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1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Implementation of HKDF ("HMAC-based Extract-and-Expand Key Derivation
4  * Function"), aka RFC 5869.  See also the original paper (Krawczyk 2010):
5  * "Cryptographic Extraction and Key Derivation: The HKDF Scheme".
6  *
7  * This is used to derive keys from the fscrypt master keys (or from the
8  * "software secrets" which hardware derives from the fscrypt master keys, in
9  * the case that the fscrypt master keys are hardware-wrapped keys).
10  *
11  * Copyright 2019 Google LLC
12  */
13 
14 #include <crypto/hash.h>
15 #include <crypto/sha2.h>
16 
17 #include "fscrypt_private.h"
18 
19 /*
20  * HKDF supports any unkeyed cryptographic hash algorithm, but fscrypt uses
21  * SHA-512 because it is well-established, secure, and reasonably efficient.
22  *
23  * HKDF-SHA256 was also considered, as its 256-bit security strength would be
24  * sufficient here.  A 512-bit security strength is "nice to have", though.
25  * Also, on 64-bit CPUs, SHA-512 is usually just as fast as SHA-256.  In the
26  * common case of deriving an AES-256-XTS key (512 bits), that can result in
27  * HKDF-SHA512 being much faster than HKDF-SHA256, as the longer digest size of
28  * SHA-512 causes HKDF-Expand to only need to do one iteration rather than two.
29  */
30 #define HKDF_HMAC_ALG		"hmac(sha512)"
31 #define HKDF_HASHLEN		SHA512_DIGEST_SIZE
32 
33 /*
34  * HKDF consists of two steps:
35  *
36  * 1. HKDF-Extract: extract a pseudorandom key of length HKDF_HASHLEN bytes from
37  *    the input keying material and optional salt.
38  * 2. HKDF-Expand: expand the pseudorandom key into output keying material of
39  *    any length, parameterized by an application-specific info string.
40  *
41  * HKDF-Extract can be skipped if the input is already a pseudorandom key of
42  * length HKDF_HASHLEN bytes.  However, cipher modes other than AES-256-XTS take
43  * shorter keys, and we don't want to force users of those modes to provide
44  * unnecessarily long master keys.  Thus fscrypt still does HKDF-Extract.  No
45  * salt is used, since fscrypt master keys should already be pseudorandom and
46  * there's no way to persist a random salt per master key from kernel mode.
47  */
48 
49 /* HKDF-Extract (RFC 5869 section 2.2), unsalted */
hkdf_extract(struct crypto_shash * hmac_tfm,const u8 * ikm,unsigned int ikmlen,u8 prk[HKDF_HASHLEN])50 static int hkdf_extract(struct crypto_shash *hmac_tfm, const u8 *ikm,
51 			unsigned int ikmlen, u8 prk[HKDF_HASHLEN])
52 {
53 	static const u8 default_salt[HKDF_HASHLEN];
54 	int err;
55 
56 	err = crypto_shash_setkey(hmac_tfm, default_salt, HKDF_HASHLEN);
57 	if (err)
58 		return err;
59 
60 	return crypto_shash_tfm_digest(hmac_tfm, ikm, ikmlen, prk);
61 }
62 
63 /*
64  * Compute HKDF-Extract using the given master key as the input keying material,
65  * and prepare an HMAC transform object keyed by the resulting pseudorandom key.
66  *
67  * Afterwards, the keyed HMAC transform object can be used for HKDF-Expand many
68  * times without having to recompute HKDF-Extract each time.
69  */
fscrypt_init_hkdf(struct fscrypt_hkdf * hkdf,const u8 * master_key,unsigned int master_key_size)70 int fscrypt_init_hkdf(struct fscrypt_hkdf *hkdf, const u8 *master_key,
71 		      unsigned int master_key_size)
72 {
73 	struct crypto_shash *hmac_tfm;
74 	u8 prk[HKDF_HASHLEN];
75 	int err;
76 
77 	hmac_tfm = crypto_alloc_shash(HKDF_HMAC_ALG, 0, 0);
78 	if (IS_ERR(hmac_tfm)) {
79 		fscrypt_err(NULL, "Error allocating " HKDF_HMAC_ALG ": %ld",
80 			    PTR_ERR(hmac_tfm));
81 		return PTR_ERR(hmac_tfm);
82 	}
83 
84 	if (WARN_ON_ONCE(crypto_shash_digestsize(hmac_tfm) != sizeof(prk))) {
85 		err = -EINVAL;
86 		goto err_free_tfm;
87 	}
88 
89 	err = hkdf_extract(hmac_tfm, master_key, master_key_size, prk);
90 	if (err)
91 		goto err_free_tfm;
92 
93 	err = crypto_shash_setkey(hmac_tfm, prk, sizeof(prk));
94 	if (err)
95 		goto err_free_tfm;
96 
97 	hkdf->hmac_tfm = hmac_tfm;
98 	goto out;
99 
100 err_free_tfm:
101 	crypto_free_shash(hmac_tfm);
102 out:
103 	memzero_explicit(prk, sizeof(prk));
104 	return err;
105 }
106 
107 /*
108  * HKDF-Expand (RFC 5869 section 2.3).  This expands the pseudorandom key, which
109  * was already keyed into 'hkdf->hmac_tfm' by fscrypt_init_hkdf(), into 'okmlen'
110  * bytes of output keying material parameterized by the application-specific
111  * 'info' of length 'infolen' bytes, prefixed by "fscrypt\0" and the 'context'
112  * byte.  This is thread-safe and may be called by multiple threads in parallel.
113  *
114  * ('context' isn't part of the HKDF specification; it's just a prefix fscrypt
115  * adds to its application-specific info strings to guarantee that it doesn't
116  * accidentally repeat an info string when using HKDF for different purposes.)
117  */
fscrypt_hkdf_expand(const struct fscrypt_hkdf * hkdf,u8 context,const u8 * info,unsigned int infolen,u8 * okm,unsigned int okmlen)118 int fscrypt_hkdf_expand(const struct fscrypt_hkdf *hkdf, u8 context,
119 			const u8 *info, unsigned int infolen,
120 			u8 *okm, unsigned int okmlen)
121 {
122 	SHASH_DESC_ON_STACK(desc, hkdf->hmac_tfm);
123 	u8 prefix[9];
124 	unsigned int i;
125 	int err;
126 	const u8 *prev = NULL;
127 	u8 counter = 1;
128 	u8 tmp[HKDF_HASHLEN];
129 
130 	if (WARN_ON_ONCE(okmlen > 255 * HKDF_HASHLEN))
131 		return -EINVAL;
132 
133 	desc->tfm = hkdf->hmac_tfm;
134 
135 	memcpy(prefix, "fscrypt\0", 8);
136 	prefix[8] = context;
137 
138 	for (i = 0; i < okmlen; i += HKDF_HASHLEN) {
139 
140 		err = crypto_shash_init(desc);
141 		if (err)
142 			goto out;
143 
144 		if (prev) {
145 			err = crypto_shash_update(desc, prev, HKDF_HASHLEN);
146 			if (err)
147 				goto out;
148 		}
149 
150 		err = crypto_shash_update(desc, prefix, sizeof(prefix));
151 		if (err)
152 			goto out;
153 
154 		err = crypto_shash_update(desc, info, infolen);
155 		if (err)
156 			goto out;
157 
158 		BUILD_BUG_ON(sizeof(counter) != 1);
159 		if (okmlen - i < HKDF_HASHLEN) {
160 			err = crypto_shash_finup(desc, &counter, 1, tmp);
161 			if (err)
162 				goto out;
163 			memcpy(&okm[i], tmp, okmlen - i);
164 			memzero_explicit(tmp, sizeof(tmp));
165 		} else {
166 			err = crypto_shash_finup(desc, &counter, 1, &okm[i]);
167 			if (err)
168 				goto out;
169 		}
170 		counter++;
171 		prev = &okm[i];
172 	}
173 	err = 0;
174 out:
175 	if (unlikely(err))
176 		memzero_explicit(okm, okmlen); /* so caller doesn't need to */
177 	shash_desc_zero(desc);
178 	return err;
179 }
180 
fscrypt_destroy_hkdf(struct fscrypt_hkdf * hkdf)181 void fscrypt_destroy_hkdf(struct fscrypt_hkdf *hkdf)
182 {
183 	crypto_free_shash(hkdf->hmac_tfm);
184 }
185