| xj | b04a402 | 2021-11-25 15:01:52 +0800 | [diff] [blame] | 1 | // SPDX-License-Identifier: GPL-2.0 |
| 2 | /* |
| 3 | * Copyright 2019 Google LLC |
| 4 | */ |
| 5 | |
| 6 | #include <linux/bio.h> |
| 7 | #include <linux/blkdev.h> |
| 8 | #include <linux/keyslot-manager.h> |
| 9 | #include <linux/module.h> |
| 10 | #include <linux/slab.h> |
| 11 | |
| 12 | #include "blk-crypto-internal.h" |
| 13 | |
| 14 | static int num_prealloc_crypt_ctxs = 128; |
| 15 | |
| 16 | module_param(num_prealloc_crypt_ctxs, int, 0444); |
| 17 | MODULE_PARM_DESC(num_prealloc_crypt_ctxs, |
| 18 | "Number of bio crypto contexts to preallocate"); |
| 19 | |
| 20 | static struct kmem_cache *bio_crypt_ctx_cache; |
| 21 | static mempool_t *bio_crypt_ctx_pool; |
| 22 | |
| 23 | int __init bio_crypt_ctx_init(void) |
| 24 | { |
| 25 | size_t i; |
| 26 | |
| 27 | bio_crypt_ctx_cache = KMEM_CACHE(bio_crypt_ctx, 0); |
| 28 | if (!bio_crypt_ctx_cache) |
| 29 | return -ENOMEM; |
| 30 | |
| 31 | bio_crypt_ctx_pool = mempool_create_slab_pool(num_prealloc_crypt_ctxs, |
| 32 | bio_crypt_ctx_cache); |
| 33 | if (!bio_crypt_ctx_pool) |
| 34 | return -ENOMEM; |
| 35 | |
| 36 | /* This is assumed in various places. */ |
| 37 | BUILD_BUG_ON(BLK_ENCRYPTION_MODE_INVALID != 0); |
| 38 | |
| 39 | /* Sanity check that no algorithm exceeds the defined limits. */ |
| 40 | for (i = 0; i < BLK_ENCRYPTION_MODE_MAX; i++) { |
| 41 | BUG_ON(blk_crypto_modes[i].keysize > BLK_CRYPTO_MAX_KEY_SIZE); |
| 42 | BUG_ON(blk_crypto_modes[i].ivsize > BLK_CRYPTO_MAX_IV_SIZE); |
| 43 | } |
| 44 | |
| 45 | return 0; |
| 46 | } |
| 47 | |
| 48 | struct bio_crypt_ctx *bio_crypt_alloc_ctx(gfp_t gfp_mask) |
| 49 | { |
| 50 | return mempool_alloc(bio_crypt_ctx_pool, gfp_mask); |
| 51 | } |
| 52 | |
| 53 | void bio_crypt_free_ctx(struct bio *bio) |
| 54 | { |
| 55 | mempool_free(bio->bi_crypt_context, bio_crypt_ctx_pool); |
| 56 | bio->bi_crypt_context = NULL; |
| 57 | } |
| 58 | |
| 59 | void bio_crypt_clone(struct bio *dst, struct bio *src, gfp_t gfp_mask) |
| 60 | { |
| 61 | const struct bio_crypt_ctx *src_bc = src->bi_crypt_context; |
| 62 | |
| 63 | /* |
| 64 | * If a bio is fallback_crypted, then it will be decrypted when |
| 65 | * bio_endio is called. As we only want the data to be decrypted once, |
| 66 | * copies of the bio must not have have a crypt context. |
| 67 | */ |
| 68 | if (!src_bc || bio_crypt_fallback_crypted(src_bc)) |
| 69 | return; |
| 70 | |
| 71 | dst->bi_crypt_context = bio_crypt_alloc_ctx(gfp_mask); |
| 72 | *dst->bi_crypt_context = *src_bc; |
| 73 | |
| 74 | if (src_bc->bc_keyslot >= 0) |
| 75 | keyslot_manager_get_slot(src_bc->bc_ksm, src_bc->bc_keyslot); |
| 76 | } |
| 77 | EXPORT_SYMBOL_GPL(bio_crypt_clone); |
| 78 | |
| 79 | bool bio_crypt_should_process(struct request *rq) |
| 80 | { |
| 81 | struct bio *bio = rq->bio; |
| 82 | |
| 83 | if (!bio || !bio->bi_crypt_context) |
| 84 | return false; |
| 85 | |
| 86 | return rq->q->ksm == bio->bi_crypt_context->bc_ksm; |
| 87 | } |
| 88 | EXPORT_SYMBOL_GPL(bio_crypt_should_process); |
| 89 | |
| 90 | /* |
| 91 | * Checks that two bio crypt contexts are compatible - i.e. that |
| 92 | * they are mergeable except for data_unit_num continuity. |
| 93 | */ |
| 94 | bool bio_crypt_ctx_compatible(struct bio *b_1, struct bio *b_2) |
| 95 | { |
| 96 | struct bio_crypt_ctx *bc1 = b_1->bi_crypt_context; |
| 97 | struct bio_crypt_ctx *bc2 = b_2->bi_crypt_context; |
| 98 | |
| 99 | if (bc1 != bc2) |
| 100 | return false; |
| 101 | |
| 102 | return !bc1 || bc1->bc_key == bc2->bc_key; |
| 103 | } |
| 104 | |
| 105 | /* |
| 106 | * Checks that two bio crypt contexts are compatible, and also |
| 107 | * that their data_unit_nums are continuous (and can hence be merged) |
| 108 | * in the order b_1 followed by b_2. |
| 109 | */ |
| 110 | bool bio_crypt_ctx_mergeable(struct bio *b_1, unsigned int b1_bytes, |
| 111 | struct bio *b_2) |
| 112 | { |
| 113 | struct bio_crypt_ctx *bc1 = b_1->bi_crypt_context; |
| 114 | struct bio_crypt_ctx *bc2 = b_2->bi_crypt_context; |
| 115 | |
| 116 | if (!bio_crypt_ctx_compatible(b_1, b_2)) |
| 117 | return false; |
| 118 | |
| 119 | return !bc1 || bio_crypt_dun_is_contiguous(bc1, b1_bytes, bc2->bc_dun); |
| 120 | } |
| 121 | |
| 122 | void bio_crypt_ctx_release_keyslot(struct bio_crypt_ctx *bc) |
| 123 | { |
| 124 | keyslot_manager_put_slot(bc->bc_ksm, bc->bc_keyslot); |
| 125 | bc->bc_ksm = NULL; |
| 126 | bc->bc_keyslot = -1; |
| 127 | } |
| 128 | |
| 129 | int bio_crypt_ctx_acquire_keyslot(struct bio_crypt_ctx *bc, |
| 130 | struct keyslot_manager *ksm) |
| 131 | { |
| 132 | int slot = keyslot_manager_get_slot_for_key(ksm, bc->bc_key); |
| 133 | |
| 134 | if (slot < 0) |
| 135 | return slot; |
| 136 | |
| 137 | bc->bc_keyslot = slot; |
| 138 | bc->bc_ksm = ksm; |
| 139 | return 0; |
| 140 | } |