11da177e4SLinus Torvalds# 2685784aaSDan Williams# Generic algorithms support 3685784aaSDan Williams# 4685784aaSDan Williamsconfig XOR_BLOCKS 5685784aaSDan Williams tristate 6685784aaSDan Williams 7685784aaSDan Williams# 89bc89cd8SDan Williams# async_tx api: hardware offloaded memory transfer/transform support 99bc89cd8SDan Williams# 109bc89cd8SDan Williamssource "crypto/async_tx/Kconfig" 119bc89cd8SDan Williams 129bc89cd8SDan Williams# 131da177e4SLinus Torvalds# Cryptographic API Configuration 141da177e4SLinus Torvalds# 152e290f43SJan Engelhardtmenuconfig CRYPTO 16c3715cb9SSebastian Siewior tristate "Cryptographic API" 171da177e4SLinus Torvalds help 181da177e4SLinus Torvalds This option provides the core Cryptographic API. 191da177e4SLinus Torvalds 20cce9e06dSHerbert Xuif CRYPTO 21cce9e06dSHerbert Xu 22584fffc8SSebastian Siewiorcomment "Crypto core or helper" 23584fffc8SSebastian Siewior 24ccb778e1SNeil Hormanconfig CRYPTO_FIPS 25ccb778e1SNeil Horman bool "FIPS 200 compliance" 26f2c89a10SHerbert Xu depends on (CRYPTO_ANSI_CPRNG || CRYPTO_DRBG) && !CRYPTO_MANAGER_DISABLE_TESTS 27002c77a4SJarod Wilson depends on MODULE_SIG 28ccb778e1SNeil Horman help 29ccb778e1SNeil Horman This options enables the fips boot option which is 30ccb778e1SNeil Horman required if you want to system to operate in a FIPS 200 31ccb778e1SNeil Horman certification. You should say no unless you know what 32e84c5480SChuck Ebbert this is. 33ccb778e1SNeil Horman 34cce9e06dSHerbert Xuconfig CRYPTO_ALGAPI 35cce9e06dSHerbert Xu tristate 366a0fcbb4SHerbert Xu select CRYPTO_ALGAPI2 37cce9e06dSHerbert Xu help 38cce9e06dSHerbert Xu This option provides the API for cryptographic algorithms. 39cce9e06dSHerbert Xu 406a0fcbb4SHerbert Xuconfig CRYPTO_ALGAPI2 416a0fcbb4SHerbert Xu tristate 426a0fcbb4SHerbert Xu 431ae97820SHerbert Xuconfig CRYPTO_AEAD 441ae97820SHerbert Xu tristate 456a0fcbb4SHerbert Xu select CRYPTO_AEAD2 461ae97820SHerbert Xu select CRYPTO_ALGAPI 471ae97820SHerbert Xu 486a0fcbb4SHerbert Xuconfig CRYPTO_AEAD2 496a0fcbb4SHerbert Xu tristate 506a0fcbb4SHerbert Xu select CRYPTO_ALGAPI2 516a0fcbb4SHerbert Xu 525cde0af2SHerbert Xuconfig CRYPTO_BLKCIPHER 535cde0af2SHerbert Xu tristate 546a0fcbb4SHerbert Xu select CRYPTO_BLKCIPHER2 555cde0af2SHerbert Xu select CRYPTO_ALGAPI 566a0fcbb4SHerbert Xu 576a0fcbb4SHerbert Xuconfig CRYPTO_BLKCIPHER2 586a0fcbb4SHerbert Xu tristate 596a0fcbb4SHerbert Xu select CRYPTO_ALGAPI2 606a0fcbb4SHerbert Xu select CRYPTO_RNG2 610a2e821dSHuang Ying select CRYPTO_WORKQUEUE 625cde0af2SHerbert Xu 63055bcee3SHerbert Xuconfig CRYPTO_HASH 64055bcee3SHerbert Xu tristate 656a0fcbb4SHerbert Xu select CRYPTO_HASH2 66055bcee3SHerbert Xu select CRYPTO_ALGAPI 67055bcee3SHerbert Xu 686a0fcbb4SHerbert Xuconfig CRYPTO_HASH2 696a0fcbb4SHerbert Xu tristate 706a0fcbb4SHerbert Xu select CRYPTO_ALGAPI2 716a0fcbb4SHerbert Xu 7217f0f4a4SNeil Hormanconfig CRYPTO_RNG 7317f0f4a4SNeil Horman tristate 746a0fcbb4SHerbert Xu select CRYPTO_RNG2 7517f0f4a4SNeil Horman select CRYPTO_ALGAPI 7617f0f4a4SNeil Horman 776a0fcbb4SHerbert Xuconfig CRYPTO_RNG2 786a0fcbb4SHerbert Xu tristate 796a0fcbb4SHerbert Xu select CRYPTO_ALGAPI2 806a0fcbb4SHerbert Xu 81a1d2f095SGeert Uytterhoevenconfig CRYPTO_PCOMP 82a1d2f095SGeert Uytterhoeven tristate 83bc94e596SHerbert Xu select CRYPTO_PCOMP2 84bc94e596SHerbert Xu select CRYPTO_ALGAPI 85bc94e596SHerbert Xu 86bc94e596SHerbert Xuconfig CRYPTO_PCOMP2 87bc94e596SHerbert Xu tristate 88a1d2f095SGeert Uytterhoeven select CRYPTO_ALGAPI2 89a1d2f095SGeert Uytterhoeven 902b8c19dbSHerbert Xuconfig CRYPTO_MANAGER 912b8c19dbSHerbert Xu tristate "Cryptographic algorithm manager" 926a0fcbb4SHerbert Xu select CRYPTO_MANAGER2 932b8c19dbSHerbert Xu help 942b8c19dbSHerbert Xu Create default cryptographic template instantiations such as 952b8c19dbSHerbert Xu cbc(aes). 962b8c19dbSHerbert Xu 976a0fcbb4SHerbert Xuconfig CRYPTO_MANAGER2 986a0fcbb4SHerbert Xu def_tristate CRYPTO_MANAGER || (CRYPTO_MANAGER!=n && CRYPTO_ALGAPI=y) 996a0fcbb4SHerbert Xu select CRYPTO_AEAD2 1006a0fcbb4SHerbert Xu select CRYPTO_HASH2 1016a0fcbb4SHerbert Xu select CRYPTO_BLKCIPHER2 102bc94e596SHerbert Xu select CRYPTO_PCOMP2 1036a0fcbb4SHerbert Xu 104a38f7907SSteffen Klassertconfig CRYPTO_USER 105a38f7907SSteffen Klassert tristate "Userspace cryptographic algorithm configuration" 1065db017aaSHerbert Xu depends on NET 107a38f7907SSteffen Klassert select CRYPTO_MANAGER 108a38f7907SSteffen Klassert help 109d19978f5SValdis.Kletnieks@vt.edu Userspace configuration for cryptographic instantiations such as 110a38f7907SSteffen Klassert cbc(aes). 111a38f7907SSteffen Klassert 112326a6346SHerbert Xuconfig CRYPTO_MANAGER_DISABLE_TESTS 113326a6346SHerbert Xu bool "Disable run-time self tests" 11400ca28a5SHerbert Xu default y 11500ca28a5SHerbert Xu depends on CRYPTO_MANAGER2 1160b767f96SAlexander Shishkin help 117326a6346SHerbert Xu Disable run-time self tests that normally take place at 118326a6346SHerbert Xu algorithm registration. 1190b767f96SAlexander Shishkin 120584fffc8SSebastian Siewiorconfig CRYPTO_GF128MUL 12108c70fc3SJussi Kivilinna tristate "GF(2^128) multiplication functions" 122584fffc8SSebastian Siewior help 123584fffc8SSebastian Siewior Efficient table driven implementation of multiplications in the 124584fffc8SSebastian Siewior field GF(2^128). This is needed by some cypher modes. This 125584fffc8SSebastian Siewior option will be selected automatically if you select such a 126584fffc8SSebastian Siewior cipher mode. Only select this option by hand if you expect to load 127584fffc8SSebastian Siewior an external module that requires these functions. 128584fffc8SSebastian Siewior 129584fffc8SSebastian Siewiorconfig CRYPTO_NULL 130584fffc8SSebastian Siewior tristate "Null algorithms" 131584fffc8SSebastian Siewior select CRYPTO_ALGAPI 132584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 133d35d2454SHerbert Xu select CRYPTO_HASH 134584fffc8SSebastian Siewior help 135584fffc8SSebastian Siewior These are 'Null' algorithms, used by IPsec, which do nothing. 136584fffc8SSebastian Siewior 1375068c7a8SSteffen Klassertconfig CRYPTO_PCRYPT 1383b4afaf2SKees Cook tristate "Parallel crypto engine" 1393b4afaf2SKees Cook depends on SMP 1405068c7a8SSteffen Klassert select PADATA 1415068c7a8SSteffen Klassert select CRYPTO_MANAGER 1425068c7a8SSteffen Klassert select CRYPTO_AEAD 1435068c7a8SSteffen Klassert help 1445068c7a8SSteffen Klassert This converts an arbitrary crypto algorithm into a parallel 1455068c7a8SSteffen Klassert algorithm that executes in kernel threads. 1465068c7a8SSteffen Klassert 14725c38d3fSHuang Yingconfig CRYPTO_WORKQUEUE 14825c38d3fSHuang Ying tristate 14925c38d3fSHuang Ying 150584fffc8SSebastian Siewiorconfig CRYPTO_CRYPTD 151584fffc8SSebastian Siewior tristate "Software async crypto daemon" 152584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 153b8a28251SLoc Ho select CRYPTO_HASH 154584fffc8SSebastian Siewior select CRYPTO_MANAGER 155254eff77SHuang Ying select CRYPTO_WORKQUEUE 156584fffc8SSebastian Siewior help 157584fffc8SSebastian Siewior This is a generic software asynchronous crypto daemon that 158584fffc8SSebastian Siewior converts an arbitrary synchronous software crypto algorithm 159584fffc8SSebastian Siewior into an asynchronous algorithm that executes in a kernel thread. 160584fffc8SSebastian Siewior 1611e65b81aSTim Chenconfig CRYPTO_MCRYPTD 1621e65b81aSTim Chen tristate "Software async multi-buffer crypto daemon" 1631e65b81aSTim Chen select CRYPTO_BLKCIPHER 1641e65b81aSTim Chen select CRYPTO_HASH 1651e65b81aSTim Chen select CRYPTO_MANAGER 1661e65b81aSTim Chen select CRYPTO_WORKQUEUE 1671e65b81aSTim Chen help 1681e65b81aSTim Chen This is a generic software asynchronous crypto daemon that 1691e65b81aSTim Chen provides the kernel thread to assist multi-buffer crypto 1701e65b81aSTim Chen algorithms for submitting jobs and flushing jobs in multi-buffer 1711e65b81aSTim Chen crypto algorithms. Multi-buffer crypto algorithms are executed 1721e65b81aSTim Chen in the context of this kernel thread and drivers can post 1730e56673bSTed Percival their crypto request asynchronously to be processed by this daemon. 1741e65b81aSTim Chen 175584fffc8SSebastian Siewiorconfig CRYPTO_AUTHENC 176584fffc8SSebastian Siewior tristate "Authenc support" 177584fffc8SSebastian Siewior select CRYPTO_AEAD 178584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 179584fffc8SSebastian Siewior select CRYPTO_MANAGER 180584fffc8SSebastian Siewior select CRYPTO_HASH 181584fffc8SSebastian Siewior help 182584fffc8SSebastian Siewior Authenc: Combined mode wrapper for IPsec. 183584fffc8SSebastian Siewior This is required for IPSec. 184584fffc8SSebastian Siewior 185584fffc8SSebastian Siewiorconfig CRYPTO_TEST 186584fffc8SSebastian Siewior tristate "Testing module" 187584fffc8SSebastian Siewior depends on m 188da7f033dSHerbert Xu select CRYPTO_MANAGER 189584fffc8SSebastian Siewior help 190584fffc8SSebastian Siewior Quick & dirty crypto test module. 191584fffc8SSebastian Siewior 192a62b01cdSArd Biesheuvelconfig CRYPTO_ABLK_HELPER 193ffaf9156SJussi Kivilinna tristate 194ffaf9156SJussi Kivilinna select CRYPTO_CRYPTD 195ffaf9156SJussi Kivilinna 196596d8750SJussi Kivilinnaconfig CRYPTO_GLUE_HELPER_X86 197596d8750SJussi Kivilinna tristate 198596d8750SJussi Kivilinna depends on X86 199596d8750SJussi Kivilinna select CRYPTO_ALGAPI 200596d8750SJussi Kivilinna 201584fffc8SSebastian Siewiorcomment "Authenticated Encryption with Associated Data" 202584fffc8SSebastian Siewior 203584fffc8SSebastian Siewiorconfig CRYPTO_CCM 204584fffc8SSebastian Siewior tristate "CCM support" 205584fffc8SSebastian Siewior select CRYPTO_CTR 206584fffc8SSebastian Siewior select CRYPTO_AEAD 207584fffc8SSebastian Siewior help 208584fffc8SSebastian Siewior Support for Counter with CBC MAC. Required for IPsec. 209584fffc8SSebastian Siewior 210584fffc8SSebastian Siewiorconfig CRYPTO_GCM 211584fffc8SSebastian Siewior tristate "GCM/GMAC support" 212584fffc8SSebastian Siewior select CRYPTO_CTR 213584fffc8SSebastian Siewior select CRYPTO_AEAD 2149382d97aSHuang Ying select CRYPTO_GHASH 2159489667dSJussi Kivilinna select CRYPTO_NULL 216584fffc8SSebastian Siewior help 217584fffc8SSebastian Siewior Support for Galois/Counter Mode (GCM) and Galois Message 218584fffc8SSebastian Siewior Authentication Code (GMAC). Required for IPSec. 219584fffc8SSebastian Siewior 220584fffc8SSebastian Siewiorconfig CRYPTO_SEQIV 221584fffc8SSebastian Siewior tristate "Sequence Number IV Generator" 222584fffc8SSebastian Siewior select CRYPTO_AEAD 223584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 224a0f000ecSHerbert Xu select CRYPTO_RNG 225584fffc8SSebastian Siewior help 226584fffc8SSebastian Siewior This IV generator generates an IV based on a sequence number by 227584fffc8SSebastian Siewior xoring it with a salt. This algorithm is mainly useful for CTR 228584fffc8SSebastian Siewior 229584fffc8SSebastian Siewiorcomment "Block modes" 230584fffc8SSebastian Siewior 231584fffc8SSebastian Siewiorconfig CRYPTO_CBC 232584fffc8SSebastian Siewior tristate "CBC support" 233584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 234584fffc8SSebastian Siewior select CRYPTO_MANAGER 235584fffc8SSebastian Siewior help 236584fffc8SSebastian Siewior CBC: Cipher Block Chaining mode 237584fffc8SSebastian Siewior This block cipher algorithm is required for IPSec. 238584fffc8SSebastian Siewior 239584fffc8SSebastian Siewiorconfig CRYPTO_CTR 240584fffc8SSebastian Siewior tristate "CTR support" 241584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 242584fffc8SSebastian Siewior select CRYPTO_SEQIV 243584fffc8SSebastian Siewior select CRYPTO_MANAGER 244584fffc8SSebastian Siewior help 245584fffc8SSebastian Siewior CTR: Counter mode 246584fffc8SSebastian Siewior This block cipher algorithm is required for IPSec. 247584fffc8SSebastian Siewior 248584fffc8SSebastian Siewiorconfig CRYPTO_CTS 249584fffc8SSebastian Siewior tristate "CTS support" 250584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 251584fffc8SSebastian Siewior help 252584fffc8SSebastian Siewior CTS: Cipher Text Stealing 253584fffc8SSebastian Siewior This is the Cipher Text Stealing mode as described by 254584fffc8SSebastian Siewior Section 8 of rfc2040 and referenced by rfc3962. 255584fffc8SSebastian Siewior (rfc3962 includes errata information in its Appendix A) 256584fffc8SSebastian Siewior This mode is required for Kerberos gss mechanism support 257584fffc8SSebastian Siewior for AES encryption. 258584fffc8SSebastian Siewior 259584fffc8SSebastian Siewiorconfig CRYPTO_ECB 260584fffc8SSebastian Siewior tristate "ECB support" 261584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 262584fffc8SSebastian Siewior select CRYPTO_MANAGER 263584fffc8SSebastian Siewior help 264584fffc8SSebastian Siewior ECB: Electronic CodeBook mode 265584fffc8SSebastian Siewior This is the simplest block cipher algorithm. It simply encrypts 266584fffc8SSebastian Siewior the input block by block. 267584fffc8SSebastian Siewior 268584fffc8SSebastian Siewiorconfig CRYPTO_LRW 2692470a2b2SJussi Kivilinna tristate "LRW support" 270584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 271584fffc8SSebastian Siewior select CRYPTO_MANAGER 272584fffc8SSebastian Siewior select CRYPTO_GF128MUL 273584fffc8SSebastian Siewior help 274584fffc8SSebastian Siewior LRW: Liskov Rivest Wagner, a tweakable, non malleable, non movable 275584fffc8SSebastian Siewior narrow block cipher mode for dm-crypt. Use it with cipher 276584fffc8SSebastian Siewior specification string aes-lrw-benbi, the key must be 256, 320 or 384. 277584fffc8SSebastian Siewior The first 128, 192 or 256 bits in the key are used for AES and the 278584fffc8SSebastian Siewior rest is used to tie each cipher block to its logical position. 279584fffc8SSebastian Siewior 280584fffc8SSebastian Siewiorconfig CRYPTO_PCBC 281584fffc8SSebastian Siewior tristate "PCBC support" 282584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 283584fffc8SSebastian Siewior select CRYPTO_MANAGER 284584fffc8SSebastian Siewior help 285584fffc8SSebastian Siewior PCBC: Propagating Cipher Block Chaining mode 286584fffc8SSebastian Siewior This block cipher algorithm is required for RxRPC. 287584fffc8SSebastian Siewior 288584fffc8SSebastian Siewiorconfig CRYPTO_XTS 2895bcf8e6dSJussi Kivilinna tristate "XTS support" 290584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 291584fffc8SSebastian Siewior select CRYPTO_MANAGER 292584fffc8SSebastian Siewior select CRYPTO_GF128MUL 293584fffc8SSebastian Siewior help 294584fffc8SSebastian Siewior XTS: IEEE1619/D16 narrow block cipher use with aes-xts-plain, 295584fffc8SSebastian Siewior key size 256, 384 or 512 bits. This implementation currently 296584fffc8SSebastian Siewior can't handle a sectorsize which is not a multiple of 16 bytes. 297584fffc8SSebastian Siewior 298584fffc8SSebastian Siewiorcomment "Hash modes" 299584fffc8SSebastian Siewior 30093b5e86aSJussi Kivilinnaconfig CRYPTO_CMAC 30193b5e86aSJussi Kivilinna tristate "CMAC support" 30293b5e86aSJussi Kivilinna select CRYPTO_HASH 30393b5e86aSJussi Kivilinna select CRYPTO_MANAGER 30493b5e86aSJussi Kivilinna help 30593b5e86aSJussi Kivilinna Cipher-based Message Authentication Code (CMAC) specified by 30693b5e86aSJussi Kivilinna The National Institute of Standards and Technology (NIST). 30793b5e86aSJussi Kivilinna 30893b5e86aSJussi Kivilinna https://tools.ietf.org/html/rfc4493 30993b5e86aSJussi Kivilinna http://csrc.nist.gov/publications/nistpubs/800-38B/SP_800-38B.pdf 31093b5e86aSJussi Kivilinna 3111da177e4SLinus Torvaldsconfig CRYPTO_HMAC 3128425165dSHerbert Xu tristate "HMAC support" 3130796ae06SHerbert Xu select CRYPTO_HASH 31443518407SHerbert Xu select CRYPTO_MANAGER 3151da177e4SLinus Torvalds help 3161da177e4SLinus Torvalds HMAC: Keyed-Hashing for Message Authentication (RFC2104). 3171da177e4SLinus Torvalds This is required for IPSec. 3181da177e4SLinus Torvalds 319333b0d7eSKazunori MIYAZAWAconfig CRYPTO_XCBC 320333b0d7eSKazunori MIYAZAWA tristate "XCBC support" 321333b0d7eSKazunori MIYAZAWA select CRYPTO_HASH 322333b0d7eSKazunori MIYAZAWA select CRYPTO_MANAGER 323333b0d7eSKazunori MIYAZAWA help 324333b0d7eSKazunori MIYAZAWA XCBC: Keyed-Hashing with encryption algorithm 325333b0d7eSKazunori MIYAZAWA http://www.ietf.org/rfc/rfc3566.txt 326333b0d7eSKazunori MIYAZAWA http://csrc.nist.gov/encryption/modes/proposedmodes/ 327333b0d7eSKazunori MIYAZAWA xcbc-mac/xcbc-mac-spec.pdf 328333b0d7eSKazunori MIYAZAWA 329f1939f7cSShane Wangconfig CRYPTO_VMAC 330f1939f7cSShane Wang tristate "VMAC support" 331f1939f7cSShane Wang select CRYPTO_HASH 332f1939f7cSShane Wang select CRYPTO_MANAGER 333f1939f7cSShane Wang help 334f1939f7cSShane Wang VMAC is a message authentication algorithm designed for 335f1939f7cSShane Wang very high speed on 64-bit architectures. 336f1939f7cSShane Wang 337f1939f7cSShane Wang See also: 338f1939f7cSShane Wang <http://fastcrypto.org/vmac> 339f1939f7cSShane Wang 340584fffc8SSebastian Siewiorcomment "Digest" 341584fffc8SSebastian Siewior 342584fffc8SSebastian Siewiorconfig CRYPTO_CRC32C 343584fffc8SSebastian Siewior tristate "CRC32c CRC algorithm" 3445773a3e6SHerbert Xu select CRYPTO_HASH 3456a0962b2SDarrick J. Wong select CRC32 3461da177e4SLinus Torvalds help 347584fffc8SSebastian Siewior Castagnoli, et al Cyclic Redundancy-Check Algorithm. Used 348584fffc8SSebastian Siewior by iSCSI for header and data digests and by others. 34969c35efcSHerbert Xu See Castagnoli93. Module will be crc32c. 3501da177e4SLinus Torvalds 3518cb51ba8SAustin Zhangconfig CRYPTO_CRC32C_INTEL 3528cb51ba8SAustin Zhang tristate "CRC32c INTEL hardware acceleration" 3538cb51ba8SAustin Zhang depends on X86 3548cb51ba8SAustin Zhang select CRYPTO_HASH 3558cb51ba8SAustin Zhang help 3568cb51ba8SAustin Zhang In Intel processor with SSE4.2 supported, the processor will 3578cb51ba8SAustin Zhang support CRC32C implementation using hardware accelerated CRC32 3588cb51ba8SAustin Zhang instruction. This option will create 'crc32c-intel' module, 3598cb51ba8SAustin Zhang which will enable any routine to use the CRC32 instruction to 3608cb51ba8SAustin Zhang gain performance compared with software implementation. 3618cb51ba8SAustin Zhang Module will be crc32c-intel. 3628cb51ba8SAustin Zhang 363442a7c40SDavid S. Millerconfig CRYPTO_CRC32C_SPARC64 364442a7c40SDavid S. Miller tristate "CRC32c CRC algorithm (SPARC64)" 365442a7c40SDavid S. Miller depends on SPARC64 366442a7c40SDavid S. Miller select CRYPTO_HASH 367442a7c40SDavid S. Miller select CRC32 368442a7c40SDavid S. Miller help 369442a7c40SDavid S. Miller CRC32c CRC algorithm implemented using sparc64 crypto instructions, 370442a7c40SDavid S. Miller when available. 371442a7c40SDavid S. Miller 37278c37d19SAlexander Boykoconfig CRYPTO_CRC32 37378c37d19SAlexander Boyko tristate "CRC32 CRC algorithm" 37478c37d19SAlexander Boyko select CRYPTO_HASH 37578c37d19SAlexander Boyko select CRC32 37678c37d19SAlexander Boyko help 37778c37d19SAlexander Boyko CRC-32-IEEE 802.3 cyclic redundancy-check algorithm. 37878c37d19SAlexander Boyko Shash crypto api wrappers to crc32_le function. 37978c37d19SAlexander Boyko 38078c37d19SAlexander Boykoconfig CRYPTO_CRC32_PCLMUL 38178c37d19SAlexander Boyko tristate "CRC32 PCLMULQDQ hardware acceleration" 38278c37d19SAlexander Boyko depends on X86 38378c37d19SAlexander Boyko select CRYPTO_HASH 38478c37d19SAlexander Boyko select CRC32 38578c37d19SAlexander Boyko help 38678c37d19SAlexander Boyko From Intel Westmere and AMD Bulldozer processor with SSE4.2 38778c37d19SAlexander Boyko and PCLMULQDQ supported, the processor will support 38878c37d19SAlexander Boyko CRC32 PCLMULQDQ implementation using hardware accelerated PCLMULQDQ 38978c37d19SAlexander Boyko instruction. This option will create 'crc32-plcmul' module, 39078c37d19SAlexander Boyko which will enable any routine to use the CRC-32-IEEE 802.3 checksum 39178c37d19SAlexander Boyko and gain better performance as compared with the table implementation. 39278c37d19SAlexander Boyko 39368411521SHerbert Xuconfig CRYPTO_CRCT10DIF 39468411521SHerbert Xu tristate "CRCT10DIF algorithm" 39568411521SHerbert Xu select CRYPTO_HASH 39668411521SHerbert Xu help 39768411521SHerbert Xu CRC T10 Data Integrity Field computation is being cast as 39868411521SHerbert Xu a crypto transform. This allows for faster crc t10 diff 39968411521SHerbert Xu transforms to be used if they are available. 40068411521SHerbert Xu 40168411521SHerbert Xuconfig CRYPTO_CRCT10DIF_PCLMUL 40268411521SHerbert Xu tristate "CRCT10DIF PCLMULQDQ hardware acceleration" 40368411521SHerbert Xu depends on X86 && 64BIT && CRC_T10DIF 40468411521SHerbert Xu select CRYPTO_HASH 40568411521SHerbert Xu help 40668411521SHerbert Xu For x86_64 processors with SSE4.2 and PCLMULQDQ supported, 40768411521SHerbert Xu CRC T10 DIF PCLMULQDQ computation can be hardware 40868411521SHerbert Xu accelerated PCLMULQDQ instruction. This option will create 40968411521SHerbert Xu 'crct10dif-plcmul' module, which is faster when computing the 41068411521SHerbert Xu crct10dif checksum as compared with the generic table implementation. 41168411521SHerbert Xu 4122cdc6899SHuang Yingconfig CRYPTO_GHASH 4132cdc6899SHuang Ying tristate "GHASH digest algorithm" 4142cdc6899SHuang Ying select CRYPTO_GF128MUL 4152cdc6899SHuang Ying help 4162cdc6899SHuang Ying GHASH is message digest algorithm for GCM (Galois/Counter Mode). 4172cdc6899SHuang Ying 4181da177e4SLinus Torvaldsconfig CRYPTO_MD4 4191da177e4SLinus Torvalds tristate "MD4 digest algorithm" 420808a1763SAdrian-Ken Rueegsegger select CRYPTO_HASH 4211da177e4SLinus Torvalds help 4221da177e4SLinus Torvalds MD4 message digest algorithm (RFC1320). 4231da177e4SLinus Torvalds 4241da177e4SLinus Torvaldsconfig CRYPTO_MD5 4251da177e4SLinus Torvalds tristate "MD5 digest algorithm" 42614b75ba7SAdrian-Ken Rueegsegger select CRYPTO_HASH 4271da177e4SLinus Torvalds help 4281da177e4SLinus Torvalds MD5 message digest algorithm (RFC1321). 4291da177e4SLinus Torvalds 430d69e75deSAaro Koskinenconfig CRYPTO_MD5_OCTEON 431d69e75deSAaro Koskinen tristate "MD5 digest algorithm (OCTEON)" 432d69e75deSAaro Koskinen depends on CPU_CAVIUM_OCTEON 433d69e75deSAaro Koskinen select CRYPTO_MD5 434d69e75deSAaro Koskinen select CRYPTO_HASH 435d69e75deSAaro Koskinen help 436d69e75deSAaro Koskinen MD5 message digest algorithm (RFC1321) implemented 437d69e75deSAaro Koskinen using OCTEON crypto instructions, when available. 438d69e75deSAaro Koskinen 439fa4dfedcSDavid S. Millerconfig CRYPTO_MD5_SPARC64 440fa4dfedcSDavid S. Miller tristate "MD5 digest algorithm (SPARC64)" 441fa4dfedcSDavid S. Miller depends on SPARC64 442fa4dfedcSDavid S. Miller select CRYPTO_MD5 443fa4dfedcSDavid S. Miller select CRYPTO_HASH 444fa4dfedcSDavid S. Miller help 445fa4dfedcSDavid S. Miller MD5 message digest algorithm (RFC1321) implemented 446fa4dfedcSDavid S. Miller using sparc64 crypto instructions, when available. 447fa4dfedcSDavid S. Miller 448584fffc8SSebastian Siewiorconfig CRYPTO_MICHAEL_MIC 449584fffc8SSebastian Siewior tristate "Michael MIC keyed digest algorithm" 45019e2bf14SAdrian-Ken Rueegsegger select CRYPTO_HASH 451584fffc8SSebastian Siewior help 452584fffc8SSebastian Siewior Michael MIC is used for message integrity protection in TKIP 453584fffc8SSebastian Siewior (IEEE 802.11i). This algorithm is required for TKIP, but it 454584fffc8SSebastian Siewior should not be used for other purposes because of the weakness 455584fffc8SSebastian Siewior of the algorithm. 456584fffc8SSebastian Siewior 45782798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD128 45882798f90SAdrian-Ken Rueegsegger tristate "RIPEMD-128 digest algorithm" 4597c4468bcSHerbert Xu select CRYPTO_HASH 46082798f90SAdrian-Ken Rueegsegger help 46182798f90SAdrian-Ken Rueegsegger RIPEMD-128 (ISO/IEC 10118-3:2004). 46282798f90SAdrian-Ken Rueegsegger 46382798f90SAdrian-Ken Rueegsegger RIPEMD-128 is a 128-bit cryptographic hash function. It should only 46435ed4b35SMichael Witten be used as a secure replacement for RIPEMD. For other use cases, 46582798f90SAdrian-Ken Rueegsegger RIPEMD-160 should be used. 46682798f90SAdrian-Ken Rueegsegger 46782798f90SAdrian-Ken Rueegsegger Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. 4686d8de74cSJustin P. Mattock See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> 46982798f90SAdrian-Ken Rueegsegger 47082798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD160 47182798f90SAdrian-Ken Rueegsegger tristate "RIPEMD-160 digest algorithm" 472e5835fbaSHerbert Xu select CRYPTO_HASH 47382798f90SAdrian-Ken Rueegsegger help 47482798f90SAdrian-Ken Rueegsegger RIPEMD-160 (ISO/IEC 10118-3:2004). 47582798f90SAdrian-Ken Rueegsegger 47682798f90SAdrian-Ken Rueegsegger RIPEMD-160 is a 160-bit cryptographic hash function. It is intended 47782798f90SAdrian-Ken Rueegsegger to be used as a secure replacement for the 128-bit hash functions 478b6d44341SAdrian Bunk MD4, MD5 and it's predecessor RIPEMD 479b6d44341SAdrian Bunk (not to be confused with RIPEMD-128). 48082798f90SAdrian-Ken Rueegsegger 481b6d44341SAdrian Bunk It's speed is comparable to SHA1 and there are no known attacks 482b6d44341SAdrian Bunk against RIPEMD-160. 483534fe2c1SAdrian-Ken Rueegsegger 484534fe2c1SAdrian-Ken Rueegsegger Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. 4856d8de74cSJustin P. Mattock See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> 486534fe2c1SAdrian-Ken Rueegsegger 487534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD256 488534fe2c1SAdrian-Ken Rueegsegger tristate "RIPEMD-256 digest algorithm" 489d8a5e2e9SHerbert Xu select CRYPTO_HASH 490534fe2c1SAdrian-Ken Rueegsegger help 491b6d44341SAdrian Bunk RIPEMD-256 is an optional extension of RIPEMD-128 with a 492b6d44341SAdrian Bunk 256 bit hash. It is intended for applications that require 493b6d44341SAdrian Bunk longer hash-results, without needing a larger security level 494b6d44341SAdrian Bunk (than RIPEMD-128). 495534fe2c1SAdrian-Ken Rueegsegger 496534fe2c1SAdrian-Ken Rueegsegger Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. 4976d8de74cSJustin P. Mattock See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> 498534fe2c1SAdrian-Ken Rueegsegger 499534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD320 500534fe2c1SAdrian-Ken Rueegsegger tristate "RIPEMD-320 digest algorithm" 5013b8efb4cSHerbert Xu select CRYPTO_HASH 502534fe2c1SAdrian-Ken Rueegsegger help 503b6d44341SAdrian Bunk RIPEMD-320 is an optional extension of RIPEMD-160 with a 504b6d44341SAdrian Bunk 320 bit hash. It is intended for applications that require 505b6d44341SAdrian Bunk longer hash-results, without needing a larger security level 506b6d44341SAdrian Bunk (than RIPEMD-160). 507534fe2c1SAdrian-Ken Rueegsegger 50882798f90SAdrian-Ken Rueegsegger Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel. 5096d8de74cSJustin P. Mattock See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html> 51082798f90SAdrian-Ken Rueegsegger 5111da177e4SLinus Torvaldsconfig CRYPTO_SHA1 5121da177e4SLinus Torvalds tristate "SHA1 digest algorithm" 51354ccb367SAdrian-Ken Rueegsegger select CRYPTO_HASH 5141da177e4SLinus Torvalds help 5151da177e4SLinus Torvalds SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2). 5161da177e4SLinus Torvalds 51766be8951SMathias Krauseconfig CRYPTO_SHA1_SSSE3 5187c1da8d0Schandramouli narayanan tristate "SHA1 digest algorithm (SSSE3/AVX/AVX2)" 51966be8951SMathias Krause depends on X86 && 64BIT 52066be8951SMathias Krause select CRYPTO_SHA1 52166be8951SMathias Krause select CRYPTO_HASH 52266be8951SMathias Krause help 52366be8951SMathias Krause SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented 52466be8951SMathias Krause using Supplemental SSE3 (SSSE3) instructions or Advanced Vector 5257c1da8d0Schandramouli narayanan Extensions (AVX/AVX2), when available. 52666be8951SMathias Krause 5278275d1aaSTim Chenconfig CRYPTO_SHA256_SSSE3 5288275d1aaSTim Chen tristate "SHA256 digest algorithm (SSSE3/AVX/AVX2)" 5298275d1aaSTim Chen depends on X86 && 64BIT 5308275d1aaSTim Chen select CRYPTO_SHA256 5318275d1aaSTim Chen select CRYPTO_HASH 5328275d1aaSTim Chen help 5338275d1aaSTim Chen SHA-256 secure hash standard (DFIPS 180-2) implemented 5348275d1aaSTim Chen using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector 5358275d1aaSTim Chen Extensions version 1 (AVX1), or Advanced Vector Extensions 5368275d1aaSTim Chen version 2 (AVX2) instructions, when available. 5378275d1aaSTim Chen 53887de4579STim Chenconfig CRYPTO_SHA512_SSSE3 53987de4579STim Chen tristate "SHA512 digest algorithm (SSSE3/AVX/AVX2)" 54087de4579STim Chen depends on X86 && 64BIT 54187de4579STim Chen select CRYPTO_SHA512 54287de4579STim Chen select CRYPTO_HASH 54387de4579STim Chen help 54487de4579STim Chen SHA-512 secure hash standard (DFIPS 180-2) implemented 54587de4579STim Chen using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector 54687de4579STim Chen Extensions version 1 (AVX1), or Advanced Vector Extensions 54787de4579STim Chen version 2 (AVX2) instructions, when available. 54887de4579STim Chen 5494ff28d4cSDavid S. Millerconfig CRYPTO_SHA1_SPARC64 5504ff28d4cSDavid S. Miller tristate "SHA1 digest algorithm (SPARC64)" 5514ff28d4cSDavid S. Miller depends on SPARC64 5524ff28d4cSDavid S. Miller select CRYPTO_SHA1 5534ff28d4cSDavid S. Miller select CRYPTO_HASH 5544ff28d4cSDavid S. Miller help 5554ff28d4cSDavid S. Miller SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented 5564ff28d4cSDavid S. Miller using sparc64 crypto instructions, when available. 5574ff28d4cSDavid S. Miller 558f0be44f4SDavid McCulloughconfig CRYPTO_SHA1_ARM 559f0be44f4SDavid McCullough tristate "SHA1 digest algorithm (ARM-asm)" 560f0be44f4SDavid McCullough depends on ARM 561f0be44f4SDavid McCullough select CRYPTO_SHA1 562f0be44f4SDavid McCullough select CRYPTO_HASH 563f0be44f4SDavid McCullough help 564f0be44f4SDavid McCullough SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented 565f0be44f4SDavid McCullough using optimized ARM assembler. 566f0be44f4SDavid McCullough 56760468255SJussi Kivilinnaconfig CRYPTO_SHA1_ARM_NEON 56860468255SJussi Kivilinna tristate "SHA1 digest algorithm (ARM NEON)" 5690777e3e1SArd Biesheuvel depends on ARM && KERNEL_MODE_NEON 57060468255SJussi Kivilinna select CRYPTO_SHA1_ARM 57160468255SJussi Kivilinna select CRYPTO_SHA1 57260468255SJussi Kivilinna select CRYPTO_HASH 57360468255SJussi Kivilinna help 57460468255SJussi Kivilinna SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented 57560468255SJussi Kivilinna using optimized ARM NEON assembly, when NEON instructions are 57660468255SJussi Kivilinna available. 57760468255SJussi Kivilinna 578323a6bf1SMichael Ellermanconfig CRYPTO_SHA1_PPC 579323a6bf1SMichael Ellerman tristate "SHA1 digest algorithm (powerpc)" 580323a6bf1SMichael Ellerman depends on PPC 581323a6bf1SMichael Ellerman help 582323a6bf1SMichael Ellerman This is the powerpc hardware accelerated implementation of the 583323a6bf1SMichael Ellerman SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2). 584323a6bf1SMichael Ellerman 585*d9850fc5SMarkus Stockhausenconfig CRYPTO_SHA1_PPC_SPE 586*d9850fc5SMarkus Stockhausen tristate "SHA1 digest algorithm (PPC SPE)" 587*d9850fc5SMarkus Stockhausen depends on PPC && SPE 588*d9850fc5SMarkus Stockhausen help 589*d9850fc5SMarkus Stockhausen SHA-1 secure hash standard (DFIPS 180-4) implemented 590*d9850fc5SMarkus Stockhausen using powerpc SPE SIMD instruction set. 591*d9850fc5SMarkus Stockhausen 5921e65b81aSTim Chenconfig CRYPTO_SHA1_MB 5931e65b81aSTim Chen tristate "SHA1 digest algorithm (x86_64 Multi-Buffer, Experimental)" 5941e65b81aSTim Chen depends on X86 && 64BIT 5951e65b81aSTim Chen select CRYPTO_SHA1 5961e65b81aSTim Chen select CRYPTO_HASH 5971e65b81aSTim Chen select CRYPTO_MCRYPTD 5981e65b81aSTim Chen help 5991e65b81aSTim Chen SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented 6001e65b81aSTim Chen using multi-buffer technique. This algorithm computes on 6011e65b81aSTim Chen multiple data lanes concurrently with SIMD instructions for 6021e65b81aSTim Chen better throughput. It should not be enabled by default but 6031e65b81aSTim Chen used when there is significant amount of work to keep the keep 6041e65b81aSTim Chen the data lanes filled to get performance benefit. If the data 6051e65b81aSTim Chen lanes remain unfilled, a flush operation will be initiated to 6061e65b81aSTim Chen process the crypto jobs, adding a slight latency. 6071e65b81aSTim Chen 6081da177e4SLinus Torvaldsconfig CRYPTO_SHA256 609cd12fb90SJonathan Lynch tristate "SHA224 and SHA256 digest algorithm" 61050e109b5SAdrian-Ken Rueegsegger select CRYPTO_HASH 6111da177e4SLinus Torvalds help 6121da177e4SLinus Torvalds SHA256 secure hash standard (DFIPS 180-2). 6131da177e4SLinus Torvalds 6141da177e4SLinus Torvalds This version of SHA implements a 256 bit hash with 128 bits of 6151da177e4SLinus Torvalds security against collision attacks. 6161da177e4SLinus Torvalds 617cd12fb90SJonathan Lynch This code also includes SHA-224, a 224 bit hash with 112 bits 618cd12fb90SJonathan Lynch of security against collision attacks. 619cd12fb90SJonathan Lynch 6202ecc1e95SMarkus Stockhausenconfig CRYPTO_SHA256_PPC_SPE 6212ecc1e95SMarkus Stockhausen tristate "SHA224 and SHA256 digest algorithm (PPC SPE)" 6222ecc1e95SMarkus Stockhausen depends on PPC && SPE 6232ecc1e95SMarkus Stockhausen select CRYPTO_SHA256 6242ecc1e95SMarkus Stockhausen select CRYPTO_HASH 6252ecc1e95SMarkus Stockhausen help 6262ecc1e95SMarkus Stockhausen SHA224 and SHA256 secure hash standard (DFIPS 180-2) 6272ecc1e95SMarkus Stockhausen implemented using powerpc SPE SIMD instruction set. 6282ecc1e95SMarkus Stockhausen 62986c93b24SDavid S. Millerconfig CRYPTO_SHA256_SPARC64 63086c93b24SDavid S. Miller tristate "SHA224 and SHA256 digest algorithm (SPARC64)" 63186c93b24SDavid S. Miller depends on SPARC64 63286c93b24SDavid S. Miller select CRYPTO_SHA256 63386c93b24SDavid S. Miller select CRYPTO_HASH 63486c93b24SDavid S. Miller help 63586c93b24SDavid S. Miller SHA-256 secure hash standard (DFIPS 180-2) implemented 63686c93b24SDavid S. Miller using sparc64 crypto instructions, when available. 63786c93b24SDavid S. Miller 6381da177e4SLinus Torvaldsconfig CRYPTO_SHA512 6391da177e4SLinus Torvalds tristate "SHA384 and SHA512 digest algorithms" 640bd9d20dbSAdrian-Ken Rueegsegger select CRYPTO_HASH 6411da177e4SLinus Torvalds help 6421da177e4SLinus Torvalds SHA512 secure hash standard (DFIPS 180-2). 6431da177e4SLinus Torvalds 6441da177e4SLinus Torvalds This version of SHA implements a 512 bit hash with 256 bits of 6451da177e4SLinus Torvalds security against collision attacks. 6461da177e4SLinus Torvalds 6471da177e4SLinus Torvalds This code also includes SHA-384, a 384 bit hash with 192 bits 6481da177e4SLinus Torvalds of security against collision attacks. 6491da177e4SLinus Torvalds 650775e0c69SDavid S. Millerconfig CRYPTO_SHA512_SPARC64 651775e0c69SDavid S. Miller tristate "SHA384 and SHA512 digest algorithm (SPARC64)" 652775e0c69SDavid S. Miller depends on SPARC64 653775e0c69SDavid S. Miller select CRYPTO_SHA512 654775e0c69SDavid S. Miller select CRYPTO_HASH 655775e0c69SDavid S. Miller help 656775e0c69SDavid S. Miller SHA-512 secure hash standard (DFIPS 180-2) implemented 657775e0c69SDavid S. Miller using sparc64 crypto instructions, when available. 658775e0c69SDavid S. Miller 659c8611d71SJussi Kivilinnaconfig CRYPTO_SHA512_ARM_NEON 660c8611d71SJussi Kivilinna tristate "SHA384 and SHA512 digest algorithm (ARM NEON)" 66131e1a602SArd Biesheuvel depends on ARM && KERNEL_MODE_NEON 662c8611d71SJussi Kivilinna select CRYPTO_SHA512 663c8611d71SJussi Kivilinna select CRYPTO_HASH 664c8611d71SJussi Kivilinna help 665c8611d71SJussi Kivilinna SHA-512 secure hash standard (DFIPS 180-2) implemented 666c8611d71SJussi Kivilinna using ARM NEON instructions, when available. 667c8611d71SJussi Kivilinna 668c8611d71SJussi Kivilinna This version of SHA implements a 512 bit hash with 256 bits of 669c8611d71SJussi Kivilinna security against collision attacks. 670c8611d71SJussi Kivilinna 671c8611d71SJussi Kivilinna This code also includes SHA-384, a 384 bit hash with 192 bits 672c8611d71SJussi Kivilinna of security against collision attacks. 673c8611d71SJussi Kivilinna 6741da177e4SLinus Torvaldsconfig CRYPTO_TGR192 6751da177e4SLinus Torvalds tristate "Tiger digest algorithms" 676f63fbd3dSAdrian-Ken Rueegsegger select CRYPTO_HASH 6771da177e4SLinus Torvalds help 6781da177e4SLinus Torvalds Tiger hash algorithm 192, 160 and 128-bit hashes 6791da177e4SLinus Torvalds 6801da177e4SLinus Torvalds Tiger is a hash function optimized for 64-bit processors while 6811da177e4SLinus Torvalds still having decent performance on 32-bit processors. 6821da177e4SLinus Torvalds Tiger was developed by Ross Anderson and Eli Biham. 6831da177e4SLinus Torvalds 6841da177e4SLinus Torvalds See also: 6851da177e4SLinus Torvalds <http://www.cs.technion.ac.il/~biham/Reports/Tiger/>. 6861da177e4SLinus Torvalds 687584fffc8SSebastian Siewiorconfig CRYPTO_WP512 688584fffc8SSebastian Siewior tristate "Whirlpool digest algorithms" 6894946510bSAdrian-Ken Rueegsegger select CRYPTO_HASH 6901da177e4SLinus Torvalds help 691584fffc8SSebastian Siewior Whirlpool hash algorithm 512, 384 and 256-bit hashes 6921da177e4SLinus Torvalds 693584fffc8SSebastian Siewior Whirlpool-512 is part of the NESSIE cryptographic primitives. 694584fffc8SSebastian Siewior Whirlpool will be part of the ISO/IEC 10118-3:2003(E) standard 6951da177e4SLinus Torvalds 6961da177e4SLinus Torvalds See also: 6976d8de74cSJustin P. Mattock <http://www.larc.usp.br/~pbarreto/WhirlpoolPage.html> 6981da177e4SLinus Torvalds 6990e1227d3SHuang Yingconfig CRYPTO_GHASH_CLMUL_NI_INTEL 7000e1227d3SHuang Ying tristate "GHASH digest algorithm (CLMUL-NI accelerated)" 7018af00860SRichard Weinberger depends on X86 && 64BIT 7020e1227d3SHuang Ying select CRYPTO_CRYPTD 7030e1227d3SHuang Ying help 7040e1227d3SHuang Ying GHASH is message digest algorithm for GCM (Galois/Counter Mode). 7050e1227d3SHuang Ying The implementation is accelerated by CLMUL-NI of Intel. 7060e1227d3SHuang Ying 707584fffc8SSebastian Siewiorcomment "Ciphers" 7081da177e4SLinus Torvalds 7091da177e4SLinus Torvaldsconfig CRYPTO_AES 7101da177e4SLinus Torvalds tristate "AES cipher algorithms" 711cce9e06dSHerbert Xu select CRYPTO_ALGAPI 7121da177e4SLinus Torvalds help 7131da177e4SLinus Torvalds AES cipher algorithms (FIPS-197). AES uses the Rijndael 7141da177e4SLinus Torvalds algorithm. 7151da177e4SLinus Torvalds 7161da177e4SLinus Torvalds Rijndael appears to be consistently a very good performer in 7171da177e4SLinus Torvalds both hardware and software across a wide range of computing 7181da177e4SLinus Torvalds environments regardless of its use in feedback or non-feedback 7191da177e4SLinus Torvalds modes. Its key setup time is excellent, and its key agility is 7201da177e4SLinus Torvalds good. Rijndael's very low memory requirements make it very well 7211da177e4SLinus Torvalds suited for restricted-space environments, in which it also 7221da177e4SLinus Torvalds demonstrates excellent performance. Rijndael's operations are 7231da177e4SLinus Torvalds among the easiest to defend against power and timing attacks. 7241da177e4SLinus Torvalds 7251da177e4SLinus Torvalds The AES specifies three key sizes: 128, 192 and 256 bits 7261da177e4SLinus Torvalds 7271da177e4SLinus Torvalds See <http://csrc.nist.gov/CryptoToolkit/aes/> for more information. 7281da177e4SLinus Torvalds 7291da177e4SLinus Torvaldsconfig CRYPTO_AES_586 7301da177e4SLinus Torvalds tristate "AES cipher algorithms (i586)" 731cce9e06dSHerbert Xu depends on (X86 || UML_X86) && !64BIT 732cce9e06dSHerbert Xu select CRYPTO_ALGAPI 7335157dea8SSebastian Siewior select CRYPTO_AES 7341da177e4SLinus Torvalds help 7351da177e4SLinus Torvalds AES cipher algorithms (FIPS-197). AES uses the Rijndael 7361da177e4SLinus Torvalds algorithm. 7371da177e4SLinus Torvalds 7381da177e4SLinus Torvalds Rijndael appears to be consistently a very good performer in 7391da177e4SLinus Torvalds both hardware and software across a wide range of computing 7401da177e4SLinus Torvalds environments regardless of its use in feedback or non-feedback 7411da177e4SLinus Torvalds modes. Its key setup time is excellent, and its key agility is 7421da177e4SLinus Torvalds good. Rijndael's very low memory requirements make it very well 7431da177e4SLinus Torvalds suited for restricted-space environments, in which it also 7441da177e4SLinus Torvalds demonstrates excellent performance. Rijndael's operations are 7451da177e4SLinus Torvalds among the easiest to defend against power and timing attacks. 7461da177e4SLinus Torvalds 7471da177e4SLinus Torvalds The AES specifies three key sizes: 128, 192 and 256 bits 7481da177e4SLinus Torvalds 7491da177e4SLinus Torvalds See <http://csrc.nist.gov/encryption/aes/> for more information. 7501da177e4SLinus Torvalds 751a2a892a2SAndreas Steinmetzconfig CRYPTO_AES_X86_64 752a2a892a2SAndreas Steinmetz tristate "AES cipher algorithms (x86_64)" 753cce9e06dSHerbert Xu depends on (X86 || UML_X86) && 64BIT 754cce9e06dSHerbert Xu select CRYPTO_ALGAPI 75581190b32SSebastian Siewior select CRYPTO_AES 756a2a892a2SAndreas Steinmetz help 757a2a892a2SAndreas Steinmetz AES cipher algorithms (FIPS-197). AES uses the Rijndael 758a2a892a2SAndreas Steinmetz algorithm. 759a2a892a2SAndreas Steinmetz 760a2a892a2SAndreas Steinmetz Rijndael appears to be consistently a very good performer in 761a2a892a2SAndreas Steinmetz both hardware and software across a wide range of computing 762a2a892a2SAndreas Steinmetz environments regardless of its use in feedback or non-feedback 763a2a892a2SAndreas Steinmetz modes. Its key setup time is excellent, and its key agility is 764a2a892a2SAndreas Steinmetz good. Rijndael's very low memory requirements make it very well 765a2a892a2SAndreas Steinmetz suited for restricted-space environments, in which it also 766a2a892a2SAndreas Steinmetz demonstrates excellent performance. Rijndael's operations are 767a2a892a2SAndreas Steinmetz among the easiest to defend against power and timing attacks. 768a2a892a2SAndreas Steinmetz 769a2a892a2SAndreas Steinmetz The AES specifies three key sizes: 128, 192 and 256 bits 770a2a892a2SAndreas Steinmetz 771a2a892a2SAndreas Steinmetz See <http://csrc.nist.gov/encryption/aes/> for more information. 772a2a892a2SAndreas Steinmetz 77354b6a1bdSHuang Yingconfig CRYPTO_AES_NI_INTEL 77454b6a1bdSHuang Ying tristate "AES cipher algorithms (AES-NI)" 7758af00860SRichard Weinberger depends on X86 7760d258efbSMathias Krause select CRYPTO_AES_X86_64 if 64BIT 7770d258efbSMathias Krause select CRYPTO_AES_586 if !64BIT 77854b6a1bdSHuang Ying select CRYPTO_CRYPTD 779801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 78054b6a1bdSHuang Ying select CRYPTO_ALGAPI 7817643a11aSJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 if 64BIT 782023af608SJussi Kivilinna select CRYPTO_LRW 783023af608SJussi Kivilinna select CRYPTO_XTS 78454b6a1bdSHuang Ying help 78554b6a1bdSHuang Ying Use Intel AES-NI instructions for AES algorithm. 78654b6a1bdSHuang Ying 78754b6a1bdSHuang Ying AES cipher algorithms (FIPS-197). AES uses the Rijndael 78854b6a1bdSHuang Ying algorithm. 78954b6a1bdSHuang Ying 79054b6a1bdSHuang Ying Rijndael appears to be consistently a very good performer in 79154b6a1bdSHuang Ying both hardware and software across a wide range of computing 79254b6a1bdSHuang Ying environments regardless of its use in feedback or non-feedback 79354b6a1bdSHuang Ying modes. Its key setup time is excellent, and its key agility is 79454b6a1bdSHuang Ying good. Rijndael's very low memory requirements make it very well 79554b6a1bdSHuang Ying suited for restricted-space environments, in which it also 79654b6a1bdSHuang Ying demonstrates excellent performance. Rijndael's operations are 79754b6a1bdSHuang Ying among the easiest to defend against power and timing attacks. 79854b6a1bdSHuang Ying 79954b6a1bdSHuang Ying The AES specifies three key sizes: 128, 192 and 256 bits 80054b6a1bdSHuang Ying 80154b6a1bdSHuang Ying See <http://csrc.nist.gov/encryption/aes/> for more information. 80254b6a1bdSHuang Ying 8030d258efbSMathias Krause In addition to AES cipher algorithm support, the acceleration 8040d258efbSMathias Krause for some popular block cipher mode is supported too, including 8050d258efbSMathias Krause ECB, CBC, LRW, PCBC, XTS. The 64 bit version has additional 8060d258efbSMathias Krause acceleration for CTR. 8072cf4ac8bSHuang Ying 8089bf4852dSDavid S. Millerconfig CRYPTO_AES_SPARC64 8099bf4852dSDavid S. Miller tristate "AES cipher algorithms (SPARC64)" 8109bf4852dSDavid S. Miller depends on SPARC64 8119bf4852dSDavid S. Miller select CRYPTO_CRYPTD 8129bf4852dSDavid S. Miller select CRYPTO_ALGAPI 8139bf4852dSDavid S. Miller help 8149bf4852dSDavid S. Miller Use SPARC64 crypto opcodes for AES algorithm. 8159bf4852dSDavid S. Miller 8169bf4852dSDavid S. Miller AES cipher algorithms (FIPS-197). AES uses the Rijndael 8179bf4852dSDavid S. Miller algorithm. 8189bf4852dSDavid S. Miller 8199bf4852dSDavid S. Miller Rijndael appears to be consistently a very good performer in 8209bf4852dSDavid S. Miller both hardware and software across a wide range of computing 8219bf4852dSDavid S. Miller environments regardless of its use in feedback or non-feedback 8229bf4852dSDavid S. Miller modes. Its key setup time is excellent, and its key agility is 8239bf4852dSDavid S. Miller good. Rijndael's very low memory requirements make it very well 8249bf4852dSDavid S. Miller suited for restricted-space environments, in which it also 8259bf4852dSDavid S. Miller demonstrates excellent performance. Rijndael's operations are 8269bf4852dSDavid S. Miller among the easiest to defend against power and timing attacks. 8279bf4852dSDavid S. Miller 8289bf4852dSDavid S. Miller The AES specifies three key sizes: 128, 192 and 256 bits 8299bf4852dSDavid S. Miller 8309bf4852dSDavid S. Miller See <http://csrc.nist.gov/encryption/aes/> for more information. 8319bf4852dSDavid S. Miller 8329bf4852dSDavid S. Miller In addition to AES cipher algorithm support, the acceleration 8339bf4852dSDavid S. Miller for some popular block cipher mode is supported too, including 8349bf4852dSDavid S. Miller ECB and CBC. 8359bf4852dSDavid S. Miller 836f0be44f4SDavid McCulloughconfig CRYPTO_AES_ARM 837f0be44f4SDavid McCullough tristate "AES cipher algorithms (ARM-asm)" 838f0be44f4SDavid McCullough depends on ARM 839f0be44f4SDavid McCullough select CRYPTO_ALGAPI 840f0be44f4SDavid McCullough select CRYPTO_AES 841f0be44f4SDavid McCullough help 842f0be44f4SDavid McCullough Use optimized AES assembler routines for ARM platforms. 843f0be44f4SDavid McCullough 844f0be44f4SDavid McCullough AES cipher algorithms (FIPS-197). AES uses the Rijndael 845f0be44f4SDavid McCullough algorithm. 846f0be44f4SDavid McCullough 847f0be44f4SDavid McCullough Rijndael appears to be consistently a very good performer in 848f0be44f4SDavid McCullough both hardware and software across a wide range of computing 849f0be44f4SDavid McCullough environments regardless of its use in feedback or non-feedback 850f0be44f4SDavid McCullough modes. Its key setup time is excellent, and its key agility is 851f0be44f4SDavid McCullough good. Rijndael's very low memory requirements make it very well 852f0be44f4SDavid McCullough suited for restricted-space environments, in which it also 853f0be44f4SDavid McCullough demonstrates excellent performance. Rijndael's operations are 854f0be44f4SDavid McCullough among the easiest to defend against power and timing attacks. 855f0be44f4SDavid McCullough 856f0be44f4SDavid McCullough The AES specifies three key sizes: 128, 192 and 256 bits 857f0be44f4SDavid McCullough 858f0be44f4SDavid McCullough See <http://csrc.nist.gov/encryption/aes/> for more information. 859f0be44f4SDavid McCullough 860e4e7f10bSArd Biesheuvelconfig CRYPTO_AES_ARM_BS 861e4e7f10bSArd Biesheuvel tristate "Bit sliced AES using NEON instructions" 862e4e7f10bSArd Biesheuvel depends on ARM && KERNEL_MODE_NEON 863e4e7f10bSArd Biesheuvel select CRYPTO_ALGAPI 864e4e7f10bSArd Biesheuvel select CRYPTO_AES_ARM 865e4e7f10bSArd Biesheuvel select CRYPTO_ABLK_HELPER 866e4e7f10bSArd Biesheuvel help 867e4e7f10bSArd Biesheuvel Use a faster and more secure NEON based implementation of AES in CBC, 868e4e7f10bSArd Biesheuvel CTR and XTS modes 869e4e7f10bSArd Biesheuvel 870e4e7f10bSArd Biesheuvel Bit sliced AES gives around 45% speedup on Cortex-A15 for CTR mode 871e4e7f10bSArd Biesheuvel and for XTS mode encryption, CBC and XTS mode decryption speedup is 872e4e7f10bSArd Biesheuvel around 25%. (CBC encryption speed is not affected by this driver.) 873e4e7f10bSArd Biesheuvel This implementation does not rely on any lookup tables so it is 874e4e7f10bSArd Biesheuvel believed to be invulnerable to cache timing attacks. 875e4e7f10bSArd Biesheuvel 876504c6143SMarkus Stockhausenconfig CRYPTO_AES_PPC_SPE 877504c6143SMarkus Stockhausen tristate "AES cipher algorithms (PPC SPE)" 878504c6143SMarkus Stockhausen depends on PPC && SPE 879504c6143SMarkus Stockhausen help 880504c6143SMarkus Stockhausen AES cipher algorithms (FIPS-197). Additionally the acceleration 881504c6143SMarkus Stockhausen for popular block cipher modes ECB, CBC, CTR and XTS is supported. 882504c6143SMarkus Stockhausen This module should only be used for low power (router) devices 883504c6143SMarkus Stockhausen without hardware AES acceleration (e.g. caam crypto). It reduces the 884504c6143SMarkus Stockhausen size of the AES tables from 16KB to 8KB + 256 bytes and mitigates 885504c6143SMarkus Stockhausen timining attacks. Nevertheless it might be not as secure as other 886504c6143SMarkus Stockhausen architecture specific assembler implementations that work on 1KB 887504c6143SMarkus Stockhausen tables or 256 bytes S-boxes. 888504c6143SMarkus Stockhausen 8891da177e4SLinus Torvaldsconfig CRYPTO_ANUBIS 8901da177e4SLinus Torvalds tristate "Anubis cipher algorithm" 891cce9e06dSHerbert Xu select CRYPTO_ALGAPI 8921da177e4SLinus Torvalds help 8931da177e4SLinus Torvalds Anubis cipher algorithm. 8941da177e4SLinus Torvalds 8951da177e4SLinus Torvalds Anubis is a variable key length cipher which can use keys from 8961da177e4SLinus Torvalds 128 bits to 320 bits in length. It was evaluated as a entrant 8971da177e4SLinus Torvalds in the NESSIE competition. 8981da177e4SLinus Torvalds 8991da177e4SLinus Torvalds See also: 9006d8de74cSJustin P. Mattock <https://www.cosic.esat.kuleuven.be/nessie/reports/> 9016d8de74cSJustin P. Mattock <http://www.larc.usp.br/~pbarreto/AnubisPage.html> 9021da177e4SLinus Torvalds 903584fffc8SSebastian Siewiorconfig CRYPTO_ARC4 904584fffc8SSebastian Siewior tristate "ARC4 cipher algorithm" 905b9b0f080SSebastian Andrzej Siewior select CRYPTO_BLKCIPHER 906e2ee95b8SHye-Shik Chang help 907584fffc8SSebastian Siewior ARC4 cipher algorithm. 908e2ee95b8SHye-Shik Chang 909584fffc8SSebastian Siewior ARC4 is a stream cipher using keys ranging from 8 bits to 2048 910584fffc8SSebastian Siewior bits in length. This algorithm is required for driver-based 911584fffc8SSebastian Siewior WEP, but it should not be for other purposes because of the 912584fffc8SSebastian Siewior weakness of the algorithm. 913584fffc8SSebastian Siewior 914584fffc8SSebastian Siewiorconfig CRYPTO_BLOWFISH 915584fffc8SSebastian Siewior tristate "Blowfish cipher algorithm" 916584fffc8SSebastian Siewior select CRYPTO_ALGAPI 91752ba867cSJussi Kivilinna select CRYPTO_BLOWFISH_COMMON 918584fffc8SSebastian Siewior help 919584fffc8SSebastian Siewior Blowfish cipher algorithm, by Bruce Schneier. 920584fffc8SSebastian Siewior 921584fffc8SSebastian Siewior This is a variable key length cipher which can use keys from 32 922584fffc8SSebastian Siewior bits to 448 bits in length. It's fast, simple and specifically 923584fffc8SSebastian Siewior designed for use on "large microprocessors". 924e2ee95b8SHye-Shik Chang 925e2ee95b8SHye-Shik Chang See also: 926584fffc8SSebastian Siewior <http://www.schneier.com/blowfish.html> 927584fffc8SSebastian Siewior 92852ba867cSJussi Kivilinnaconfig CRYPTO_BLOWFISH_COMMON 92952ba867cSJussi Kivilinna tristate 93052ba867cSJussi Kivilinna help 93152ba867cSJussi Kivilinna Common parts of the Blowfish cipher algorithm shared by the 93252ba867cSJussi Kivilinna generic c and the assembler implementations. 93352ba867cSJussi Kivilinna 93452ba867cSJussi Kivilinna See also: 93552ba867cSJussi Kivilinna <http://www.schneier.com/blowfish.html> 93652ba867cSJussi Kivilinna 93764b94ceaSJussi Kivilinnaconfig CRYPTO_BLOWFISH_X86_64 93864b94ceaSJussi Kivilinna tristate "Blowfish cipher algorithm (x86_64)" 939f21a7c19SAl Viro depends on X86 && 64BIT 94064b94ceaSJussi Kivilinna select CRYPTO_ALGAPI 94164b94ceaSJussi Kivilinna select CRYPTO_BLOWFISH_COMMON 94264b94ceaSJussi Kivilinna help 94364b94ceaSJussi Kivilinna Blowfish cipher algorithm (x86_64), by Bruce Schneier. 94464b94ceaSJussi Kivilinna 94564b94ceaSJussi Kivilinna This is a variable key length cipher which can use keys from 32 94664b94ceaSJussi Kivilinna bits to 448 bits in length. It's fast, simple and specifically 94764b94ceaSJussi Kivilinna designed for use on "large microprocessors". 94864b94ceaSJussi Kivilinna 94964b94ceaSJussi Kivilinna See also: 95064b94ceaSJussi Kivilinna <http://www.schneier.com/blowfish.html> 95164b94ceaSJussi Kivilinna 952584fffc8SSebastian Siewiorconfig CRYPTO_CAMELLIA 953584fffc8SSebastian Siewior tristate "Camellia cipher algorithms" 954584fffc8SSebastian Siewior depends on CRYPTO 955584fffc8SSebastian Siewior select CRYPTO_ALGAPI 956584fffc8SSebastian Siewior help 957584fffc8SSebastian Siewior Camellia cipher algorithms module. 958584fffc8SSebastian Siewior 959584fffc8SSebastian Siewior Camellia is a symmetric key block cipher developed jointly 960584fffc8SSebastian Siewior at NTT and Mitsubishi Electric Corporation. 961584fffc8SSebastian Siewior 962584fffc8SSebastian Siewior The Camellia specifies three key sizes: 128, 192 and 256 bits. 963584fffc8SSebastian Siewior 964584fffc8SSebastian Siewior See also: 965584fffc8SSebastian Siewior <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html> 966584fffc8SSebastian Siewior 9670b95ec56SJussi Kivilinnaconfig CRYPTO_CAMELLIA_X86_64 9680b95ec56SJussi Kivilinna tristate "Camellia cipher algorithm (x86_64)" 969f21a7c19SAl Viro depends on X86 && 64BIT 9700b95ec56SJussi Kivilinna depends on CRYPTO 9710b95ec56SJussi Kivilinna select CRYPTO_ALGAPI 972964263afSJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 9730b95ec56SJussi Kivilinna select CRYPTO_LRW 9740b95ec56SJussi Kivilinna select CRYPTO_XTS 9750b95ec56SJussi Kivilinna help 9760b95ec56SJussi Kivilinna Camellia cipher algorithm module (x86_64). 9770b95ec56SJussi Kivilinna 9780b95ec56SJussi Kivilinna Camellia is a symmetric key block cipher developed jointly 9790b95ec56SJussi Kivilinna at NTT and Mitsubishi Electric Corporation. 9800b95ec56SJussi Kivilinna 9810b95ec56SJussi Kivilinna The Camellia specifies three key sizes: 128, 192 and 256 bits. 9820b95ec56SJussi Kivilinna 9830b95ec56SJussi Kivilinna See also: 9840b95ec56SJussi Kivilinna <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html> 9850b95ec56SJussi Kivilinna 986d9b1d2e7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX_X86_64 987d9b1d2e7SJussi Kivilinna tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX)" 988d9b1d2e7SJussi Kivilinna depends on X86 && 64BIT 989d9b1d2e7SJussi Kivilinna depends on CRYPTO 990d9b1d2e7SJussi Kivilinna select CRYPTO_ALGAPI 991d9b1d2e7SJussi Kivilinna select CRYPTO_CRYPTD 992801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 993d9b1d2e7SJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 994d9b1d2e7SJussi Kivilinna select CRYPTO_CAMELLIA_X86_64 995d9b1d2e7SJussi Kivilinna select CRYPTO_LRW 996d9b1d2e7SJussi Kivilinna select CRYPTO_XTS 997d9b1d2e7SJussi Kivilinna help 998d9b1d2e7SJussi Kivilinna Camellia cipher algorithm module (x86_64/AES-NI/AVX). 999d9b1d2e7SJussi Kivilinna 1000d9b1d2e7SJussi Kivilinna Camellia is a symmetric key block cipher developed jointly 1001d9b1d2e7SJussi Kivilinna at NTT and Mitsubishi Electric Corporation. 1002d9b1d2e7SJussi Kivilinna 1003d9b1d2e7SJussi Kivilinna The Camellia specifies three key sizes: 128, 192 and 256 bits. 1004d9b1d2e7SJussi Kivilinna 1005d9b1d2e7SJussi Kivilinna See also: 1006d9b1d2e7SJussi Kivilinna <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html> 1007d9b1d2e7SJussi Kivilinna 1008f3f935a7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX2_X86_64 1009f3f935a7SJussi Kivilinna tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX2)" 1010f3f935a7SJussi Kivilinna depends on X86 && 64BIT 1011f3f935a7SJussi Kivilinna depends on CRYPTO 1012f3f935a7SJussi Kivilinna select CRYPTO_ALGAPI 1013f3f935a7SJussi Kivilinna select CRYPTO_CRYPTD 1014801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 1015f3f935a7SJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 1016f3f935a7SJussi Kivilinna select CRYPTO_CAMELLIA_X86_64 1017f3f935a7SJussi Kivilinna select CRYPTO_CAMELLIA_AESNI_AVX_X86_64 1018f3f935a7SJussi Kivilinna select CRYPTO_LRW 1019f3f935a7SJussi Kivilinna select CRYPTO_XTS 1020f3f935a7SJussi Kivilinna help 1021f3f935a7SJussi Kivilinna Camellia cipher algorithm module (x86_64/AES-NI/AVX2). 1022f3f935a7SJussi Kivilinna 1023f3f935a7SJussi Kivilinna Camellia is a symmetric key block cipher developed jointly 1024f3f935a7SJussi Kivilinna at NTT and Mitsubishi Electric Corporation. 1025f3f935a7SJussi Kivilinna 1026f3f935a7SJussi Kivilinna The Camellia specifies three key sizes: 128, 192 and 256 bits. 1027f3f935a7SJussi Kivilinna 1028f3f935a7SJussi Kivilinna See also: 1029f3f935a7SJussi Kivilinna <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html> 1030f3f935a7SJussi Kivilinna 103181658ad0SDavid S. Millerconfig CRYPTO_CAMELLIA_SPARC64 103281658ad0SDavid S. Miller tristate "Camellia cipher algorithm (SPARC64)" 103381658ad0SDavid S. Miller depends on SPARC64 103481658ad0SDavid S. Miller depends on CRYPTO 103581658ad0SDavid S. Miller select CRYPTO_ALGAPI 103681658ad0SDavid S. Miller help 103781658ad0SDavid S. Miller Camellia cipher algorithm module (SPARC64). 103881658ad0SDavid S. Miller 103981658ad0SDavid S. Miller Camellia is a symmetric key block cipher developed jointly 104081658ad0SDavid S. Miller at NTT and Mitsubishi Electric Corporation. 104181658ad0SDavid S. Miller 104281658ad0SDavid S. Miller The Camellia specifies three key sizes: 128, 192 and 256 bits. 104381658ad0SDavid S. Miller 104481658ad0SDavid S. Miller See also: 104581658ad0SDavid S. Miller <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html> 104681658ad0SDavid S. Miller 1047044ab525SJussi Kivilinnaconfig CRYPTO_CAST_COMMON 1048044ab525SJussi Kivilinna tristate 1049044ab525SJussi Kivilinna help 1050044ab525SJussi Kivilinna Common parts of the CAST cipher algorithms shared by the 1051044ab525SJussi Kivilinna generic c and the assembler implementations. 1052044ab525SJussi Kivilinna 1053584fffc8SSebastian Siewiorconfig CRYPTO_CAST5 1054584fffc8SSebastian Siewior tristate "CAST5 (CAST-128) cipher algorithm" 1055584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1056044ab525SJussi Kivilinna select CRYPTO_CAST_COMMON 1057584fffc8SSebastian Siewior help 1058584fffc8SSebastian Siewior The CAST5 encryption algorithm (synonymous with CAST-128) is 1059584fffc8SSebastian Siewior described in RFC2144. 1060584fffc8SSebastian Siewior 10614d6d6a2cSJohannes Goetzfriedconfig CRYPTO_CAST5_AVX_X86_64 10624d6d6a2cSJohannes Goetzfried tristate "CAST5 (CAST-128) cipher algorithm (x86_64/AVX)" 10634d6d6a2cSJohannes Goetzfried depends on X86 && 64BIT 10644d6d6a2cSJohannes Goetzfried select CRYPTO_ALGAPI 10654d6d6a2cSJohannes Goetzfried select CRYPTO_CRYPTD 1066801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 1067044ab525SJussi Kivilinna select CRYPTO_CAST_COMMON 10684d6d6a2cSJohannes Goetzfried select CRYPTO_CAST5 10694d6d6a2cSJohannes Goetzfried help 10704d6d6a2cSJohannes Goetzfried The CAST5 encryption algorithm (synonymous with CAST-128) is 10714d6d6a2cSJohannes Goetzfried described in RFC2144. 10724d6d6a2cSJohannes Goetzfried 10734d6d6a2cSJohannes Goetzfried This module provides the Cast5 cipher algorithm that processes 10744d6d6a2cSJohannes Goetzfried sixteen blocks parallel using the AVX instruction set. 10754d6d6a2cSJohannes Goetzfried 1076584fffc8SSebastian Siewiorconfig CRYPTO_CAST6 1077584fffc8SSebastian Siewior tristate "CAST6 (CAST-256) cipher algorithm" 1078584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1079044ab525SJussi Kivilinna select CRYPTO_CAST_COMMON 1080584fffc8SSebastian Siewior help 1081584fffc8SSebastian Siewior The CAST6 encryption algorithm (synonymous with CAST-256) is 1082584fffc8SSebastian Siewior described in RFC2612. 1083584fffc8SSebastian Siewior 10844ea1277dSJohannes Goetzfriedconfig CRYPTO_CAST6_AVX_X86_64 10854ea1277dSJohannes Goetzfried tristate "CAST6 (CAST-256) cipher algorithm (x86_64/AVX)" 10864ea1277dSJohannes Goetzfried depends on X86 && 64BIT 10874ea1277dSJohannes Goetzfried select CRYPTO_ALGAPI 10884ea1277dSJohannes Goetzfried select CRYPTO_CRYPTD 1089801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 10904ea1277dSJohannes Goetzfried select CRYPTO_GLUE_HELPER_X86 1091044ab525SJussi Kivilinna select CRYPTO_CAST_COMMON 10924ea1277dSJohannes Goetzfried select CRYPTO_CAST6 10934ea1277dSJohannes Goetzfried select CRYPTO_LRW 10944ea1277dSJohannes Goetzfried select CRYPTO_XTS 10954ea1277dSJohannes Goetzfried help 10964ea1277dSJohannes Goetzfried The CAST6 encryption algorithm (synonymous with CAST-256) is 10974ea1277dSJohannes Goetzfried described in RFC2612. 10984ea1277dSJohannes Goetzfried 10994ea1277dSJohannes Goetzfried This module provides the Cast6 cipher algorithm that processes 11004ea1277dSJohannes Goetzfried eight blocks parallel using the AVX instruction set. 11014ea1277dSJohannes Goetzfried 1102584fffc8SSebastian Siewiorconfig CRYPTO_DES 1103584fffc8SSebastian Siewior tristate "DES and Triple DES EDE cipher algorithms" 1104584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1105584fffc8SSebastian Siewior help 1106584fffc8SSebastian Siewior DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3). 1107584fffc8SSebastian Siewior 1108c5aac2dfSDavid S. Millerconfig CRYPTO_DES_SPARC64 1109c5aac2dfSDavid S. Miller tristate "DES and Triple DES EDE cipher algorithms (SPARC64)" 111097da37b3SDave Jones depends on SPARC64 1111c5aac2dfSDavid S. Miller select CRYPTO_ALGAPI 1112c5aac2dfSDavid S. Miller select CRYPTO_DES 1113c5aac2dfSDavid S. Miller help 1114c5aac2dfSDavid S. Miller DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3), 1115c5aac2dfSDavid S. Miller optimized using SPARC64 crypto opcodes. 1116c5aac2dfSDavid S. Miller 11176574e6c6SJussi Kivilinnaconfig CRYPTO_DES3_EDE_X86_64 11186574e6c6SJussi Kivilinna tristate "Triple DES EDE cipher algorithm (x86-64)" 11196574e6c6SJussi Kivilinna depends on X86 && 64BIT 11206574e6c6SJussi Kivilinna select CRYPTO_ALGAPI 11216574e6c6SJussi Kivilinna select CRYPTO_DES 11226574e6c6SJussi Kivilinna help 11236574e6c6SJussi Kivilinna Triple DES EDE (FIPS 46-3) algorithm. 11246574e6c6SJussi Kivilinna 11256574e6c6SJussi Kivilinna This module provides implementation of the Triple DES EDE cipher 11266574e6c6SJussi Kivilinna algorithm that is optimized for x86-64 processors. Two versions of 11276574e6c6SJussi Kivilinna algorithm are provided; regular processing one input block and 11286574e6c6SJussi Kivilinna one that processes three blocks parallel. 11296574e6c6SJussi Kivilinna 1130584fffc8SSebastian Siewiorconfig CRYPTO_FCRYPT 1131584fffc8SSebastian Siewior tristate "FCrypt cipher algorithm" 1132584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1133584fffc8SSebastian Siewior select CRYPTO_BLKCIPHER 1134584fffc8SSebastian Siewior help 1135584fffc8SSebastian Siewior FCrypt algorithm used by RxRPC. 1136584fffc8SSebastian Siewior 1137584fffc8SSebastian Siewiorconfig CRYPTO_KHAZAD 1138584fffc8SSebastian Siewior tristate "Khazad cipher algorithm" 1139584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1140584fffc8SSebastian Siewior help 1141584fffc8SSebastian Siewior Khazad cipher algorithm. 1142584fffc8SSebastian Siewior 1143584fffc8SSebastian Siewior Khazad was a finalist in the initial NESSIE competition. It is 1144584fffc8SSebastian Siewior an algorithm optimized for 64-bit processors with good performance 1145584fffc8SSebastian Siewior on 32-bit processors. Khazad uses an 128 bit key size. 1146584fffc8SSebastian Siewior 1147584fffc8SSebastian Siewior See also: 11486d8de74cSJustin P. Mattock <http://www.larc.usp.br/~pbarreto/KhazadPage.html> 1149e2ee95b8SHye-Shik Chang 11502407d608STan Swee Hengconfig CRYPTO_SALSA20 11513b4afaf2SKees Cook tristate "Salsa20 stream cipher algorithm" 11522407d608STan Swee Heng select CRYPTO_BLKCIPHER 11532407d608STan Swee Heng help 11542407d608STan Swee Heng Salsa20 stream cipher algorithm. 11552407d608STan Swee Heng 11562407d608STan Swee Heng Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT 11572407d608STan Swee Heng Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/> 11582407d608STan Swee Heng 11592407d608STan Swee Heng The Salsa20 stream cipher algorithm is designed by Daniel J. 11602407d608STan Swee Heng Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html> 11611da177e4SLinus Torvalds 1162974e4b75STan Swee Hengconfig CRYPTO_SALSA20_586 11633b4afaf2SKees Cook tristate "Salsa20 stream cipher algorithm (i586)" 1164974e4b75STan Swee Heng depends on (X86 || UML_X86) && !64BIT 1165974e4b75STan Swee Heng select CRYPTO_BLKCIPHER 1166974e4b75STan Swee Heng help 1167974e4b75STan Swee Heng Salsa20 stream cipher algorithm. 1168974e4b75STan Swee Heng 1169974e4b75STan Swee Heng Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT 1170974e4b75STan Swee Heng Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/> 1171974e4b75STan Swee Heng 1172974e4b75STan Swee Heng The Salsa20 stream cipher algorithm is designed by Daniel J. 1173974e4b75STan Swee Heng Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html> 1174974e4b75STan Swee Heng 11759a7dafbbSTan Swee Hengconfig CRYPTO_SALSA20_X86_64 11763b4afaf2SKees Cook tristate "Salsa20 stream cipher algorithm (x86_64)" 11779a7dafbbSTan Swee Heng depends on (X86 || UML_X86) && 64BIT 11789a7dafbbSTan Swee Heng select CRYPTO_BLKCIPHER 11799a7dafbbSTan Swee Heng help 11809a7dafbbSTan Swee Heng Salsa20 stream cipher algorithm. 11819a7dafbbSTan Swee Heng 11829a7dafbbSTan Swee Heng Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT 11839a7dafbbSTan Swee Heng Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/> 11849a7dafbbSTan Swee Heng 11859a7dafbbSTan Swee Heng The Salsa20 stream cipher algorithm is designed by Daniel J. 11869a7dafbbSTan Swee Heng Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html> 11879a7dafbbSTan Swee Heng 1188584fffc8SSebastian Siewiorconfig CRYPTO_SEED 1189584fffc8SSebastian Siewior tristate "SEED cipher algorithm" 1190584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1191584fffc8SSebastian Siewior help 1192584fffc8SSebastian Siewior SEED cipher algorithm (RFC4269). 1193584fffc8SSebastian Siewior 1194584fffc8SSebastian Siewior SEED is a 128-bit symmetric key block cipher that has been 1195584fffc8SSebastian Siewior developed by KISA (Korea Information Security Agency) as a 1196584fffc8SSebastian Siewior national standard encryption algorithm of the Republic of Korea. 1197584fffc8SSebastian Siewior It is a 16 round block cipher with the key size of 128 bit. 1198584fffc8SSebastian Siewior 1199584fffc8SSebastian Siewior See also: 1200584fffc8SSebastian Siewior <http://www.kisa.or.kr/kisa/seed/jsp/seed_eng.jsp> 1201584fffc8SSebastian Siewior 1202584fffc8SSebastian Siewiorconfig CRYPTO_SERPENT 1203584fffc8SSebastian Siewior tristate "Serpent cipher algorithm" 1204584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1205584fffc8SSebastian Siewior help 1206584fffc8SSebastian Siewior Serpent cipher algorithm, by Anderson, Biham & Knudsen. 1207584fffc8SSebastian Siewior 1208584fffc8SSebastian Siewior Keys are allowed to be from 0 to 256 bits in length, in steps 1209584fffc8SSebastian Siewior of 8 bits. Also includes the 'Tnepres' algorithm, a reversed 1210584fffc8SSebastian Siewior variant of Serpent for compatibility with old kerneli.org code. 1211584fffc8SSebastian Siewior 1212584fffc8SSebastian Siewior See also: 1213584fffc8SSebastian Siewior <http://www.cl.cam.ac.uk/~rja14/serpent.html> 1214584fffc8SSebastian Siewior 1215937c30d7SJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_X86_64 1216937c30d7SJussi Kivilinna tristate "Serpent cipher algorithm (x86_64/SSE2)" 1217937c30d7SJussi Kivilinna depends on X86 && 64BIT 1218937c30d7SJussi Kivilinna select CRYPTO_ALGAPI 1219341975bfSJussi Kivilinna select CRYPTO_CRYPTD 1220801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 1221596d8750SJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 1222937c30d7SJussi Kivilinna select CRYPTO_SERPENT 1223feaf0cfcSJussi Kivilinna select CRYPTO_LRW 1224feaf0cfcSJussi Kivilinna select CRYPTO_XTS 1225937c30d7SJussi Kivilinna help 1226937c30d7SJussi Kivilinna Serpent cipher algorithm, by Anderson, Biham & Knudsen. 1227937c30d7SJussi Kivilinna 1228937c30d7SJussi Kivilinna Keys are allowed to be from 0 to 256 bits in length, in steps 1229937c30d7SJussi Kivilinna of 8 bits. 1230937c30d7SJussi Kivilinna 1231937c30d7SJussi Kivilinna This module provides Serpent cipher algorithm that processes eigth 1232937c30d7SJussi Kivilinna blocks parallel using SSE2 instruction set. 1233937c30d7SJussi Kivilinna 1234937c30d7SJussi Kivilinna See also: 1235937c30d7SJussi Kivilinna <http://www.cl.cam.ac.uk/~rja14/serpent.html> 1236937c30d7SJussi Kivilinna 1237251496dbSJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_586 1238251496dbSJussi Kivilinna tristate "Serpent cipher algorithm (i586/SSE2)" 1239251496dbSJussi Kivilinna depends on X86 && !64BIT 1240251496dbSJussi Kivilinna select CRYPTO_ALGAPI 1241341975bfSJussi Kivilinna select CRYPTO_CRYPTD 1242801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 1243596d8750SJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 1244251496dbSJussi Kivilinna select CRYPTO_SERPENT 1245feaf0cfcSJussi Kivilinna select CRYPTO_LRW 1246feaf0cfcSJussi Kivilinna select CRYPTO_XTS 1247251496dbSJussi Kivilinna help 1248251496dbSJussi Kivilinna Serpent cipher algorithm, by Anderson, Biham & Knudsen. 1249251496dbSJussi Kivilinna 1250251496dbSJussi Kivilinna Keys are allowed to be from 0 to 256 bits in length, in steps 1251251496dbSJussi Kivilinna of 8 bits. 1252251496dbSJussi Kivilinna 1253251496dbSJussi Kivilinna This module provides Serpent cipher algorithm that processes four 1254251496dbSJussi Kivilinna blocks parallel using SSE2 instruction set. 1255251496dbSJussi Kivilinna 1256251496dbSJussi Kivilinna See also: 1257251496dbSJussi Kivilinna <http://www.cl.cam.ac.uk/~rja14/serpent.html> 1258251496dbSJussi Kivilinna 12597efe4076SJohannes Goetzfriedconfig CRYPTO_SERPENT_AVX_X86_64 12607efe4076SJohannes Goetzfried tristate "Serpent cipher algorithm (x86_64/AVX)" 12617efe4076SJohannes Goetzfried depends on X86 && 64BIT 12627efe4076SJohannes Goetzfried select CRYPTO_ALGAPI 12637efe4076SJohannes Goetzfried select CRYPTO_CRYPTD 1264801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 12651d0debbdSJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 12667efe4076SJohannes Goetzfried select CRYPTO_SERPENT 12677efe4076SJohannes Goetzfried select CRYPTO_LRW 12687efe4076SJohannes Goetzfried select CRYPTO_XTS 12697efe4076SJohannes Goetzfried help 12707efe4076SJohannes Goetzfried Serpent cipher algorithm, by Anderson, Biham & Knudsen. 12717efe4076SJohannes Goetzfried 12727efe4076SJohannes Goetzfried Keys are allowed to be from 0 to 256 bits in length, in steps 12737efe4076SJohannes Goetzfried of 8 bits. 12747efe4076SJohannes Goetzfried 12757efe4076SJohannes Goetzfried This module provides the Serpent cipher algorithm that processes 12767efe4076SJohannes Goetzfried eight blocks parallel using the AVX instruction set. 12777efe4076SJohannes Goetzfried 12787efe4076SJohannes Goetzfried See also: 12797efe4076SJohannes Goetzfried <http://www.cl.cam.ac.uk/~rja14/serpent.html> 12807efe4076SJohannes Goetzfried 128156d76c96SJussi Kivilinnaconfig CRYPTO_SERPENT_AVX2_X86_64 128256d76c96SJussi Kivilinna tristate "Serpent cipher algorithm (x86_64/AVX2)" 128356d76c96SJussi Kivilinna depends on X86 && 64BIT 128456d76c96SJussi Kivilinna select CRYPTO_ALGAPI 128556d76c96SJussi Kivilinna select CRYPTO_CRYPTD 1286801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 128756d76c96SJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 128856d76c96SJussi Kivilinna select CRYPTO_SERPENT 128956d76c96SJussi Kivilinna select CRYPTO_SERPENT_AVX_X86_64 129056d76c96SJussi Kivilinna select CRYPTO_LRW 129156d76c96SJussi Kivilinna select CRYPTO_XTS 129256d76c96SJussi Kivilinna help 129356d76c96SJussi Kivilinna Serpent cipher algorithm, by Anderson, Biham & Knudsen. 129456d76c96SJussi Kivilinna 129556d76c96SJussi Kivilinna Keys are allowed to be from 0 to 256 bits in length, in steps 129656d76c96SJussi Kivilinna of 8 bits. 129756d76c96SJussi Kivilinna 129856d76c96SJussi Kivilinna This module provides Serpent cipher algorithm that processes 16 129956d76c96SJussi Kivilinna blocks parallel using AVX2 instruction set. 130056d76c96SJussi Kivilinna 130156d76c96SJussi Kivilinna See also: 130256d76c96SJussi Kivilinna <http://www.cl.cam.ac.uk/~rja14/serpent.html> 130356d76c96SJussi Kivilinna 1304584fffc8SSebastian Siewiorconfig CRYPTO_TEA 1305584fffc8SSebastian Siewior tristate "TEA, XTEA and XETA cipher algorithms" 1306584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1307584fffc8SSebastian Siewior help 1308584fffc8SSebastian Siewior TEA cipher algorithm. 1309584fffc8SSebastian Siewior 1310584fffc8SSebastian Siewior Tiny Encryption Algorithm is a simple cipher that uses 1311584fffc8SSebastian Siewior many rounds for security. It is very fast and uses 1312584fffc8SSebastian Siewior little memory. 1313584fffc8SSebastian Siewior 1314584fffc8SSebastian Siewior Xtendend Tiny Encryption Algorithm is a modification to 1315584fffc8SSebastian Siewior the TEA algorithm to address a potential key weakness 1316584fffc8SSebastian Siewior in the TEA algorithm. 1317584fffc8SSebastian Siewior 1318584fffc8SSebastian Siewior Xtendend Encryption Tiny Algorithm is a mis-implementation 1319584fffc8SSebastian Siewior of the XTEA algorithm for compatibility purposes. 1320584fffc8SSebastian Siewior 1321584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH 1322584fffc8SSebastian Siewior tristate "Twofish cipher algorithm" 1323584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1324584fffc8SSebastian Siewior select CRYPTO_TWOFISH_COMMON 1325584fffc8SSebastian Siewior help 1326584fffc8SSebastian Siewior Twofish cipher algorithm. 1327584fffc8SSebastian Siewior 1328584fffc8SSebastian Siewior Twofish was submitted as an AES (Advanced Encryption Standard) 1329584fffc8SSebastian Siewior candidate cipher by researchers at CounterPane Systems. It is a 1330584fffc8SSebastian Siewior 16 round block cipher supporting key sizes of 128, 192, and 256 1331584fffc8SSebastian Siewior bits. 1332584fffc8SSebastian Siewior 1333584fffc8SSebastian Siewior See also: 1334584fffc8SSebastian Siewior <http://www.schneier.com/twofish.html> 1335584fffc8SSebastian Siewior 1336584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_COMMON 1337584fffc8SSebastian Siewior tristate 1338584fffc8SSebastian Siewior help 1339584fffc8SSebastian Siewior Common parts of the Twofish cipher algorithm shared by the 1340584fffc8SSebastian Siewior generic c and the assembler implementations. 1341584fffc8SSebastian Siewior 1342584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_586 1343584fffc8SSebastian Siewior tristate "Twofish cipher algorithms (i586)" 1344584fffc8SSebastian Siewior depends on (X86 || UML_X86) && !64BIT 1345584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1346584fffc8SSebastian Siewior select CRYPTO_TWOFISH_COMMON 1347584fffc8SSebastian Siewior help 1348584fffc8SSebastian Siewior Twofish cipher algorithm. 1349584fffc8SSebastian Siewior 1350584fffc8SSebastian Siewior Twofish was submitted as an AES (Advanced Encryption Standard) 1351584fffc8SSebastian Siewior candidate cipher by researchers at CounterPane Systems. It is a 1352584fffc8SSebastian Siewior 16 round block cipher supporting key sizes of 128, 192, and 256 1353584fffc8SSebastian Siewior bits. 1354584fffc8SSebastian Siewior 1355584fffc8SSebastian Siewior See also: 1356584fffc8SSebastian Siewior <http://www.schneier.com/twofish.html> 1357584fffc8SSebastian Siewior 1358584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_X86_64 1359584fffc8SSebastian Siewior tristate "Twofish cipher algorithm (x86_64)" 1360584fffc8SSebastian Siewior depends on (X86 || UML_X86) && 64BIT 1361584fffc8SSebastian Siewior select CRYPTO_ALGAPI 1362584fffc8SSebastian Siewior select CRYPTO_TWOFISH_COMMON 1363584fffc8SSebastian Siewior help 1364584fffc8SSebastian Siewior Twofish cipher algorithm (x86_64). 1365584fffc8SSebastian Siewior 1366584fffc8SSebastian Siewior Twofish was submitted as an AES (Advanced Encryption Standard) 1367584fffc8SSebastian Siewior candidate cipher by researchers at CounterPane Systems. It is a 1368584fffc8SSebastian Siewior 16 round block cipher supporting key sizes of 128, 192, and 256 1369584fffc8SSebastian Siewior bits. 1370584fffc8SSebastian Siewior 1371584fffc8SSebastian Siewior See also: 1372584fffc8SSebastian Siewior <http://www.schneier.com/twofish.html> 1373584fffc8SSebastian Siewior 13748280daadSJussi Kivilinnaconfig CRYPTO_TWOFISH_X86_64_3WAY 13758280daadSJussi Kivilinna tristate "Twofish cipher algorithm (x86_64, 3-way parallel)" 1376f21a7c19SAl Viro depends on X86 && 64BIT 13778280daadSJussi Kivilinna select CRYPTO_ALGAPI 13788280daadSJussi Kivilinna select CRYPTO_TWOFISH_COMMON 13798280daadSJussi Kivilinna select CRYPTO_TWOFISH_X86_64 1380414cb5e7SJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 1381e7cda5d2SJussi Kivilinna select CRYPTO_LRW 1382e7cda5d2SJussi Kivilinna select CRYPTO_XTS 13838280daadSJussi Kivilinna help 13848280daadSJussi Kivilinna Twofish cipher algorithm (x86_64, 3-way parallel). 13858280daadSJussi Kivilinna 13868280daadSJussi Kivilinna Twofish was submitted as an AES (Advanced Encryption Standard) 13878280daadSJussi Kivilinna candidate cipher by researchers at CounterPane Systems. It is a 13888280daadSJussi Kivilinna 16 round block cipher supporting key sizes of 128, 192, and 256 13898280daadSJussi Kivilinna bits. 13908280daadSJussi Kivilinna 13918280daadSJussi Kivilinna This module provides Twofish cipher algorithm that processes three 13928280daadSJussi Kivilinna blocks parallel, utilizing resources of out-of-order CPUs better. 13938280daadSJussi Kivilinna 13948280daadSJussi Kivilinna See also: 13958280daadSJussi Kivilinna <http://www.schneier.com/twofish.html> 13968280daadSJussi Kivilinna 1397107778b5SJohannes Goetzfriedconfig CRYPTO_TWOFISH_AVX_X86_64 1398107778b5SJohannes Goetzfried tristate "Twofish cipher algorithm (x86_64/AVX)" 1399107778b5SJohannes Goetzfried depends on X86 && 64BIT 1400107778b5SJohannes Goetzfried select CRYPTO_ALGAPI 1401107778b5SJohannes Goetzfried select CRYPTO_CRYPTD 1402801201aaSArd Biesheuvel select CRYPTO_ABLK_HELPER 1403a7378d4eSJussi Kivilinna select CRYPTO_GLUE_HELPER_X86 1404107778b5SJohannes Goetzfried select CRYPTO_TWOFISH_COMMON 1405107778b5SJohannes Goetzfried select CRYPTO_TWOFISH_X86_64 1406107778b5SJohannes Goetzfried select CRYPTO_TWOFISH_X86_64_3WAY 1407107778b5SJohannes Goetzfried select CRYPTO_LRW 1408107778b5SJohannes Goetzfried select CRYPTO_XTS 1409107778b5SJohannes Goetzfried help 1410107778b5SJohannes Goetzfried Twofish cipher algorithm (x86_64/AVX). 1411107778b5SJohannes Goetzfried 1412107778b5SJohannes Goetzfried Twofish was submitted as an AES (Advanced Encryption Standard) 1413107778b5SJohannes Goetzfried candidate cipher by researchers at CounterPane Systems. It is a 1414107778b5SJohannes Goetzfried 16 round block cipher supporting key sizes of 128, 192, and 256 1415107778b5SJohannes Goetzfried bits. 1416107778b5SJohannes Goetzfried 1417107778b5SJohannes Goetzfried This module provides the Twofish cipher algorithm that processes 1418107778b5SJohannes Goetzfried eight blocks parallel using the AVX Instruction Set. 1419107778b5SJohannes Goetzfried 1420107778b5SJohannes Goetzfried See also: 1421107778b5SJohannes Goetzfried <http://www.schneier.com/twofish.html> 1422107778b5SJohannes Goetzfried 1423584fffc8SSebastian Siewiorcomment "Compression" 1424584fffc8SSebastian Siewior 14251da177e4SLinus Torvaldsconfig CRYPTO_DEFLATE 14261da177e4SLinus Torvalds tristate "Deflate compression algorithm" 1427cce9e06dSHerbert Xu select CRYPTO_ALGAPI 14281da177e4SLinus Torvalds select ZLIB_INFLATE 14291da177e4SLinus Torvalds select ZLIB_DEFLATE 14301da177e4SLinus Torvalds help 14311da177e4SLinus Torvalds This is the Deflate algorithm (RFC1951), specified for use in 14321da177e4SLinus Torvalds IPSec with the IPCOMP protocol (RFC3173, RFC2394). 14331da177e4SLinus Torvalds 14341da177e4SLinus Torvalds You will most probably want this if using IPSec. 14351da177e4SLinus Torvalds 1436bf68e65eSGeert Uytterhoevenconfig CRYPTO_ZLIB 1437bf68e65eSGeert Uytterhoeven tristate "Zlib compression algorithm" 1438bf68e65eSGeert Uytterhoeven select CRYPTO_PCOMP 1439bf68e65eSGeert Uytterhoeven select ZLIB_INFLATE 1440bf68e65eSGeert Uytterhoeven select ZLIB_DEFLATE 1441bf68e65eSGeert Uytterhoeven select NLATTR 1442bf68e65eSGeert Uytterhoeven help 1443bf68e65eSGeert Uytterhoeven This is the zlib algorithm. 1444bf68e65eSGeert Uytterhoeven 14450b77abb3SZoltan Sogorconfig CRYPTO_LZO 14460b77abb3SZoltan Sogor tristate "LZO compression algorithm" 14470b77abb3SZoltan Sogor select CRYPTO_ALGAPI 14480b77abb3SZoltan Sogor select LZO_COMPRESS 14490b77abb3SZoltan Sogor select LZO_DECOMPRESS 14500b77abb3SZoltan Sogor help 14510b77abb3SZoltan Sogor This is the LZO algorithm. 14520b77abb3SZoltan Sogor 145335a1fc18SSeth Jenningsconfig CRYPTO_842 145435a1fc18SSeth Jennings tristate "842 compression algorithm" 145535a1fc18SSeth Jennings depends on CRYPTO_DEV_NX_COMPRESS 145635a1fc18SSeth Jennings # 842 uses lzo if the hardware becomes unavailable 145735a1fc18SSeth Jennings select LZO_COMPRESS 145835a1fc18SSeth Jennings select LZO_DECOMPRESS 145935a1fc18SSeth Jennings help 146035a1fc18SSeth Jennings This is the 842 algorithm. 146135a1fc18SSeth Jennings 14620ea8530dSChanho Minconfig CRYPTO_LZ4 14630ea8530dSChanho Min tristate "LZ4 compression algorithm" 14640ea8530dSChanho Min select CRYPTO_ALGAPI 14650ea8530dSChanho Min select LZ4_COMPRESS 14660ea8530dSChanho Min select LZ4_DECOMPRESS 14670ea8530dSChanho Min help 14680ea8530dSChanho Min This is the LZ4 algorithm. 14690ea8530dSChanho Min 14700ea8530dSChanho Minconfig CRYPTO_LZ4HC 14710ea8530dSChanho Min tristate "LZ4HC compression algorithm" 14720ea8530dSChanho Min select CRYPTO_ALGAPI 14730ea8530dSChanho Min select LZ4HC_COMPRESS 14740ea8530dSChanho Min select LZ4_DECOMPRESS 14750ea8530dSChanho Min help 14760ea8530dSChanho Min This is the LZ4 high compression mode algorithm. 14770ea8530dSChanho Min 147817f0f4a4SNeil Hormancomment "Random Number Generation" 147917f0f4a4SNeil Horman 148017f0f4a4SNeil Hormanconfig CRYPTO_ANSI_CPRNG 148117f0f4a4SNeil Horman tristate "Pseudo Random Number Generation for Cryptographic modules" 14824e4ed83bSNeil Horman default m 148317f0f4a4SNeil Horman select CRYPTO_AES 148417f0f4a4SNeil Horman select CRYPTO_RNG 148517f0f4a4SNeil Horman help 148617f0f4a4SNeil Horman This option enables the generic pseudo random number generator 148717f0f4a4SNeil Horman for cryptographic modules. Uses the Algorithm specified in 14887dd607e8SJiri Kosina ANSI X9.31 A.2.4. Note that this option must be enabled if 14897dd607e8SJiri Kosina CRYPTO_FIPS is selected 149017f0f4a4SNeil Horman 1491f2c89a10SHerbert Xumenuconfig CRYPTO_DRBG_MENU 1492419090c6SStephan Mueller tristate "NIST SP800-90A DRBG" 1493419090c6SStephan Mueller help 1494419090c6SStephan Mueller NIST SP800-90A compliant DRBG. In the following submenu, one or 1495419090c6SStephan Mueller more of the DRBG types must be selected. 1496419090c6SStephan Mueller 1497f2c89a10SHerbert Xuif CRYPTO_DRBG_MENU 1498419090c6SStephan Mueller 1499419090c6SStephan Muellerconfig CRYPTO_DRBG_HMAC 1500419090c6SStephan Mueller bool "Enable HMAC DRBG" 1501419090c6SStephan Mueller default y 1502419090c6SStephan Mueller select CRYPTO_HMAC 1503419090c6SStephan Mueller help 1504419090c6SStephan Mueller Enable the HMAC DRBG variant as defined in NIST SP800-90A. 1505419090c6SStephan Mueller 1506419090c6SStephan Muellerconfig CRYPTO_DRBG_HASH 1507419090c6SStephan Mueller bool "Enable Hash DRBG" 1508419090c6SStephan Mueller select CRYPTO_HASH 1509419090c6SStephan Mueller help 1510419090c6SStephan Mueller Enable the Hash DRBG variant as defined in NIST SP800-90A. 1511419090c6SStephan Mueller 1512419090c6SStephan Muellerconfig CRYPTO_DRBG_CTR 1513419090c6SStephan Mueller bool "Enable CTR DRBG" 1514419090c6SStephan Mueller select CRYPTO_AES 1515419090c6SStephan Mueller help 1516419090c6SStephan Mueller Enable the CTR DRBG variant as defined in NIST SP800-90A. 1517419090c6SStephan Mueller 1518f2c89a10SHerbert Xuconfig CRYPTO_DRBG 1519f2c89a10SHerbert Xu tristate 1520f2c89a10SHerbert Xu default CRYPTO_DRBG_MENU if (CRYPTO_DRBG_HMAC || CRYPTO_DRBG_HASH || CRYPTO_DRBG_CTR) 1521f2c89a10SHerbert Xu select CRYPTO_RNG 1522f2c89a10SHerbert Xu 1523f2c89a10SHerbert Xuendif # if CRYPTO_DRBG_MENU 1524419090c6SStephan Mueller 152503c8efc1SHerbert Xuconfig CRYPTO_USER_API 152603c8efc1SHerbert Xu tristate 152703c8efc1SHerbert Xu 1528fe869cdbSHerbert Xuconfig CRYPTO_USER_API_HASH 1529fe869cdbSHerbert Xu tristate "User-space interface for hash algorithms" 15307451708fSHerbert Xu depends on NET 1531fe869cdbSHerbert Xu select CRYPTO_HASH 1532fe869cdbSHerbert Xu select CRYPTO_USER_API 1533fe869cdbSHerbert Xu help 1534fe869cdbSHerbert Xu This option enables the user-spaces interface for hash 1535fe869cdbSHerbert Xu algorithms. 1536fe869cdbSHerbert Xu 15378ff59090SHerbert Xuconfig CRYPTO_USER_API_SKCIPHER 15388ff59090SHerbert Xu tristate "User-space interface for symmetric key cipher algorithms" 15397451708fSHerbert Xu depends on NET 15408ff59090SHerbert Xu select CRYPTO_BLKCIPHER 15418ff59090SHerbert Xu select CRYPTO_USER_API 15428ff59090SHerbert Xu help 15438ff59090SHerbert Xu This option enables the user-spaces interface for symmetric 15448ff59090SHerbert Xu key cipher algorithms. 15458ff59090SHerbert Xu 15462f375538SStephan Muellerconfig CRYPTO_USER_API_RNG 15472f375538SStephan Mueller tristate "User-space interface for random number generator algorithms" 15482f375538SStephan Mueller depends on NET 15492f375538SStephan Mueller select CRYPTO_RNG 15502f375538SStephan Mueller select CRYPTO_USER_API 15512f375538SStephan Mueller help 15522f375538SStephan Mueller This option enables the user-spaces interface for random 15532f375538SStephan Mueller number generator algorithms. 15542f375538SStephan Mueller 1555ee08997fSDmitry Kasatkinconfig CRYPTO_HASH_INFO 1556ee08997fSDmitry Kasatkin bool 1557ee08997fSDmitry Kasatkin 15581da177e4SLinus Torvaldssource "drivers/crypto/Kconfig" 1559964f3b3bSDavid Howellssource crypto/asymmetric_keys/Kconfig 15601da177e4SLinus Torvalds 1561cce9e06dSHerbert Xuendif # if CRYPTO 1562