mirror of
https://gitlab.com/cryptsetup/cryptsetup.git
synced 2025-12-05 16:00:05 +01:00
470 lines
12 KiB
C
470 lines
12 KiB
C
/*
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* LUKS - Linux Unified Key Setup v2, keyslot handling
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*
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* Copyright (C) 2015-2018, Red Hat, Inc. All rights reserved.
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* Copyright (C) 2015-2018, Milan Broz. All rights reserved.
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version 2
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* of the License, or (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
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*/
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#include "luks2_internal.h"
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/* Internal implementations */
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extern const keyslot_handler luks2_keyslot;
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static const keyslot_handler *keyslot_handlers[LUKS2_KEYSLOTS_MAX] = {
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&luks2_keyslot,
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NULL
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};
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static const keyslot_handler
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*LUKS2_keyslot_handler_type(struct crypt_device *cd, const char *type)
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{
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int i;
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for (i = 0; i < LUKS2_KEYSLOTS_MAX && keyslot_handlers[i]; i++) {
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if (!strcmp(keyslot_handlers[i]->name, type))
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return keyslot_handlers[i];
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}
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return NULL;
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}
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static const keyslot_handler
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*LUKS2_keyslot_handler(struct crypt_device *cd, int keyslot)
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{
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struct luks2_hdr *hdr;
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json_object *jobj1, *jobj2;
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if (keyslot < 0)
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return NULL;
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if (!(hdr = crypt_get_hdr(cd, CRYPT_LUKS2)))
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return NULL;
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if (!(jobj1 = LUKS2_get_keyslot_jobj(hdr, keyslot)))
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return NULL;
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if (!json_object_object_get_ex(jobj1, "type", &jobj2))
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return NULL;
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return LUKS2_keyslot_handler_type(cd, json_object_get_string(jobj2));
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}
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static crypt_keyslot_info LUKS2_keyslot_active(struct luks2_hdr *hdr, int keyslot)
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{
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if (keyslot >= LUKS2_KEYSLOTS_MAX)
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return CRYPT_SLOT_INVALID;
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return LUKS2_get_keyslot_jobj(hdr, keyslot) ? CRYPT_SLOT_ACTIVE : CRYPT_SLOT_INACTIVE;
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}
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int LUKS2_keyslot_find_empty(struct luks2_hdr *hdr, const char *type)
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{
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int i;
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for (i = 0; i < LUKS2_KEYSLOTS_MAX; i++)
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if (!LUKS2_get_keyslot_jobj(hdr, i))
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return i;
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return -EINVAL;
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}
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int LUKS2_keyslot_for_segment(struct luks2_hdr *hdr, int keyslot, int segment)
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{
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int keyslot_digest, segment_digest;
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/* no need to check anything */
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if (segment == CRYPT_ANY_SEGMENT)
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return 0;
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keyslot_digest = LUKS2_digest_by_keyslot(NULL, hdr, keyslot);
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if (keyslot_digest < 0)
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return -EINVAL;
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segment_digest = LUKS2_digest_by_segment(NULL, hdr, segment);
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if (segment_digest < 0)
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return -EINVAL;
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return segment_digest == keyslot_digest ? 0 : -ENOENT;
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}
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int LUKS2_keyslot_active_count(struct luks2_hdr *hdr, int segment)
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{
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int num = 0;
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json_object *jobj_keyslots;
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json_object_object_get_ex(hdr->jobj, "keyslots", &jobj_keyslots);
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json_object_object_foreach(jobj_keyslots, slot, val) {
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UNUSED(val);
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if (!LUKS2_keyslot_for_segment(hdr, atoi(slot), segment))
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num++;
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}
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return num;
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}
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int LUKS2_keyslot_params_default(struct crypt_device *cd, struct luks2_hdr *hdr,
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size_t key_size, struct luks2_keyslot_params *params)
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{
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int r, integrity_key_size = crypt_get_integrity_key_size(cd);
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const struct crypt_pbkdf_type *pbkdf = crypt_get_pbkdf_type(cd);
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if (!hdr || !pbkdf || !params)
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return -EINVAL;
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params->af_type = LUKS2_KEYSLOT_AF_LUKS1;
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params->area_type = LUKS2_KEYSLOT_AREA_RAW;
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/* set keyslot AF parameters */
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/* currently we use hash for AF from pbkdf settings */
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r = snprintf(params->af.luks1.hash, sizeof(params->af.luks1.hash),
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"%s", pbkdf->hash);
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if (r < 0 || (size_t)r >= sizeof(params->af.luks1.hash))
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return -EINVAL;
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params->af.luks1.stripes = 4000;
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/* set keyslot area encryption parameters */
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/* short circuit authenticated encryption hardcoded defaults */
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if (crypt_get_integrity_tag_size(cd) || key_size == 0) {
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// FIXME: fixed cipher and key size can be wrong
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snprintf(params->area.raw.encryption, sizeof(params->area.raw.encryption),
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"aes-xts-plain64");
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params->area.raw.key_size = 32;
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return 0;
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}
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r = snprintf(params->area.raw.encryption, sizeof(params->area.raw.encryption),
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"%s", LUKS2_get_cipher(hdr, CRYPT_DEFAULT_SEGMENT));
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if (r < 0 || (size_t)r >= sizeof(params->area.raw.encryption))
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return -EINVAL;
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/* Slot encryption tries to use the same key size as for the main algorithm */
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if (integrity_key_size > key_size)
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return -EINVAL;
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params->area.raw.key_size = key_size - integrity_key_size;
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return 0;
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}
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crypt_keyslot_info LUKS2_keyslot_info(struct luks2_hdr *hdr, int keyslot)
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{
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crypt_keyslot_info ki;
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if(keyslot >= LUKS2_KEYSLOTS_MAX || keyslot < 0)
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return CRYPT_SLOT_INVALID;
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ki = LUKS2_keyslot_active(hdr, keyslot);
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if (ki != CRYPT_SLOT_ACTIVE)
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return ki;
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if (LUKS2_keyslot_active_count(hdr, CRYPT_DEFAULT_SEGMENT) == 1 && !LUKS2_keyslot_for_segment(hdr, keyslot, CRYPT_DEFAULT_SEGMENT))
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return CRYPT_SLOT_ACTIVE_LAST;
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return CRYPT_SLOT_ACTIVE;
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}
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int LUKS2_keyslot_area(struct luks2_hdr *hdr,
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int keyslot,
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uint64_t *offset,
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uint64_t *length)
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{
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json_object *jobj_keyslot, *jobj_area, *jobj;
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if(LUKS2_keyslot_info(hdr, keyslot) == CRYPT_SLOT_INVALID)
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return -EINVAL;
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jobj_keyslot = LUKS2_get_keyslot_jobj(hdr, keyslot);
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if (!jobj_keyslot)
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return -ENOENT;
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if (!json_object_object_get_ex(jobj_keyslot, "area", &jobj_area))
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return -EINVAL;
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if (!json_object_object_get_ex(jobj_area, "offset", &jobj))
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return -EINVAL;
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*offset = json_object_get_int64(jobj);
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if (!json_object_object_get_ex(jobj_area, "size", &jobj))
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return -EINVAL;
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*length = json_object_get_int64(jobj);
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return 0;
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}
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static int LUKS2_open_and_verify(struct crypt_device *cd,
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struct luks2_hdr *hdr,
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int keyslot,
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int segment,
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const char *password,
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size_t password_len,
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struct volume_key **vk)
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{
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const keyslot_handler *h;
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int key_size, r;
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if (!(h = LUKS2_keyslot_handler(cd, keyslot)))
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return -ENOENT;
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r = LUKS2_keyslot_for_segment(hdr, keyslot, segment);
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if (r) {
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if (r == -ENOENT)
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log_dbg("Keyslot %d unusable for segment %d.", keyslot, segment);
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return r;
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}
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key_size = LUKS2_get_volume_key_size(hdr, segment);
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if (key_size < 0)
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key_size = LUKS2_get_keyslot_key_size(hdr, keyslot);
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if (key_size < 0)
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return -EINVAL;
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*vk = crypt_alloc_volume_key(key_size, NULL);
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if (!*vk)
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return -ENOMEM;
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r = h->open(cd, keyslot, password, password_len, (*vk)->key, (*vk)->keylength);
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if (r < 0)
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log_dbg("Keyslot %d (%s) open failed with %d.", keyslot, h->name, r);
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else
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r = LUKS2_digest_verify(cd, hdr, *vk, keyslot);
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if (r < 0) {
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crypt_free_volume_key(*vk);
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*vk = NULL;
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}
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return r < 0 ? r : keyslot;
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}
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static int LUKS2_keyslot_open_priority(struct crypt_device *cd,
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struct luks2_hdr *hdr,
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crypt_keyslot_priority priority,
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const char *password,
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size_t password_len,
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int segment,
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struct volume_key **vk)
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{
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json_object *jobj_keyslots, *jobj;
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crypt_keyslot_priority slot_priority;
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int keyslot, r = -ENOENT;
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json_object_object_get_ex(hdr->jobj, "keyslots", &jobj_keyslots);
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json_object_object_foreach(jobj_keyslots, slot, val) {
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if (!json_object_object_get_ex(val, "priority", &jobj))
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slot_priority = CRYPT_SLOT_PRIORITY_NORMAL;
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else
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slot_priority = json_object_get_int(jobj);
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keyslot = atoi(slot);
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if (slot_priority != priority) {
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log_dbg("Keyslot %d priority %d != %d (required), skipped.",
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keyslot, slot_priority, priority);
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continue;
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}
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r = LUKS2_open_and_verify(cd, hdr, keyslot, segment, password, password_len, vk);
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/* Do not retry for errors that are no -EPERM or -ENOENT,
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former meaning password wrong, latter key slot unusable for segment */
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if ((r != -EPERM) && (r != -ENOENT))
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break;
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}
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return r;
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}
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int LUKS2_keyslot_open(struct crypt_device *cd,
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int keyslot,
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int segment,
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const char *password,
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size_t password_len,
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struct volume_key **vk)
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{
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struct luks2_hdr *hdr;
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int r_prio, r = -EINVAL;
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hdr = crypt_get_hdr(cd, CRYPT_LUKS2);
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if (keyslot == CRYPT_ANY_SLOT) {
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r_prio = LUKS2_keyslot_open_priority(cd, hdr, CRYPT_SLOT_PRIORITY_PREFER,
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password, password_len, segment, vk);
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if (r_prio >= 0)
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r = r_prio;
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else if (r_prio != -EPERM && r_prio != -ENOENT)
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r = r_prio;
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else
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r = LUKS2_keyslot_open_priority(cd, hdr, CRYPT_SLOT_PRIORITY_NORMAL,
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password, password_len, segment, vk);
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/* Prefer password wrong to no entry from priority slot */
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if (r_prio == -EPERM && r == -ENOENT)
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r = r_prio;
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} else
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r = LUKS2_open_and_verify(cd, hdr, keyslot, segment, password, password_len, vk);
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return r;
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}
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int LUKS2_keyslot_store(struct crypt_device *cd,
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struct luks2_hdr *hdr,
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int keyslot,
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const char *password,
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size_t password_len,
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const struct volume_key *vk,
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const struct luks2_keyslot_params *params)
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{
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const keyslot_handler *h;
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int r;
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if (keyslot == CRYPT_ANY_SLOT)
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return -EINVAL;
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if (!LUKS2_get_keyslot_jobj(hdr, keyslot)) {
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/* Try to allocate default and empty keyslot type */
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h = LUKS2_keyslot_handler_type(cd, "luks2");
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if (!h)
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return -EINVAL;
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r = h->alloc(cd, keyslot, vk->keylength, params);
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if (r)
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return r;
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} else if (!(h = LUKS2_keyslot_handler(cd, keyslot)))
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return -EINVAL;
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r = h->validate(cd, keyslot);
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if (r) {
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log_dbg("Keyslot validation failed.");
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return r;
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}
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return h->store(cd, keyslot, password, password_len,
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vk->key, vk->keylength);
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}
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int LUKS2_keyslot_wipe(struct crypt_device *cd,
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struct luks2_hdr *hdr,
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int keyslot,
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int wipe_area_only)
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{
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struct device *device = crypt_metadata_device(cd);
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uint64_t area_offset, area_length;
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char num[16];
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int r;
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json_object *jobj_keyslot, *jobj_keyslots;
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const keyslot_handler *h;
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h = LUKS2_keyslot_handler(cd, keyslot);
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if (!json_object_object_get_ex(hdr->jobj, "keyslots", &jobj_keyslots))
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return -EINVAL;
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jobj_keyslot = LUKS2_get_keyslot_jobj(hdr, keyslot);
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if (!jobj_keyslot)
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return -ENOENT;
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if (wipe_area_only)
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log_dbg("Wiping keyslot %d area only.", keyslot);
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/* Just check that nobody uses the metadata now */
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r = device_write_lock(cd, device);
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if (r) {
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log_err(cd, _("Failed to acquire write lock on device %s.\n"),
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device_path(device));
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return r;
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}
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device_write_unlock(device);
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/* secure deletion of possible key material in keyslot area */
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r = crypt_keyslot_area(cd, keyslot, &area_offset, &area_length);
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if (r && r != -ENOENT)
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return r;
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/* We can destroy the binary keyslot area now without lock */
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if (!r) {
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r = crypt_wipe_device(cd, device, CRYPT_WIPE_SPECIAL, area_offset,
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area_length, area_length, NULL, NULL);
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if (r) {
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if (r == -EACCES) {
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log_err(cd, _("Cannot write to device %s, permission denied.\n"),
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device_path(device));
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r = -EINVAL;
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} else
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log_err(cd, _("Cannot wipe device %s.\n"), device_path(device));
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return r;
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}
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}
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if (wipe_area_only)
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return r;
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/* Slot specific wipe */
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if (h) {
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r = h->wipe(cd, keyslot);
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if (r < 0)
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return r;
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} else
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log_dbg("Wiping keyslot %d without specific-slot handler loaded.", keyslot);
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snprintf(num, sizeof(num), "%d", keyslot);
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json_object_object_del(jobj_keyslots, num);
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return LUKS2_hdr_write(cd, hdr);
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}
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int LUKS2_keyslot_dump(struct crypt_device *cd, int keyslot)
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{
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const keyslot_handler *h;
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if (!(h = LUKS2_keyslot_handler(cd, keyslot)))
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return -EINVAL;
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return h->dump(cd, keyslot);
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}
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crypt_keyslot_priority LUKS2_keyslot_priority_get(struct crypt_device *cd,
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struct luks2_hdr *hdr, int keyslot)
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{
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json_object *jobj_keyslot, *jobj_priority;
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jobj_keyslot = LUKS2_get_keyslot_jobj(hdr, keyslot);
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if (!jobj_keyslot)
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return CRYPT_SLOT_PRIORITY_INVALID;
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if (!json_object_object_get_ex(jobj_keyslot, "priority", &jobj_priority))
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return CRYPT_SLOT_PRIORITY_NORMAL;
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return json_object_get_int(jobj_priority);
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}
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int LUKS2_keyslot_priority_set(struct crypt_device *cd, struct luks2_hdr *hdr,
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int keyslot, crypt_keyslot_priority priority, int commit)
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{
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json_object *jobj_keyslot;
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jobj_keyslot = LUKS2_get_keyslot_jobj(hdr, keyslot);
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if (!jobj_keyslot)
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return -EINVAL;
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if (priority == CRYPT_SLOT_PRIORITY_NORMAL)
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json_object_object_del(jobj_keyslot, "priority");
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else
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json_object_object_add(jobj_keyslot, "priority", json_object_new_int(priority));
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return commit ? LUKS2_hdr_write(cd, hdr) : 0;
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}
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