EVP_KDF-SCRYPT.7ossl 10 KB

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  135. .IX Title "EVP_KDF-SCRYPT 7ossl"
  136. .TH EVP_KDF-SCRYPT 7ossl "2024-09-03" "3.3.2" "OpenSSL"
  137. .\" For nroff, turn off justification. Always turn off hyphenation; it makes
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  139. .if n .ad l
  140. .nh
  141. .SH "NAME"
  142. EVP_KDF\-SCRYPT \- The scrypt EVP_KDF implementation
  143. .SH "DESCRIPTION"
  144. .IX Header "DESCRIPTION"
  145. Support for computing the \fBscrypt\fR password-based \s-1KDF\s0 through the \fB\s-1EVP_KDF\s0\fR
  146. \&\s-1API.\s0
  147. .PP
  148. The \s-1EVP_KDF\-SCRYPT\s0 algorithm implements the scrypt password-based key
  149. derivation function, as described in \s-1RFC 7914.\s0 It is memory-hard in the sense
  150. that it deliberately requires a significant amount of \s-1RAM\s0 for efficient
  151. computation. The intention of this is to render brute forcing of passwords on
  152. systems that lack large amounts of main memory (such as GPUs or ASICs)
  153. computationally infeasible.
  154. .PP
  155. scrypt provides three work factors that can be customized: N, r and p. N, which
  156. has to be a positive power of two, is the general work factor and scales \s-1CPU\s0
  157. time in an approximately linear fashion. r is the block size of the internally
  158. used hash function and p is the parallelization factor. Both r and p need to be
  159. greater than zero. The amount of \s-1RAM\s0 that scrypt requires for its computation
  160. is roughly (128 * N * r * p) bytes.
  161. .PP
  162. In the original paper of Colin Percival (\*(L"Stronger Key Derivation via
  163. Sequential Memory-Hard Functions\*(R", 2009), the suggested values that give a
  164. computation time of less than 5 seconds on a 2.5 GHz Intel Core 2 Duo are N =
  165. 2^20 = 1048576, r = 8, p = 1. Consequently, the required amount of memory for
  166. this computation is roughly 1 GiB. On a more recent \s-1CPU\s0 (Intel i7\-5930K at 3.5
  167. GHz), this computation takes about 3 seconds. When N, r or p are not specified,
  168. they default to 1048576, 8, and 1, respectively. The maximum amount of \s-1RAM\s0 that
  169. may be used by scrypt defaults to 1025 MiB.
  170. .SS "Identity"
  171. .IX Subsection "Identity"
  172. \&\*(L"\s-1SCRYPT\*(R"\s0 is the name for this implementation; it
  173. can be used with the \fBEVP_KDF_fetch()\fR function.
  174. .SS "Supported parameters"
  175. .IX Subsection "Supported parameters"
  176. The supported parameters are:
  177. .ie n .IP """pass"" (\fB\s-1OSSL_KDF_PARAM_PASSWORD\s0\fR) <octet string>" 4
  178. .el .IP "``pass'' (\fB\s-1OSSL_KDF_PARAM_PASSWORD\s0\fR) <octet string>" 4
  179. .IX Item "pass (OSSL_KDF_PARAM_PASSWORD) <octet string>"
  180. .PD 0
  181. .ie n .IP """salt"" (\fB\s-1OSSL_KDF_PARAM_SALT\s0\fR) <octet string>" 4
  182. .el .IP "``salt'' (\fB\s-1OSSL_KDF_PARAM_SALT\s0\fR) <octet string>" 4
  183. .IX Item "salt (OSSL_KDF_PARAM_SALT) <octet string>"
  184. .PD
  185. These parameters work as described in \*(L"\s-1PARAMETERS\*(R"\s0 in \s-1\fBEVP_KDF\s0\fR\|(3).
  186. .ie n .IP """n"" (\fB\s-1OSSL_KDF_PARAM_SCRYPT_N\s0\fR) <unsigned integer>" 4
  187. .el .IP "``n'' (\fB\s-1OSSL_KDF_PARAM_SCRYPT_N\s0\fR) <unsigned integer>" 4
  188. .IX Item "n (OSSL_KDF_PARAM_SCRYPT_N) <unsigned integer>"
  189. .PD 0
  190. .ie n .IP """r"" (\fB\s-1OSSL_KDF_PARAM_SCRYPT_R\s0\fR) <unsigned integer>" 4
  191. .el .IP "``r'' (\fB\s-1OSSL_KDF_PARAM_SCRYPT_R\s0\fR) <unsigned integer>" 4
  192. .IX Item "r (OSSL_KDF_PARAM_SCRYPT_R) <unsigned integer>"
  193. .ie n .IP """p"" (\fB\s-1OSSL_KDF_PARAM_SCRYPT_P\s0\fR) <unsigned integer>" 4
  194. .el .IP "``p'' (\fB\s-1OSSL_KDF_PARAM_SCRYPT_P\s0\fR) <unsigned integer>" 4
  195. .IX Item "p (OSSL_KDF_PARAM_SCRYPT_P) <unsigned integer>"
  196. .ie n .IP """maxmem_bytes"" (\fB\s-1OSSL_KDF_PARAM_SCRYPT_MAXMEM\s0\fR) <unsigned integer>" 4
  197. .el .IP "``maxmem_bytes'' (\fB\s-1OSSL_KDF_PARAM_SCRYPT_MAXMEM\s0\fR) <unsigned integer>" 4
  198. .IX Item "maxmem_bytes (OSSL_KDF_PARAM_SCRYPT_MAXMEM) <unsigned integer>"
  199. .PD
  200. These parameters configure the scrypt work factors N, r, maxmem and p.
  201. Both N and maxmem_bytes are parameters of type \fBuint64_t\fR.
  202. Both r and p are parameters of type \fBuint32_t\fR.
  203. .ie n .IP """properties"" (\fB\s-1OSSL_KDF_PARAM_PROPERTIES\s0\fR) <\s-1UTF8\s0 string>" 4
  204. .el .IP "``properties'' (\fB\s-1OSSL_KDF_PARAM_PROPERTIES\s0\fR) <\s-1UTF8\s0 string>" 4
  205. .IX Item "properties (OSSL_KDF_PARAM_PROPERTIES) <UTF8 string>"
  206. This can be used to set the property query string when fetching the
  207. fixed digest internally. \s-1NULL\s0 is used if this value is not set.
  208. .SH "NOTES"
  209. .IX Header "NOTES"
  210. A context for scrypt can be obtained by calling:
  211. .PP
  212. .Vb 2
  213. \& EVP_KDF *kdf = EVP_KDF_fetch(NULL, "SCRYPT", NULL);
  214. \& EVP_KDF_CTX *kctx = EVP_KDF_CTX_new(kdf);
  215. .Ve
  216. .PP
  217. The output length of an scrypt key derivation is specified via the
  218. \&\*(L"keylen\*(R" parameter to the \fBEVP_KDF_derive\fR\|(3) function.
  219. .SH "EXAMPLES"
  220. .IX Header "EXAMPLES"
  221. This example derives a 64\-byte long test vector using scrypt with the password
  222. \&\*(L"password\*(R", salt \*(L"NaCl\*(R" and N = 1024, r = 8, p = 16.
  223. .PP
  224. .Vb 4
  225. \& EVP_KDF *kdf;
  226. \& EVP_KDF_CTX *kctx;
  227. \& unsigned char out[64];
  228. \& OSSL_PARAM params[6], *p = params;
  229. \&
  230. \& kdf = EVP_KDF_fetch(NULL, "SCRYPT", NULL);
  231. \& kctx = EVP_KDF_CTX_new(kdf);
  232. \& EVP_KDF_free(kdf);
  233. \&
  234. \& *p++ = OSSL_PARAM_construct_octet_string(OSSL_KDF_PARAM_PASSWORD,
  235. \& "password", (size_t)8);
  236. \& *p++ = OSSL_PARAM_construct_octet_string(OSSL_KDF_PARAM_SALT,
  237. \& "NaCl", (size_t)4);
  238. \& *p++ = OSSL_PARAM_construct_uint64(OSSL_KDF_PARAM_SCRYPT_N, (uint64_t)1024);
  239. \& *p++ = OSSL_PARAM_construct_uint32(OSSL_KDF_PARAM_SCRYPT_R, (uint32_t)8);
  240. \& *p++ = OSSL_PARAM_construct_uint32(OSSL_KDF_PARAM_SCRYPT_P, (uint32_t)16);
  241. \& *p = OSSL_PARAM_construct_end();
  242. \& if (EVP_KDF_derive(kctx, out, sizeof(out), params) <= 0) {
  243. \& error("EVP_KDF_derive");
  244. \& }
  245. \&
  246. \& {
  247. \& const unsigned char expected[sizeof(out)] = {
  248. \& 0xfd, 0xba, 0xbe, 0x1c, 0x9d, 0x34, 0x72, 0x00,
  249. \& 0x78, 0x56, 0xe7, 0x19, 0x0d, 0x01, 0xe9, 0xfe,
  250. \& 0x7c, 0x6a, 0xd7, 0xcb, 0xc8, 0x23, 0x78, 0x30,
  251. \& 0xe7, 0x73, 0x76, 0x63, 0x4b, 0x37, 0x31, 0x62,
  252. \& 0x2e, 0xaf, 0x30, 0xd9, 0x2e, 0x22, 0xa3, 0x88,
  253. \& 0x6f, 0xf1, 0x09, 0x27, 0x9d, 0x98, 0x30, 0xda,
  254. \& 0xc7, 0x27, 0xaf, 0xb9, 0x4a, 0x83, 0xee, 0x6d,
  255. \& 0x83, 0x60, 0xcb, 0xdf, 0xa2, 0xcc, 0x06, 0x40
  256. \& };
  257. \&
  258. \& assert(!memcmp(out, expected, sizeof(out)));
  259. \& }
  260. \&
  261. \& EVP_KDF_CTX_free(kctx);
  262. .Ve
  263. .SH "CONFORMING TO"
  264. .IX Header "CONFORMING TO"
  265. \&\s-1RFC 7914\s0
  266. .SH "SEE ALSO"
  267. .IX Header "SEE ALSO"
  268. \&\s-1\fBEVP_KDF\s0\fR\|(3),
  269. \&\fBEVP_KDF_CTX_new\fR\|(3),
  270. \&\fBEVP_KDF_CTX_free\fR\|(3),
  271. \&\fBEVP_KDF_CTX_set_params\fR\|(3),
  272. \&\fBEVP_KDF_derive\fR\|(3),
  273. \&\*(L"\s-1PARAMETERS\*(R"\s0 in \s-1\fBEVP_KDF\s0\fR\|(3)
  274. .SH "HISTORY"
  275. .IX Header "HISTORY"
  276. This functionality was added in OpenSSL 3.0.
  277. .SH "COPYRIGHT"
  278. .IX Header "COPYRIGHT"
  279. Copyright 2017\-2021 The OpenSSL Project Authors. All Rights Reserved.
  280. .PP
  281. Licensed under the Apache License 2.0 (the \*(L"License\*(R"). You may not use
  282. this file except in compliance with the License. You can obtain a copy
  283. in the file \s-1LICENSE\s0 in the source distribution or at
  284. <https://www.openssl.org/source/license.html>.