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Error codes reported by 2common.c are now very specific, and tests verify the proper errors are reported. BUG=chromium:370082 BRANCH=none TEST=make clean && VBOOT2=1 COV=1 make Change-Id: I9480bd22b60ae339196c92918a8a984a9f05ac1a Signed-off-by: Randall Spangler <rspangler@chromium.org> Reviewed-on: https://chromium-review.googlesource.com/202938 Reviewed-by: Daisuke Nojiri <dnojiri@chromium.org>
210 lines
5.7 KiB
C
210 lines
5.7 KiB
C
/* Copyright (c) 2014 The Chromium OS Authors. All rights reserved.
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* Use of this source code is governed by a BSD-style license that can be
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* found in the LICENSE file.
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*
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* Tests for firmware image library.
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*/
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#include <stdint.h>
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#include <stdio.h>
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#include <string.h>
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#include "file_keys.h"
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#include "host_common.h"
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#include "vboot_common.h"
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#include "test_common.h"
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#include "2common.h"
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#include "2rsa.h"
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static void test_unpack_key(const VbPublicKey *orig_key)
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{
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struct vb2_public_key rsa;
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VbPublicKey *key = PublicKeyAlloc(orig_key->key_size, 0, 0);
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/* vb2_packed_key and VbPublicKey are bit-identical */
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struct vb2_packed_key *key2 = (struct vb2_packed_key *)key;
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uint8_t *buf = (uint8_t *)key;
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/*
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* Key data follows the header for a newly allocated key, so we can
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* calculate the buffer size by looking at how far the key data goes.
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*/
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uint32_t size = key2->key_offset + key2->key_size;
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PublicKeyCopy(key, orig_key);
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TEST_SUCC(vb2_unpack_key(&rsa, buf, size), "vb2_unpack_key() ok");
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TEST_EQ(rsa.algorithm, key2->algorithm, "vb2_unpack_key() algorithm");
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PublicKeyCopy(key, orig_key);
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key2->algorithm = VB2_ALG_COUNT;
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TEST_EQ(vb2_unpack_key(&rsa, buf, size),
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VB2_ERROR_UNPACK_KEY_ALGORITHM,
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"vb2_unpack_key() invalid algorithm");
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PublicKeyCopy(key, orig_key);
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key2->key_size--;
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TEST_EQ(vb2_unpack_key(&rsa, buf, size),
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VB2_ERROR_UNPACK_KEY_SIZE,
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"vb2_unpack_key() invalid size");
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key2->key_size++;
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PublicKeyCopy(key, orig_key);
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key2->key_offset++;
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TEST_EQ(vb2_unpack_key(&rsa, buf, size + 1),
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VB2_ERROR_UNPACK_KEY_ALIGN,
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"vb2_unpack_key() unaligned data");
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key2->key_offset--;
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PublicKeyCopy(key, orig_key);
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*(uint32_t *)(buf + key2->key_offset) /= 2;
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TEST_EQ(vb2_unpack_key(&rsa, buf, size),
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VB2_ERROR_UNPACK_KEY_ARRAY_SIZE,
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"vb2_unpack_key() invalid key array size");
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PublicKeyCopy(key, orig_key);
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TEST_EQ(vb2_unpack_key(&rsa, buf, size - 1),
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VB2_ERROR_INSIDE_DATA_OUTSIDE,
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"vb2_unpack_key() buffer too small");
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free(key);
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}
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static void test_verify_data(const VbPublicKey *public_key,
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const VbPrivateKey *private_key)
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{
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const uint8_t test_data[] = "This is some test data to sign.";
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const uint64_t test_size = sizeof(test_data);
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uint8_t workbuf[VB2_VERIFY_DATA_WORKBUF_BYTES];
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struct vb2_workbuf wb;
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VbSignature *sig;
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struct vb2_public_key rsa;
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struct vb2_signature *sig2;
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struct vb2_packed_key *public_key2;
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vb2_workbuf_init(&wb, workbuf, sizeof(workbuf));
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/* Vb2 structs are bit-identical to the old ones */
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public_key2 = (struct vb2_packed_key *)public_key;
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uint32_t pubkey_size = public_key2->key_offset + public_key2->key_size;
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/* Calculate good signature */
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sig = CalculateSignature(test_data, test_size, private_key);
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TEST_PTR_NEQ(sig, 0, "VerifyData() calculate signature");
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if (!sig)
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return;
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/* Allocate signature copy for tests */
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sig2 = (struct vb2_signature *)
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SignatureAlloc(siglen_map[public_key2->algorithm], 0);
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TEST_EQ(vb2_unpack_key(&rsa, (uint8_t *)public_key2, pubkey_size),
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0, "vb2_verify_data() unpack key");
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memcpy(sig2, sig, sizeof(VbSignature) + sig->sig_size);
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rsa.algorithm += VB2_ALG_COUNT;
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TEST_NEQ(vb2_verify_data(test_data, test_size, sig2, &rsa,
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&wb),
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0, "vb2_verify_data() bad key");
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rsa.algorithm -= VB2_ALG_COUNT;
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vb2_workbuf_init(&wb, workbuf, 4);
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memcpy(sig2, sig, sizeof(VbSignature) + sig->sig_size);
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TEST_NEQ(vb2_verify_data(test_data, test_size, sig2, &rsa, &wb),
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0, "vb2_verify_data() workbuf too small");
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vb2_workbuf_init(&wb, workbuf, sizeof(workbuf));
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memcpy(sig2, sig, sizeof(VbSignature) + sig->sig_size);
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TEST_EQ(vb2_verify_data(test_data, test_size, sig2, &rsa, &wb),
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0, "vb2_verify_data() ok");
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memcpy(sig2, sig, sizeof(VbSignature) + sig->sig_size);
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sig2->sig_size -= 16;
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TEST_NEQ(vb2_verify_data(test_data, test_size, sig2, &rsa, &wb),
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0, "vb2_verify_data() wrong sig size");
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memcpy(sig2, sig, sizeof(VbSignature) + sig->sig_size);
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TEST_NEQ(vb2_verify_data(test_data, test_size - 1, sig2, &rsa, &wb),
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0, "vb2_verify_data() input buffer too small");
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memcpy(sig2, sig, sizeof(VbSignature) + sig->sig_size);
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vb2_signature_data(sig2)[0] ^= 0x5A;
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TEST_NEQ(vb2_verify_data(test_data, test_size, sig2, &rsa, &wb),
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0, "vb2_verify_data() wrong sig");
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free(sig);
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free(sig2);
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}
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int test_algorithm(int key_algorithm, const char *keys_dir)
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{
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char filename[1024];
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int rsa_len = siglen_map[key_algorithm] * 8;
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VbPrivateKey *private_key = NULL;
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VbPublicKey *public_key = NULL;
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printf("***Testing algorithm: %s\n", algo_strings[key_algorithm]);
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sprintf(filename, "%s/key_rsa%d.pem", keys_dir, rsa_len);
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private_key = PrivateKeyReadPem(filename, key_algorithm);
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if (!private_key) {
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fprintf(stderr, "Error reading private_key: %s\n", filename);
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return 1;
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}
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sprintf(filename, "%s/key_rsa%d.keyb", keys_dir, rsa_len);
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public_key = PublicKeyReadKeyb(filename, key_algorithm, 1);
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if (!public_key) {
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fprintf(stderr, "Error reading public_key: %s\n", filename);
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return 1;
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}
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test_unpack_key(public_key);
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test_verify_data(public_key, private_key);
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if (public_key)
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free(public_key);
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if (private_key)
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free(private_key);
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return 0;
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}
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/* Test only the algorithms we use */
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const int key_algs[] = {
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VB2_ALG_RSA2048_SHA256,
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VB2_ALG_RSA4096_SHA256,
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VB2_ALG_RSA8192_SHA512,
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};
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int main(int argc, char *argv[]) {
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if (argc == 2) {
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int i;
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for (i = 0; i < ARRAY_SIZE(key_algs); i++) {
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if (test_algorithm(key_algs[i], argv[1]))
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return 1;
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}
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} else if (argc == 3 && !strcasecmp(argv[2], "--all")) {
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/* Test all the algorithms */
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int alg;
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for (alg = 0; alg < kNumAlgorithms; alg++) {
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if (test_algorithm(alg, argv[1]))
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return 1;
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}
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} else {
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fprintf(stderr, "Usage: %s <keys_dir> [--all]", argv[0]);
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return -1;
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}
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return gTestSuccess ? 0 : 255;
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}
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