tcp: honor SO_PRIORITY in TIME_WAIT state
[linux-2.6-block.git] / crypto / Kconfig
CommitLineData
b2441318 1# SPDX-License-Identifier: GPL-2.0
685784aa
DW
2#
3# Generic algorithms support
4#
5config XOR_BLOCKS
6 tristate
7
1da177e4 8#
9bc89cd8 9# async_tx api: hardware offloaded memory transfer/transform support
1da177e4 10#
9bc89cd8 11source "crypto/async_tx/Kconfig"
1da177e4 12
9bc89cd8
DW
13#
14# Cryptographic API Configuration
15#
2e290f43 16menuconfig CRYPTO
c3715cb9 17 tristate "Cryptographic API"
1da177e4
LT
18 help
19 This option provides the core Cryptographic API.
20
cce9e06d
HX
21if CRYPTO
22
584fffc8
SS
23comment "Crypto core or helper"
24
ccb778e1
NH
25config CRYPTO_FIPS
26 bool "FIPS 200 compliance"
f2c89a10 27 depends on (CRYPTO_ANSI_CPRNG || CRYPTO_DRBG) && !CRYPTO_MANAGER_DISABLE_TESTS
1f696097 28 depends on (MODULE_SIG || !MODULES)
ccb778e1 29 help
d99324c2
GU
30 This option enables the fips boot option which is
31 required if you want the system to operate in a FIPS 200
ccb778e1 32 certification. You should say no unless you know what
e84c5480 33 this is.
ccb778e1 34
cce9e06d
HX
35config CRYPTO_ALGAPI
36 tristate
6a0fcbb4 37 select CRYPTO_ALGAPI2
cce9e06d
HX
38 help
39 This option provides the API for cryptographic algorithms.
40
6a0fcbb4
HX
41config CRYPTO_ALGAPI2
42 tristate
43
1ae97820
HX
44config CRYPTO_AEAD
45 tristate
6a0fcbb4 46 select CRYPTO_AEAD2
1ae97820
HX
47 select CRYPTO_ALGAPI
48
6a0fcbb4
HX
49config CRYPTO_AEAD2
50 tristate
51 select CRYPTO_ALGAPI2
149a3971
HX
52 select CRYPTO_NULL2
53 select CRYPTO_RNG2
6a0fcbb4 54
5cde0af2
HX
55config CRYPTO_BLKCIPHER
56 tristate
6a0fcbb4 57 select CRYPTO_BLKCIPHER2
5cde0af2 58 select CRYPTO_ALGAPI
6a0fcbb4
HX
59
60config CRYPTO_BLKCIPHER2
61 tristate
62 select CRYPTO_ALGAPI2
63 select CRYPTO_RNG2
5cde0af2 64
055bcee3
HX
65config CRYPTO_HASH
66 tristate
6a0fcbb4 67 select CRYPTO_HASH2
055bcee3
HX
68 select CRYPTO_ALGAPI
69
6a0fcbb4
HX
70config CRYPTO_HASH2
71 tristate
72 select CRYPTO_ALGAPI2
73
17f0f4a4
NH
74config CRYPTO_RNG
75 tristate
6a0fcbb4 76 select CRYPTO_RNG2
17f0f4a4
NH
77 select CRYPTO_ALGAPI
78
6a0fcbb4
HX
79config CRYPTO_RNG2
80 tristate
81 select CRYPTO_ALGAPI2
82
401e4238
HX
83config CRYPTO_RNG_DEFAULT
84 tristate
85 select CRYPTO_DRBG_MENU
86
3c339ab8
TS
87config CRYPTO_AKCIPHER2
88 tristate
89 select CRYPTO_ALGAPI2
90
91config CRYPTO_AKCIPHER
92 tristate
93 select CRYPTO_AKCIPHER2
94 select CRYPTO_ALGAPI
95
4e5f2c40
SB
96config CRYPTO_KPP2
97 tristate
98 select CRYPTO_ALGAPI2
99
100config CRYPTO_KPP
101 tristate
102 select CRYPTO_ALGAPI
103 select CRYPTO_KPP2
104
2ebda74f
GC
105config CRYPTO_ACOMP2
106 tristate
107 select CRYPTO_ALGAPI2
8cd579d2 108 select SGL_ALLOC
2ebda74f
GC
109
110config CRYPTO_ACOMP
111 tristate
112 select CRYPTO_ALGAPI
113 select CRYPTO_ACOMP2
114
2b8c19db
HX
115config CRYPTO_MANAGER
116 tristate "Cryptographic algorithm manager"
6a0fcbb4 117 select CRYPTO_MANAGER2
2b8c19db
HX
118 help
119 Create default cryptographic template instantiations such as
120 cbc(aes).
121
6a0fcbb4
HX
122config CRYPTO_MANAGER2
123 def_tristate CRYPTO_MANAGER || (CRYPTO_MANAGER!=n && CRYPTO_ALGAPI=y)
124 select CRYPTO_AEAD2
125 select CRYPTO_HASH2
126 select CRYPTO_BLKCIPHER2
946cc463 127 select CRYPTO_AKCIPHER2
4e5f2c40 128 select CRYPTO_KPP2
2ebda74f 129 select CRYPTO_ACOMP2
6a0fcbb4 130
a38f7907
SK
131config CRYPTO_USER
132 tristate "Userspace cryptographic algorithm configuration"
5db017aa 133 depends on NET
a38f7907
SK
134 select CRYPTO_MANAGER
135 help
d19978f5 136 Userspace configuration for cryptographic instantiations such as
a38f7907
SK
137 cbc(aes).
138
929d34ca
EB
139if CRYPTO_MANAGER2
140
326a6346
HX
141config CRYPTO_MANAGER_DISABLE_TESTS
142 bool "Disable run-time self tests"
00ca28a5 143 default y
0b767f96 144 help
326a6346
HX
145 Disable run-time self tests that normally take place at
146 algorithm registration.
0b767f96 147
5b2706a4
EB
148config CRYPTO_MANAGER_EXTRA_TESTS
149 bool "Enable extra run-time crypto self tests"
150 depends on DEBUG_KERNEL && !CRYPTO_MANAGER_DISABLE_TESTS
151 help
152 Enable extra run-time self tests of registered crypto algorithms,
153 including randomized fuzz tests.
154
155 This is intended for developer use only, as these tests take much
156 longer to run than the normal self tests.
157
929d34ca
EB
158endif # if CRYPTO_MANAGER2
159
584fffc8 160config CRYPTO_GF128MUL
e590e132 161 tristate
333b0d7e 162
1da177e4
LT
163config CRYPTO_NULL
164 tristate "Null algorithms"
149a3971 165 select CRYPTO_NULL2
1da177e4
LT
166 help
167 These are 'Null' algorithms, used by IPsec, which do nothing.
168
149a3971 169config CRYPTO_NULL2
dd43c4e9 170 tristate
149a3971
HX
171 select CRYPTO_ALGAPI2
172 select CRYPTO_BLKCIPHER2
173 select CRYPTO_HASH2
174
5068c7a8 175config CRYPTO_PCRYPT
3b4afaf2
KC
176 tristate "Parallel crypto engine"
177 depends on SMP
5068c7a8
SK
178 select PADATA
179 select CRYPTO_MANAGER
180 select CRYPTO_AEAD
181 help
182 This converts an arbitrary crypto algorithm into a parallel
183 algorithm that executes in kernel threads.
184
584fffc8
SS
185config CRYPTO_CRYPTD
186 tristate "Software async crypto daemon"
187 select CRYPTO_BLKCIPHER
b8a28251 188 select CRYPTO_HASH
584fffc8 189 select CRYPTO_MANAGER
1da177e4 190 help
584fffc8
SS
191 This is a generic software asynchronous crypto daemon that
192 converts an arbitrary synchronous software crypto algorithm
193 into an asynchronous algorithm that executes in a kernel thread.
1da177e4 194
584fffc8
SS
195config CRYPTO_AUTHENC
196 tristate "Authenc support"
197 select CRYPTO_AEAD
198 select CRYPTO_BLKCIPHER
199 select CRYPTO_MANAGER
200 select CRYPTO_HASH
e94c6a7a 201 select CRYPTO_NULL
1da177e4 202 help
584fffc8
SS
203 Authenc: Combined mode wrapper for IPsec.
204 This is required for IPSec.
1da177e4 205
584fffc8
SS
206config CRYPTO_TEST
207 tristate "Testing module"
208 depends on m
da7f033d 209 select CRYPTO_MANAGER
1da177e4 210 help
584fffc8 211 Quick & dirty crypto test module.
1da177e4 212
266d0516
HX
213config CRYPTO_SIMD
214 tristate
ffaf9156
JK
215 select CRYPTO_CRYPTD
216
596d8750
JK
217config CRYPTO_GLUE_HELPER_X86
218 tristate
219 depends on X86
065ce327 220 select CRYPTO_BLKCIPHER
596d8750 221
735d37b5
BW
222config CRYPTO_ENGINE
223 tristate
224
3d6228a5
VC
225comment "Public-key cryptography"
226
227config CRYPTO_RSA
228 tristate "RSA algorithm"
229 select CRYPTO_AKCIPHER
230 select CRYPTO_MANAGER
231 select MPILIB
232 select ASN1
233 help
234 Generic implementation of the RSA public key algorithm.
235
236config CRYPTO_DH
237 tristate "Diffie-Hellman algorithm"
238 select CRYPTO_KPP
239 select MPILIB
240 help
241 Generic implementation of the Diffie-Hellman algorithm.
242
4a2289da
VC
243config CRYPTO_ECC
244 tristate
245
3d6228a5
VC
246config CRYPTO_ECDH
247 tristate "ECDH algorithm"
4a2289da 248 select CRYPTO_ECC
3d6228a5
VC
249 select CRYPTO_KPP
250 select CRYPTO_RNG_DEFAULT
251 help
252 Generic implementation of the ECDH algorithm
253
0d7a7864
VC
254config CRYPTO_ECRDSA
255 tristate "EC-RDSA (GOST 34.10) algorithm"
256 select CRYPTO_ECC
257 select CRYPTO_AKCIPHER
258 select CRYPTO_STREEBOG
1036633e
VC
259 select OID_REGISTRY
260 select ASN1
0d7a7864
VC
261 help
262 Elliptic Curve Russian Digital Signature Algorithm (GOST R 34.10-2012,
263 RFC 7091, ISO/IEC 14888-3:2018) is one of the Russian cryptographic
264 standard algorithms (called GOST algorithms). Only signature verification
265 is implemented.
266
584fffc8 267comment "Authenticated Encryption with Associated Data"
cd12fb90 268
584fffc8
SS
269config CRYPTO_CCM
270 tristate "CCM support"
271 select CRYPTO_CTR
f15f05b0 272 select CRYPTO_HASH
584fffc8 273 select CRYPTO_AEAD
c8a3315a 274 select CRYPTO_MANAGER
1da177e4 275 help
584fffc8 276 Support for Counter with CBC MAC. Required for IPsec.
1da177e4 277
584fffc8
SS
278config CRYPTO_GCM
279 tristate "GCM/GMAC support"
280 select CRYPTO_CTR
281 select CRYPTO_AEAD
9382d97a 282 select CRYPTO_GHASH
9489667d 283 select CRYPTO_NULL
c8a3315a 284 select CRYPTO_MANAGER
1da177e4 285 help
584fffc8
SS
286 Support for Galois/Counter Mode (GCM) and Galois Message
287 Authentication Code (GMAC). Required for IPSec.
1da177e4 288
71ebc4d1
MW
289config CRYPTO_CHACHA20POLY1305
290 tristate "ChaCha20-Poly1305 AEAD support"
291 select CRYPTO_CHACHA20
292 select CRYPTO_POLY1305
293 select CRYPTO_AEAD
c8a3315a 294 select CRYPTO_MANAGER
71ebc4d1
MW
295 help
296 ChaCha20-Poly1305 AEAD support, RFC7539.
297
298 Support for the AEAD wrapper using the ChaCha20 stream cipher combined
299 with the Poly1305 authenticator. It is defined in RFC7539 for use in
300 IETF protocols.
301
f606a88e
OM
302config CRYPTO_AEGIS128
303 tristate "AEGIS-128 AEAD algorithm"
304 select CRYPTO_AEAD
305 select CRYPTO_AES # for AES S-box tables
306 help
307 Support for the AEGIS-128 dedicated AEAD algorithm.
308
a4397635
AB
309config CRYPTO_AEGIS128_SIMD
310 bool "Support SIMD acceleration for AEGIS-128"
311 depends on CRYPTO_AEGIS128 && ((ARM || ARM64) && KERNEL_MODE_NEON)
312 default y
313
1d373d4e
OM
314config CRYPTO_AEGIS128_AESNI_SSE2
315 tristate "AEGIS-128 AEAD algorithm (x86_64 AESNI+SSE2 implementation)"
316 depends on X86 && 64BIT
317 select CRYPTO_AEAD
de272ca7 318 select CRYPTO_SIMD
1d373d4e 319 help
4e5180eb 320 AESNI+SSE2 implementation of the AEGIS-128 dedicated AEAD algorithm.
1d373d4e 321
584fffc8
SS
322config CRYPTO_SEQIV
323 tristate "Sequence Number IV Generator"
324 select CRYPTO_AEAD
325 select CRYPTO_BLKCIPHER
856e3f40 326 select CRYPTO_NULL
401e4238 327 select CRYPTO_RNG_DEFAULT
c8a3315a 328 select CRYPTO_MANAGER
1da177e4 329 help
584fffc8
SS
330 This IV generator generates an IV based on a sequence number by
331 xoring it with a salt. This algorithm is mainly useful for CTR
1da177e4 332
a10f554f
HX
333config CRYPTO_ECHAINIV
334 tristate "Encrypted Chain IV Generator"
335 select CRYPTO_AEAD
336 select CRYPTO_NULL
401e4238 337 select CRYPTO_RNG_DEFAULT
c8a3315a 338 select CRYPTO_MANAGER
a10f554f
HX
339 help
340 This IV generator generates an IV based on the encryption of
341 a sequence number xored with a salt. This is the default
342 algorithm for CBC.
343
584fffc8 344comment "Block modes"
c494e070 345
584fffc8
SS
346config CRYPTO_CBC
347 tristate "CBC support"
db131ef9 348 select CRYPTO_BLKCIPHER
43518407 349 select CRYPTO_MANAGER
db131ef9 350 help
584fffc8
SS
351 CBC: Cipher Block Chaining mode
352 This block cipher algorithm is required for IPSec.
db131ef9 353
a7d85e06
JB
354config CRYPTO_CFB
355 tristate "CFB support"
356 select CRYPTO_BLKCIPHER
357 select CRYPTO_MANAGER
358 help
359 CFB: Cipher FeedBack mode
360 This block cipher algorithm is required for TPM2 Cryptography.
361
584fffc8
SS
362config CRYPTO_CTR
363 tristate "CTR support"
db131ef9 364 select CRYPTO_BLKCIPHER
584fffc8 365 select CRYPTO_SEQIV
43518407 366 select CRYPTO_MANAGER
db131ef9 367 help
584fffc8 368 CTR: Counter mode
db131ef9
HX
369 This block cipher algorithm is required for IPSec.
370
584fffc8
SS
371config CRYPTO_CTS
372 tristate "CTS support"
373 select CRYPTO_BLKCIPHER
c8a3315a 374 select CRYPTO_MANAGER
584fffc8
SS
375 help
376 CTS: Cipher Text Stealing
377 This is the Cipher Text Stealing mode as described by
ecd6d5c9
GBY
378 Section 8 of rfc2040 and referenced by rfc3962
379 (rfc3962 includes errata information in its Appendix A) or
380 CBC-CS3 as defined by NIST in Sp800-38A addendum from Oct 2010.
584fffc8
SS
381 This mode is required for Kerberos gss mechanism support
382 for AES encryption.
383
ecd6d5c9
GBY
384 See: https://csrc.nist.gov/publications/detail/sp/800-38a/addendum/final
385
584fffc8
SS
386config CRYPTO_ECB
387 tristate "ECB support"
91652be5
DH
388 select CRYPTO_BLKCIPHER
389 select CRYPTO_MANAGER
91652be5 390 help
584fffc8
SS
391 ECB: Electronic CodeBook mode
392 This is the simplest block cipher algorithm. It simply encrypts
393 the input block by block.
91652be5 394
64470f1b 395config CRYPTO_LRW
2470a2b2 396 tristate "LRW support"
64470f1b
RS
397 select CRYPTO_BLKCIPHER
398 select CRYPTO_MANAGER
399 select CRYPTO_GF128MUL
400 help
401 LRW: Liskov Rivest Wagner, a tweakable, non malleable, non movable
402 narrow block cipher mode for dm-crypt. Use it with cipher
403 specification string aes-lrw-benbi, the key must be 256, 320 or 384.
404 The first 128, 192 or 256 bits in the key are used for AES and the
405 rest is used to tie each cipher block to its logical position.
406
e497c518
GBY
407config CRYPTO_OFB
408 tristate "OFB support"
409 select CRYPTO_BLKCIPHER
410 select CRYPTO_MANAGER
411 help
412 OFB: the Output Feedback mode makes a block cipher into a synchronous
413 stream cipher. It generates keystream blocks, which are then XORed
414 with the plaintext blocks to get the ciphertext. Flipping a bit in the
415 ciphertext produces a flipped bit in the plaintext at the same
416 location. This property allows many error correcting codes to function
417 normally even when applied before encryption.
418
584fffc8
SS
419config CRYPTO_PCBC
420 tristate "PCBC support"
421 select CRYPTO_BLKCIPHER
422 select CRYPTO_MANAGER
423 help
424 PCBC: Propagating Cipher Block Chaining mode
425 This block cipher algorithm is required for RxRPC.
426
f19f5111 427config CRYPTO_XTS
5bcf8e6d 428 tristate "XTS support"
f19f5111
RS
429 select CRYPTO_BLKCIPHER
430 select CRYPTO_MANAGER
12cb3a1c 431 select CRYPTO_ECB
f19f5111
RS
432 help
433 XTS: IEEE1619/D16 narrow block cipher use with aes-xts-plain,
434 key size 256, 384 or 512 bits. This implementation currently
435 can't handle a sectorsize which is not a multiple of 16 bytes.
436
1c49678e
SM
437config CRYPTO_KEYWRAP
438 tristate "Key wrapping support"
439 select CRYPTO_BLKCIPHER
c8a3315a 440 select CRYPTO_MANAGER
1c49678e
SM
441 help
442 Support for key wrapping (NIST SP800-38F / RFC3394) without
443 padding.
444
26609a21
EB
445config CRYPTO_NHPOLY1305
446 tristate
447 select CRYPTO_HASH
448 select CRYPTO_POLY1305
449
012c8238
EB
450config CRYPTO_NHPOLY1305_SSE2
451 tristate "NHPoly1305 hash function (x86_64 SSE2 implementation)"
452 depends on X86 && 64BIT
453 select CRYPTO_NHPOLY1305
454 help
455 SSE2 optimized implementation of the hash function used by the
456 Adiantum encryption mode.
457
0f961f9f
EB
458config CRYPTO_NHPOLY1305_AVX2
459 tristate "NHPoly1305 hash function (x86_64 AVX2 implementation)"
460 depends on X86 && 64BIT
461 select CRYPTO_NHPOLY1305
462 help
463 AVX2 optimized implementation of the hash function used by the
464 Adiantum encryption mode.
465
059c2a4d
EB
466config CRYPTO_ADIANTUM
467 tristate "Adiantum support"
468 select CRYPTO_CHACHA20
469 select CRYPTO_POLY1305
470 select CRYPTO_NHPOLY1305
c8a3315a 471 select CRYPTO_MANAGER
059c2a4d
EB
472 help
473 Adiantum is a tweakable, length-preserving encryption mode
474 designed for fast and secure disk encryption, especially on
475 CPUs without dedicated crypto instructions. It encrypts
476 each sector using the XChaCha12 stream cipher, two passes of
477 an ε-almost-∆-universal hash function, and an invocation of
478 the AES-256 block cipher on a single 16-byte block. On CPUs
479 without AES instructions, Adiantum is much faster than
480 AES-XTS.
481
482 Adiantum's security is provably reducible to that of its
483 underlying stream and block ciphers, subject to a security
484 bound. Unlike XTS, Adiantum is a true wide-block encryption
485 mode, so it actually provides an even stronger notion of
486 security than XTS, subject to the security bound.
487
488 If unsure, say N.
489
584fffc8
SS
490comment "Hash modes"
491
93b5e86a
JK
492config CRYPTO_CMAC
493 tristate "CMAC support"
494 select CRYPTO_HASH
495 select CRYPTO_MANAGER
496 help
497 Cipher-based Message Authentication Code (CMAC) specified by
498 The National Institute of Standards and Technology (NIST).
499
500 https://tools.ietf.org/html/rfc4493
501 http://csrc.nist.gov/publications/nistpubs/800-38B/SP_800-38B.pdf
502
584fffc8
SS
503config CRYPTO_HMAC
504 tristate "HMAC support"
505 select CRYPTO_HASH
23e353c8 506 select CRYPTO_MANAGER
23e353c8 507 help
584fffc8
SS
508 HMAC: Keyed-Hashing for Message Authentication (RFC2104).
509 This is required for IPSec.
23e353c8 510
584fffc8
SS
511config CRYPTO_XCBC
512 tristate "XCBC support"
584fffc8
SS
513 select CRYPTO_HASH
514 select CRYPTO_MANAGER
76cb9521 515 help
584fffc8
SS
516 XCBC: Keyed-Hashing with encryption algorithm
517 http://www.ietf.org/rfc/rfc3566.txt
518 http://csrc.nist.gov/encryption/modes/proposedmodes/
519 xcbc-mac/xcbc-mac-spec.pdf
76cb9521 520
f1939f7c
SW
521config CRYPTO_VMAC
522 tristate "VMAC support"
f1939f7c
SW
523 select CRYPTO_HASH
524 select CRYPTO_MANAGER
525 help
526 VMAC is a message authentication algorithm designed for
527 very high speed on 64-bit architectures.
528
529 See also:
530 <http://fastcrypto.org/vmac>
531
584fffc8 532comment "Digest"
28db8e3e 533
584fffc8
SS
534config CRYPTO_CRC32C
535 tristate "CRC32c CRC algorithm"
5773a3e6 536 select CRYPTO_HASH
6a0962b2 537 select CRC32
4a49b499 538 help
584fffc8
SS
539 Castagnoli, et al Cyclic Redundancy-Check Algorithm. Used
540 by iSCSI for header and data digests and by others.
69c35efc 541 See Castagnoli93. Module will be crc32c.
4a49b499 542
8cb51ba8
AZ
543config CRYPTO_CRC32C_INTEL
544 tristate "CRC32c INTEL hardware acceleration"
545 depends on X86
546 select CRYPTO_HASH
547 help
548 In Intel processor with SSE4.2 supported, the processor will
549 support CRC32C implementation using hardware accelerated CRC32
550 instruction. This option will create 'crc32c-intel' module,
551 which will enable any routine to use the CRC32 instruction to
552 gain performance compared with software implementation.
553 Module will be crc32c-intel.
554
7cf31864 555config CRYPTO_CRC32C_VPMSUM
6dd7a82c 556 tristate "CRC32c CRC algorithm (powerpc64)"
c12abf34 557 depends on PPC64 && ALTIVEC
6dd7a82c
AB
558 select CRYPTO_HASH
559 select CRC32
560 help
561 CRC32c algorithm implemented using vector polynomial multiply-sum
562 (vpmsum) instructions, introduced in POWER8. Enable on POWER8
563 and newer processors for improved performance.
564
565
442a7c40
DM
566config CRYPTO_CRC32C_SPARC64
567 tristate "CRC32c CRC algorithm (SPARC64)"
568 depends on SPARC64
569 select CRYPTO_HASH
570 select CRC32
571 help
572 CRC32c CRC algorithm implemented using sparc64 crypto instructions,
573 when available.
574
78c37d19
AB
575config CRYPTO_CRC32
576 tristate "CRC32 CRC algorithm"
577 select CRYPTO_HASH
578 select CRC32
579 help
580 CRC-32-IEEE 802.3 cyclic redundancy-check algorithm.
581 Shash crypto api wrappers to crc32_le function.
582
583config CRYPTO_CRC32_PCLMUL
584 tristate "CRC32 PCLMULQDQ hardware acceleration"
585 depends on X86
586 select CRYPTO_HASH
587 select CRC32
588 help
589 From Intel Westmere and AMD Bulldozer processor with SSE4.2
590 and PCLMULQDQ supported, the processor will support
591 CRC32 PCLMULQDQ implementation using hardware accelerated PCLMULQDQ
af8cb01f 592 instruction. This option will create 'crc32-pclmul' module,
78c37d19
AB
593 which will enable any routine to use the CRC-32-IEEE 802.3 checksum
594 and gain better performance as compared with the table implementation.
595
4a5dc51e
MN
596config CRYPTO_CRC32_MIPS
597 tristate "CRC32c and CRC32 CRC algorithm (MIPS)"
598 depends on MIPS_CRC_SUPPORT
599 select CRYPTO_HASH
600 help
601 CRC32c and CRC32 CRC algorithms implemented using mips crypto
602 instructions, when available.
603
604
67882e76
NB
605config CRYPTO_XXHASH
606 tristate "xxHash hash algorithm"
607 select CRYPTO_HASH
608 select XXHASH
609 help
610 xxHash non-cryptographic hash algorithm. Extremely fast, working at
611 speeds close to RAM limits.
612
68411521
HX
613config CRYPTO_CRCT10DIF
614 tristate "CRCT10DIF algorithm"
615 select CRYPTO_HASH
616 help
617 CRC T10 Data Integrity Field computation is being cast as
618 a crypto transform. This allows for faster crc t10 diff
619 transforms to be used if they are available.
620
621config CRYPTO_CRCT10DIF_PCLMUL
622 tristate "CRCT10DIF PCLMULQDQ hardware acceleration"
623 depends on X86 && 64BIT && CRC_T10DIF
624 select CRYPTO_HASH
625 help
626 For x86_64 processors with SSE4.2 and PCLMULQDQ supported,
627 CRC T10 DIF PCLMULQDQ computation can be hardware
628 accelerated PCLMULQDQ instruction. This option will create
af8cb01f 629 'crct10dif-pclmul' module, which is faster when computing the
68411521
HX
630 crct10dif checksum as compared with the generic table implementation.
631
b01df1c1
DA
632config CRYPTO_CRCT10DIF_VPMSUM
633 tristate "CRC32T10DIF powerpc64 hardware acceleration"
634 depends on PPC64 && ALTIVEC && CRC_T10DIF
635 select CRYPTO_HASH
636 help
637 CRC10T10DIF algorithm implemented using vector polynomial
638 multiply-sum (vpmsum) instructions, introduced in POWER8. Enable on
639 POWER8 and newer processors for improved performance.
640
146c8688
DA
641config CRYPTO_VPMSUM_TESTER
642 tristate "Powerpc64 vpmsum hardware acceleration tester"
643 depends on CRYPTO_CRCT10DIF_VPMSUM && CRYPTO_CRC32C_VPMSUM
644 help
645 Stress test for CRC32c and CRC-T10DIF algorithms implemented with
646 POWER8 vpmsum instructions.
647 Unless you are testing these algorithms, you don't need this.
648
2cdc6899 649config CRYPTO_GHASH
8dfa20fc 650 tristate "GHASH hash function"
2cdc6899 651 select CRYPTO_GF128MUL
578c60fb 652 select CRYPTO_HASH
2cdc6899 653 help
8dfa20fc
EB
654 GHASH is the hash function used in GCM (Galois/Counter Mode).
655 It is not a general-purpose cryptographic hash function.
2cdc6899 656
f979e014
MW
657config CRYPTO_POLY1305
658 tristate "Poly1305 authenticator algorithm"
578c60fb 659 select CRYPTO_HASH
f979e014
MW
660 help
661 Poly1305 authenticator algorithm, RFC7539.
662
663 Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
664 It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
665 in IETF protocols. This is the portable C implementation of Poly1305.
666
c70f4abe 667config CRYPTO_POLY1305_X86_64
b1ccc8f4 668 tristate "Poly1305 authenticator algorithm (x86_64/SSE2/AVX2)"
c70f4abe
MW
669 depends on X86 && 64BIT
670 select CRYPTO_POLY1305
671 help
672 Poly1305 authenticator algorithm, RFC7539.
673
674 Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
675 It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
676 in IETF protocols. This is the x86_64 assembler implementation using SIMD
677 instructions.
678
584fffc8
SS
679config CRYPTO_MD4
680 tristate "MD4 digest algorithm"
808a1763 681 select CRYPTO_HASH
124b53d0 682 help
584fffc8 683 MD4 message digest algorithm (RFC1320).
124b53d0 684
584fffc8
SS
685config CRYPTO_MD5
686 tristate "MD5 digest algorithm"
14b75ba7 687 select CRYPTO_HASH
1da177e4 688 help
584fffc8 689 MD5 message digest algorithm (RFC1321).
1da177e4 690
d69e75de
AK
691config CRYPTO_MD5_OCTEON
692 tristate "MD5 digest algorithm (OCTEON)"
693 depends on CPU_CAVIUM_OCTEON
694 select CRYPTO_MD5
695 select CRYPTO_HASH
696 help
697 MD5 message digest algorithm (RFC1321) implemented
698 using OCTEON crypto instructions, when available.
699
e8e59953
MS
700config CRYPTO_MD5_PPC
701 tristate "MD5 digest algorithm (PPC)"
702 depends on PPC
703 select CRYPTO_HASH
704 help
705 MD5 message digest algorithm (RFC1321) implemented
706 in PPC assembler.
707
fa4dfedc
DM
708config CRYPTO_MD5_SPARC64
709 tristate "MD5 digest algorithm (SPARC64)"
710 depends on SPARC64
711 select CRYPTO_MD5
712 select CRYPTO_HASH
713 help
714 MD5 message digest algorithm (RFC1321) implemented
715 using sparc64 crypto instructions, when available.
716
584fffc8
SS
717config CRYPTO_MICHAEL_MIC
718 tristate "Michael MIC keyed digest algorithm"
19e2bf14 719 select CRYPTO_HASH
90831639 720 help
584fffc8
SS
721 Michael MIC is used for message integrity protection in TKIP
722 (IEEE 802.11i). This algorithm is required for TKIP, but it
723 should not be used for other purposes because of the weakness
724 of the algorithm.
90831639 725
82798f90 726config CRYPTO_RMD128
b6d44341 727 tristate "RIPEMD-128 digest algorithm"
7c4468bc 728 select CRYPTO_HASH
b6d44341
AB
729 help
730 RIPEMD-128 (ISO/IEC 10118-3:2004).
82798f90 731
b6d44341 732 RIPEMD-128 is a 128-bit cryptographic hash function. It should only
35ed4b35 733 be used as a secure replacement for RIPEMD. For other use cases,
b6d44341 734 RIPEMD-160 should be used.
82798f90 735
b6d44341 736 Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
6d8de74c 737 See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
82798f90
AKR
738
739config CRYPTO_RMD160
b6d44341 740 tristate "RIPEMD-160 digest algorithm"
e5835fba 741 select CRYPTO_HASH
b6d44341
AB
742 help
743 RIPEMD-160 (ISO/IEC 10118-3:2004).
82798f90 744
b6d44341
AB
745 RIPEMD-160 is a 160-bit cryptographic hash function. It is intended
746 to be used as a secure replacement for the 128-bit hash functions
747 MD4, MD5 and it's predecessor RIPEMD
748 (not to be confused with RIPEMD-128).
82798f90 749
b6d44341
AB
750 It's speed is comparable to SHA1 and there are no known attacks
751 against RIPEMD-160.
534fe2c1 752
b6d44341 753 Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
6d8de74c 754 See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
534fe2c1
AKR
755
756config CRYPTO_RMD256
b6d44341 757 tristate "RIPEMD-256 digest algorithm"
d8a5e2e9 758 select CRYPTO_HASH
b6d44341
AB
759 help
760 RIPEMD-256 is an optional extension of RIPEMD-128 with a
761 256 bit hash. It is intended for applications that require
762 longer hash-results, without needing a larger security level
763 (than RIPEMD-128).
534fe2c1 764
b6d44341 765 Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
6d8de74c 766 See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
534fe2c1
AKR
767
768config CRYPTO_RMD320
b6d44341 769 tristate "RIPEMD-320 digest algorithm"
3b8efb4c 770 select CRYPTO_HASH
b6d44341
AB
771 help
772 RIPEMD-320 is an optional extension of RIPEMD-160 with a
773 320 bit hash. It is intended for applications that require
774 longer hash-results, without needing a larger security level
775 (than RIPEMD-160).
534fe2c1 776
b6d44341 777 Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
6d8de74c 778 See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
82798f90 779
584fffc8
SS
780config CRYPTO_SHA1
781 tristate "SHA1 digest algorithm"
54ccb367 782 select CRYPTO_HASH
1da177e4 783 help
584fffc8 784 SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
1da177e4 785
66be8951 786config CRYPTO_SHA1_SSSE3
e38b6b7f 787 tristate "SHA1 digest algorithm (SSSE3/AVX/AVX2/SHA-NI)"
66be8951
MK
788 depends on X86 && 64BIT
789 select CRYPTO_SHA1
790 select CRYPTO_HASH
791 help
792 SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
793 using Supplemental SSE3 (SSSE3) instructions or Advanced Vector
e38b6b7f 794 Extensions (AVX/AVX2) or SHA-NI(SHA Extensions New Instructions),
795 when available.
66be8951 796
8275d1aa 797config CRYPTO_SHA256_SSSE3
e38b6b7f 798 tristate "SHA256 digest algorithm (SSSE3/AVX/AVX2/SHA-NI)"
8275d1aa
TC
799 depends on X86 && 64BIT
800 select CRYPTO_SHA256
801 select CRYPTO_HASH
802 help
803 SHA-256 secure hash standard (DFIPS 180-2) implemented
804 using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
805 Extensions version 1 (AVX1), or Advanced Vector Extensions
e38b6b7f 806 version 2 (AVX2) instructions, or SHA-NI (SHA Extensions New
807 Instructions) when available.
87de4579
TC
808
809config CRYPTO_SHA512_SSSE3
810 tristate "SHA512 digest algorithm (SSSE3/AVX/AVX2)"
811 depends on X86 && 64BIT
812 select CRYPTO_SHA512
813 select CRYPTO_HASH
814 help
815 SHA-512 secure hash standard (DFIPS 180-2) implemented
816 using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
817 Extensions version 1 (AVX1), or Advanced Vector Extensions
8275d1aa
TC
818 version 2 (AVX2) instructions, when available.
819
efdb6f6e
AK
820config CRYPTO_SHA1_OCTEON
821 tristate "SHA1 digest algorithm (OCTEON)"
822 depends on CPU_CAVIUM_OCTEON
823 select CRYPTO_SHA1
824 select CRYPTO_HASH
825 help
826 SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
827 using OCTEON crypto instructions, when available.
828
4ff28d4c
DM
829config CRYPTO_SHA1_SPARC64
830 tristate "SHA1 digest algorithm (SPARC64)"
831 depends on SPARC64
832 select CRYPTO_SHA1
833 select CRYPTO_HASH
834 help
835 SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
836 using sparc64 crypto instructions, when available.
837
323a6bf1
ME
838config CRYPTO_SHA1_PPC
839 tristate "SHA1 digest algorithm (powerpc)"
840 depends on PPC
841 help
842 This is the powerpc hardware accelerated implementation of the
843 SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
844
d9850fc5
MS
845config CRYPTO_SHA1_PPC_SPE
846 tristate "SHA1 digest algorithm (PPC SPE)"
847 depends on PPC && SPE
848 help
849 SHA-1 secure hash standard (DFIPS 180-4) implemented
850 using powerpc SPE SIMD instruction set.
851
01d3aee8
HG
852config CRYPTO_LIB_SHA256
853 tristate
854
584fffc8
SS
855config CRYPTO_SHA256
856 tristate "SHA224 and SHA256 digest algorithm"
50e109b5 857 select CRYPTO_HASH
08c327f6 858 select CRYPTO_LIB_SHA256
1da177e4 859 help
584fffc8 860 SHA256 secure hash standard (DFIPS 180-2).
1da177e4 861
584fffc8
SS
862 This version of SHA implements a 256 bit hash with 128 bits of
863 security against collision attacks.
2729bb42 864
b6d44341
AB
865 This code also includes SHA-224, a 224 bit hash with 112 bits
866 of security against collision attacks.
584fffc8 867
2ecc1e95
MS
868config CRYPTO_SHA256_PPC_SPE
869 tristate "SHA224 and SHA256 digest algorithm (PPC SPE)"
870 depends on PPC && SPE
871 select CRYPTO_SHA256
872 select CRYPTO_HASH
873 help
874 SHA224 and SHA256 secure hash standard (DFIPS 180-2)
875 implemented using powerpc SPE SIMD instruction set.
876
efdb6f6e
AK
877config CRYPTO_SHA256_OCTEON
878 tristate "SHA224 and SHA256 digest algorithm (OCTEON)"
879 depends on CPU_CAVIUM_OCTEON
880 select CRYPTO_SHA256
881 select CRYPTO_HASH
882 help
883 SHA-256 secure hash standard (DFIPS 180-2) implemented
884 using OCTEON crypto instructions, when available.
885
86c93b24
DM
886config CRYPTO_SHA256_SPARC64
887 tristate "SHA224 and SHA256 digest algorithm (SPARC64)"
888 depends on SPARC64
889 select CRYPTO_SHA256
890 select CRYPTO_HASH
891 help
892 SHA-256 secure hash standard (DFIPS 180-2) implemented
893 using sparc64 crypto instructions, when available.
894
584fffc8
SS
895config CRYPTO_SHA512
896 tristate "SHA384 and SHA512 digest algorithms"
bd9d20db 897 select CRYPTO_HASH
b9f535ff 898 help
584fffc8 899 SHA512 secure hash standard (DFIPS 180-2).
b9f535ff 900
584fffc8
SS
901 This version of SHA implements a 512 bit hash with 256 bits of
902 security against collision attacks.
b9f535ff 903
584fffc8
SS
904 This code also includes SHA-384, a 384 bit hash with 192 bits
905 of security against collision attacks.
b9f535ff 906
efdb6f6e
AK
907config CRYPTO_SHA512_OCTEON
908 tristate "SHA384 and SHA512 digest algorithms (OCTEON)"
909 depends on CPU_CAVIUM_OCTEON
910 select CRYPTO_SHA512
911 select CRYPTO_HASH
912 help
913 SHA-512 secure hash standard (DFIPS 180-2) implemented
914 using OCTEON crypto instructions, when available.
915
775e0c69
DM
916config CRYPTO_SHA512_SPARC64
917 tristate "SHA384 and SHA512 digest algorithm (SPARC64)"
918 depends on SPARC64
919 select CRYPTO_SHA512
920 select CRYPTO_HASH
921 help
922 SHA-512 secure hash standard (DFIPS 180-2) implemented
923 using sparc64 crypto instructions, when available.
924
53964b9e
JG
925config CRYPTO_SHA3
926 tristate "SHA3 digest algorithm"
927 select CRYPTO_HASH
928 help
929 SHA-3 secure hash standard (DFIPS 202). It's based on
930 cryptographic sponge function family called Keccak.
931
932 References:
933 http://keccak.noekeon.org/
934
4f0fc160
GBY
935config CRYPTO_SM3
936 tristate "SM3 digest algorithm"
937 select CRYPTO_HASH
938 help
939 SM3 secure hash function as defined by OSCCA GM/T 0004-2012 SM3).
940 It is part of the Chinese Commercial Cryptography suite.
941
942 References:
943 http://www.oscca.gov.cn/UpFile/20101222141857786.pdf
944 https://datatracker.ietf.org/doc/html/draft-shen-sm3-hash
945
fe18957e
VC
946config CRYPTO_STREEBOG
947 tristate "Streebog Hash Function"
948 select CRYPTO_HASH
949 help
950 Streebog Hash Function (GOST R 34.11-2012, RFC 6986) is one of the Russian
951 cryptographic standard algorithms (called GOST algorithms).
952 This setting enables two hash algorithms with 256 and 512 bits output.
953
954 References:
955 https://tc26.ru/upload/iblock/fed/feddbb4d26b685903faa2ba11aea43f6.pdf
956 https://tools.ietf.org/html/rfc6986
957
584fffc8
SS
958config CRYPTO_TGR192
959 tristate "Tiger digest algorithms"
f63fbd3d 960 select CRYPTO_HASH
eaf44088 961 help
584fffc8 962 Tiger hash algorithm 192, 160 and 128-bit hashes
eaf44088 963
584fffc8
SS
964 Tiger is a hash function optimized for 64-bit processors while
965 still having decent performance on 32-bit processors.
966 Tiger was developed by Ross Anderson and Eli Biham.
eaf44088
JF
967
968 See also:
584fffc8 969 <http://www.cs.technion.ac.il/~biham/Reports/Tiger/>.
eaf44088 970
584fffc8
SS
971config CRYPTO_WP512
972 tristate "Whirlpool digest algorithms"
4946510b 973 select CRYPTO_HASH
1da177e4 974 help
584fffc8 975 Whirlpool hash algorithm 512, 384 and 256-bit hashes
1da177e4 976
584fffc8
SS
977 Whirlpool-512 is part of the NESSIE cryptographic primitives.
978 Whirlpool will be part of the ISO/IEC 10118-3:2003(E) standard
1da177e4
LT
979
980 See also:
6d8de74c 981 <http://www.larc.usp.br/~pbarreto/WhirlpoolPage.html>
584fffc8 982
0e1227d3 983config CRYPTO_GHASH_CLMUL_NI_INTEL
8dfa20fc 984 tristate "GHASH hash function (CLMUL-NI accelerated)"
8af00860 985 depends on X86 && 64BIT
0e1227d3
HY
986 select CRYPTO_CRYPTD
987 help
8dfa20fc
EB
988 This is the x86_64 CLMUL-NI accelerated implementation of
989 GHASH, the hash function used in GCM (Galois/Counter mode).
0e1227d3 990
584fffc8 991comment "Ciphers"
1da177e4 992
e59c1c98
AB
993config CRYPTO_LIB_AES
994 tristate
995
1da177e4
LT
996config CRYPTO_AES
997 tristate "AES cipher algorithms"
cce9e06d 998 select CRYPTO_ALGAPI
5bb12d78 999 select CRYPTO_LIB_AES
1da177e4 1000 help
584fffc8 1001 AES cipher algorithms (FIPS-197). AES uses the Rijndael
1da177e4
LT
1002 algorithm.
1003
1004 Rijndael appears to be consistently a very good performer in
584fffc8
SS
1005 both hardware and software across a wide range of computing
1006 environments regardless of its use in feedback or non-feedback
1007 modes. Its key setup time is excellent, and its key agility is
1008 good. Rijndael's very low memory requirements make it very well
1009 suited for restricted-space environments, in which it also
1010 demonstrates excellent performance. Rijndael's operations are
1011 among the easiest to defend against power and timing attacks.
1da177e4 1012
584fffc8 1013 The AES specifies three key sizes: 128, 192 and 256 bits
1da177e4
LT
1014
1015 See <http://csrc.nist.gov/CryptoToolkit/aes/> for more information.
1016
b5e0b032
AB
1017config CRYPTO_AES_TI
1018 tristate "Fixed time AES cipher"
1019 select CRYPTO_ALGAPI
e59c1c98 1020 select CRYPTO_LIB_AES
b5e0b032
AB
1021 help
1022 This is a generic implementation of AES that attempts to eliminate
1023 data dependent latencies as much as possible without affecting
1024 performance too much. It is intended for use by the generic CCM
1025 and GCM drivers, and other CTR or CMAC/XCBC based modes that rely
1026 solely on encryption (although decryption is supported as well, but
1027 with a more dramatic performance hit)
1028
1029 Instead of using 16 lookup tables of 1 KB each, (8 for encryption and
1030 8 for decryption), this implementation only uses just two S-boxes of
1031 256 bytes each, and attempts to eliminate data dependent latencies by
1032 prefetching the entire table into the cache at the start of each
0a6a40c2
EB
1033 block. Interrupts are also disabled to avoid races where cachelines
1034 are evicted when the CPU is interrupted to do something else.
b5e0b032 1035
54b6a1bd
HY
1036config CRYPTO_AES_NI_INTEL
1037 tristate "AES cipher algorithms (AES-NI)"
8af00860 1038 depends on X86
85671860 1039 select CRYPTO_AEAD
2c53fd11 1040 select CRYPTO_LIB_AES
54b6a1bd 1041 select CRYPTO_ALGAPI
85671860 1042 select CRYPTO_BLKCIPHER
7643a11a 1043 select CRYPTO_GLUE_HELPER_X86 if 64BIT
85671860 1044 select CRYPTO_SIMD
54b6a1bd
HY
1045 help
1046 Use Intel AES-NI instructions for AES algorithm.
1047
1048 AES cipher algorithms (FIPS-197). AES uses the Rijndael
1049 algorithm.
1050
1051 Rijndael appears to be consistently a very good performer in
1052 both hardware and software across a wide range of computing
1053 environments regardless of its use in feedback or non-feedback
1054 modes. Its key setup time is excellent, and its key agility is
584fffc8
SS
1055 good. Rijndael's very low memory requirements make it very well
1056 suited for restricted-space environments, in which it also
1057 demonstrates excellent performance. Rijndael's operations are
1058 among the easiest to defend against power and timing attacks.
a2a892a2 1059
584fffc8 1060 The AES specifies three key sizes: 128, 192 and 256 bits
1da177e4
LT
1061
1062 See <http://csrc.nist.gov/encryption/aes/> for more information.
1063
0d258efb
MK
1064 In addition to AES cipher algorithm support, the acceleration
1065 for some popular block cipher mode is supported too, including
944585a6 1066 ECB, CBC, LRW, XTS. The 64 bit version has additional
0d258efb 1067 acceleration for CTR.
2cf4ac8b 1068
9bf4852d
DM
1069config CRYPTO_AES_SPARC64
1070 tristate "AES cipher algorithms (SPARC64)"
1071 depends on SPARC64
1072 select CRYPTO_CRYPTD
1073 select CRYPTO_ALGAPI
1074 help
1075 Use SPARC64 crypto opcodes for AES algorithm.
1076
1077 AES cipher algorithms (FIPS-197). AES uses the Rijndael
1078 algorithm.
1079
1080 Rijndael appears to be consistently a very good performer in
1081 both hardware and software across a wide range of computing
1082 environments regardless of its use in feedback or non-feedback
1083 modes. Its key setup time is excellent, and its key agility is
1084 good. Rijndael's very low memory requirements make it very well
1085 suited for restricted-space environments, in which it also
1086 demonstrates excellent performance. Rijndael's operations are
1087 among the easiest to defend against power and timing attacks.
1088
1089 The AES specifies three key sizes: 128, 192 and 256 bits
1090
1091 See <http://csrc.nist.gov/encryption/aes/> for more information.
1092
1093 In addition to AES cipher algorithm support, the acceleration
1094 for some popular block cipher mode is supported too, including
1095 ECB and CBC.
1096
504c6143
MS
1097config CRYPTO_AES_PPC_SPE
1098 tristate "AES cipher algorithms (PPC SPE)"
1099 depends on PPC && SPE
1100 help
1101 AES cipher algorithms (FIPS-197). Additionally the acceleration
1102 for popular block cipher modes ECB, CBC, CTR and XTS is supported.
1103 This module should only be used for low power (router) devices
1104 without hardware AES acceleration (e.g. caam crypto). It reduces the
1105 size of the AES tables from 16KB to 8KB + 256 bytes and mitigates
1106 timining attacks. Nevertheless it might be not as secure as other
1107 architecture specific assembler implementations that work on 1KB
1108 tables or 256 bytes S-boxes.
1109
584fffc8
SS
1110config CRYPTO_ANUBIS
1111 tristate "Anubis cipher algorithm"
1112 select CRYPTO_ALGAPI
1113 help
1114 Anubis cipher algorithm.
1115
1116 Anubis is a variable key length cipher which can use keys from
1117 128 bits to 320 bits in length. It was evaluated as a entrant
1118 in the NESSIE competition.
1119
1120 See also:
6d8de74c
JM
1121 <https://www.cosic.esat.kuleuven.be/nessie/reports/>
1122 <http://www.larc.usp.br/~pbarreto/AnubisPage.html>
584fffc8 1123
dc51f257
AB
1124config CRYPTO_LIB_ARC4
1125 tristate
1126
584fffc8
SS
1127config CRYPTO_ARC4
1128 tristate "ARC4 cipher algorithm"
b9b0f080 1129 select CRYPTO_BLKCIPHER
dc51f257 1130 select CRYPTO_LIB_ARC4
584fffc8
SS
1131 help
1132 ARC4 cipher algorithm.
1133
1134 ARC4 is a stream cipher using keys ranging from 8 bits to 2048
1135 bits in length. This algorithm is required for driver-based
1136 WEP, but it should not be for other purposes because of the
1137 weakness of the algorithm.
1138
1139config CRYPTO_BLOWFISH
1140 tristate "Blowfish cipher algorithm"
1141 select CRYPTO_ALGAPI
52ba867c 1142 select CRYPTO_BLOWFISH_COMMON
584fffc8
SS
1143 help
1144 Blowfish cipher algorithm, by Bruce Schneier.
1145
1146 This is a variable key length cipher which can use keys from 32
1147 bits to 448 bits in length. It's fast, simple and specifically
1148 designed for use on "large microprocessors".
1149
1150 See also:
1151 <http://www.schneier.com/blowfish.html>
1152
52ba867c
JK
1153config CRYPTO_BLOWFISH_COMMON
1154 tristate
1155 help
1156 Common parts of the Blowfish cipher algorithm shared by the
1157 generic c and the assembler implementations.
1158
1159 See also:
1160 <http://www.schneier.com/blowfish.html>
1161
64b94cea
JK
1162config CRYPTO_BLOWFISH_X86_64
1163 tristate "Blowfish cipher algorithm (x86_64)"
f21a7c19 1164 depends on X86 && 64BIT
c1679171 1165 select CRYPTO_BLKCIPHER
64b94cea
JK
1166 select CRYPTO_BLOWFISH_COMMON
1167 help
1168 Blowfish cipher algorithm (x86_64), by Bruce Schneier.
1169
1170 This is a variable key length cipher which can use keys from 32
1171 bits to 448 bits in length. It's fast, simple and specifically
1172 designed for use on "large microprocessors".
1173
1174 See also:
1175 <http://www.schneier.com/blowfish.html>
1176
584fffc8
SS
1177config CRYPTO_CAMELLIA
1178 tristate "Camellia cipher algorithms"
1179 depends on CRYPTO
1180 select CRYPTO_ALGAPI
1181 help
1182 Camellia cipher algorithms module.
1183
1184 Camellia is a symmetric key block cipher developed jointly
1185 at NTT and Mitsubishi Electric Corporation.
1186
1187 The Camellia specifies three key sizes: 128, 192 and 256 bits.
1188
1189 See also:
1190 <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1191
0b95ec56
JK
1192config CRYPTO_CAMELLIA_X86_64
1193 tristate "Camellia cipher algorithm (x86_64)"
f21a7c19 1194 depends on X86 && 64BIT
0b95ec56 1195 depends on CRYPTO
1af6d037 1196 select CRYPTO_BLKCIPHER
964263af 1197 select CRYPTO_GLUE_HELPER_X86
0b95ec56
JK
1198 help
1199 Camellia cipher algorithm module (x86_64).
1200
1201 Camellia is a symmetric key block cipher developed jointly
1202 at NTT and Mitsubishi Electric Corporation.
1203
1204 The Camellia specifies three key sizes: 128, 192 and 256 bits.
1205
1206 See also:
d9b1d2e7
JK
1207 <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1208
1209config CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1210 tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX)"
1211 depends on X86 && 64BIT
1212 depends on CRYPTO
44893bc2 1213 select CRYPTO_BLKCIPHER
d9b1d2e7 1214 select CRYPTO_CAMELLIA_X86_64
44893bc2
EB
1215 select CRYPTO_GLUE_HELPER_X86
1216 select CRYPTO_SIMD
d9b1d2e7
JK
1217 select CRYPTO_XTS
1218 help
1219 Camellia cipher algorithm module (x86_64/AES-NI/AVX).
1220
1221 Camellia is a symmetric key block cipher developed jointly
1222 at NTT and Mitsubishi Electric Corporation.
1223
1224 The Camellia specifies three key sizes: 128, 192 and 256 bits.
1225
1226 See also:
0b95ec56
JK
1227 <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1228
f3f935a7
JK
1229config CRYPTO_CAMELLIA_AESNI_AVX2_X86_64
1230 tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX2)"
1231 depends on X86 && 64BIT
1232 depends on CRYPTO
f3f935a7 1233 select CRYPTO_CAMELLIA_AESNI_AVX_X86_64
f3f935a7
JK
1234 help
1235 Camellia cipher algorithm module (x86_64/AES-NI/AVX2).
1236
1237 Camellia is a symmetric key block cipher developed jointly
1238 at NTT and Mitsubishi Electric Corporation.
1239
1240 The Camellia specifies three key sizes: 128, 192 and 256 bits.
1241
1242 See also:
1243 <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1244
81658ad0
DM
1245config CRYPTO_CAMELLIA_SPARC64
1246 tristate "Camellia cipher algorithm (SPARC64)"
1247 depends on SPARC64
1248 depends on CRYPTO
1249 select CRYPTO_ALGAPI
1250 help
1251 Camellia cipher algorithm module (SPARC64).
1252
1253 Camellia is a symmetric key block cipher developed jointly
1254 at NTT and Mitsubishi Electric Corporation.
1255
1256 The Camellia specifies three key sizes: 128, 192 and 256 bits.
1257
1258 See also:
1259 <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1260
044ab525
JK
1261config CRYPTO_CAST_COMMON
1262 tristate
1263 help
1264 Common parts of the CAST cipher algorithms shared by the
1265 generic c and the assembler implementations.
1266
1da177e4
LT
1267config CRYPTO_CAST5
1268 tristate "CAST5 (CAST-128) cipher algorithm"
cce9e06d 1269 select CRYPTO_ALGAPI
044ab525 1270 select CRYPTO_CAST_COMMON
1da177e4
LT
1271 help
1272 The CAST5 encryption algorithm (synonymous with CAST-128) is
1273 described in RFC2144.
1274
4d6d6a2c
JG
1275config CRYPTO_CAST5_AVX_X86_64
1276 tristate "CAST5 (CAST-128) cipher algorithm (x86_64/AVX)"
1277 depends on X86 && 64BIT
1e63183a 1278 select CRYPTO_BLKCIPHER
4d6d6a2c 1279 select CRYPTO_CAST5
1e63183a
EB
1280 select CRYPTO_CAST_COMMON
1281 select CRYPTO_SIMD
4d6d6a2c
JG
1282 help
1283 The CAST5 encryption algorithm (synonymous with CAST-128) is
1284 described in RFC2144.
1285
1286 This module provides the Cast5 cipher algorithm that processes
1287 sixteen blocks parallel using the AVX instruction set.
1288
1da177e4
LT
1289config CRYPTO_CAST6
1290 tristate "CAST6 (CAST-256) cipher algorithm"
cce9e06d 1291 select CRYPTO_ALGAPI
044ab525 1292 select CRYPTO_CAST_COMMON
1da177e4
LT
1293 help
1294 The CAST6 encryption algorithm (synonymous with CAST-256) is
1295 described in RFC2612.
1296
4ea1277d
JG
1297config CRYPTO_CAST6_AVX_X86_64
1298 tristate "CAST6 (CAST-256) cipher algorithm (x86_64/AVX)"
1299 depends on X86 && 64BIT
4bd96924 1300 select CRYPTO_BLKCIPHER
4ea1277d 1301 select CRYPTO_CAST6
4bd96924
EB
1302 select CRYPTO_CAST_COMMON
1303 select CRYPTO_GLUE_HELPER_X86
1304 select CRYPTO_SIMD
4ea1277d
JG
1305 select CRYPTO_XTS
1306 help
1307 The CAST6 encryption algorithm (synonymous with CAST-256) is
1308 described in RFC2612.
1309
1310 This module provides the Cast6 cipher algorithm that processes
1311 eight blocks parallel using the AVX instruction set.
1312
04007b0e
AB
1313config CRYPTO_LIB_DES
1314 tristate
1315
584fffc8
SS
1316config CRYPTO_DES
1317 tristate "DES and Triple DES EDE cipher algorithms"
cce9e06d 1318 select CRYPTO_ALGAPI
04007b0e 1319 select CRYPTO_LIB_DES
1da177e4 1320 help
584fffc8 1321 DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3).
fb4f10ed 1322
c5aac2df
DM
1323config CRYPTO_DES_SPARC64
1324 tristate "DES and Triple DES EDE cipher algorithms (SPARC64)"
97da37b3 1325 depends on SPARC64
c5aac2df 1326 select CRYPTO_ALGAPI
04007b0e 1327 select CRYPTO_LIB_DES
c5aac2df
DM
1328 help
1329 DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3),
1330 optimized using SPARC64 crypto opcodes.
1331
6574e6c6
JK
1332config CRYPTO_DES3_EDE_X86_64
1333 tristate "Triple DES EDE cipher algorithm (x86-64)"
1334 depends on X86 && 64BIT
09c0f03b 1335 select CRYPTO_BLKCIPHER
04007b0e 1336 select CRYPTO_LIB_DES
6574e6c6
JK
1337 help
1338 Triple DES EDE (FIPS 46-3) algorithm.
1339
1340 This module provides implementation of the Triple DES EDE cipher
1341 algorithm that is optimized for x86-64 processors. Two versions of
1342 algorithm are provided; regular processing one input block and
1343 one that processes three blocks parallel.
1344
584fffc8
SS
1345config CRYPTO_FCRYPT
1346 tristate "FCrypt cipher algorithm"
cce9e06d 1347 select CRYPTO_ALGAPI
584fffc8 1348 select CRYPTO_BLKCIPHER
1da177e4 1349 help
584fffc8 1350 FCrypt algorithm used by RxRPC.
1da177e4
LT
1351
1352config CRYPTO_KHAZAD
1353 tristate "Khazad cipher algorithm"
cce9e06d 1354 select CRYPTO_ALGAPI
1da177e4
LT
1355 help
1356 Khazad cipher algorithm.
1357
1358 Khazad was a finalist in the initial NESSIE competition. It is
1359 an algorithm optimized for 64-bit processors with good performance
1360 on 32-bit processors. Khazad uses an 128 bit key size.
1361
1362 See also:
6d8de74c 1363 <http://www.larc.usp.br/~pbarreto/KhazadPage.html>
1da177e4 1364
2407d608 1365config CRYPTO_SALSA20
3b4afaf2 1366 tristate "Salsa20 stream cipher algorithm"
2407d608
TSH
1367 select CRYPTO_BLKCIPHER
1368 help
1369 Salsa20 stream cipher algorithm.
1370
1371 Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT
1372 Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/>
974e4b75
TSH
1373
1374 The Salsa20 stream cipher algorithm is designed by Daniel J.
1375 Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html>
1376
c08d0e64 1377config CRYPTO_CHACHA20
aa762409 1378 tristate "ChaCha stream cipher algorithms"
c08d0e64
MW
1379 select CRYPTO_BLKCIPHER
1380 help
aa762409 1381 The ChaCha20, XChaCha20, and XChaCha12 stream cipher algorithms.
c08d0e64
MW
1382
1383 ChaCha20 is a 256-bit high-speed stream cipher designed by Daniel J.
1384 Bernstein and further specified in RFC7539 for use in IETF protocols.
de61d7ae 1385 This is the portable C implementation of ChaCha20. See also:
c08d0e64
MW
1386 <http://cr.yp.to/chacha/chacha-20080128.pdf>
1387
de61d7ae
EB
1388 XChaCha20 is the application of the XSalsa20 construction to ChaCha20
1389 rather than to Salsa20. XChaCha20 extends ChaCha20's nonce length
1390 from 64 bits (or 96 bits using the RFC7539 convention) to 192 bits,
1391 while provably retaining ChaCha20's security. See also:
1392 <https://cr.yp.to/snuffle/xsalsa-20081128.pdf>
1393
aa762409
EB
1394 XChaCha12 is XChaCha20 reduced to 12 rounds, with correspondingly
1395 reduced security margin but increased performance. It can be needed
1396 in some performance-sensitive scenarios.
1397
c9320b6d 1398config CRYPTO_CHACHA20_X86_64
4af78261 1399 tristate "ChaCha stream cipher algorithms (x86_64/SSSE3/AVX2/AVX-512VL)"
c9320b6d
MW
1400 depends on X86 && 64BIT
1401 select CRYPTO_BLKCIPHER
1402 select CRYPTO_CHACHA20
1403 help
7a507d62
EB
1404 SSSE3, AVX2, and AVX-512VL optimized implementations of the ChaCha20,
1405 XChaCha20, and XChaCha12 stream ciphers.
c9320b6d 1406
584fffc8
SS
1407config CRYPTO_SEED
1408 tristate "SEED cipher algorithm"
cce9e06d 1409 select CRYPTO_ALGAPI
1da177e4 1410 help
584fffc8 1411 SEED cipher algorithm (RFC4269).
1da177e4 1412
584fffc8
SS
1413 SEED is a 128-bit symmetric key block cipher that has been
1414 developed by KISA (Korea Information Security Agency) as a
1415 national standard encryption algorithm of the Republic of Korea.
1416 It is a 16 round block cipher with the key size of 128 bit.
1417
1418 See also:
1419 <http://www.kisa.or.kr/kisa/seed/jsp/seed_eng.jsp>
1420
1421config CRYPTO_SERPENT
1422 tristate "Serpent cipher algorithm"
cce9e06d 1423 select CRYPTO_ALGAPI
1da177e4 1424 help
584fffc8 1425 Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1da177e4 1426
584fffc8
SS
1427 Keys are allowed to be from 0 to 256 bits in length, in steps
1428 of 8 bits. Also includes the 'Tnepres' algorithm, a reversed
1429 variant of Serpent for compatibility with old kerneli.org code.
1430
1431 See also:
1432 <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1433
937c30d7
JK
1434config CRYPTO_SERPENT_SSE2_X86_64
1435 tristate "Serpent cipher algorithm (x86_64/SSE2)"
1436 depends on X86 && 64BIT
e0f409dc 1437 select CRYPTO_BLKCIPHER
596d8750 1438 select CRYPTO_GLUE_HELPER_X86
937c30d7 1439 select CRYPTO_SERPENT
e0f409dc 1440 select CRYPTO_SIMD
937c30d7
JK
1441 help
1442 Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1443
1444 Keys are allowed to be from 0 to 256 bits in length, in steps
1445 of 8 bits.
1446
1e6232f8 1447 This module provides Serpent cipher algorithm that processes eight
937c30d7
JK
1448 blocks parallel using SSE2 instruction set.
1449
1450 See also:
1451 <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1452
251496db
JK
1453config CRYPTO_SERPENT_SSE2_586
1454 tristate "Serpent cipher algorithm (i586/SSE2)"
1455 depends on X86 && !64BIT
e0f409dc 1456 select CRYPTO_BLKCIPHER
596d8750 1457 select CRYPTO_GLUE_HELPER_X86
251496db 1458 select CRYPTO_SERPENT
e0f409dc 1459 select CRYPTO_SIMD
251496db
JK
1460 help
1461 Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1462
1463 Keys are allowed to be from 0 to 256 bits in length, in steps
1464 of 8 bits.
1465
1466 This module provides Serpent cipher algorithm that processes four
1467 blocks parallel using SSE2 instruction set.
1468
1469 See also:
1470 <http://www.cl.cam.ac.uk/~rja14/serpent.html>
7efe4076
JG
1471
1472config CRYPTO_SERPENT_AVX_X86_64
1473 tristate "Serpent cipher algorithm (x86_64/AVX)"
1474 depends on X86 && 64BIT
e16bf974 1475 select CRYPTO_BLKCIPHER
1d0debbd 1476 select CRYPTO_GLUE_HELPER_X86
7efe4076 1477 select CRYPTO_SERPENT
e16bf974 1478 select CRYPTO_SIMD
7efe4076
JG
1479 select CRYPTO_XTS
1480 help
1481 Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1482
1483 Keys are allowed to be from 0 to 256 bits in length, in steps
1484 of 8 bits.
1485
1486 This module provides the Serpent cipher algorithm that processes
1487 eight blocks parallel using the AVX instruction set.
1488
1489 See also:
1490 <http://www.cl.cam.ac.uk/~rja14/serpent.html>
251496db 1491
56d76c96
JK
1492config CRYPTO_SERPENT_AVX2_X86_64
1493 tristate "Serpent cipher algorithm (x86_64/AVX2)"
1494 depends on X86 && 64BIT
56d76c96 1495 select CRYPTO_SERPENT_AVX_X86_64
56d76c96
JK
1496 help
1497 Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1498
1499 Keys are allowed to be from 0 to 256 bits in length, in steps
1500 of 8 bits.
1501
1502 This module provides Serpent cipher algorithm that processes 16
1503 blocks parallel using AVX2 instruction set.
1504
1505 See also:
1506 <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1507
747c8ce4
GBY
1508config CRYPTO_SM4
1509 tristate "SM4 cipher algorithm"
1510 select CRYPTO_ALGAPI
1511 help
1512 SM4 cipher algorithms (OSCCA GB/T 32907-2016).
1513
1514 SM4 (GBT.32907-2016) is a cryptographic standard issued by the
1515 Organization of State Commercial Administration of China (OSCCA)
1516 as an authorized cryptographic algorithms for the use within China.
1517
1518 SMS4 was originally created for use in protecting wireless
1519 networks, and is mandated in the Chinese National Standard for
1520 Wireless LAN WAPI (Wired Authentication and Privacy Infrastructure)
1521 (GB.15629.11-2003).
1522
1523 The latest SM4 standard (GBT.32907-2016) was proposed by OSCCA and
1524 standardized through TC 260 of the Standardization Administration
1525 of the People's Republic of China (SAC).
1526
1527 The input, output, and key of SMS4 are each 128 bits.
1528
1529 See also: <https://eprint.iacr.org/2008/329.pdf>
1530
1531 If unsure, say N.
1532
584fffc8
SS
1533config CRYPTO_TEA
1534 tristate "TEA, XTEA and XETA cipher algorithms"
cce9e06d 1535 select CRYPTO_ALGAPI
1da177e4 1536 help
584fffc8 1537 TEA cipher algorithm.
1da177e4 1538
584fffc8
SS
1539 Tiny Encryption Algorithm is a simple cipher that uses
1540 many rounds for security. It is very fast and uses
1541 little memory.
1542
1543 Xtendend Tiny Encryption Algorithm is a modification to
1544 the TEA algorithm to address a potential key weakness
1545 in the TEA algorithm.
1546
1547 Xtendend Encryption Tiny Algorithm is a mis-implementation
1548 of the XTEA algorithm for compatibility purposes.
1549
1550config CRYPTO_TWOFISH
1551 tristate "Twofish cipher algorithm"
04ac7db3 1552 select CRYPTO_ALGAPI
584fffc8 1553 select CRYPTO_TWOFISH_COMMON
04ac7db3 1554 help
584fffc8 1555 Twofish cipher algorithm.
04ac7db3 1556
584fffc8
SS
1557 Twofish was submitted as an AES (Advanced Encryption Standard)
1558 candidate cipher by researchers at CounterPane Systems. It is a
1559 16 round block cipher supporting key sizes of 128, 192, and 256
1560 bits.
04ac7db3 1561
584fffc8
SS
1562 See also:
1563 <http://www.schneier.com/twofish.html>
1564
1565config CRYPTO_TWOFISH_COMMON
1566 tristate
1567 help
1568 Common parts of the Twofish cipher algorithm shared by the
1569 generic c and the assembler implementations.
1570
1571config CRYPTO_TWOFISH_586
1572 tristate "Twofish cipher algorithms (i586)"
1573 depends on (X86 || UML_X86) && !64BIT
1574 select CRYPTO_ALGAPI
1575 select CRYPTO_TWOFISH_COMMON
1576 help
1577 Twofish cipher algorithm.
1578
1579 Twofish was submitted as an AES (Advanced Encryption Standard)
1580 candidate cipher by researchers at CounterPane Systems. It is a
1581 16 round block cipher supporting key sizes of 128, 192, and 256
1582 bits.
04ac7db3
NT
1583
1584 See also:
584fffc8 1585 <http://www.schneier.com/twofish.html>
04ac7db3 1586
584fffc8
SS
1587config CRYPTO_TWOFISH_X86_64
1588 tristate "Twofish cipher algorithm (x86_64)"
1589 depends on (X86 || UML_X86) && 64BIT
cce9e06d 1590 select CRYPTO_ALGAPI
584fffc8 1591 select CRYPTO_TWOFISH_COMMON
1da177e4 1592 help
584fffc8 1593 Twofish cipher algorithm (x86_64).
1da177e4 1594
584fffc8
SS
1595 Twofish was submitted as an AES (Advanced Encryption Standard)
1596 candidate cipher by researchers at CounterPane Systems. It is a
1597 16 round block cipher supporting key sizes of 128, 192, and 256
1598 bits.
1599
1600 See also:
1601 <http://www.schneier.com/twofish.html>
1602
8280daad
JK
1603config CRYPTO_TWOFISH_X86_64_3WAY
1604 tristate "Twofish cipher algorithm (x86_64, 3-way parallel)"
f21a7c19 1605 depends on X86 && 64BIT
37992fa4 1606 select CRYPTO_BLKCIPHER
8280daad
JK
1607 select CRYPTO_TWOFISH_COMMON
1608 select CRYPTO_TWOFISH_X86_64
414cb5e7 1609 select CRYPTO_GLUE_HELPER_X86
8280daad
JK
1610 help
1611 Twofish cipher algorithm (x86_64, 3-way parallel).
1612
1613 Twofish was submitted as an AES (Advanced Encryption Standard)
1614 candidate cipher by researchers at CounterPane Systems. It is a
1615 16 round block cipher supporting key sizes of 128, 192, and 256
1616 bits.
1617
1618 This module provides Twofish cipher algorithm that processes three
1619 blocks parallel, utilizing resources of out-of-order CPUs better.
1620
1621 See also:
1622 <http://www.schneier.com/twofish.html>
1623
107778b5
JG
1624config CRYPTO_TWOFISH_AVX_X86_64
1625 tristate "Twofish cipher algorithm (x86_64/AVX)"
1626 depends on X86 && 64BIT
0e6ab46d 1627 select CRYPTO_BLKCIPHER
a7378d4e 1628 select CRYPTO_GLUE_HELPER_X86
0e6ab46d 1629 select CRYPTO_SIMD
107778b5
JG
1630 select CRYPTO_TWOFISH_COMMON
1631 select CRYPTO_TWOFISH_X86_64
1632 select CRYPTO_TWOFISH_X86_64_3WAY
107778b5
JG
1633 help
1634 Twofish cipher algorithm (x86_64/AVX).
1635
1636 Twofish was submitted as an AES (Advanced Encryption Standard)
1637 candidate cipher by researchers at CounterPane Systems. It is a
1638 16 round block cipher supporting key sizes of 128, 192, and 256
1639 bits.
1640
1641 This module provides the Twofish cipher algorithm that processes
1642 eight blocks parallel using the AVX Instruction Set.
1643
1644 See also:
1645 <http://www.schneier.com/twofish.html>
1646
584fffc8
SS
1647comment "Compression"
1648
1649config CRYPTO_DEFLATE
1650 tristate "Deflate compression algorithm"
1651 select CRYPTO_ALGAPI
f6ded09d 1652 select CRYPTO_ACOMP2
584fffc8
SS
1653 select ZLIB_INFLATE
1654 select ZLIB_DEFLATE
3c09f17c 1655 help
584fffc8
SS
1656 This is the Deflate algorithm (RFC1951), specified for use in
1657 IPSec with the IPCOMP protocol (RFC3173, RFC2394).
1658
1659 You will most probably want this if using IPSec.
3c09f17c 1660
0b77abb3
ZS
1661config CRYPTO_LZO
1662 tristate "LZO compression algorithm"
1663 select CRYPTO_ALGAPI
ac9d2c4b 1664 select CRYPTO_ACOMP2
0b77abb3
ZS
1665 select LZO_COMPRESS
1666 select LZO_DECOMPRESS
1667 help
1668 This is the LZO algorithm.
1669
35a1fc18
SJ
1670config CRYPTO_842
1671 tristate "842 compression algorithm"
2062c5b6 1672 select CRYPTO_ALGAPI
6a8de3ae 1673 select CRYPTO_ACOMP2
2062c5b6
DS
1674 select 842_COMPRESS
1675 select 842_DECOMPRESS
35a1fc18
SJ
1676 help
1677 This is the 842 algorithm.
0ea8530d
CM
1678
1679config CRYPTO_LZ4
1680 tristate "LZ4 compression algorithm"
1681 select CRYPTO_ALGAPI
8cd9330e 1682 select CRYPTO_ACOMP2
0ea8530d
CM
1683 select LZ4_COMPRESS
1684 select LZ4_DECOMPRESS
1685 help
1686 This is the LZ4 algorithm.
1687
1688config CRYPTO_LZ4HC
1689 tristate "LZ4HC compression algorithm"
1690 select CRYPTO_ALGAPI
91d53d96 1691 select CRYPTO_ACOMP2
0ea8530d
CM
1692 select LZ4HC_COMPRESS
1693 select LZ4_DECOMPRESS
1694 help
1695 This is the LZ4 high compression mode algorithm.
35a1fc18 1696
d28fc3db
NT
1697config CRYPTO_ZSTD
1698 tristate "Zstd compression algorithm"
1699 select CRYPTO_ALGAPI
1700 select CRYPTO_ACOMP2
1701 select ZSTD_COMPRESS
1702 select ZSTD_DECOMPRESS
1703 help
1704 This is the zstd algorithm.
1705
17f0f4a4
NH
1706comment "Random Number Generation"
1707
1708config CRYPTO_ANSI_CPRNG
1709 tristate "Pseudo Random Number Generation for Cryptographic modules"
1710 select CRYPTO_AES
1711 select CRYPTO_RNG
17f0f4a4
NH
1712 help
1713 This option enables the generic pseudo random number generator
1714 for cryptographic modules. Uses the Algorithm specified in
7dd607e8
JK
1715 ANSI X9.31 A.2.4. Note that this option must be enabled if
1716 CRYPTO_FIPS is selected
17f0f4a4 1717
f2c89a10 1718menuconfig CRYPTO_DRBG_MENU
419090c6 1719 tristate "NIST SP800-90A DRBG"
419090c6
SM
1720 help
1721 NIST SP800-90A compliant DRBG. In the following submenu, one or
1722 more of the DRBG types must be selected.
1723
f2c89a10 1724if CRYPTO_DRBG_MENU
419090c6
SM
1725
1726config CRYPTO_DRBG_HMAC
401e4238 1727 bool
419090c6 1728 default y
419090c6 1729 select CRYPTO_HMAC
826775bb 1730 select CRYPTO_SHA256
419090c6
SM
1731
1732config CRYPTO_DRBG_HASH
1733 bool "Enable Hash DRBG"
826775bb 1734 select CRYPTO_SHA256
419090c6
SM
1735 help
1736 Enable the Hash DRBG variant as defined in NIST SP800-90A.
1737
1738config CRYPTO_DRBG_CTR
1739 bool "Enable CTR DRBG"
419090c6 1740 select CRYPTO_AES
35591285 1741 depends on CRYPTO_CTR
419090c6
SM
1742 help
1743 Enable the CTR DRBG variant as defined in NIST SP800-90A.
1744
f2c89a10
HX
1745config CRYPTO_DRBG
1746 tristate
401e4238 1747 default CRYPTO_DRBG_MENU
f2c89a10 1748 select CRYPTO_RNG
bb5530e4 1749 select CRYPTO_JITTERENTROPY
f2c89a10
HX
1750
1751endif # if CRYPTO_DRBG_MENU
419090c6 1752
bb5530e4
SM
1753config CRYPTO_JITTERENTROPY
1754 tristate "Jitterentropy Non-Deterministic Random Number Generator"
2f313e02 1755 select CRYPTO_RNG
bb5530e4
SM
1756 help
1757 The Jitterentropy RNG is a noise that is intended
1758 to provide seed to another RNG. The RNG does not
1759 perform any cryptographic whitening of the generated
1760 random numbers. This Jitterentropy RNG registers with
1761 the kernel crypto API and can be used by any caller.
1762
03c8efc1
HX
1763config CRYPTO_USER_API
1764 tristate
1765
fe869cdb
HX
1766config CRYPTO_USER_API_HASH
1767 tristate "User-space interface for hash algorithms"
7451708f 1768 depends on NET
fe869cdb
HX
1769 select CRYPTO_HASH
1770 select CRYPTO_USER_API
1771 help
1772 This option enables the user-spaces interface for hash
1773 algorithms.
1774
8ff59090
HX
1775config CRYPTO_USER_API_SKCIPHER
1776 tristate "User-space interface for symmetric key cipher algorithms"
7451708f 1777 depends on NET
8ff59090
HX
1778 select CRYPTO_BLKCIPHER
1779 select CRYPTO_USER_API
1780 help
1781 This option enables the user-spaces interface for symmetric
1782 key cipher algorithms.
1783
2f375538
SM
1784config CRYPTO_USER_API_RNG
1785 tristate "User-space interface for random number generator algorithms"
1786 depends on NET
1787 select CRYPTO_RNG
1788 select CRYPTO_USER_API
1789 help
1790 This option enables the user-spaces interface for random
1791 number generator algorithms.
1792
b64a2d95
HX
1793config CRYPTO_USER_API_AEAD
1794 tristate "User-space interface for AEAD cipher algorithms"
1795 depends on NET
1796 select CRYPTO_AEAD
72548b09
SM
1797 select CRYPTO_BLKCIPHER
1798 select CRYPTO_NULL
b64a2d95
HX
1799 select CRYPTO_USER_API
1800 help
1801 This option enables the user-spaces interface for AEAD
1802 cipher algorithms.
1803
cac5818c
CL
1804config CRYPTO_STATS
1805 bool "Crypto usage statistics for User-space"
a6a31385 1806 depends on CRYPTO_USER
cac5818c
CL
1807 help
1808 This option enables the gathering of crypto stats.
1809 This will collect:
1810 - encrypt/decrypt size and numbers of symmeric operations
1811 - compress/decompress size and numbers of compress operations
1812 - size and numbers of hash operations
1813 - encrypt/decrypt/sign/verify numbers for asymmetric operations
1814 - generate/seed numbers for rng operations
1815
ee08997f
DK
1816config CRYPTO_HASH_INFO
1817 bool
1818
1da177e4 1819source "drivers/crypto/Kconfig"
8636a1f9
MY
1820source "crypto/asymmetric_keys/Kconfig"
1821source "certs/Kconfig"
1da177e4 1822
cce9e06d 1823endif # if CRYPTO