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@@ -1,5 +1,6 @@
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/* Large capacity key type
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*
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+ * Copyright (C) 2017 Jason A. Donenfeld <Jason@zx2c4.com>. All Rights Reserved.
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* Copyright (C) 2013 Red Hat, Inc. All Rights Reserved.
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* Written by David Howells (dhowells@redhat.com)
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*
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@@ -16,10 +17,10 @@
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#include <linux/shmem_fs.h>
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#include <linux/err.h>
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#include <linux/scatterlist.h>
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+#include <linux/random.h>
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#include <keys/user-type.h>
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#include <keys/big_key-type.h>
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-#include <crypto/rng.h>
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-#include <crypto/skcipher.h>
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+#include <crypto/aead.h>
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/*
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* Layout of key payload words.
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@@ -49,7 +50,12 @@ enum big_key_op {
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/*
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* Key size for big_key data encryption
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*/
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-#define ENC_KEY_SIZE 16
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+#define ENC_KEY_SIZE 32
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+
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+/*
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+ * Authentication tag length
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+ */
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+#define ENC_AUTHTAG_SIZE 16
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/*
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* big_key defined keys take an arbitrary string as the description and an
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@@ -64,57 +70,62 @@ struct key_type key_type_big_key = {
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.destroy = big_key_destroy,
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.describe = big_key_describe,
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.read = big_key_read,
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+ /* no ->update(); don't add it without changing big_key_crypt() nonce */
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};
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/*
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- * Crypto names for big_key data encryption
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+ * Crypto names for big_key data authenticated encryption
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*/
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-static const char big_key_rng_name[] = "stdrng";
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-static const char big_key_alg_name[] = "ecb(aes)";
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+static const char big_key_alg_name[] = "gcm(aes)";
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/*
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- * Crypto algorithms for big_key data encryption
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+ * Crypto algorithms for big_key data authenticated encryption
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*/
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-static struct crypto_rng *big_key_rng;
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-static struct crypto_skcipher *big_key_skcipher;
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+static struct crypto_aead *big_key_aead;
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/*
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- * Generate random key to encrypt big_key data
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+ * Since changing the key affects the entire object, we need a mutex.
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*/
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-static inline int big_key_gen_enckey(u8 *key)
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-{
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- return crypto_rng_get_bytes(big_key_rng, key, ENC_KEY_SIZE);
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-}
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+static DEFINE_MUTEX(big_key_aead_lock);
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/*
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* Encrypt/decrypt big_key data
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*/
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static int big_key_crypt(enum big_key_op op, u8 *data, size_t datalen, u8 *key)
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{
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- int ret = -EINVAL;
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+ int ret;
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struct scatterlist sgio;
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- SKCIPHER_REQUEST_ON_STACK(req, big_key_skcipher);
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-
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- if (crypto_skcipher_setkey(big_key_skcipher, key, ENC_KEY_SIZE)) {
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+ struct aead_request *aead_req;
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+ /* We always use a zero nonce. The reason we can get away with this is
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+ * because we're using a different randomly generated key for every
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+ * different encryption. Notably, too, key_type_big_key doesn't define
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+ * an .update function, so there's no chance we'll wind up reusing the
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+ * key to encrypt updated data. Simply put: one key, one encryption.
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+ */
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+ u8 zero_nonce[crypto_aead_ivsize(big_key_aead)];
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+
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+ aead_req = aead_request_alloc(big_key_aead, GFP_KERNEL);
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+ if (!aead_req)
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+ return -ENOMEM;
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+
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+ memset(zero_nonce, 0, sizeof(zero_nonce));
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+ sg_init_one(&sgio, data, datalen + (op == BIG_KEY_ENC ? ENC_AUTHTAG_SIZE : 0));
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+ aead_request_set_crypt(aead_req, &sgio, &sgio, datalen, zero_nonce);
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+ aead_request_set_callback(aead_req, CRYPTO_TFM_REQ_MAY_SLEEP, NULL, NULL);
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+ aead_request_set_ad(aead_req, 0);
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+
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+ mutex_lock(&big_key_aead_lock);
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+ if (crypto_aead_setkey(big_key_aead, key, ENC_KEY_SIZE)) {
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ret = -EAGAIN;
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goto error;
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}
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-
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- skcipher_request_set_tfm(req, big_key_skcipher);
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- skcipher_request_set_callback(req, CRYPTO_TFM_REQ_MAY_SLEEP,
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- NULL, NULL);
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-
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- sg_init_one(&sgio, data, datalen);
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- skcipher_request_set_crypt(req, &sgio, &sgio, datalen, NULL);
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-
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if (op == BIG_KEY_ENC)
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- ret = crypto_skcipher_encrypt(req);
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+ ret = crypto_aead_encrypt(aead_req);
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else
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- ret = crypto_skcipher_decrypt(req);
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-
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- skcipher_request_zero(req);
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-
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+ ret = crypto_aead_decrypt(aead_req);
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error:
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+ mutex_unlock(&big_key_aead_lock);
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+ aead_request_free(aead_req);
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return ret;
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}
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@@ -146,16 +157,13 @@ int big_key_preparse(struct key_preparsed_payload *prep)
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*
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* File content is stored encrypted with randomly generated key.
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*/
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- size_t enclen = ALIGN(datalen, crypto_skcipher_blocksize(big_key_skcipher));
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+ size_t enclen = datalen + ENC_AUTHTAG_SIZE;
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loff_t pos = 0;
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- /* prepare aligned data to encrypt */
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data = kmalloc(enclen, GFP_KERNEL);
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if (!data)
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return -ENOMEM;
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-
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memcpy(data, prep->data, datalen);
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- memset(data + datalen, 0x00, enclen - datalen);
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/* generate random key */
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enckey = kmalloc(ENC_KEY_SIZE, GFP_KERNEL);
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@@ -163,13 +171,12 @@ int big_key_preparse(struct key_preparsed_payload *prep)
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ret = -ENOMEM;
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goto error;
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}
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-
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- ret = big_key_gen_enckey(enckey);
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- if (ret)
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+ ret = get_random_bytes_wait(enckey, ENC_KEY_SIZE);
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+ if (unlikely(ret))
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goto err_enckey;
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/* encrypt aligned data */
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- ret = big_key_crypt(BIG_KEY_ENC, data, enclen, enckey);
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+ ret = big_key_crypt(BIG_KEY_ENC, data, datalen, enckey);
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if (ret)
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goto err_enckey;
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@@ -195,7 +202,7 @@ int big_key_preparse(struct key_preparsed_payload *prep)
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*path = file->f_path;
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path_get(path);
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fput(file);
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- kfree(data);
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+ kzfree(data);
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} else {
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/* Just store the data in a buffer */
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void *data = kmalloc(datalen, GFP_KERNEL);
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@@ -211,9 +218,9 @@ int big_key_preparse(struct key_preparsed_payload *prep)
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err_fput:
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fput(file);
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err_enckey:
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- kfree(enckey);
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+ kzfree(enckey);
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error:
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- kfree(data);
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+ kzfree(data);
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return ret;
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}
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@@ -227,7 +234,7 @@ void big_key_free_preparse(struct key_preparsed_payload *prep)
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path_put(path);
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}
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- kfree(prep->payload.data[big_key_data]);
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+ kzfree(prep->payload.data[big_key_data]);
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}
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/*
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@@ -259,7 +266,7 @@ void big_key_destroy(struct key *key)
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path->mnt = NULL;
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path->dentry = NULL;
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}
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- kfree(key->payload.data[big_key_data]);
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+ kzfree(key->payload.data[big_key_data]);
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key->payload.data[big_key_data] = NULL;
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}
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@@ -295,7 +302,7 @@ long big_key_read(const struct key *key, char __user *buffer, size_t buflen)
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struct file *file;
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u8 *data;
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u8 *enckey = (u8 *)key->payload.data[big_key_data];
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- size_t enclen = ALIGN(datalen, crypto_skcipher_blocksize(big_key_skcipher));
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+ size_t enclen = datalen + ENC_AUTHTAG_SIZE;
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loff_t pos = 0;
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data = kmalloc(enclen, GFP_KERNEL);
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@@ -328,7 +335,7 @@ long big_key_read(const struct key *key, char __user *buffer, size_t buflen)
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err_fput:
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fput(file);
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error:
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- kfree(data);
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+ kzfree(data);
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} else {
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ret = datalen;
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if (copy_to_user(buffer, key->payload.data[big_key_data],
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@@ -344,47 +351,31 @@ error:
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*/
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static int __init big_key_init(void)
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{
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- struct crypto_skcipher *cipher;
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- struct crypto_rng *rng;
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int ret;
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- rng = crypto_alloc_rng(big_key_rng_name, 0, 0);
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- if (IS_ERR(rng)) {
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- pr_err("Can't alloc rng: %ld\n", PTR_ERR(rng));
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- return PTR_ERR(rng);
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- }
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-
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- big_key_rng = rng;
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-
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- /* seed RNG */
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- ret = crypto_rng_reset(rng, NULL, crypto_rng_seedsize(rng));
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- if (ret) {
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- pr_err("Can't reset rng: %d\n", ret);
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- goto error_rng;
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- }
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-
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/* init block cipher */
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- cipher = crypto_alloc_skcipher(big_key_alg_name, 0, CRYPTO_ALG_ASYNC);
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- if (IS_ERR(cipher)) {
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- ret = PTR_ERR(cipher);
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+ big_key_aead = crypto_alloc_aead(big_key_alg_name, 0, CRYPTO_ALG_ASYNC);
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+ if (IS_ERR(big_key_aead)) {
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+ ret = PTR_ERR(big_key_aead);
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pr_err("Can't alloc crypto: %d\n", ret);
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- goto error_rng;
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+ return ret;
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+ }
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+ ret = crypto_aead_setauthsize(big_key_aead, ENC_AUTHTAG_SIZE);
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+ if (ret < 0) {
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+ pr_err("Can't set crypto auth tag len: %d\n", ret);
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+ goto free_aead;
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}
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-
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- big_key_skcipher = cipher;
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ret = register_key_type(&key_type_big_key);
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if (ret < 0) {
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pr_err("Can't register type: %d\n", ret);
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- goto error_cipher;
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+ goto free_aead;
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}
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return 0;
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-error_cipher:
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- crypto_free_skcipher(big_key_skcipher);
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-error_rng:
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- crypto_free_rng(big_key_rng);
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+free_aead:
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+ crypto_free_aead(big_key_aead);
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return ret;
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}
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