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Commit | Line | Data |
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685784aa DW |
1 | # |
2 | # Generic algorithms support | |
3 | # | |
4 | config XOR_BLOCKS | |
5 | tristate | |
6 | ||
1da177e4 | 7 | # |
9bc89cd8 | 8 | # async_tx api: hardware offloaded memory transfer/transform support |
1da177e4 | 9 | # |
9bc89cd8 | 10 | source "crypto/async_tx/Kconfig" |
1da177e4 | 11 | |
9bc89cd8 DW |
12 | # |
13 | # Cryptographic API Configuration | |
14 | # | |
2e290f43 | 15 | menuconfig CRYPTO |
c3715cb9 | 16 | tristate "Cryptographic API" |
1da177e4 LT |
17 | help |
18 | This option provides the core Cryptographic API. | |
19 | ||
cce9e06d HX |
20 | if CRYPTO |
21 | ||
584fffc8 SS |
22 | comment "Crypto core or helper" |
23 | ||
ccb778e1 NH |
24 | config CRYPTO_FIPS |
25 | bool "FIPS 200 compliance" | |
e84c5480 | 26 | depends on CRYPTO_ANSI_CPRNG && !CRYPTO_MANAGER_DISABLE_TESTS |
ccb778e1 NH |
27 | help |
28 | This options enables the fips boot option which is | |
29 | required if you want to system to operate in a FIPS 200 | |
30 | certification. You should say no unless you know what | |
e84c5480 | 31 | this is. |
ccb778e1 | 32 | |
cce9e06d HX |
33 | config CRYPTO_ALGAPI |
34 | tristate | |
6a0fcbb4 | 35 | select CRYPTO_ALGAPI2 |
cce9e06d HX |
36 | help |
37 | This option provides the API for cryptographic algorithms. | |
38 | ||
6a0fcbb4 HX |
39 | config CRYPTO_ALGAPI2 |
40 | tristate | |
41 | ||
1ae97820 HX |
42 | config CRYPTO_AEAD |
43 | tristate | |
6a0fcbb4 | 44 | select CRYPTO_AEAD2 |
1ae97820 HX |
45 | select CRYPTO_ALGAPI |
46 | ||
6a0fcbb4 HX |
47 | config CRYPTO_AEAD2 |
48 | tristate | |
49 | select CRYPTO_ALGAPI2 | |
50 | ||
5cde0af2 HX |
51 | config CRYPTO_BLKCIPHER |
52 | tristate | |
6a0fcbb4 | 53 | select CRYPTO_BLKCIPHER2 |
5cde0af2 | 54 | select CRYPTO_ALGAPI |
6a0fcbb4 HX |
55 | |
56 | config CRYPTO_BLKCIPHER2 | |
57 | tristate | |
58 | select CRYPTO_ALGAPI2 | |
59 | select CRYPTO_RNG2 | |
0a2e821d | 60 | select CRYPTO_WORKQUEUE |
5cde0af2 | 61 | |
055bcee3 HX |
62 | config CRYPTO_HASH |
63 | tristate | |
6a0fcbb4 | 64 | select CRYPTO_HASH2 |
055bcee3 HX |
65 | select CRYPTO_ALGAPI |
66 | ||
6a0fcbb4 HX |
67 | config CRYPTO_HASH2 |
68 | tristate | |
69 | select CRYPTO_ALGAPI2 | |
70 | ||
17f0f4a4 NH |
71 | config CRYPTO_RNG |
72 | tristate | |
6a0fcbb4 | 73 | select CRYPTO_RNG2 |
17f0f4a4 NH |
74 | select CRYPTO_ALGAPI |
75 | ||
6a0fcbb4 HX |
76 | config CRYPTO_RNG2 |
77 | tristate | |
78 | select CRYPTO_ALGAPI2 | |
79 | ||
a1d2f095 | 80 | config CRYPTO_PCOMP |
bc94e596 HX |
81 | tristate |
82 | select CRYPTO_PCOMP2 | |
83 | select CRYPTO_ALGAPI | |
84 | ||
85 | config CRYPTO_PCOMP2 | |
a1d2f095 GU |
86 | tristate |
87 | select CRYPTO_ALGAPI2 | |
88 | ||
2b8c19db HX |
89 | config CRYPTO_MANAGER |
90 | tristate "Cryptographic algorithm manager" | |
6a0fcbb4 | 91 | select CRYPTO_MANAGER2 |
2b8c19db HX |
92 | help |
93 | Create default cryptographic template instantiations such as | |
94 | cbc(aes). | |
95 | ||
6a0fcbb4 HX |
96 | config CRYPTO_MANAGER2 |
97 | def_tristate CRYPTO_MANAGER || (CRYPTO_MANAGER!=n && CRYPTO_ALGAPI=y) | |
98 | select CRYPTO_AEAD2 | |
99 | select CRYPTO_HASH2 | |
100 | select CRYPTO_BLKCIPHER2 | |
bc94e596 | 101 | select CRYPTO_PCOMP2 |
6a0fcbb4 | 102 | |
a38f7907 SK |
103 | config CRYPTO_USER |
104 | tristate "Userspace cryptographic algorithm configuration" | |
5db017aa | 105 | depends on NET |
a38f7907 SK |
106 | select CRYPTO_MANAGER |
107 | help | |
108 | Userapace configuration for cryptographic instantiations such as | |
109 | cbc(aes). | |
110 | ||
326a6346 HX |
111 | config CRYPTO_MANAGER_DISABLE_TESTS |
112 | bool "Disable run-time self tests" | |
00ca28a5 HX |
113 | default y |
114 | depends on CRYPTO_MANAGER2 | |
0b767f96 | 115 | help |
326a6346 HX |
116 | Disable run-time self tests that normally take place at |
117 | algorithm registration. | |
0b767f96 | 118 | |
584fffc8 SS |
119 | config CRYPTO_GF128MUL |
120 | tristate "GF(2^128) multiplication functions (EXPERIMENTAL)" | |
333b0d7e | 121 | help |
584fffc8 SS |
122 | Efficient table driven implementation of multiplications in the |
123 | field GF(2^128). This is needed by some cypher modes. This | |
124 | option will be selected automatically if you select such a | |
125 | cipher mode. Only select this option by hand if you expect to load | |
126 | an external module that requires these functions. | |
333b0d7e | 127 | |
1da177e4 LT |
128 | config CRYPTO_NULL |
129 | tristate "Null algorithms" | |
cce9e06d | 130 | select CRYPTO_ALGAPI |
c8620c25 | 131 | select CRYPTO_BLKCIPHER |
d35d2454 | 132 | select CRYPTO_HASH |
1da177e4 LT |
133 | help |
134 | These are 'Null' algorithms, used by IPsec, which do nothing. | |
135 | ||
5068c7a8 SK |
136 | config CRYPTO_PCRYPT |
137 | tristate "Parallel crypto engine (EXPERIMENTAL)" | |
138 | depends on SMP && EXPERIMENTAL | |
139 | select PADATA | |
140 | select CRYPTO_MANAGER | |
141 | select CRYPTO_AEAD | |
142 | help | |
143 | This converts an arbitrary crypto algorithm into a parallel | |
144 | algorithm that executes in kernel threads. | |
145 | ||
25c38d3f YH |
146 | config CRYPTO_WORKQUEUE |
147 | tristate | |
148 | ||
584fffc8 SS |
149 | config CRYPTO_CRYPTD |
150 | tristate "Software async crypto daemon" | |
151 | select CRYPTO_BLKCIPHER | |
b8a28251 | 152 | select CRYPTO_HASH |
584fffc8 | 153 | select CRYPTO_MANAGER |
254eff77 | 154 | select CRYPTO_WORKQUEUE |
1da177e4 | 155 | help |
584fffc8 SS |
156 | This is a generic software asynchronous crypto daemon that |
157 | converts an arbitrary synchronous software crypto algorithm | |
158 | into an asynchronous algorithm that executes in a kernel thread. | |
1da177e4 | 159 | |
584fffc8 SS |
160 | config CRYPTO_AUTHENC |
161 | tristate "Authenc support" | |
162 | select CRYPTO_AEAD | |
163 | select CRYPTO_BLKCIPHER | |
164 | select CRYPTO_MANAGER | |
165 | select CRYPTO_HASH | |
1da177e4 | 166 | help |
584fffc8 SS |
167 | Authenc: Combined mode wrapper for IPsec. |
168 | This is required for IPSec. | |
1da177e4 | 169 | |
584fffc8 SS |
170 | config CRYPTO_TEST |
171 | tristate "Testing module" | |
172 | depends on m | |
da7f033d | 173 | select CRYPTO_MANAGER |
1da177e4 | 174 | help |
584fffc8 | 175 | Quick & dirty crypto test module. |
1da177e4 | 176 | |
584fffc8 | 177 | comment "Authenticated Encryption with Associated Data" |
cd12fb90 | 178 | |
584fffc8 SS |
179 | config CRYPTO_CCM |
180 | tristate "CCM support" | |
181 | select CRYPTO_CTR | |
182 | select CRYPTO_AEAD | |
1da177e4 | 183 | help |
584fffc8 | 184 | Support for Counter with CBC MAC. Required for IPsec. |
1da177e4 | 185 | |
584fffc8 SS |
186 | config CRYPTO_GCM |
187 | tristate "GCM/GMAC support" | |
188 | select CRYPTO_CTR | |
189 | select CRYPTO_AEAD | |
9382d97a | 190 | select CRYPTO_GHASH |
1da177e4 | 191 | help |
584fffc8 SS |
192 | Support for Galois/Counter Mode (GCM) and Galois Message |
193 | Authentication Code (GMAC). Required for IPSec. | |
1da177e4 | 194 | |
584fffc8 SS |
195 | config CRYPTO_SEQIV |
196 | tristate "Sequence Number IV Generator" | |
197 | select CRYPTO_AEAD | |
198 | select CRYPTO_BLKCIPHER | |
a0f000ec | 199 | select CRYPTO_RNG |
1da177e4 | 200 | help |
584fffc8 SS |
201 | This IV generator generates an IV based on a sequence number by |
202 | xoring it with a salt. This algorithm is mainly useful for CTR | |
1da177e4 | 203 | |
584fffc8 | 204 | comment "Block modes" |
c494e070 | 205 | |
584fffc8 SS |
206 | config CRYPTO_CBC |
207 | tristate "CBC support" | |
db131ef9 | 208 | select CRYPTO_BLKCIPHER |
43518407 | 209 | select CRYPTO_MANAGER |
db131ef9 | 210 | help |
584fffc8 SS |
211 | CBC: Cipher Block Chaining mode |
212 | This block cipher algorithm is required for IPSec. | |
db131ef9 | 213 | |
584fffc8 SS |
214 | config CRYPTO_CTR |
215 | tristate "CTR support" | |
db131ef9 | 216 | select CRYPTO_BLKCIPHER |
584fffc8 | 217 | select CRYPTO_SEQIV |
43518407 | 218 | select CRYPTO_MANAGER |
db131ef9 | 219 | help |
584fffc8 | 220 | CTR: Counter mode |
db131ef9 HX |
221 | This block cipher algorithm is required for IPSec. |
222 | ||
584fffc8 SS |
223 | config CRYPTO_CTS |
224 | tristate "CTS support" | |
225 | select CRYPTO_BLKCIPHER | |
226 | help | |
227 | CTS: Cipher Text Stealing | |
228 | This is the Cipher Text Stealing mode as described by | |
229 | Section 8 of rfc2040 and referenced by rfc3962. | |
230 | (rfc3962 includes errata information in its Appendix A) | |
231 | This mode is required for Kerberos gss mechanism support | |
232 | for AES encryption. | |
233 | ||
234 | config CRYPTO_ECB | |
235 | tristate "ECB support" | |
91652be5 DH |
236 | select CRYPTO_BLKCIPHER |
237 | select CRYPTO_MANAGER | |
91652be5 | 238 | help |
584fffc8 SS |
239 | ECB: Electronic CodeBook mode |
240 | This is the simplest block cipher algorithm. It simply encrypts | |
241 | the input block by block. | |
91652be5 | 242 | |
64470f1b RS |
243 | config CRYPTO_LRW |
244 | tristate "LRW support (EXPERIMENTAL)" | |
245 | depends on EXPERIMENTAL | |
246 | select CRYPTO_BLKCIPHER | |
247 | select CRYPTO_MANAGER | |
248 | select CRYPTO_GF128MUL | |
249 | help | |
250 | LRW: Liskov Rivest Wagner, a tweakable, non malleable, non movable | |
251 | narrow block cipher mode for dm-crypt. Use it with cipher | |
252 | specification string aes-lrw-benbi, the key must be 256, 320 or 384. | |
253 | The first 128, 192 or 256 bits in the key are used for AES and the | |
254 | rest is used to tie each cipher block to its logical position. | |
255 | ||
584fffc8 SS |
256 | config CRYPTO_PCBC |
257 | tristate "PCBC support" | |
258 | select CRYPTO_BLKCIPHER | |
259 | select CRYPTO_MANAGER | |
260 | help | |
261 | PCBC: Propagating Cipher Block Chaining mode | |
262 | This block cipher algorithm is required for RxRPC. | |
263 | ||
f19f5111 RS |
264 | config CRYPTO_XTS |
265 | tristate "XTS support (EXPERIMENTAL)" | |
266 | depends on EXPERIMENTAL | |
267 | select CRYPTO_BLKCIPHER | |
268 | select CRYPTO_MANAGER | |
269 | select CRYPTO_GF128MUL | |
270 | help | |
271 | XTS: IEEE1619/D16 narrow block cipher use with aes-xts-plain, | |
272 | key size 256, 384 or 512 bits. This implementation currently | |
273 | can't handle a sectorsize which is not a multiple of 16 bytes. | |
274 | ||
584fffc8 SS |
275 | comment "Hash modes" |
276 | ||
277 | config CRYPTO_HMAC | |
278 | tristate "HMAC support" | |
279 | select CRYPTO_HASH | |
23e353c8 | 280 | select CRYPTO_MANAGER |
23e353c8 | 281 | help |
584fffc8 SS |
282 | HMAC: Keyed-Hashing for Message Authentication (RFC2104). |
283 | This is required for IPSec. | |
23e353c8 | 284 | |
584fffc8 SS |
285 | config CRYPTO_XCBC |
286 | tristate "XCBC support" | |
287 | depends on EXPERIMENTAL | |
288 | select CRYPTO_HASH | |
289 | select CRYPTO_MANAGER | |
76cb9521 | 290 | help |
584fffc8 SS |
291 | XCBC: Keyed-Hashing with encryption algorithm |
292 | http://www.ietf.org/rfc/rfc3566.txt | |
293 | http://csrc.nist.gov/encryption/modes/proposedmodes/ | |
294 | xcbc-mac/xcbc-mac-spec.pdf | |
76cb9521 | 295 | |
f1939f7c SW |
296 | config CRYPTO_VMAC |
297 | tristate "VMAC support" | |
298 | depends on EXPERIMENTAL | |
299 | select CRYPTO_HASH | |
300 | select CRYPTO_MANAGER | |
301 | help | |
302 | VMAC is a message authentication algorithm designed for | |
303 | very high speed on 64-bit architectures. | |
304 | ||
305 | See also: | |
306 | <http://fastcrypto.org/vmac> | |
307 | ||
584fffc8 | 308 | comment "Digest" |
28db8e3e | 309 | |
584fffc8 SS |
310 | config CRYPTO_CRC32C |
311 | tristate "CRC32c CRC algorithm" | |
5773a3e6 | 312 | select CRYPTO_HASH |
4a49b499 | 313 | help |
584fffc8 SS |
314 | Castagnoli, et al Cyclic Redundancy-Check Algorithm. Used |
315 | by iSCSI for header and data digests and by others. | |
69c35efc | 316 | See Castagnoli93. Module will be crc32c. |
4a49b499 | 317 | |
8cb51ba8 AZ |
318 | config CRYPTO_CRC32C_INTEL |
319 | tristate "CRC32c INTEL hardware acceleration" | |
320 | depends on X86 | |
321 | select CRYPTO_HASH | |
322 | help | |
323 | In Intel processor with SSE4.2 supported, the processor will | |
324 | support CRC32C implementation using hardware accelerated CRC32 | |
325 | instruction. This option will create 'crc32c-intel' module, | |
326 | which will enable any routine to use the CRC32 instruction to | |
327 | gain performance compared with software implementation. | |
328 | Module will be crc32c-intel. | |
329 | ||
2cdc6899 YH |
330 | config CRYPTO_GHASH |
331 | tristate "GHASH digest algorithm" | |
332 | select CRYPTO_SHASH | |
333 | select CRYPTO_GF128MUL | |
334 | help | |
335 | GHASH is message digest algorithm for GCM (Galois/Counter Mode). | |
336 | ||
584fffc8 SS |
337 | config CRYPTO_MD4 |
338 | tristate "MD4 digest algorithm" | |
808a1763 | 339 | select CRYPTO_HASH |
124b53d0 | 340 | help |
584fffc8 | 341 | MD4 message digest algorithm (RFC1320). |
124b53d0 | 342 | |
584fffc8 SS |
343 | config CRYPTO_MD5 |
344 | tristate "MD5 digest algorithm" | |
14b75ba7 | 345 | select CRYPTO_HASH |
1da177e4 | 346 | help |
584fffc8 | 347 | MD5 message digest algorithm (RFC1321). |
1da177e4 | 348 | |
584fffc8 SS |
349 | config CRYPTO_MICHAEL_MIC |
350 | tristate "Michael MIC keyed digest algorithm" | |
19e2bf14 | 351 | select CRYPTO_HASH |
90831639 | 352 | help |
584fffc8 SS |
353 | Michael MIC is used for message integrity protection in TKIP |
354 | (IEEE 802.11i). This algorithm is required for TKIP, but it | |
355 | should not be used for other purposes because of the weakness | |
356 | of the algorithm. | |
90831639 | 357 | |
82798f90 | 358 | config CRYPTO_RMD128 |
b6d44341 | 359 | tristate "RIPEMD-128 digest algorithm" |
7c4468bc | 360 | select CRYPTO_HASH |
b6d44341 AB |
361 | help |
362 | RIPEMD-128 (ISO/IEC 10118-3:2004). | |
82798f90 | 363 | |
b6d44341 | 364 | RIPEMD-128 is a 128-bit cryptographic hash function. It should only |
35ed4b35 | 365 | be used as a secure replacement for RIPEMD. For other use cases, |
b6d44341 | 366 | RIPEMD-160 should be used. |
82798f90 | 367 | |
b6d44341 | 368 | Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. |
6d8de74c | 369 | See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> |
82798f90 AKR |
370 | |
371 | config CRYPTO_RMD160 | |
b6d44341 | 372 | tristate "RIPEMD-160 digest algorithm" |
e5835fba | 373 | select CRYPTO_HASH |
b6d44341 AB |
374 | help |
375 | RIPEMD-160 (ISO/IEC 10118-3:2004). | |
82798f90 | 376 | |
b6d44341 AB |
377 | RIPEMD-160 is a 160-bit cryptographic hash function. It is intended |
378 | to be used as a secure replacement for the 128-bit hash functions | |
379 | MD4, MD5 and it's predecessor RIPEMD | |
380 | (not to be confused with RIPEMD-128). | |
82798f90 | 381 | |
b6d44341 AB |
382 | It's speed is comparable to SHA1 and there are no known attacks |
383 | against RIPEMD-160. | |
534fe2c1 | 384 | |
b6d44341 | 385 | Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. |
6d8de74c | 386 | See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> |
534fe2c1 AKR |
387 | |
388 | config CRYPTO_RMD256 | |
b6d44341 | 389 | tristate "RIPEMD-256 digest algorithm" |
d8a5e2e9 | 390 | select CRYPTO_HASH |
b6d44341 AB |
391 | help |
392 | RIPEMD-256 is an optional extension of RIPEMD-128 with a | |
393 | 256 bit hash. It is intended for applications that require | |
394 | longer hash-results, without needing a larger security level | |
395 | (than RIPEMD-128). | |
534fe2c1 | 396 | |
b6d44341 | 397 | Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. |
6d8de74c | 398 | See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> |
534fe2c1 AKR |
399 | |
400 | config CRYPTO_RMD320 | |
b6d44341 | 401 | tristate "RIPEMD-320 digest algorithm" |
3b8efb4c | 402 | select CRYPTO_HASH |
b6d44341 AB |
403 | help |
404 | RIPEMD-320 is an optional extension of RIPEMD-160 with a | |
405 | 320 bit hash. It is intended for applications that require | |
406 | longer hash-results, without needing a larger security level | |
407 | (than RIPEMD-160). | |
534fe2c1 | 408 | |
b6d44341 | 409 | Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. |
6d8de74c | 410 | See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> |
82798f90 | 411 | |
584fffc8 SS |
412 | config CRYPTO_SHA1 |
413 | tristate "SHA1 digest algorithm" | |
54ccb367 | 414 | select CRYPTO_HASH |
1da177e4 | 415 | help |
584fffc8 | 416 | SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2). |
1da177e4 | 417 | |
66be8951 MK |
418 | config CRYPTO_SHA1_SSSE3 |
419 | tristate "SHA1 digest algorithm (SSSE3/AVX)" | |
420 | depends on X86 && 64BIT | |
421 | select CRYPTO_SHA1 | |
422 | select CRYPTO_HASH | |
423 | help | |
424 | SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented | |
425 | using Supplemental SSE3 (SSSE3) instructions or Advanced Vector | |
426 | Extensions (AVX), when available. | |
427 | ||
584fffc8 SS |
428 | config CRYPTO_SHA256 |
429 | tristate "SHA224 and SHA256 digest algorithm" | |
50e109b5 | 430 | select CRYPTO_HASH |
1da177e4 | 431 | help |
584fffc8 | 432 | SHA256 secure hash standard (DFIPS 180-2). |
1da177e4 | 433 | |
584fffc8 SS |
434 | This version of SHA implements a 256 bit hash with 128 bits of |
435 | security against collision attacks. | |
2729bb42 | 436 | |
b6d44341 AB |
437 | This code also includes SHA-224, a 224 bit hash with 112 bits |
438 | of security against collision attacks. | |
584fffc8 SS |
439 | |
440 | config CRYPTO_SHA512 | |
441 | tristate "SHA384 and SHA512 digest algorithms" | |
bd9d20db | 442 | select CRYPTO_HASH |
b9f535ff | 443 | help |
584fffc8 | 444 | SHA512 secure hash standard (DFIPS 180-2). |
b9f535ff | 445 | |
584fffc8 SS |
446 | This version of SHA implements a 512 bit hash with 256 bits of |
447 | security against collision attacks. | |
b9f535ff | 448 | |
584fffc8 SS |
449 | This code also includes SHA-384, a 384 bit hash with 192 bits |
450 | of security against collision attacks. | |
b9f535ff | 451 | |
584fffc8 SS |
452 | config CRYPTO_TGR192 |
453 | tristate "Tiger digest algorithms" | |
f63fbd3d | 454 | select CRYPTO_HASH |
eaf44088 | 455 | help |
584fffc8 | 456 | Tiger hash algorithm 192, 160 and 128-bit hashes |
eaf44088 | 457 | |
584fffc8 SS |
458 | Tiger is a hash function optimized for 64-bit processors while |
459 | still having decent performance on 32-bit processors. | |
460 | Tiger was developed by Ross Anderson and Eli Biham. | |
eaf44088 JF |
461 | |
462 | See also: | |
584fffc8 | 463 | <http://www.cs.technion.ac.il/~biham/Reports/Tiger/>. |
eaf44088 | 464 | |
584fffc8 SS |
465 | config CRYPTO_WP512 |
466 | tristate "Whirlpool digest algorithms" | |
4946510b | 467 | select CRYPTO_HASH |
1da177e4 | 468 | help |
584fffc8 | 469 | Whirlpool hash algorithm 512, 384 and 256-bit hashes |
1da177e4 | 470 | |
584fffc8 SS |
471 | Whirlpool-512 is part of the NESSIE cryptographic primitives. |
472 | Whirlpool will be part of the ISO/IEC 10118-3:2003(E) standard | |
1da177e4 LT |
473 | |
474 | See also: | |
6d8de74c | 475 | <http://www.larc.usp.br/~pbarreto/WhirlpoolPage.html> |
584fffc8 | 476 | |
0e1227d3 YH |
477 | config CRYPTO_GHASH_CLMUL_NI_INTEL |
478 | tristate "GHASH digest algorithm (CLMUL-NI accelerated)" | |
8af00860 | 479 | depends on X86 && 64BIT |
0e1227d3 YH |
480 | select CRYPTO_SHASH |
481 | select CRYPTO_CRYPTD | |
482 | help | |
483 | GHASH is message digest algorithm for GCM (Galois/Counter Mode). | |
484 | The implementation is accelerated by CLMUL-NI of Intel. | |
485 | ||
584fffc8 | 486 | comment "Ciphers" |
1da177e4 LT |
487 | |
488 | config CRYPTO_AES | |
489 | tristate "AES cipher algorithms" | |
cce9e06d | 490 | select CRYPTO_ALGAPI |
1da177e4 | 491 | help |
584fffc8 | 492 | AES cipher algorithms (FIPS-197). AES uses the Rijndael |
1da177e4 LT |
493 | algorithm. |
494 | ||
495 | Rijndael appears to be consistently a very good performer in | |
584fffc8 SS |
496 | both hardware and software across a wide range of computing |
497 | environments regardless of its use in feedback or non-feedback | |
498 | modes. Its key setup time is excellent, and its key agility is | |
499 | good. Rijndael's very low memory requirements make it very well | |
500 | suited for restricted-space environments, in which it also | |
501 | demonstrates excellent performance. Rijndael's operations are | |
502 | among the easiest to defend against power and timing attacks. | |
1da177e4 | 503 | |
584fffc8 | 504 | The AES specifies three key sizes: 128, 192 and 256 bits |
1da177e4 LT |
505 | |
506 | See <http://csrc.nist.gov/CryptoToolkit/aes/> for more information. | |
507 | ||
508 | config CRYPTO_AES_586 | |
509 | tristate "AES cipher algorithms (i586)" | |
cce9e06d HX |
510 | depends on (X86 || UML_X86) && !64BIT |
511 | select CRYPTO_ALGAPI | |
5157dea8 | 512 | select CRYPTO_AES |
1da177e4 | 513 | help |
584fffc8 | 514 | AES cipher algorithms (FIPS-197). AES uses the Rijndael |
1da177e4 LT |
515 | algorithm. |
516 | ||
517 | Rijndael appears to be consistently a very good performer in | |
584fffc8 SS |
518 | both hardware and software across a wide range of computing |
519 | environments regardless of its use in feedback or non-feedback | |
520 | modes. Its key setup time is excellent, and its key agility is | |
521 | good. Rijndael's very low memory requirements make it very well | |
522 | suited for restricted-space environments, in which it also | |
523 | demonstrates excellent performance. Rijndael's operations are | |
524 | among the easiest to defend against power and timing attacks. | |
1da177e4 | 525 | |
584fffc8 | 526 | The AES specifies three key sizes: 128, 192 and 256 bits |
a2a892a2 AS |
527 | |
528 | See <http://csrc.nist.gov/encryption/aes/> for more information. | |
529 | ||
530 | config CRYPTO_AES_X86_64 | |
531 | tristate "AES cipher algorithms (x86_64)" | |
cce9e06d HX |
532 | depends on (X86 || UML_X86) && 64BIT |
533 | select CRYPTO_ALGAPI | |
81190b32 | 534 | select CRYPTO_AES |
a2a892a2 | 535 | help |
584fffc8 | 536 | AES cipher algorithms (FIPS-197). AES uses the Rijndael |
a2a892a2 AS |
537 | algorithm. |
538 | ||
539 | Rijndael appears to be consistently a very good performer in | |
584fffc8 SS |
540 | both hardware and software across a wide range of computing |
541 | environments regardless of its use in feedback or non-feedback | |
542 | modes. Its key setup time is excellent, and its key agility is | |
54b6a1bd YH |
543 | good. Rijndael's very low memory requirements make it very well |
544 | suited for restricted-space environments, in which it also | |
545 | demonstrates excellent performance. Rijndael's operations are | |
546 | among the easiest to defend against power and timing attacks. | |
547 | ||
548 | The AES specifies three key sizes: 128, 192 and 256 bits | |
549 | ||
550 | See <http://csrc.nist.gov/encryption/aes/> for more information. | |
551 | ||
552 | config CRYPTO_AES_NI_INTEL | |
553 | tristate "AES cipher algorithms (AES-NI)" | |
8af00860 | 554 | depends on X86 |
0d258efb MK |
555 | select CRYPTO_AES_X86_64 if 64BIT |
556 | select CRYPTO_AES_586 if !64BIT | |
54b6a1bd YH |
557 | select CRYPTO_CRYPTD |
558 | select CRYPTO_ALGAPI | |
559 | help | |
560 | Use Intel AES-NI instructions for AES algorithm. | |
561 | ||
562 | AES cipher algorithms (FIPS-197). AES uses the Rijndael | |
563 | algorithm. | |
564 | ||
565 | Rijndael appears to be consistently a very good performer in | |
566 | both hardware and software across a wide range of computing | |
567 | environments regardless of its use in feedback or non-feedback | |
568 | modes. Its key setup time is excellent, and its key agility is | |
584fffc8 SS |
569 | good. Rijndael's very low memory requirements make it very well |
570 | suited for restricted-space environments, in which it also | |
571 | demonstrates excellent performance. Rijndael's operations are | |
572 | among the easiest to defend against power and timing attacks. | |
a2a892a2 | 573 | |
584fffc8 | 574 | The AES specifies three key sizes: 128, 192 and 256 bits |
1da177e4 LT |
575 | |
576 | See <http://csrc.nist.gov/encryption/aes/> for more information. | |
577 | ||
0d258efb MK |
578 | In addition to AES cipher algorithm support, the acceleration |
579 | for some popular block cipher mode is supported too, including | |
580 | ECB, CBC, LRW, PCBC, XTS. The 64 bit version has additional | |
581 | acceleration for CTR. | |
2cf4ac8b | 582 | |
584fffc8 SS |
583 | config CRYPTO_ANUBIS |
584 | tristate "Anubis cipher algorithm" | |
585 | select CRYPTO_ALGAPI | |
586 | help | |
587 | Anubis cipher algorithm. | |
588 | ||
589 | Anubis is a variable key length cipher which can use keys from | |
590 | 128 bits to 320 bits in length. It was evaluated as a entrant | |
591 | in the NESSIE competition. | |
592 | ||
593 | See also: | |
6d8de74c JM |
594 | <https://www.cosic.esat.kuleuven.be/nessie/reports/> |
595 | <http://www.larc.usp.br/~pbarreto/AnubisPage.html> | |
584fffc8 SS |
596 | |
597 | config CRYPTO_ARC4 | |
598 | tristate "ARC4 cipher algorithm" | |
599 | select CRYPTO_ALGAPI | |
600 | help | |
601 | ARC4 cipher algorithm. | |
602 | ||
603 | ARC4 is a stream cipher using keys ranging from 8 bits to 2048 | |
604 | bits in length. This algorithm is required for driver-based | |
605 | WEP, but it should not be for other purposes because of the | |
606 | weakness of the algorithm. | |
607 | ||
608 | config CRYPTO_BLOWFISH | |
609 | tristate "Blowfish cipher algorithm" | |
610 | select CRYPTO_ALGAPI | |
52ba867c | 611 | select CRYPTO_BLOWFISH_COMMON |
584fffc8 SS |
612 | help |
613 | Blowfish cipher algorithm, by Bruce Schneier. | |
614 | ||
615 | This is a variable key length cipher which can use keys from 32 | |
616 | bits to 448 bits in length. It's fast, simple and specifically | |
617 | designed for use on "large microprocessors". | |
618 | ||
619 | See also: | |
620 | <http://www.schneier.com/blowfish.html> | |
621 | ||
52ba867c JK |
622 | config CRYPTO_BLOWFISH_COMMON |
623 | tristate | |
624 | help | |
625 | Common parts of the Blowfish cipher algorithm shared by the | |
626 | generic c and the assembler implementations. | |
627 | ||
628 | See also: | |
629 | <http://www.schneier.com/blowfish.html> | |
630 | ||
64b94cea JK |
631 | config CRYPTO_BLOWFISH_X86_64 |
632 | tristate "Blowfish cipher algorithm (x86_64)" | |
633 | depends on (X86 || UML_X86) && 64BIT | |
634 | select CRYPTO_ALGAPI | |
635 | select CRYPTO_BLOWFISH_COMMON | |
636 | help | |
637 | Blowfish cipher algorithm (x86_64), by Bruce Schneier. | |
638 | ||
639 | This is a variable key length cipher which can use keys from 32 | |
640 | bits to 448 bits in length. It's fast, simple and specifically | |
641 | designed for use on "large microprocessors". | |
642 | ||
643 | See also: | |
644 | <http://www.schneier.com/blowfish.html> | |
645 | ||
584fffc8 SS |
646 | config CRYPTO_CAMELLIA |
647 | tristate "Camellia cipher algorithms" | |
648 | depends on CRYPTO | |
649 | select CRYPTO_ALGAPI | |
650 | help | |
651 | Camellia cipher algorithms module. | |
652 | ||
653 | Camellia is a symmetric key block cipher developed jointly | |
654 | at NTT and Mitsubishi Electric Corporation. | |
655 | ||
656 | The Camellia specifies three key sizes: 128, 192 and 256 bits. | |
657 | ||
658 | See also: | |
659 | <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html> | |
660 | ||
1da177e4 LT |
661 | config CRYPTO_CAST5 |
662 | tristate "CAST5 (CAST-128) cipher algorithm" | |
cce9e06d | 663 | select CRYPTO_ALGAPI |
1da177e4 LT |
664 | help |
665 | The CAST5 encryption algorithm (synonymous with CAST-128) is | |
666 | described in RFC2144. | |
667 | ||
668 | config CRYPTO_CAST6 | |
669 | tristate "CAST6 (CAST-256) cipher algorithm" | |
cce9e06d | 670 | select CRYPTO_ALGAPI |
1da177e4 LT |
671 | help |
672 | The CAST6 encryption algorithm (synonymous with CAST-256) is | |
673 | described in RFC2612. | |
674 | ||
584fffc8 SS |
675 | config CRYPTO_DES |
676 | tristate "DES and Triple DES EDE cipher algorithms" | |
cce9e06d | 677 | select CRYPTO_ALGAPI |
1da177e4 | 678 | help |
584fffc8 | 679 | DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3). |
fb4f10ed | 680 | |
584fffc8 SS |
681 | config CRYPTO_FCRYPT |
682 | tristate "FCrypt cipher algorithm" | |
cce9e06d | 683 | select CRYPTO_ALGAPI |
584fffc8 | 684 | select CRYPTO_BLKCIPHER |
1da177e4 | 685 | help |
584fffc8 | 686 | FCrypt algorithm used by RxRPC. |
1da177e4 LT |
687 | |
688 | config CRYPTO_KHAZAD | |
689 | tristate "Khazad cipher algorithm" | |
cce9e06d | 690 | select CRYPTO_ALGAPI |
1da177e4 LT |
691 | help |
692 | Khazad cipher algorithm. | |
693 | ||
694 | Khazad was a finalist in the initial NESSIE competition. It is | |
695 | an algorithm optimized for 64-bit processors with good performance | |
696 | on 32-bit processors. Khazad uses an 128 bit key size. | |
697 | ||
698 | See also: | |
6d8de74c | 699 | <http://www.larc.usp.br/~pbarreto/KhazadPage.html> |
1da177e4 | 700 | |
2407d608 TSH |
701 | config CRYPTO_SALSA20 |
702 | tristate "Salsa20 stream cipher algorithm (EXPERIMENTAL)" | |
703 | depends on EXPERIMENTAL | |
704 | select CRYPTO_BLKCIPHER | |
705 | help | |
706 | Salsa20 stream cipher algorithm. | |
707 | ||
708 | Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT | |
709 | Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/> | |
974e4b75 TSH |
710 | |
711 | The Salsa20 stream cipher algorithm is designed by Daniel J. | |
712 | Bernstein <[email protected]>. See <http://cr.yp.to/snuffle.html> | |
713 | ||
714 | config CRYPTO_SALSA20_586 | |
715 | tristate "Salsa20 stream cipher algorithm (i586) (EXPERIMENTAL)" | |
716 | depends on (X86 || UML_X86) && !64BIT | |
717 | depends on EXPERIMENTAL | |
718 | select CRYPTO_BLKCIPHER | |
974e4b75 TSH |
719 | help |
720 | Salsa20 stream cipher algorithm. | |
721 | ||
722 | Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT | |
723 | Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/> | |
9a7dafbb TSH |
724 | |
725 | The Salsa20 stream cipher algorithm is designed by Daniel J. | |
726 | Bernstein <[email protected]>. See <http://cr.yp.to/snuffle.html> | |
727 | ||
728 | config CRYPTO_SALSA20_X86_64 | |
729 | tristate "Salsa20 stream cipher algorithm (x86_64) (EXPERIMENTAL)" | |
730 | depends on (X86 || UML_X86) && 64BIT | |
731 | depends on EXPERIMENTAL | |
732 | select CRYPTO_BLKCIPHER | |
9a7dafbb TSH |
733 | help |
734 | Salsa20 stream cipher algorithm. | |
735 | ||
736 | Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT | |
737 | Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/> | |
2407d608 TSH |
738 | |
739 | The Salsa20 stream cipher algorithm is designed by Daniel J. | |
740 | Bernstein <[email protected]>. See <http://cr.yp.to/snuffle.html> | |
1da177e4 | 741 | |
584fffc8 SS |
742 | config CRYPTO_SEED |
743 | tristate "SEED cipher algorithm" | |
cce9e06d | 744 | select CRYPTO_ALGAPI |
1da177e4 | 745 | help |
584fffc8 | 746 | SEED cipher algorithm (RFC4269). |
1da177e4 | 747 | |
584fffc8 SS |
748 | SEED is a 128-bit symmetric key block cipher that has been |
749 | developed by KISA (Korea Information Security Agency) as a | |
750 | national standard encryption algorithm of the Republic of Korea. | |
751 | It is a 16 round block cipher with the key size of 128 bit. | |
752 | ||
753 | See also: | |
754 | <http://www.kisa.or.kr/kisa/seed/jsp/seed_eng.jsp> | |
755 | ||
756 | config CRYPTO_SERPENT | |
757 | tristate "Serpent cipher algorithm" | |
cce9e06d | 758 | select CRYPTO_ALGAPI |
1da177e4 | 759 | help |
584fffc8 | 760 | Serpent cipher algorithm, by Anderson, Biham & Knudsen. |
1da177e4 | 761 | |
584fffc8 SS |
762 | Keys are allowed to be from 0 to 256 bits in length, in steps |
763 | of 8 bits. Also includes the 'Tnepres' algorithm, a reversed | |
764 | variant of Serpent for compatibility with old kerneli.org code. | |
765 | ||
766 | See also: | |
767 | <http://www.cl.cam.ac.uk/~rja14/serpent.html> | |
768 | ||
769 | config CRYPTO_TEA | |
770 | tristate "TEA, XTEA and XETA cipher algorithms" | |
cce9e06d | 771 | select CRYPTO_ALGAPI |
1da177e4 | 772 | help |
584fffc8 | 773 | TEA cipher algorithm. |
1da177e4 | 774 | |
584fffc8 SS |
775 | Tiny Encryption Algorithm is a simple cipher that uses |
776 | many rounds for security. It is very fast and uses | |
777 | little memory. | |
778 | ||
779 | Xtendend Tiny Encryption Algorithm is a modification to | |
780 | the TEA algorithm to address a potential key weakness | |
781 | in the TEA algorithm. | |
782 | ||
783 | Xtendend Encryption Tiny Algorithm is a mis-implementation | |
784 | of the XTEA algorithm for compatibility purposes. | |
785 | ||
786 | config CRYPTO_TWOFISH | |
787 | tristate "Twofish cipher algorithm" | |
04ac7db3 | 788 | select CRYPTO_ALGAPI |
584fffc8 | 789 | select CRYPTO_TWOFISH_COMMON |
04ac7db3 | 790 | help |
584fffc8 | 791 | Twofish cipher algorithm. |
04ac7db3 | 792 | |
584fffc8 SS |
793 | Twofish was submitted as an AES (Advanced Encryption Standard) |
794 | candidate cipher by researchers at CounterPane Systems. It is a | |
795 | 16 round block cipher supporting key sizes of 128, 192, and 256 | |
796 | bits. | |
04ac7db3 | 797 | |
584fffc8 SS |
798 | See also: |
799 | <http://www.schneier.com/twofish.html> | |
800 | ||
801 | config CRYPTO_TWOFISH_COMMON | |
802 | tristate | |
803 | help | |
804 | Common parts of the Twofish cipher algorithm shared by the | |
805 | generic c and the assembler implementations. | |
806 | ||
807 | config CRYPTO_TWOFISH_586 | |
808 | tristate "Twofish cipher algorithms (i586)" | |
809 | depends on (X86 || UML_X86) && !64BIT | |
810 | select CRYPTO_ALGAPI | |
811 | select CRYPTO_TWOFISH_COMMON | |
812 | help | |
813 | Twofish cipher algorithm. | |
814 | ||
815 | Twofish was submitted as an AES (Advanced Encryption Standard) | |
816 | candidate cipher by researchers at CounterPane Systems. It is a | |
817 | 16 round block cipher supporting key sizes of 128, 192, and 256 | |
818 | bits. | |
04ac7db3 NT |
819 | |
820 | See also: | |
584fffc8 | 821 | <http://www.schneier.com/twofish.html> |
04ac7db3 | 822 | |
584fffc8 SS |
823 | config CRYPTO_TWOFISH_X86_64 |
824 | tristate "Twofish cipher algorithm (x86_64)" | |
825 | depends on (X86 || UML_X86) && 64BIT | |
cce9e06d | 826 | select CRYPTO_ALGAPI |
584fffc8 | 827 | select CRYPTO_TWOFISH_COMMON |
1da177e4 | 828 | help |
584fffc8 | 829 | Twofish cipher algorithm (x86_64). |
1da177e4 | 830 | |
584fffc8 SS |
831 | Twofish was submitted as an AES (Advanced Encryption Standard) |
832 | candidate cipher by researchers at CounterPane Systems. It is a | |
833 | 16 round block cipher supporting key sizes of 128, 192, and 256 | |
834 | bits. | |
835 | ||
836 | See also: | |
837 | <http://www.schneier.com/twofish.html> | |
838 | ||
8280daad JK |
839 | config CRYPTO_TWOFISH_X86_64_3WAY |
840 | tristate "Twofish cipher algorithm (x86_64, 3-way parallel)" | |
841 | depends on (X86 || UML_X86) && 64BIT | |
842 | select CRYPTO_ALGAPI | |
843 | select CRYPTO_TWOFISH_COMMON | |
844 | select CRYPTO_TWOFISH_X86_64 | |
845 | help | |
846 | Twofish cipher algorithm (x86_64, 3-way parallel). | |
847 | ||
848 | Twofish was submitted as an AES (Advanced Encryption Standard) | |
849 | candidate cipher by researchers at CounterPane Systems. It is a | |
850 | 16 round block cipher supporting key sizes of 128, 192, and 256 | |
851 | bits. | |
852 | ||
853 | This module provides Twofish cipher algorithm that processes three | |
854 | blocks parallel, utilizing resources of out-of-order CPUs better. | |
855 | ||
856 | See also: | |
857 | <http://www.schneier.com/twofish.html> | |
858 | ||
584fffc8 SS |
859 | comment "Compression" |
860 | ||
861 | config CRYPTO_DEFLATE | |
862 | tristate "Deflate compression algorithm" | |
863 | select CRYPTO_ALGAPI | |
864 | select ZLIB_INFLATE | |
865 | select ZLIB_DEFLATE | |
3c09f17c | 866 | help |
584fffc8 SS |
867 | This is the Deflate algorithm (RFC1951), specified for use in |
868 | IPSec with the IPCOMP protocol (RFC3173, RFC2394). | |
869 | ||
870 | You will most probably want this if using IPSec. | |
3c09f17c | 871 | |
bf68e65e GU |
872 | config CRYPTO_ZLIB |
873 | tristate "Zlib compression algorithm" | |
874 | select CRYPTO_PCOMP | |
875 | select ZLIB_INFLATE | |
876 | select ZLIB_DEFLATE | |
877 | select NLATTR | |
878 | help | |
879 | This is the zlib algorithm. | |
880 | ||
0b77abb3 ZS |
881 | config CRYPTO_LZO |
882 | tristate "LZO compression algorithm" | |
883 | select CRYPTO_ALGAPI | |
884 | select LZO_COMPRESS | |
885 | select LZO_DECOMPRESS | |
886 | help | |
887 | This is the LZO algorithm. | |
888 | ||
17f0f4a4 NH |
889 | comment "Random Number Generation" |
890 | ||
891 | config CRYPTO_ANSI_CPRNG | |
892 | tristate "Pseudo Random Number Generation for Cryptographic modules" | |
4e4ed83b | 893 | default m |
17f0f4a4 NH |
894 | select CRYPTO_AES |
895 | select CRYPTO_RNG | |
17f0f4a4 NH |
896 | help |
897 | This option enables the generic pseudo random number generator | |
898 | for cryptographic modules. Uses the Algorithm specified in | |
7dd607e8 JK |
899 | ANSI X9.31 A.2.4. Note that this option must be enabled if |
900 | CRYPTO_FIPS is selected | |
17f0f4a4 | 901 | |
03c8efc1 HX |
902 | config CRYPTO_USER_API |
903 | tristate | |
904 | ||
fe869cdb HX |
905 | config CRYPTO_USER_API_HASH |
906 | tristate "User-space interface for hash algorithms" | |
7451708f | 907 | depends on NET |
fe869cdb HX |
908 | select CRYPTO_HASH |
909 | select CRYPTO_USER_API | |
910 | help | |
911 | This option enables the user-spaces interface for hash | |
912 | algorithms. | |
913 | ||
8ff59090 HX |
914 | config CRYPTO_USER_API_SKCIPHER |
915 | tristate "User-space interface for symmetric key cipher algorithms" | |
7451708f | 916 | depends on NET |
8ff59090 HX |
917 | select CRYPTO_BLKCIPHER |
918 | select CRYPTO_USER_API | |
919 | help | |
920 | This option enables the user-spaces interface for symmetric | |
921 | key cipher algorithms. | |
922 | ||
1da177e4 | 923 | source "drivers/crypto/Kconfig" |
1da177e4 | 924 | |
cce9e06d | 925 | endif # if CRYPTO |