_ERR(slotp->tfms[mode_num]);
|
|
slotp->tfms[mode_num] = NULL;
|
|
goto out_free_tfms;
|
|
}
|
|
|
|
crypto_skcipher_set_flags(slotp->tfms[mode_num],
|
|
CRYPTO_TFM_REQ_FORBID_WEAK_KEYS);
|
|
}
|
|
|
|
/*
|
|
* Ensure that updates to blk_crypto_keyslots[i].tfms[mode_num]
|
|
* for each i are visible before we set tfms_inited[mode_num].
|
|
*/
|
|
smp_store_release(&tfms_inited[mode_num], true);
|
|
goto out;
|
|
|
|
out_free_tfms:
|
|
for (i = 0; i < blk_crypto_num_keyslots; i++) {
|
|
slotp = &blk_crypto_keyslots[i];
|
|
crypto_free_skcipher(slotp->tfms[mode_num]);
|
|
slotp->tfms[mode_num] = NULL;
|
|
}
|
|
out:
|
|
mutex_unlock(&tfms_lock[mode_num]);
|
|
return err;
|
|
}
|
|
EXPORT_SYMBOL(blk_crypto_start_using_mode);
|
|
|
|
/**
|
|
* blk_crypto_evict_key() - Evict a key from any inline encryption hardware
|
|
* it may have been programmed into
|
|
* @q - The request queue who's keyslot manager this key might have been
|
|
* programmed into
|
|
* @key - The key to evict
|
|
* @mode - The blk_crypto_mode_num used with this key
|
|
* @data_unit_size - The data unit size used with this key
|
|
*
|
|
* Upper layers (filesystems) should call this function to ensure that a key
|
|
* is evicted from hardware that it might have been programmed into. This
|
|
* will call keyslot_manager_evict_key on the queue's keyslot manager, if one
|
|
* exists, and supports the crypto algorithm with the specified data unit size.
|
|
* Otherwise, it will evict the key from the blk_crypto_ksm.
|
|
*
|
|
* Return: 0 on success, -err on error.
|
|
*/
|
|
int blk_crypto_evict_key(struct request_queue *q, const u8 *key,
|
|
enum blk_crypto_mode_num mode,
|
|
unsigned int data_unit_size)
|
|
{
|
|
struct keyslot_manager *ksm = blk_crypto_ksm;
|
|
|
|
if (q && q->ksm && keyslot_manager_crypto_mode_supported(q->ksm, mode,
|
|
data_unit_size)) {
|
|
ksm = q->ksm;
|
|
}
|
|
|
|
return keyslot_manager_evict_key(ksm, key, mode, data_unit_size);
|
|
}
|
|
EXPORT_SYMBOL(blk_crypto_evict_key);
|
|
|
|
int __init blk_crypto_init(void)
|
|
{
|
|
int i;
|
|
int err = -ENOMEM;
|
|
|
|
prandom_bytes(blank_key, BLK_CRYPTO_MAX_KEY_SIZE);
|
|
|
|
blk_crypto_ksm = keyslot_manager_create(blk_crypto_num_keyslots,
|
|
&blk_crypto_ksm_ll_ops,
|
|
NULL);
|
|
if (!blk_crypto_ksm)
|
|
goto out;
|
|
|
|
blk_crypto_wq = alloc_workqueue("blk_crypto_wq",
|
|
WQ_UNBOUND | WQ_HIGHPRI |
|
|
WQ_MEM_RECLAIM,
|
|
num_online_cpus());
|
|
if (!blk_crypto_wq)
|
|
goto out_free_ksm;
|
|
|
|
blk_crypto_keyslots = kcalloc(blk_crypto_num_keyslots,
|
|
sizeof(*blk_crypto_keyslots),
|
|
GFP_KERNEL);
|
|
if (!blk_crypto_keyslots)
|
|
goto out_free_workqueue;
|
|
|
|
for (i = 0; i < blk_crypto_num_keyslots; i++) {
|
|
blk_crypto_keyslots[i].crypto_mode =
|
|
BLK_ENCRYPTION_MODE_INVALID;
|
|
}
|
|
|
|
for (i = 0; i < ARRAY_SIZE(blk_crypto_modes); i++)
|
|
mutex_init(&tfms_lock[i]);
|
|
|
|
blk_crypto_page_pool =
|
|
mempool_create_page_pool(num_prealloc_bounce_pg, 0);
|
|
if (!blk_crypto_page_pool)
|
|
goto out_free_keyslots;
|
|
|
|
blk_crypto_work_mem_cache = KMEM_CACHE(work_mem, SLAB_RECLAIM_ACCOUNT);
|
|
if (!blk_crypto_work_mem_cache)
|
|
goto out_free_page_pool;
|
|
|
|
return 0;
|
|
|
|
out_free_page_pool:
|
|
mempool_destroy(blk_crypto_page_pool);
|
|
blk_crypto_page_pool = NULL;
|
|
out_free_keyslots:
|
|
kzfree(blk_crypto_keyslots);
|
|
blk_crypto_keyslots = NULL;
|
|
out_free_workqueue:
|
|
destroy_workqueue(blk_crypto_wq);
|
|
blk_crypto_wq = NULL;
|
|
out_free_ksm:
|
|
keyslot_manager_destroy(blk_crypto_ksm);
|
|
blk_crypto_ksm = NULL;
|
|
out:
|
|
pr_warn("No memory for blk-crypto crypto API fallback.");
|
|
return err;
|
|
}
|