520 lines
12 KiB
C
520 lines
12 KiB
C
// SPDX-License-Identifier: GPL-2.0-only
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/*
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* Copyright (C) 2005,2006,2007,2008 IBM Corporation
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*
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* Authors:
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* Mimi Zohar <zohar@us.ibm.com>
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* Kylene Hall <kjhall@us.ibm.com>
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*
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* File: ima_crypto.c
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* Calculates md5/sha1 file hash, template hash, boot-aggreate hash
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*/
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#include <linux/kernel.h>
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#include <linux/file.h>
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#include <linux/crypto.h>
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#include <linux/err.h>
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#include <linux/slab.h>
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#include <crypto/hash.h>
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#include "ima.h"
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static struct crypto_shash *ima_shash_tfm;
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int ima_sha1_idx __ro_after_init;
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int ima_hash_algo_idx __ro_after_init;
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/*
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* Additional number of slots reserved, as needed, for SHA1
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* and IMA default algo.
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*/
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int ima_extra_slots __ro_after_init;
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struct ima_algo_desc *ima_algo_array __ro_after_init;
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static int __init ima_init_ima_crypto(void)
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{
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long rc;
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ima_shash_tfm = crypto_alloc_shash(hash_algo_name[ima_hash_algo], 0, 0);
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if (IS_ERR(ima_shash_tfm)) {
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rc = PTR_ERR(ima_shash_tfm);
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pr_err("Can not allocate %s (reason: %ld)\n",
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hash_algo_name[ima_hash_algo], rc);
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return rc;
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}
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pr_info("Allocated hash algorithm: %s\n",
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hash_algo_name[ima_hash_algo]);
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return 0;
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}
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static struct crypto_shash *ima_alloc_tfm(enum hash_algo algo)
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{
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struct crypto_shash *tfm = ima_shash_tfm;
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int rc, i;
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if (algo < 0 || algo >= HASH_ALGO__LAST)
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algo = ima_hash_algo;
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if (algo == ima_hash_algo)
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return tfm;
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for (i = 0; i < NR_BANKS(ima_tpm_chip) + ima_extra_slots; i++)
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if (ima_algo_array[i].tfm && ima_algo_array[i].algo == algo)
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return ima_algo_array[i].tfm;
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tfm = crypto_alloc_shash(hash_algo_name[algo], 0, 0);
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if (IS_ERR(tfm)) {
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rc = PTR_ERR(tfm);
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pr_err("Can not allocate %s (reason: %d)\n",
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hash_algo_name[algo], rc);
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}
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return tfm;
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}
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int __init ima_init_crypto(void)
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{
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unsigned int digest_size;
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enum hash_algo algo;
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long rc;
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int i;
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rc = ima_init_ima_crypto();
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if (rc)
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return rc;
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ima_sha1_idx = -1;
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ima_hash_algo_idx = -1;
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for (i = 0; i < NR_BANKS(ima_tpm_chip); i++) {
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algo = ima_tpm_chip->allocated_banks[i].crypto_id;
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if (algo == HASH_ALGO_SHA1)
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ima_sha1_idx = i;
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if (algo == ima_hash_algo)
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ima_hash_algo_idx = i;
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}
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if (ima_sha1_idx < 0) {
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ima_sha1_idx = NR_BANKS(ima_tpm_chip) + ima_extra_slots++;
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if (ima_hash_algo == HASH_ALGO_SHA1)
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ima_hash_algo_idx = ima_sha1_idx;
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}
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if (ima_hash_algo_idx < 0)
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ima_hash_algo_idx = NR_BANKS(ima_tpm_chip) + ima_extra_slots++;
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ima_algo_array = kzalloc_objs(*ima_algo_array,
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NR_BANKS(ima_tpm_chip) + ima_extra_slots);
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if (!ima_algo_array) {
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rc = -ENOMEM;
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goto out;
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}
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for (i = 0; i < NR_BANKS(ima_tpm_chip); i++) {
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algo = ima_tpm_chip->allocated_banks[i].crypto_id;
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digest_size = ima_tpm_chip->allocated_banks[i].digest_size;
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ima_algo_array[i].algo = algo;
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ima_algo_array[i].digest_size = digest_size;
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/* unknown TPM algorithm */
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if (algo == HASH_ALGO__LAST)
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continue;
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if (algo == ima_hash_algo) {
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ima_algo_array[i].tfm = ima_shash_tfm;
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continue;
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}
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ima_algo_array[i].tfm = ima_alloc_tfm(algo);
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if (IS_ERR(ima_algo_array[i].tfm)) {
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if (algo == HASH_ALGO_SHA1) {
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rc = PTR_ERR(ima_algo_array[i].tfm);
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ima_algo_array[i].tfm = NULL;
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goto out_array;
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}
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ima_algo_array[i].tfm = NULL;
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}
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}
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if (ima_sha1_idx >= NR_BANKS(ima_tpm_chip)) {
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if (ima_hash_algo == HASH_ALGO_SHA1) {
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ima_algo_array[ima_sha1_idx].tfm = ima_shash_tfm;
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} else {
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ima_algo_array[ima_sha1_idx].tfm =
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ima_alloc_tfm(HASH_ALGO_SHA1);
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if (IS_ERR(ima_algo_array[ima_sha1_idx].tfm)) {
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rc = PTR_ERR(ima_algo_array[ima_sha1_idx].tfm);
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goto out_array;
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}
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}
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ima_algo_array[ima_sha1_idx].algo = HASH_ALGO_SHA1;
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ima_algo_array[ima_sha1_idx].digest_size = SHA1_DIGEST_SIZE;
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}
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if (ima_hash_algo_idx >= NR_BANKS(ima_tpm_chip) &&
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ima_hash_algo_idx != ima_sha1_idx) {
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digest_size = hash_digest_size[ima_hash_algo];
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ima_algo_array[ima_hash_algo_idx].tfm = ima_shash_tfm;
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ima_algo_array[ima_hash_algo_idx].algo = ima_hash_algo;
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ima_algo_array[ima_hash_algo_idx].digest_size = digest_size;
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}
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return 0;
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out_array:
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for (i = 0; i < NR_BANKS(ima_tpm_chip) + ima_extra_slots; i++) {
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if (!ima_algo_array[i].tfm ||
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ima_algo_array[i].tfm == ima_shash_tfm)
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continue;
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crypto_free_shash(ima_algo_array[i].tfm);
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}
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kfree(ima_algo_array);
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out:
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crypto_free_shash(ima_shash_tfm);
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return rc;
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}
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static void ima_free_tfm(struct crypto_shash *tfm)
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{
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int i;
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if (tfm == ima_shash_tfm)
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return;
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for (i = 0; i < NR_BANKS(ima_tpm_chip) + ima_extra_slots; i++)
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if (ima_algo_array[i].tfm == tfm)
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return;
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crypto_free_shash(tfm);
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}
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static int ima_calc_file_hash_tfm(struct file *file,
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struct ima_digest_data *hash,
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struct crypto_shash *tfm)
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{
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loff_t i_size, offset = 0;
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char *rbuf;
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int rc;
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SHASH_DESC_ON_STACK(shash, tfm);
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shash->tfm = tfm;
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hash->length = crypto_shash_digestsize(tfm);
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rc = crypto_shash_init(shash);
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if (rc != 0)
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return rc;
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i_size = i_size_read(file_inode(file));
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if (i_size == 0)
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goto out;
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rbuf = kzalloc(PAGE_SIZE, GFP_KERNEL);
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if (!rbuf)
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return -ENOMEM;
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while (offset < i_size) {
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int rbuf_len;
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rbuf_len = integrity_kernel_read(file, offset, rbuf, PAGE_SIZE);
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if (rbuf_len < 0) {
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rc = rbuf_len;
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break;
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}
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if (rbuf_len == 0) { /* unexpected EOF */
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rc = -EINVAL;
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break;
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}
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offset += rbuf_len;
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rc = crypto_shash_update(shash, rbuf, rbuf_len);
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if (rc)
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break;
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}
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kfree(rbuf);
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out:
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if (!rc)
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rc = crypto_shash_final(shash, hash->digest);
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return rc;
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}
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/*
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* ima_calc_file_hash - calculate file hash
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*/
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int ima_calc_file_hash(struct file *file, struct ima_digest_data *hash)
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{
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int rc;
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struct file *f = file;
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bool new_file_instance = false;
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struct crypto_shash *tfm;
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/*
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* For consistency, fail file's opened with the O_DIRECT flag on
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* filesystems mounted with/without DAX option.
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*/
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if (file->f_flags & O_DIRECT) {
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hash->length = hash_digest_size[ima_hash_algo];
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hash->algo = ima_hash_algo;
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return -EINVAL;
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}
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/* Open a new file instance in O_RDONLY if we cannot read */
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if (!(file->f_mode & FMODE_READ)) {
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int flags = file->f_flags & ~(O_WRONLY | O_APPEND |
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O_TRUNC | O_CREAT | O_NOCTTY | O_EXCL);
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flags |= O_RDONLY;
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f = dentry_open(&file->f_path, flags, file->f_cred);
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if (IS_ERR(f))
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return PTR_ERR(f);
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new_file_instance = true;
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}
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tfm = ima_alloc_tfm(hash->algo);
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if (IS_ERR(tfm)) {
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rc = PTR_ERR(tfm);
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} else {
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rc = ima_calc_file_hash_tfm(f, hash, tfm);
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ima_free_tfm(tfm);
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}
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if (new_file_instance)
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fput(f);
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return rc;
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}
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/*
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* Calculate the hash of template data
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*/
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static int ima_calc_field_array_hash_tfm(struct ima_field_data *field_data,
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struct ima_template_entry *entry,
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int tfm_idx)
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{
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SHASH_DESC_ON_STACK(shash, ima_algo_array[tfm_idx].tfm);
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struct ima_template_desc *td = entry->template_desc;
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int num_fields = entry->template_desc->num_fields;
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int rc, i;
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shash->tfm = ima_algo_array[tfm_idx].tfm;
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rc = crypto_shash_init(shash);
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if (rc != 0)
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return rc;
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for (i = 0; i < num_fields; i++) {
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u8 buffer[IMA_EVENT_NAME_LEN_MAX + 1] = { 0 };
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u8 *data_to_hash = field_data[i].data;
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u32 datalen = field_data[i].len;
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u32 datalen_to_hash = !ima_canonical_fmt ?
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datalen : (__force u32)cpu_to_le32(datalen);
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if (strcmp(td->name, IMA_TEMPLATE_IMA_NAME) != 0) {
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rc = crypto_shash_update(shash,
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(const u8 *) &datalen_to_hash,
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sizeof(datalen_to_hash));
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if (rc)
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break;
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} else if (strcmp(td->fields[i]->field_id, "n") == 0) {
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memcpy(buffer, data_to_hash, datalen);
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data_to_hash = buffer;
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datalen = IMA_EVENT_NAME_LEN_MAX + 1;
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}
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rc = crypto_shash_update(shash, data_to_hash, datalen);
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if (rc)
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break;
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}
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if (!rc)
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rc = crypto_shash_final(shash, entry->digests[tfm_idx].digest);
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return rc;
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}
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int ima_calc_field_array_hash(struct ima_field_data *field_data,
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struct ima_template_entry *entry)
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{
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u16 alg_id;
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int rc, i;
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rc = ima_calc_field_array_hash_tfm(field_data, entry, ima_sha1_idx);
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if (rc)
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return rc;
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entry->digests[ima_sha1_idx].alg_id = TPM_ALG_SHA1;
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for (i = 0; i < NR_BANKS(ima_tpm_chip) + ima_extra_slots; i++) {
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if (i == ima_sha1_idx)
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continue;
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if (i < NR_BANKS(ima_tpm_chip)) {
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alg_id = ima_tpm_chip->allocated_banks[i].alg_id;
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entry->digests[i].alg_id = alg_id;
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}
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/* for unmapped TPM algorithms digest is still a padded SHA1 */
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if (!ima_algo_array[i].tfm) {
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memcpy(entry->digests[i].digest,
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entry->digests[ima_sha1_idx].digest,
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TPM_DIGEST_SIZE);
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continue;
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}
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rc = ima_calc_field_array_hash_tfm(field_data, entry, i);
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if (rc)
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return rc;
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}
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return rc;
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}
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static int calc_buffer_shash_tfm(const void *buf, loff_t size,
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struct ima_digest_data *hash,
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struct crypto_shash *tfm)
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{
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SHASH_DESC_ON_STACK(shash, tfm);
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unsigned int len;
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int rc;
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shash->tfm = tfm;
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hash->length = crypto_shash_digestsize(tfm);
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rc = crypto_shash_init(shash);
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if (rc != 0)
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return rc;
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while (size) {
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len = size < PAGE_SIZE ? size : PAGE_SIZE;
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rc = crypto_shash_update(shash, buf, len);
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if (rc)
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break;
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buf += len;
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size -= len;
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}
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if (!rc)
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rc = crypto_shash_final(shash, hash->digest);
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return rc;
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}
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int ima_calc_buffer_hash(const void *buf, loff_t len,
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struct ima_digest_data *hash)
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{
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struct crypto_shash *tfm;
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int rc;
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tfm = ima_alloc_tfm(hash->algo);
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if (IS_ERR(tfm))
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return PTR_ERR(tfm);
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rc = calc_buffer_shash_tfm(buf, len, hash, tfm);
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ima_free_tfm(tfm);
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return rc;
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}
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static void ima_pcrread(u32 idx, struct tpm_digest *d)
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{
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if (!ima_tpm_chip)
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return;
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if (tpm_pcr_read(ima_tpm_chip, idx, d) != 0)
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pr_err("Error Communicating to TPM chip\n");
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}
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/*
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* The boot_aggregate is a cumulative hash over TPM registers 0 - 7. With
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* TPM 1.2 the boot_aggregate was based on reading the SHA1 PCRs, but with
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* TPM 2.0 hash agility, TPM chips could support multiple TPM PCR banks,
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* allowing firmware to configure and enable different banks.
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*
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* Knowing which TPM bank is read to calculate the boot_aggregate digest
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* needs to be conveyed to a verifier. For this reason, use the same
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* hash algorithm for reading the TPM PCRs as for calculating the boot
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* aggregate digest as stored in the measurement list.
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*/
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static int ima_calc_boot_aggregate_tfm(char *digest, u16 alg_id,
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struct crypto_shash *tfm)
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{
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struct tpm_digest d = { .alg_id = alg_id, .digest = {0} };
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int rc;
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u32 i;
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SHASH_DESC_ON_STACK(shash, tfm);
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shash->tfm = tfm;
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pr_devel("calculating the boot-aggregate based on TPM bank: %04x\n",
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d.alg_id);
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rc = crypto_shash_init(shash);
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if (rc != 0)
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return rc;
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/* cumulative digest over TPM registers 0-7 */
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for (i = TPM_PCR0; i < TPM_PCR8; i++) {
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ima_pcrread(i, &d);
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/* now accumulate with current aggregate */
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rc = crypto_shash_update(shash, d.digest,
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crypto_shash_digestsize(tfm));
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if (rc != 0)
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return rc;
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}
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/*
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* Extend cumulative digest over TPM registers 8-9, which contain
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* measurement for the kernel command line (reg. 8) and image (reg. 9)
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* in a typical PCR allocation. Registers 8-9 are only included in
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* non-SHA1 boot_aggregate digests to avoid ambiguity.
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*/
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if (alg_id != TPM_ALG_SHA1) {
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for (i = TPM_PCR8; i < TPM_PCR10; i++) {
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ima_pcrread(i, &d);
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rc = crypto_shash_update(shash, d.digest,
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crypto_shash_digestsize(tfm));
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}
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}
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if (!rc)
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rc = crypto_shash_final(shash, digest);
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return rc;
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}
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int ima_calc_boot_aggregate(struct ima_digest_data *hash)
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{
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struct crypto_shash *tfm;
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u16 crypto_id, alg_id;
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int rc, i, bank_idx = -1;
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for (i = 0; i < ima_tpm_chip->nr_allocated_banks; i++) {
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crypto_id = ima_tpm_chip->allocated_banks[i].crypto_id;
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if (crypto_id == hash->algo) {
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bank_idx = i;
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break;
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}
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if (crypto_id == HASH_ALGO_SHA256)
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bank_idx = i;
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if (bank_idx == -1 && crypto_id == HASH_ALGO_SHA1)
|
|
bank_idx = i;
|
|
}
|
|
|
|
if (bank_idx == -1) {
|
|
pr_err("No suitable TPM algorithm for boot aggregate\n");
|
|
return 0;
|
|
}
|
|
|
|
hash->algo = ima_tpm_chip->allocated_banks[bank_idx].crypto_id;
|
|
|
|
tfm = ima_alloc_tfm(hash->algo);
|
|
if (IS_ERR(tfm))
|
|
return PTR_ERR(tfm);
|
|
|
|
hash->length = crypto_shash_digestsize(tfm);
|
|
alg_id = ima_tpm_chip->allocated_banks[bank_idx].alg_id;
|
|
rc = ima_calc_boot_aggregate_tfm(hash->digest, alg_id, tfm);
|
|
|
|
ima_free_tfm(tfm);
|
|
|
|
return rc;
|
|
}
|