xref: /linux/crypto/Kconfig (revision cac5818c25d0423bda73e2b6997404ed0a7ed9e3)
1b2441318SGreg Kroah-Hartman# SPDX-License-Identifier: GPL-2.0
21da177e4SLinus Torvalds#
3685784aaSDan Williams# Generic algorithms support
4685784aaSDan Williams#
5685784aaSDan Williamsconfig XOR_BLOCKS
6685784aaSDan Williams	tristate
7685784aaSDan Williams
8685784aaSDan Williams#
99bc89cd8SDan Williams# async_tx api: hardware offloaded memory transfer/transform support
109bc89cd8SDan Williams#
119bc89cd8SDan Williamssource "crypto/async_tx/Kconfig"
129bc89cd8SDan Williams
139bc89cd8SDan Williams#
141da177e4SLinus Torvalds# Cryptographic API Configuration
151da177e4SLinus Torvalds#
162e290f43SJan Engelhardtmenuconfig CRYPTO
17c3715cb9SSebastian Siewior	tristate "Cryptographic API"
181da177e4SLinus Torvalds	help
191da177e4SLinus Torvalds	  This option provides the core Cryptographic API.
201da177e4SLinus Torvalds
21cce9e06dSHerbert Xuif CRYPTO
22cce9e06dSHerbert Xu
23584fffc8SSebastian Siewiorcomment "Crypto core or helper"
24584fffc8SSebastian Siewior
25ccb778e1SNeil Hormanconfig CRYPTO_FIPS
26ccb778e1SNeil Horman	bool "FIPS 200 compliance"
27f2c89a10SHerbert Xu	depends on (CRYPTO_ANSI_CPRNG || CRYPTO_DRBG) && !CRYPTO_MANAGER_DISABLE_TESTS
281f696097SAlec Ari	depends on (MODULE_SIG || !MODULES)
29ccb778e1SNeil Horman	help
30ccb778e1SNeil Horman	  This options enables the fips boot option which is
31ccb778e1SNeil Horman	  required if you want to system to operate in a FIPS 200
32ccb778e1SNeil Horman	  certification.  You should say no unless you know what
33e84c5480SChuck Ebbert	  this is.
34ccb778e1SNeil Horman
35cce9e06dSHerbert Xuconfig CRYPTO_ALGAPI
36cce9e06dSHerbert Xu	tristate
376a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
38cce9e06dSHerbert Xu	help
39cce9e06dSHerbert Xu	  This option provides the API for cryptographic algorithms.
40cce9e06dSHerbert Xu
416a0fcbb4SHerbert Xuconfig CRYPTO_ALGAPI2
426a0fcbb4SHerbert Xu	tristate
436a0fcbb4SHerbert Xu
441ae97820SHerbert Xuconfig CRYPTO_AEAD
451ae97820SHerbert Xu	tristate
466a0fcbb4SHerbert Xu	select CRYPTO_AEAD2
471ae97820SHerbert Xu	select CRYPTO_ALGAPI
481ae97820SHerbert Xu
496a0fcbb4SHerbert Xuconfig CRYPTO_AEAD2
506a0fcbb4SHerbert Xu	tristate
516a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
52149a3971SHerbert Xu	select CRYPTO_NULL2
53149a3971SHerbert Xu	select CRYPTO_RNG2
546a0fcbb4SHerbert Xu
555cde0af2SHerbert Xuconfig CRYPTO_BLKCIPHER
565cde0af2SHerbert Xu	tristate
576a0fcbb4SHerbert Xu	select CRYPTO_BLKCIPHER2
585cde0af2SHerbert Xu	select CRYPTO_ALGAPI
596a0fcbb4SHerbert Xu
606a0fcbb4SHerbert Xuconfig CRYPTO_BLKCIPHER2
616a0fcbb4SHerbert Xu	tristate
626a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
636a0fcbb4SHerbert Xu	select CRYPTO_RNG2
640a2e821dSHuang Ying	select CRYPTO_WORKQUEUE
655cde0af2SHerbert Xu
66055bcee3SHerbert Xuconfig CRYPTO_HASH
67055bcee3SHerbert Xu	tristate
686a0fcbb4SHerbert Xu	select CRYPTO_HASH2
69055bcee3SHerbert Xu	select CRYPTO_ALGAPI
70055bcee3SHerbert Xu
716a0fcbb4SHerbert Xuconfig CRYPTO_HASH2
726a0fcbb4SHerbert Xu	tristate
736a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
746a0fcbb4SHerbert Xu
7517f0f4a4SNeil Hormanconfig CRYPTO_RNG
7617f0f4a4SNeil Horman	tristate
776a0fcbb4SHerbert Xu	select CRYPTO_RNG2
7817f0f4a4SNeil Horman	select CRYPTO_ALGAPI
7917f0f4a4SNeil Horman
806a0fcbb4SHerbert Xuconfig CRYPTO_RNG2
816a0fcbb4SHerbert Xu	tristate
826a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
836a0fcbb4SHerbert Xu
84401e4238SHerbert Xuconfig CRYPTO_RNG_DEFAULT
85401e4238SHerbert Xu	tristate
86401e4238SHerbert Xu	select CRYPTO_DRBG_MENU
87401e4238SHerbert Xu
883c339ab8STadeusz Strukconfig CRYPTO_AKCIPHER2
893c339ab8STadeusz Struk	tristate
903c339ab8STadeusz Struk	select CRYPTO_ALGAPI2
913c339ab8STadeusz Struk
923c339ab8STadeusz Strukconfig CRYPTO_AKCIPHER
933c339ab8STadeusz Struk	tristate
943c339ab8STadeusz Struk	select CRYPTO_AKCIPHER2
953c339ab8STadeusz Struk	select CRYPTO_ALGAPI
963c339ab8STadeusz Struk
974e5f2c40SSalvatore Benedettoconfig CRYPTO_KPP2
984e5f2c40SSalvatore Benedetto	tristate
994e5f2c40SSalvatore Benedetto	select CRYPTO_ALGAPI2
1004e5f2c40SSalvatore Benedetto
1014e5f2c40SSalvatore Benedettoconfig CRYPTO_KPP
1024e5f2c40SSalvatore Benedetto	tristate
1034e5f2c40SSalvatore Benedetto	select CRYPTO_ALGAPI
1044e5f2c40SSalvatore Benedetto	select CRYPTO_KPP2
1054e5f2c40SSalvatore Benedetto
1062ebda74fSGiovanni Cabidduconfig CRYPTO_ACOMP2
1072ebda74fSGiovanni Cabiddu	tristate
1082ebda74fSGiovanni Cabiddu	select CRYPTO_ALGAPI2
1098cd579d2SBart Van Assche	select SGL_ALLOC
1102ebda74fSGiovanni Cabiddu
1112ebda74fSGiovanni Cabidduconfig CRYPTO_ACOMP
1122ebda74fSGiovanni Cabiddu	tristate
1132ebda74fSGiovanni Cabiddu	select CRYPTO_ALGAPI
1142ebda74fSGiovanni Cabiddu	select CRYPTO_ACOMP2
1152ebda74fSGiovanni Cabiddu
116cfc2bb32STadeusz Strukconfig CRYPTO_RSA
117cfc2bb32STadeusz Struk	tristate "RSA algorithm"
118425e0172STadeusz Struk	select CRYPTO_AKCIPHER
11958446fefSTadeusz Struk	select CRYPTO_MANAGER
120cfc2bb32STadeusz Struk	select MPILIB
121cfc2bb32STadeusz Struk	select ASN1
122cfc2bb32STadeusz Struk	help
123cfc2bb32STadeusz Struk	  Generic implementation of the RSA public key algorithm.
124cfc2bb32STadeusz Struk
125802c7f1cSSalvatore Benedettoconfig CRYPTO_DH
126802c7f1cSSalvatore Benedetto	tristate "Diffie-Hellman algorithm"
127802c7f1cSSalvatore Benedetto	select CRYPTO_KPP
128802c7f1cSSalvatore Benedetto	select MPILIB
129802c7f1cSSalvatore Benedetto	help
130802c7f1cSSalvatore Benedetto	  Generic implementation of the Diffie-Hellman algorithm.
131802c7f1cSSalvatore Benedetto
1323c4b2390SSalvatore Benedettoconfig CRYPTO_ECDH
1333c4b2390SSalvatore Benedetto	tristate "ECDH algorithm"
134b5b90077SHauke Mehrtens	select CRYPTO_KPP
1356755fd26STudor-Dan Ambarus	select CRYPTO_RNG_DEFAULT
1363c4b2390SSalvatore Benedetto	help
1373c4b2390SSalvatore Benedetto	  Generic implementation of the ECDH algorithm
138802c7f1cSSalvatore Benedetto
1392b8c19dbSHerbert Xuconfig CRYPTO_MANAGER
1402b8c19dbSHerbert Xu	tristate "Cryptographic algorithm manager"
1416a0fcbb4SHerbert Xu	select CRYPTO_MANAGER2
1422b8c19dbSHerbert Xu	help
1432b8c19dbSHerbert Xu	  Create default cryptographic template instantiations such as
1442b8c19dbSHerbert Xu	  cbc(aes).
1452b8c19dbSHerbert Xu
1466a0fcbb4SHerbert Xuconfig CRYPTO_MANAGER2
1476a0fcbb4SHerbert Xu	def_tristate CRYPTO_MANAGER || (CRYPTO_MANAGER!=n && CRYPTO_ALGAPI=y)
1486a0fcbb4SHerbert Xu	select CRYPTO_AEAD2
1496a0fcbb4SHerbert Xu	select CRYPTO_HASH2
1506a0fcbb4SHerbert Xu	select CRYPTO_BLKCIPHER2
151946cc463STadeusz Struk	select CRYPTO_AKCIPHER2
1524e5f2c40SSalvatore Benedetto	select CRYPTO_KPP2
1532ebda74fSGiovanni Cabiddu	select CRYPTO_ACOMP2
1546a0fcbb4SHerbert Xu
155a38f7907SSteffen Klassertconfig CRYPTO_USER
156a38f7907SSteffen Klassert	tristate "Userspace cryptographic algorithm configuration"
1575db017aaSHerbert Xu	depends on NET
158a38f7907SSteffen Klassert	select CRYPTO_MANAGER
159a38f7907SSteffen Klassert	help
160d19978f5SValdis.Kletnieks@vt.edu	  Userspace configuration for cryptographic instantiations such as
161a38f7907SSteffen Klassert	  cbc(aes).
162a38f7907SSteffen Klassert
163326a6346SHerbert Xuconfig CRYPTO_MANAGER_DISABLE_TESTS
164326a6346SHerbert Xu	bool "Disable run-time self tests"
16500ca28a5SHerbert Xu	default y
16600ca28a5SHerbert Xu	depends on CRYPTO_MANAGER2
1670b767f96SAlexander Shishkin	help
168326a6346SHerbert Xu	  Disable run-time self tests that normally take place at
169326a6346SHerbert Xu	  algorithm registration.
1700b767f96SAlexander Shishkin
171584fffc8SSebastian Siewiorconfig CRYPTO_GF128MUL
17208c70fc3SJussi Kivilinna	tristate "GF(2^128) multiplication functions"
173584fffc8SSebastian Siewior	help
174584fffc8SSebastian Siewior	  Efficient table driven implementation of multiplications in the
175584fffc8SSebastian Siewior	  field GF(2^128).  This is needed by some cypher modes. This
176584fffc8SSebastian Siewior	  option will be selected automatically if you select such a
177584fffc8SSebastian Siewior	  cipher mode.  Only select this option by hand if you expect to load
178584fffc8SSebastian Siewior	  an external module that requires these functions.
179584fffc8SSebastian Siewior
180584fffc8SSebastian Siewiorconfig CRYPTO_NULL
181584fffc8SSebastian Siewior	tristate "Null algorithms"
182149a3971SHerbert Xu	select CRYPTO_NULL2
183584fffc8SSebastian Siewior	help
184584fffc8SSebastian Siewior	  These are 'Null' algorithms, used by IPsec, which do nothing.
185584fffc8SSebastian Siewior
186149a3971SHerbert Xuconfig CRYPTO_NULL2
187dd43c4e9SHerbert Xu	tristate
188149a3971SHerbert Xu	select CRYPTO_ALGAPI2
189149a3971SHerbert Xu	select CRYPTO_BLKCIPHER2
190149a3971SHerbert Xu	select CRYPTO_HASH2
191149a3971SHerbert Xu
1925068c7a8SSteffen Klassertconfig CRYPTO_PCRYPT
1933b4afaf2SKees Cook	tristate "Parallel crypto engine"
1943b4afaf2SKees Cook	depends on SMP
1955068c7a8SSteffen Klassert	select PADATA
1965068c7a8SSteffen Klassert	select CRYPTO_MANAGER
1975068c7a8SSteffen Klassert	select CRYPTO_AEAD
1985068c7a8SSteffen Klassert	help
1995068c7a8SSteffen Klassert	  This converts an arbitrary crypto algorithm into a parallel
2005068c7a8SSteffen Klassert	  algorithm that executes in kernel threads.
2015068c7a8SSteffen Klassert
20225c38d3fSHuang Yingconfig CRYPTO_WORKQUEUE
20325c38d3fSHuang Ying       tristate
20425c38d3fSHuang Ying
205584fffc8SSebastian Siewiorconfig CRYPTO_CRYPTD
206584fffc8SSebastian Siewior	tristate "Software async crypto daemon"
207584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
208b8a28251SLoc Ho	select CRYPTO_HASH
209584fffc8SSebastian Siewior	select CRYPTO_MANAGER
210254eff77SHuang Ying	select CRYPTO_WORKQUEUE
211584fffc8SSebastian Siewior	help
212584fffc8SSebastian Siewior	  This is a generic software asynchronous crypto daemon that
213584fffc8SSebastian Siewior	  converts an arbitrary synchronous software crypto algorithm
214584fffc8SSebastian Siewior	  into an asynchronous algorithm that executes in a kernel thread.
215584fffc8SSebastian Siewior
216584fffc8SSebastian Siewiorconfig CRYPTO_AUTHENC
217584fffc8SSebastian Siewior	tristate "Authenc support"
218584fffc8SSebastian Siewior	select CRYPTO_AEAD
219584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
220584fffc8SSebastian Siewior	select CRYPTO_MANAGER
221584fffc8SSebastian Siewior	select CRYPTO_HASH
222e94c6a7aSHerbert Xu	select CRYPTO_NULL
223584fffc8SSebastian Siewior	help
224584fffc8SSebastian Siewior	  Authenc: Combined mode wrapper for IPsec.
225584fffc8SSebastian Siewior	  This is required for IPSec.
226584fffc8SSebastian Siewior
227584fffc8SSebastian Siewiorconfig CRYPTO_TEST
228584fffc8SSebastian Siewior	tristate "Testing module"
229584fffc8SSebastian Siewior	depends on m
230da7f033dSHerbert Xu	select CRYPTO_MANAGER
231584fffc8SSebastian Siewior	help
232584fffc8SSebastian Siewior	  Quick & dirty crypto test module.
233584fffc8SSebastian Siewior
234266d0516SHerbert Xuconfig CRYPTO_SIMD
235266d0516SHerbert Xu	tristate
236266d0516SHerbert Xu	select CRYPTO_CRYPTD
237266d0516SHerbert Xu
238596d8750SJussi Kivilinnaconfig CRYPTO_GLUE_HELPER_X86
239596d8750SJussi Kivilinna	tristate
240596d8750SJussi Kivilinna	depends on X86
241065ce327SHerbert Xu	select CRYPTO_BLKCIPHER
242596d8750SJussi Kivilinna
243735d37b5SBaolin Wangconfig CRYPTO_ENGINE
244735d37b5SBaolin Wang	tristate
245735d37b5SBaolin Wang
246584fffc8SSebastian Siewiorcomment "Authenticated Encryption with Associated Data"
247584fffc8SSebastian Siewior
248584fffc8SSebastian Siewiorconfig CRYPTO_CCM
249584fffc8SSebastian Siewior	tristate "CCM support"
250584fffc8SSebastian Siewior	select CRYPTO_CTR
251f15f05b0SArd Biesheuvel	select CRYPTO_HASH
252584fffc8SSebastian Siewior	select CRYPTO_AEAD
253584fffc8SSebastian Siewior	help
254584fffc8SSebastian Siewior	  Support for Counter with CBC MAC. Required for IPsec.
255584fffc8SSebastian Siewior
256584fffc8SSebastian Siewiorconfig CRYPTO_GCM
257584fffc8SSebastian Siewior	tristate "GCM/GMAC support"
258584fffc8SSebastian Siewior	select CRYPTO_CTR
259584fffc8SSebastian Siewior	select CRYPTO_AEAD
2609382d97aSHuang Ying	select CRYPTO_GHASH
2619489667dSJussi Kivilinna	select CRYPTO_NULL
262584fffc8SSebastian Siewior	help
263584fffc8SSebastian Siewior	  Support for Galois/Counter Mode (GCM) and Galois Message
264584fffc8SSebastian Siewior	  Authentication Code (GMAC). Required for IPSec.
265584fffc8SSebastian Siewior
26671ebc4d1SMartin Williconfig CRYPTO_CHACHA20POLY1305
26771ebc4d1SMartin Willi	tristate "ChaCha20-Poly1305 AEAD support"
26871ebc4d1SMartin Willi	select CRYPTO_CHACHA20
26971ebc4d1SMartin Willi	select CRYPTO_POLY1305
27071ebc4d1SMartin Willi	select CRYPTO_AEAD
27171ebc4d1SMartin Willi	help
27271ebc4d1SMartin Willi	  ChaCha20-Poly1305 AEAD support, RFC7539.
27371ebc4d1SMartin Willi
27471ebc4d1SMartin Willi	  Support for the AEAD wrapper using the ChaCha20 stream cipher combined
27571ebc4d1SMartin Willi	  with the Poly1305 authenticator. It is defined in RFC7539 for use in
27671ebc4d1SMartin Willi	  IETF protocols.
27771ebc4d1SMartin Willi
278f606a88eSOndrej Mosnacekconfig CRYPTO_AEGIS128
279f606a88eSOndrej Mosnacek	tristate "AEGIS-128 AEAD algorithm"
280f606a88eSOndrej Mosnacek	select CRYPTO_AEAD
281f606a88eSOndrej Mosnacek	select CRYPTO_AES  # for AES S-box tables
282f606a88eSOndrej Mosnacek	help
283f606a88eSOndrej Mosnacek	 Support for the AEGIS-128 dedicated AEAD algorithm.
284f606a88eSOndrej Mosnacek
285f606a88eSOndrej Mosnacekconfig CRYPTO_AEGIS128L
286f606a88eSOndrej Mosnacek	tristate "AEGIS-128L AEAD algorithm"
287f606a88eSOndrej Mosnacek	select CRYPTO_AEAD
288f606a88eSOndrej Mosnacek	select CRYPTO_AES  # for AES S-box tables
289f606a88eSOndrej Mosnacek	help
290f606a88eSOndrej Mosnacek	 Support for the AEGIS-128L dedicated AEAD algorithm.
291f606a88eSOndrej Mosnacek
292f606a88eSOndrej Mosnacekconfig CRYPTO_AEGIS256
293f606a88eSOndrej Mosnacek	tristate "AEGIS-256 AEAD algorithm"
294f606a88eSOndrej Mosnacek	select CRYPTO_AEAD
295f606a88eSOndrej Mosnacek	select CRYPTO_AES  # for AES S-box tables
296f606a88eSOndrej Mosnacek	help
297f606a88eSOndrej Mosnacek	 Support for the AEGIS-256 dedicated AEAD algorithm.
298f606a88eSOndrej Mosnacek
2991d373d4eSOndrej Mosnacekconfig CRYPTO_AEGIS128_AESNI_SSE2
3001d373d4eSOndrej Mosnacek	tristate "AEGIS-128 AEAD algorithm (x86_64 AESNI+SSE2 implementation)"
3011d373d4eSOndrej Mosnacek	depends on X86 && 64BIT
3021d373d4eSOndrej Mosnacek	select CRYPTO_AEAD
3031d373d4eSOndrej Mosnacek	select CRYPTO_CRYPTD
3041d373d4eSOndrej Mosnacek	help
3051d373d4eSOndrej Mosnacek	 AESNI+SSE2 implementation of the AEGSI-128 dedicated AEAD algorithm.
3061d373d4eSOndrej Mosnacek
3071d373d4eSOndrej Mosnacekconfig CRYPTO_AEGIS128L_AESNI_SSE2
3081d373d4eSOndrej Mosnacek	tristate "AEGIS-128L AEAD algorithm (x86_64 AESNI+SSE2 implementation)"
3091d373d4eSOndrej Mosnacek	depends on X86 && 64BIT
3101d373d4eSOndrej Mosnacek	select CRYPTO_AEAD
3111d373d4eSOndrej Mosnacek	select CRYPTO_CRYPTD
3121d373d4eSOndrej Mosnacek	help
3131d373d4eSOndrej Mosnacek	 AESNI+SSE2 implementation of the AEGSI-128L dedicated AEAD algorithm.
3141d373d4eSOndrej Mosnacek
3151d373d4eSOndrej Mosnacekconfig CRYPTO_AEGIS256_AESNI_SSE2
3161d373d4eSOndrej Mosnacek	tristate "AEGIS-256 AEAD algorithm (x86_64 AESNI+SSE2 implementation)"
3171d373d4eSOndrej Mosnacek	depends on X86 && 64BIT
3181d373d4eSOndrej Mosnacek	select CRYPTO_AEAD
3191d373d4eSOndrej Mosnacek	select CRYPTO_CRYPTD
3201d373d4eSOndrej Mosnacek	help
3211d373d4eSOndrej Mosnacek	 AESNI+SSE2 implementation of the AEGSI-256 dedicated AEAD algorithm.
3221d373d4eSOndrej Mosnacek
323396be41fSOndrej Mosnacekconfig CRYPTO_MORUS640
324396be41fSOndrej Mosnacek	tristate "MORUS-640 AEAD algorithm"
325396be41fSOndrej Mosnacek	select CRYPTO_AEAD
326396be41fSOndrej Mosnacek	help
327396be41fSOndrej Mosnacek	  Support for the MORUS-640 dedicated AEAD algorithm.
328396be41fSOndrej Mosnacek
32956e8e57fSOndrej Mosnacekconfig CRYPTO_MORUS640_GLUE
3302808f173SOndrej Mosnacek	tristate
3312808f173SOndrej Mosnacek	depends on X86
33256e8e57fSOndrej Mosnacek	select CRYPTO_AEAD
33356e8e57fSOndrej Mosnacek	select CRYPTO_CRYPTD
33456e8e57fSOndrej Mosnacek	help
33556e8e57fSOndrej Mosnacek	  Common glue for SIMD optimizations of the MORUS-640 dedicated AEAD
33656e8e57fSOndrej Mosnacek	  algorithm.
33756e8e57fSOndrej Mosnacek
3386ecc9d9fSOndrej Mosnacekconfig CRYPTO_MORUS640_SSE2
3396ecc9d9fSOndrej Mosnacek	tristate "MORUS-640 AEAD algorithm (x86_64 SSE2 implementation)"
3406ecc9d9fSOndrej Mosnacek	depends on X86 && 64BIT
3416ecc9d9fSOndrej Mosnacek	select CRYPTO_AEAD
3426ecc9d9fSOndrej Mosnacek	select CRYPTO_MORUS640_GLUE
3436ecc9d9fSOndrej Mosnacek	help
3446ecc9d9fSOndrej Mosnacek	  SSE2 implementation of the MORUS-640 dedicated AEAD algorithm.
3456ecc9d9fSOndrej Mosnacek
346396be41fSOndrej Mosnacekconfig CRYPTO_MORUS1280
347396be41fSOndrej Mosnacek	tristate "MORUS-1280 AEAD algorithm"
348396be41fSOndrej Mosnacek	select CRYPTO_AEAD
349396be41fSOndrej Mosnacek	help
350396be41fSOndrej Mosnacek	  Support for the MORUS-1280 dedicated AEAD algorithm.
351396be41fSOndrej Mosnacek
35256e8e57fSOndrej Mosnacekconfig CRYPTO_MORUS1280_GLUE
3532808f173SOndrej Mosnacek	tristate
3542808f173SOndrej Mosnacek	depends on X86
35556e8e57fSOndrej Mosnacek	select CRYPTO_AEAD
35656e8e57fSOndrej Mosnacek	select CRYPTO_CRYPTD
35756e8e57fSOndrej Mosnacek	help
35856e8e57fSOndrej Mosnacek	  Common glue for SIMD optimizations of the MORUS-1280 dedicated AEAD
35956e8e57fSOndrej Mosnacek	  algorithm.
36056e8e57fSOndrej Mosnacek
3616ecc9d9fSOndrej Mosnacekconfig CRYPTO_MORUS1280_SSE2
3626ecc9d9fSOndrej Mosnacek	tristate "MORUS-1280 AEAD algorithm (x86_64 SSE2 implementation)"
3636ecc9d9fSOndrej Mosnacek	depends on X86 && 64BIT
3646ecc9d9fSOndrej Mosnacek	select CRYPTO_AEAD
3656ecc9d9fSOndrej Mosnacek	select CRYPTO_MORUS1280_GLUE
3666ecc9d9fSOndrej Mosnacek	help
3676ecc9d9fSOndrej Mosnacek	  SSE2 optimizedimplementation of the MORUS-1280 dedicated AEAD
3686ecc9d9fSOndrej Mosnacek	  algorithm.
3696ecc9d9fSOndrej Mosnacek
3706ecc9d9fSOndrej Mosnacekconfig CRYPTO_MORUS1280_AVX2
3716ecc9d9fSOndrej Mosnacek	tristate "MORUS-1280 AEAD algorithm (x86_64 AVX2 implementation)"
3726ecc9d9fSOndrej Mosnacek	depends on X86 && 64BIT
3736ecc9d9fSOndrej Mosnacek	select CRYPTO_AEAD
3746ecc9d9fSOndrej Mosnacek	select CRYPTO_MORUS1280_GLUE
3756ecc9d9fSOndrej Mosnacek	help
3766ecc9d9fSOndrej Mosnacek	  AVX2 optimized implementation of the MORUS-1280 dedicated AEAD
3776ecc9d9fSOndrej Mosnacek	  algorithm.
3786ecc9d9fSOndrej Mosnacek
379584fffc8SSebastian Siewiorconfig CRYPTO_SEQIV
380584fffc8SSebastian Siewior	tristate "Sequence Number IV Generator"
381584fffc8SSebastian Siewior	select CRYPTO_AEAD
382584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
383856e3f40SHerbert Xu	select CRYPTO_NULL
384401e4238SHerbert Xu	select CRYPTO_RNG_DEFAULT
385584fffc8SSebastian Siewior	help
386584fffc8SSebastian Siewior	  This IV generator generates an IV based on a sequence number by
387584fffc8SSebastian Siewior	  xoring it with a salt.  This algorithm is mainly useful for CTR
388584fffc8SSebastian Siewior
389a10f554fSHerbert Xuconfig CRYPTO_ECHAINIV
390a10f554fSHerbert Xu	tristate "Encrypted Chain IV Generator"
391a10f554fSHerbert Xu	select CRYPTO_AEAD
392a10f554fSHerbert Xu	select CRYPTO_NULL
393401e4238SHerbert Xu	select CRYPTO_RNG_DEFAULT
3943491244cSHerbert Xu	default m
395a10f554fSHerbert Xu	help
396a10f554fSHerbert Xu	  This IV generator generates an IV based on the encryption of
397a10f554fSHerbert Xu	  a sequence number xored with a salt.  This is the default
398a10f554fSHerbert Xu	  algorithm for CBC.
399a10f554fSHerbert Xu
400584fffc8SSebastian Siewiorcomment "Block modes"
401584fffc8SSebastian Siewior
402584fffc8SSebastian Siewiorconfig CRYPTO_CBC
403584fffc8SSebastian Siewior	tristate "CBC support"
404584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
405584fffc8SSebastian Siewior	select CRYPTO_MANAGER
406584fffc8SSebastian Siewior	help
407584fffc8SSebastian Siewior	  CBC: Cipher Block Chaining mode
408584fffc8SSebastian Siewior	  This block cipher algorithm is required for IPSec.
409584fffc8SSebastian Siewior
410a7d85e06SJames Bottomleyconfig CRYPTO_CFB
411a7d85e06SJames Bottomley	tristate "CFB support"
412a7d85e06SJames Bottomley	select CRYPTO_BLKCIPHER
413a7d85e06SJames Bottomley	select CRYPTO_MANAGER
414a7d85e06SJames Bottomley	help
415a7d85e06SJames Bottomley	  CFB: Cipher FeedBack mode
416a7d85e06SJames Bottomley	  This block cipher algorithm is required for TPM2 Cryptography.
417a7d85e06SJames Bottomley
418584fffc8SSebastian Siewiorconfig CRYPTO_CTR
419584fffc8SSebastian Siewior	tristate "CTR support"
420584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
421584fffc8SSebastian Siewior	select CRYPTO_SEQIV
422584fffc8SSebastian Siewior	select CRYPTO_MANAGER
423584fffc8SSebastian Siewior	help
424584fffc8SSebastian Siewior	  CTR: Counter mode
425584fffc8SSebastian Siewior	  This block cipher algorithm is required for IPSec.
426584fffc8SSebastian Siewior
427584fffc8SSebastian Siewiorconfig CRYPTO_CTS
428584fffc8SSebastian Siewior	tristate "CTS support"
429584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
430584fffc8SSebastian Siewior	help
431584fffc8SSebastian Siewior	  CTS: Cipher Text Stealing
432584fffc8SSebastian Siewior	  This is the Cipher Text Stealing mode as described by
433584fffc8SSebastian Siewior	  Section 8 of rfc2040 and referenced by rfc3962.
434584fffc8SSebastian Siewior	  (rfc3962 includes errata information in its Appendix A)
435584fffc8SSebastian Siewior	  This mode is required for Kerberos gss mechanism support
436584fffc8SSebastian Siewior	  for AES encryption.
437584fffc8SSebastian Siewior
438584fffc8SSebastian Siewiorconfig CRYPTO_ECB
439584fffc8SSebastian Siewior	tristate "ECB support"
440584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
441584fffc8SSebastian Siewior	select CRYPTO_MANAGER
442584fffc8SSebastian Siewior	help
443584fffc8SSebastian Siewior	  ECB: Electronic CodeBook mode
444584fffc8SSebastian Siewior	  This is the simplest block cipher algorithm.  It simply encrypts
445584fffc8SSebastian Siewior	  the input block by block.
446584fffc8SSebastian Siewior
447584fffc8SSebastian Siewiorconfig CRYPTO_LRW
4482470a2b2SJussi Kivilinna	tristate "LRW support"
449584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
450584fffc8SSebastian Siewior	select CRYPTO_MANAGER
451584fffc8SSebastian Siewior	select CRYPTO_GF128MUL
452584fffc8SSebastian Siewior	help
453584fffc8SSebastian Siewior	  LRW: Liskov Rivest Wagner, a tweakable, non malleable, non movable
454584fffc8SSebastian Siewior	  narrow block cipher mode for dm-crypt.  Use it with cipher
455584fffc8SSebastian Siewior	  specification string aes-lrw-benbi, the key must be 256, 320 or 384.
456584fffc8SSebastian Siewior	  The first 128, 192 or 256 bits in the key are used for AES and the
457584fffc8SSebastian Siewior	  rest is used to tie each cipher block to its logical position.
458584fffc8SSebastian Siewior
459584fffc8SSebastian Siewiorconfig CRYPTO_PCBC
460584fffc8SSebastian Siewior	tristate "PCBC support"
461584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
462584fffc8SSebastian Siewior	select CRYPTO_MANAGER
463584fffc8SSebastian Siewior	help
464584fffc8SSebastian Siewior	  PCBC: Propagating Cipher Block Chaining mode
465584fffc8SSebastian Siewior	  This block cipher algorithm is required for RxRPC.
466584fffc8SSebastian Siewior
467584fffc8SSebastian Siewiorconfig CRYPTO_XTS
4685bcf8e6dSJussi Kivilinna	tristate "XTS support"
469584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
470584fffc8SSebastian Siewior	select CRYPTO_MANAGER
47112cb3a1cSMilan Broz	select CRYPTO_ECB
472584fffc8SSebastian Siewior	help
473584fffc8SSebastian Siewior	  XTS: IEEE1619/D16 narrow block cipher use with aes-xts-plain,
474584fffc8SSebastian Siewior	  key size 256, 384 or 512 bits. This implementation currently
475584fffc8SSebastian Siewior	  can't handle a sectorsize which is not a multiple of 16 bytes.
476584fffc8SSebastian Siewior
4771c49678eSStephan Muellerconfig CRYPTO_KEYWRAP
4781c49678eSStephan Mueller	tristate "Key wrapping support"
4791c49678eSStephan Mueller	select CRYPTO_BLKCIPHER
4801c49678eSStephan Mueller	help
4811c49678eSStephan Mueller	  Support for key wrapping (NIST SP800-38F / RFC3394) without
4821c49678eSStephan Mueller	  padding.
4831c49678eSStephan Mueller
484584fffc8SSebastian Siewiorcomment "Hash modes"
485584fffc8SSebastian Siewior
48693b5e86aSJussi Kivilinnaconfig CRYPTO_CMAC
48793b5e86aSJussi Kivilinna	tristate "CMAC support"
48893b5e86aSJussi Kivilinna	select CRYPTO_HASH
48993b5e86aSJussi Kivilinna	select CRYPTO_MANAGER
49093b5e86aSJussi Kivilinna	help
49193b5e86aSJussi Kivilinna	  Cipher-based Message Authentication Code (CMAC) specified by
49293b5e86aSJussi Kivilinna	  The National Institute of Standards and Technology (NIST).
49393b5e86aSJussi Kivilinna
49493b5e86aSJussi Kivilinna	  https://tools.ietf.org/html/rfc4493
49593b5e86aSJussi Kivilinna	  http://csrc.nist.gov/publications/nistpubs/800-38B/SP_800-38B.pdf
49693b5e86aSJussi Kivilinna
4971da177e4SLinus Torvaldsconfig CRYPTO_HMAC
4988425165dSHerbert Xu	tristate "HMAC support"
4990796ae06SHerbert Xu	select CRYPTO_HASH
50043518407SHerbert Xu	select CRYPTO_MANAGER
5011da177e4SLinus Torvalds	help
5021da177e4SLinus Torvalds	  HMAC: Keyed-Hashing for Message Authentication (RFC2104).
5031da177e4SLinus Torvalds	  This is required for IPSec.
5041da177e4SLinus Torvalds
505333b0d7eSKazunori MIYAZAWAconfig CRYPTO_XCBC
506333b0d7eSKazunori MIYAZAWA	tristate "XCBC support"
507333b0d7eSKazunori MIYAZAWA	select CRYPTO_HASH
508333b0d7eSKazunori MIYAZAWA	select CRYPTO_MANAGER
509333b0d7eSKazunori MIYAZAWA	help
510333b0d7eSKazunori MIYAZAWA	  XCBC: Keyed-Hashing with encryption algorithm
511333b0d7eSKazunori MIYAZAWA		http://www.ietf.org/rfc/rfc3566.txt
512333b0d7eSKazunori MIYAZAWA		http://csrc.nist.gov/encryption/modes/proposedmodes/
513333b0d7eSKazunori MIYAZAWA		 xcbc-mac/xcbc-mac-spec.pdf
514333b0d7eSKazunori MIYAZAWA
515f1939f7cSShane Wangconfig CRYPTO_VMAC
516f1939f7cSShane Wang	tristate "VMAC support"
517f1939f7cSShane Wang	select CRYPTO_HASH
518f1939f7cSShane Wang	select CRYPTO_MANAGER
519f1939f7cSShane Wang	help
520f1939f7cSShane Wang	  VMAC is a message authentication algorithm designed for
521f1939f7cSShane Wang	  very high speed on 64-bit architectures.
522f1939f7cSShane Wang
523f1939f7cSShane Wang	  See also:
524f1939f7cSShane Wang	  <http://fastcrypto.org/vmac>
525f1939f7cSShane Wang
526584fffc8SSebastian Siewiorcomment "Digest"
527584fffc8SSebastian Siewior
528584fffc8SSebastian Siewiorconfig CRYPTO_CRC32C
529584fffc8SSebastian Siewior	tristate "CRC32c CRC algorithm"
5305773a3e6SHerbert Xu	select CRYPTO_HASH
5316a0962b2SDarrick J. Wong	select CRC32
5321da177e4SLinus Torvalds	help
533584fffc8SSebastian Siewior	  Castagnoli, et al Cyclic Redundancy-Check Algorithm.  Used
534584fffc8SSebastian Siewior	  by iSCSI for header and data digests and by others.
53569c35efcSHerbert Xu	  See Castagnoli93.  Module will be crc32c.
5361da177e4SLinus Torvalds
5378cb51ba8SAustin Zhangconfig CRYPTO_CRC32C_INTEL
5388cb51ba8SAustin Zhang	tristate "CRC32c INTEL hardware acceleration"
5398cb51ba8SAustin Zhang	depends on X86
5408cb51ba8SAustin Zhang	select CRYPTO_HASH
5418cb51ba8SAustin Zhang	help
5428cb51ba8SAustin Zhang	  In Intel processor with SSE4.2 supported, the processor will
5438cb51ba8SAustin Zhang	  support CRC32C implementation using hardware accelerated CRC32
5448cb51ba8SAustin Zhang	  instruction. This option will create 'crc32c-intel' module,
5458cb51ba8SAustin Zhang	  which will enable any routine to use the CRC32 instruction to
5468cb51ba8SAustin Zhang	  gain performance compared with software implementation.
5478cb51ba8SAustin Zhang	  Module will be crc32c-intel.
5488cb51ba8SAustin Zhang
5497cf31864SJean Delvareconfig CRYPTO_CRC32C_VPMSUM
5506dd7a82cSAnton Blanchard	tristate "CRC32c CRC algorithm (powerpc64)"
551c12abf34SMichael Ellerman	depends on PPC64 && ALTIVEC
5526dd7a82cSAnton Blanchard	select CRYPTO_HASH
5536dd7a82cSAnton Blanchard	select CRC32
5546dd7a82cSAnton Blanchard	help
5556dd7a82cSAnton Blanchard	  CRC32c algorithm implemented using vector polynomial multiply-sum
5566dd7a82cSAnton Blanchard	  (vpmsum) instructions, introduced in POWER8. Enable on POWER8
5576dd7a82cSAnton Blanchard	  and newer processors for improved performance.
5586dd7a82cSAnton Blanchard
5596dd7a82cSAnton Blanchard
560442a7c40SDavid S. Millerconfig CRYPTO_CRC32C_SPARC64
561442a7c40SDavid S. Miller	tristate "CRC32c CRC algorithm (SPARC64)"
562442a7c40SDavid S. Miller	depends on SPARC64
563442a7c40SDavid S. Miller	select CRYPTO_HASH
564442a7c40SDavid S. Miller	select CRC32
565442a7c40SDavid S. Miller	help
566442a7c40SDavid S. Miller	  CRC32c CRC algorithm implemented using sparc64 crypto instructions,
567442a7c40SDavid S. Miller	  when available.
568442a7c40SDavid S. Miller
56978c37d19SAlexander Boykoconfig CRYPTO_CRC32
57078c37d19SAlexander Boyko	tristate "CRC32 CRC algorithm"
57178c37d19SAlexander Boyko	select CRYPTO_HASH
57278c37d19SAlexander Boyko	select CRC32
57378c37d19SAlexander Boyko	help
57478c37d19SAlexander Boyko	  CRC-32-IEEE 802.3 cyclic redundancy-check algorithm.
57578c37d19SAlexander Boyko	  Shash crypto api wrappers to crc32_le function.
57678c37d19SAlexander Boyko
57778c37d19SAlexander Boykoconfig CRYPTO_CRC32_PCLMUL
57878c37d19SAlexander Boyko	tristate "CRC32 PCLMULQDQ hardware acceleration"
57978c37d19SAlexander Boyko	depends on X86
58078c37d19SAlexander Boyko	select CRYPTO_HASH
58178c37d19SAlexander Boyko	select CRC32
58278c37d19SAlexander Boyko	help
58378c37d19SAlexander Boyko	  From Intel Westmere and AMD Bulldozer processor with SSE4.2
58478c37d19SAlexander Boyko	  and PCLMULQDQ supported, the processor will support
58578c37d19SAlexander Boyko	  CRC32 PCLMULQDQ implementation using hardware accelerated PCLMULQDQ
58678c37d19SAlexander Boyko	  instruction. This option will create 'crc32-plcmul' module,
58778c37d19SAlexander Boyko	  which will enable any routine to use the CRC-32-IEEE 802.3 checksum
58878c37d19SAlexander Boyko	  and gain better performance as compared with the table implementation.
58978c37d19SAlexander Boyko
5904a5dc51eSMarcin Nowakowskiconfig CRYPTO_CRC32_MIPS
5914a5dc51eSMarcin Nowakowski	tristate "CRC32c and CRC32 CRC algorithm (MIPS)"
5924a5dc51eSMarcin Nowakowski	depends on MIPS_CRC_SUPPORT
5934a5dc51eSMarcin Nowakowski	select CRYPTO_HASH
5944a5dc51eSMarcin Nowakowski	help
5954a5dc51eSMarcin Nowakowski	  CRC32c and CRC32 CRC algorithms implemented using mips crypto
5964a5dc51eSMarcin Nowakowski	  instructions, when available.
5974a5dc51eSMarcin Nowakowski
5984a5dc51eSMarcin Nowakowski
59968411521SHerbert Xuconfig CRYPTO_CRCT10DIF
60068411521SHerbert Xu	tristate "CRCT10DIF algorithm"
60168411521SHerbert Xu	select CRYPTO_HASH
60268411521SHerbert Xu	help
60368411521SHerbert Xu	  CRC T10 Data Integrity Field computation is being cast as
60468411521SHerbert Xu	  a crypto transform.  This allows for faster crc t10 diff
60568411521SHerbert Xu	  transforms to be used if they are available.
60668411521SHerbert Xu
60768411521SHerbert Xuconfig CRYPTO_CRCT10DIF_PCLMUL
60868411521SHerbert Xu	tristate "CRCT10DIF PCLMULQDQ hardware acceleration"
60968411521SHerbert Xu	depends on X86 && 64BIT && CRC_T10DIF
61068411521SHerbert Xu	select CRYPTO_HASH
61168411521SHerbert Xu	help
61268411521SHerbert Xu	  For x86_64 processors with SSE4.2 and PCLMULQDQ supported,
61368411521SHerbert Xu	  CRC T10 DIF PCLMULQDQ computation can be hardware
61468411521SHerbert Xu	  accelerated PCLMULQDQ instruction. This option will create
61568411521SHerbert Xu	  'crct10dif-plcmul' module, which is faster when computing the
61668411521SHerbert Xu	  crct10dif checksum as compared with the generic table implementation.
61768411521SHerbert Xu
618b01df1c1SDaniel Axtensconfig CRYPTO_CRCT10DIF_VPMSUM
619b01df1c1SDaniel Axtens	tristate "CRC32T10DIF powerpc64 hardware acceleration"
620b01df1c1SDaniel Axtens	depends on PPC64 && ALTIVEC && CRC_T10DIF
621b01df1c1SDaniel Axtens	select CRYPTO_HASH
622b01df1c1SDaniel Axtens	help
623b01df1c1SDaniel Axtens	  CRC10T10DIF algorithm implemented using vector polynomial
624b01df1c1SDaniel Axtens	  multiply-sum (vpmsum) instructions, introduced in POWER8. Enable on
625b01df1c1SDaniel Axtens	  POWER8 and newer processors for improved performance.
626b01df1c1SDaniel Axtens
627146c8688SDaniel Axtensconfig CRYPTO_VPMSUM_TESTER
628146c8688SDaniel Axtens	tristate "Powerpc64 vpmsum hardware acceleration tester"
629146c8688SDaniel Axtens	depends on CRYPTO_CRCT10DIF_VPMSUM && CRYPTO_CRC32C_VPMSUM
630146c8688SDaniel Axtens	help
631146c8688SDaniel Axtens	  Stress test for CRC32c and CRC-T10DIF algorithms implemented with
632146c8688SDaniel Axtens	  POWER8 vpmsum instructions.
633146c8688SDaniel Axtens	  Unless you are testing these algorithms, you don't need this.
634146c8688SDaniel Axtens
6352cdc6899SHuang Yingconfig CRYPTO_GHASH
6362cdc6899SHuang Ying	tristate "GHASH digest algorithm"
6372cdc6899SHuang Ying	select CRYPTO_GF128MUL
638578c60fbSArnd Bergmann	select CRYPTO_HASH
6392cdc6899SHuang Ying	help
6402cdc6899SHuang Ying	  GHASH is message digest algorithm for GCM (Galois/Counter Mode).
6412cdc6899SHuang Ying
642f979e014SMartin Williconfig CRYPTO_POLY1305
643f979e014SMartin Willi	tristate "Poly1305 authenticator algorithm"
644578c60fbSArnd Bergmann	select CRYPTO_HASH
645f979e014SMartin Willi	help
646f979e014SMartin Willi	  Poly1305 authenticator algorithm, RFC7539.
647f979e014SMartin Willi
648f979e014SMartin Willi	  Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
649f979e014SMartin Willi	  It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
650f979e014SMartin Willi	  in IETF protocols. This is the portable C implementation of Poly1305.
651f979e014SMartin Willi
652c70f4abeSMartin Williconfig CRYPTO_POLY1305_X86_64
653b1ccc8f4SMartin Willi	tristate "Poly1305 authenticator algorithm (x86_64/SSE2/AVX2)"
654c70f4abeSMartin Willi	depends on X86 && 64BIT
655c70f4abeSMartin Willi	select CRYPTO_POLY1305
656c70f4abeSMartin Willi	help
657c70f4abeSMartin Willi	  Poly1305 authenticator algorithm, RFC7539.
658c70f4abeSMartin Willi
659c70f4abeSMartin Willi	  Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
660c70f4abeSMartin Willi	  It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
661c70f4abeSMartin Willi	  in IETF protocols. This is the x86_64 assembler implementation using SIMD
662c70f4abeSMartin Willi	  instructions.
663c70f4abeSMartin Willi
6641da177e4SLinus Torvaldsconfig CRYPTO_MD4
6651da177e4SLinus Torvalds	tristate "MD4 digest algorithm"
666808a1763SAdrian-Ken Rueegsegger	select CRYPTO_HASH
6671da177e4SLinus Torvalds	help
6681da177e4SLinus Torvalds	  MD4 message digest algorithm (RFC1320).
6691da177e4SLinus Torvalds
6701da177e4SLinus Torvaldsconfig CRYPTO_MD5
6711da177e4SLinus Torvalds	tristate "MD5 digest algorithm"
67214b75ba7SAdrian-Ken Rueegsegger	select CRYPTO_HASH
6731da177e4SLinus Torvalds	help
6741da177e4SLinus Torvalds	  MD5 message digest algorithm (RFC1321).
6751da177e4SLinus Torvalds
676d69e75deSAaro Koskinenconfig CRYPTO_MD5_OCTEON
677d69e75deSAaro Koskinen	tristate "MD5 digest algorithm (OCTEON)"
678d69e75deSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
679d69e75deSAaro Koskinen	select CRYPTO_MD5
680d69e75deSAaro Koskinen	select CRYPTO_HASH
681d69e75deSAaro Koskinen	help
682d69e75deSAaro Koskinen	  MD5 message digest algorithm (RFC1321) implemented
683d69e75deSAaro Koskinen	  using OCTEON crypto instructions, when available.
684d69e75deSAaro Koskinen
685e8e59953SMarkus Stockhausenconfig CRYPTO_MD5_PPC
686e8e59953SMarkus Stockhausen	tristate "MD5 digest algorithm (PPC)"
687e8e59953SMarkus Stockhausen	depends on PPC
688e8e59953SMarkus Stockhausen	select CRYPTO_HASH
689e8e59953SMarkus Stockhausen	help
690e8e59953SMarkus Stockhausen	  MD5 message digest algorithm (RFC1321) implemented
691e8e59953SMarkus Stockhausen	  in PPC assembler.
692e8e59953SMarkus Stockhausen
693fa4dfedcSDavid S. Millerconfig CRYPTO_MD5_SPARC64
694fa4dfedcSDavid S. Miller	tristate "MD5 digest algorithm (SPARC64)"
695fa4dfedcSDavid S. Miller	depends on SPARC64
696fa4dfedcSDavid S. Miller	select CRYPTO_MD5
697fa4dfedcSDavid S. Miller	select CRYPTO_HASH
698fa4dfedcSDavid S. Miller	help
699fa4dfedcSDavid S. Miller	  MD5 message digest algorithm (RFC1321) implemented
700fa4dfedcSDavid S. Miller	  using sparc64 crypto instructions, when available.
701fa4dfedcSDavid S. Miller
702584fffc8SSebastian Siewiorconfig CRYPTO_MICHAEL_MIC
703584fffc8SSebastian Siewior	tristate "Michael MIC keyed digest algorithm"
70419e2bf14SAdrian-Ken Rueegsegger	select CRYPTO_HASH
705584fffc8SSebastian Siewior	help
706584fffc8SSebastian Siewior	  Michael MIC is used for message integrity protection in TKIP
707584fffc8SSebastian Siewior	  (IEEE 802.11i). This algorithm is required for TKIP, but it
708584fffc8SSebastian Siewior	  should not be used for other purposes because of the weakness
709584fffc8SSebastian Siewior	  of the algorithm.
710584fffc8SSebastian Siewior
71182798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD128
71282798f90SAdrian-Ken Rueegsegger	tristate "RIPEMD-128 digest algorithm"
7137c4468bcSHerbert Xu	select CRYPTO_HASH
71482798f90SAdrian-Ken Rueegsegger	help
71582798f90SAdrian-Ken Rueegsegger	  RIPEMD-128 (ISO/IEC 10118-3:2004).
71682798f90SAdrian-Ken Rueegsegger
71782798f90SAdrian-Ken Rueegsegger	  RIPEMD-128 is a 128-bit cryptographic hash function. It should only
71835ed4b35SMichael Witten	  be used as a secure replacement for RIPEMD. For other use cases,
71982798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 should be used.
72082798f90SAdrian-Ken Rueegsegger
72182798f90SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
7226d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
72382798f90SAdrian-Ken Rueegsegger
72482798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD160
72582798f90SAdrian-Ken Rueegsegger	tristate "RIPEMD-160 digest algorithm"
726e5835fbaSHerbert Xu	select CRYPTO_HASH
72782798f90SAdrian-Ken Rueegsegger	help
72882798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 (ISO/IEC 10118-3:2004).
72982798f90SAdrian-Ken Rueegsegger
73082798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 is a 160-bit cryptographic hash function. It is intended
73182798f90SAdrian-Ken Rueegsegger	  to be used as a secure replacement for the 128-bit hash functions
732b6d44341SAdrian Bunk	  MD4, MD5 and it's predecessor RIPEMD
733b6d44341SAdrian Bunk	  (not to be confused with RIPEMD-128).
73482798f90SAdrian-Ken Rueegsegger
735b6d44341SAdrian Bunk	  It's speed is comparable to SHA1 and there are no known attacks
736b6d44341SAdrian Bunk	  against RIPEMD-160.
737534fe2c1SAdrian-Ken Rueegsegger
738534fe2c1SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
7396d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
740534fe2c1SAdrian-Ken Rueegsegger
741534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD256
742534fe2c1SAdrian-Ken Rueegsegger	tristate "RIPEMD-256 digest algorithm"
743d8a5e2e9SHerbert Xu	select CRYPTO_HASH
744534fe2c1SAdrian-Ken Rueegsegger	help
745b6d44341SAdrian Bunk	  RIPEMD-256 is an optional extension of RIPEMD-128 with a
746b6d44341SAdrian Bunk	  256 bit hash. It is intended for applications that require
747b6d44341SAdrian Bunk	  longer hash-results, without needing a larger security level
748b6d44341SAdrian Bunk	  (than RIPEMD-128).
749534fe2c1SAdrian-Ken Rueegsegger
750534fe2c1SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
7516d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
752534fe2c1SAdrian-Ken Rueegsegger
753534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD320
754534fe2c1SAdrian-Ken Rueegsegger	tristate "RIPEMD-320 digest algorithm"
7553b8efb4cSHerbert Xu	select CRYPTO_HASH
756534fe2c1SAdrian-Ken Rueegsegger	help
757b6d44341SAdrian Bunk	  RIPEMD-320 is an optional extension of RIPEMD-160 with a
758b6d44341SAdrian Bunk	  320 bit hash. It is intended for applications that require
759b6d44341SAdrian Bunk	  longer hash-results, without needing a larger security level
760b6d44341SAdrian Bunk	  (than RIPEMD-160).
761534fe2c1SAdrian-Ken Rueegsegger
76282798f90SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
7636d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
76482798f90SAdrian-Ken Rueegsegger
7651da177e4SLinus Torvaldsconfig CRYPTO_SHA1
7661da177e4SLinus Torvalds	tristate "SHA1 digest algorithm"
76754ccb367SAdrian-Ken Rueegsegger	select CRYPTO_HASH
7681da177e4SLinus Torvalds	help
7691da177e4SLinus Torvalds	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
7701da177e4SLinus Torvalds
77166be8951SMathias Krauseconfig CRYPTO_SHA1_SSSE3
772e38b6b7fStim	tristate "SHA1 digest algorithm (SSSE3/AVX/AVX2/SHA-NI)"
77366be8951SMathias Krause	depends on X86 && 64BIT
77466be8951SMathias Krause	select CRYPTO_SHA1
77566be8951SMathias Krause	select CRYPTO_HASH
77666be8951SMathias Krause	help
77766be8951SMathias Krause	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
77866be8951SMathias Krause	  using Supplemental SSE3 (SSSE3) instructions or Advanced Vector
779e38b6b7fStim	  Extensions (AVX/AVX2) or SHA-NI(SHA Extensions New Instructions),
780e38b6b7fStim	  when available.
78166be8951SMathias Krause
7828275d1aaSTim Chenconfig CRYPTO_SHA256_SSSE3
783e38b6b7fStim	tristate "SHA256 digest algorithm (SSSE3/AVX/AVX2/SHA-NI)"
7848275d1aaSTim Chen	depends on X86 && 64BIT
7858275d1aaSTim Chen	select CRYPTO_SHA256
7868275d1aaSTim Chen	select CRYPTO_HASH
7878275d1aaSTim Chen	help
7888275d1aaSTim Chen	  SHA-256 secure hash standard (DFIPS 180-2) implemented
7898275d1aaSTim Chen	  using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
7908275d1aaSTim Chen	  Extensions version 1 (AVX1), or Advanced Vector Extensions
791e38b6b7fStim	  version 2 (AVX2) instructions, or SHA-NI (SHA Extensions New
792e38b6b7fStim	  Instructions) when available.
7938275d1aaSTim Chen
79487de4579STim Chenconfig CRYPTO_SHA512_SSSE3
79587de4579STim Chen	tristate "SHA512 digest algorithm (SSSE3/AVX/AVX2)"
79687de4579STim Chen	depends on X86 && 64BIT
79787de4579STim Chen	select CRYPTO_SHA512
79887de4579STim Chen	select CRYPTO_HASH
79987de4579STim Chen	help
80087de4579STim Chen	  SHA-512 secure hash standard (DFIPS 180-2) implemented
80187de4579STim Chen	  using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
80287de4579STim Chen	  Extensions version 1 (AVX1), or Advanced Vector Extensions
80387de4579STim Chen	  version 2 (AVX2) instructions, when available.
80487de4579STim Chen
805efdb6f6eSAaro Koskinenconfig CRYPTO_SHA1_OCTEON
806efdb6f6eSAaro Koskinen	tristate "SHA1 digest algorithm (OCTEON)"
807efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
808efdb6f6eSAaro Koskinen	select CRYPTO_SHA1
809efdb6f6eSAaro Koskinen	select CRYPTO_HASH
810efdb6f6eSAaro Koskinen	help
811efdb6f6eSAaro Koskinen	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
812efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
813efdb6f6eSAaro Koskinen
8144ff28d4cSDavid S. Millerconfig CRYPTO_SHA1_SPARC64
8154ff28d4cSDavid S. Miller	tristate "SHA1 digest algorithm (SPARC64)"
8164ff28d4cSDavid S. Miller	depends on SPARC64
8174ff28d4cSDavid S. Miller	select CRYPTO_SHA1
8184ff28d4cSDavid S. Miller	select CRYPTO_HASH
8194ff28d4cSDavid S. Miller	help
8204ff28d4cSDavid S. Miller	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
8214ff28d4cSDavid S. Miller	  using sparc64 crypto instructions, when available.
8224ff28d4cSDavid S. Miller
823323a6bf1SMichael Ellermanconfig CRYPTO_SHA1_PPC
824323a6bf1SMichael Ellerman	tristate "SHA1 digest algorithm (powerpc)"
825323a6bf1SMichael Ellerman	depends on PPC
826323a6bf1SMichael Ellerman	help
827323a6bf1SMichael Ellerman	  This is the powerpc hardware accelerated implementation of the
828323a6bf1SMichael Ellerman	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
829323a6bf1SMichael Ellerman
830d9850fc5SMarkus Stockhausenconfig CRYPTO_SHA1_PPC_SPE
831d9850fc5SMarkus Stockhausen	tristate "SHA1 digest algorithm (PPC SPE)"
832d9850fc5SMarkus Stockhausen	depends on PPC && SPE
833d9850fc5SMarkus Stockhausen	help
834d9850fc5SMarkus Stockhausen	  SHA-1 secure hash standard (DFIPS 180-4) implemented
835d9850fc5SMarkus Stockhausen	  using powerpc SPE SIMD instruction set.
836d9850fc5SMarkus Stockhausen
8371da177e4SLinus Torvaldsconfig CRYPTO_SHA256
838cd12fb90SJonathan Lynch	tristate "SHA224 and SHA256 digest algorithm"
83950e109b5SAdrian-Ken Rueegsegger	select CRYPTO_HASH
8401da177e4SLinus Torvalds	help
8411da177e4SLinus Torvalds	  SHA256 secure hash standard (DFIPS 180-2).
8421da177e4SLinus Torvalds
8431da177e4SLinus Torvalds	  This version of SHA implements a 256 bit hash with 128 bits of
8441da177e4SLinus Torvalds	  security against collision attacks.
8451da177e4SLinus Torvalds
846cd12fb90SJonathan Lynch	  This code also includes SHA-224, a 224 bit hash with 112 bits
847cd12fb90SJonathan Lynch	  of security against collision attacks.
848cd12fb90SJonathan Lynch
8492ecc1e95SMarkus Stockhausenconfig CRYPTO_SHA256_PPC_SPE
8502ecc1e95SMarkus Stockhausen	tristate "SHA224 and SHA256 digest algorithm (PPC SPE)"
8512ecc1e95SMarkus Stockhausen	depends on PPC && SPE
8522ecc1e95SMarkus Stockhausen	select CRYPTO_SHA256
8532ecc1e95SMarkus Stockhausen	select CRYPTO_HASH
8542ecc1e95SMarkus Stockhausen	help
8552ecc1e95SMarkus Stockhausen	  SHA224 and SHA256 secure hash standard (DFIPS 180-2)
8562ecc1e95SMarkus Stockhausen	  implemented using powerpc SPE SIMD instruction set.
8572ecc1e95SMarkus Stockhausen
858efdb6f6eSAaro Koskinenconfig CRYPTO_SHA256_OCTEON
859efdb6f6eSAaro Koskinen	tristate "SHA224 and SHA256 digest algorithm (OCTEON)"
860efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
861efdb6f6eSAaro Koskinen	select CRYPTO_SHA256
862efdb6f6eSAaro Koskinen	select CRYPTO_HASH
863efdb6f6eSAaro Koskinen	help
864efdb6f6eSAaro Koskinen	  SHA-256 secure hash standard (DFIPS 180-2) implemented
865efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
866efdb6f6eSAaro Koskinen
86786c93b24SDavid S. Millerconfig CRYPTO_SHA256_SPARC64
86886c93b24SDavid S. Miller	tristate "SHA224 and SHA256 digest algorithm (SPARC64)"
86986c93b24SDavid S. Miller	depends on SPARC64
87086c93b24SDavid S. Miller	select CRYPTO_SHA256
87186c93b24SDavid S. Miller	select CRYPTO_HASH
87286c93b24SDavid S. Miller	help
87386c93b24SDavid S. Miller	  SHA-256 secure hash standard (DFIPS 180-2) implemented
87486c93b24SDavid S. Miller	  using sparc64 crypto instructions, when available.
87586c93b24SDavid S. Miller
8761da177e4SLinus Torvaldsconfig CRYPTO_SHA512
8771da177e4SLinus Torvalds	tristate "SHA384 and SHA512 digest algorithms"
878bd9d20dbSAdrian-Ken Rueegsegger	select CRYPTO_HASH
8791da177e4SLinus Torvalds	help
8801da177e4SLinus Torvalds	  SHA512 secure hash standard (DFIPS 180-2).
8811da177e4SLinus Torvalds
8821da177e4SLinus Torvalds	  This version of SHA implements a 512 bit hash with 256 bits of
8831da177e4SLinus Torvalds	  security against collision attacks.
8841da177e4SLinus Torvalds
8851da177e4SLinus Torvalds	  This code also includes SHA-384, a 384 bit hash with 192 bits
8861da177e4SLinus Torvalds	  of security against collision attacks.
8871da177e4SLinus Torvalds
888efdb6f6eSAaro Koskinenconfig CRYPTO_SHA512_OCTEON
889efdb6f6eSAaro Koskinen	tristate "SHA384 and SHA512 digest algorithms (OCTEON)"
890efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
891efdb6f6eSAaro Koskinen	select CRYPTO_SHA512
892efdb6f6eSAaro Koskinen	select CRYPTO_HASH
893efdb6f6eSAaro Koskinen	help
894efdb6f6eSAaro Koskinen	  SHA-512 secure hash standard (DFIPS 180-2) implemented
895efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
896efdb6f6eSAaro Koskinen
897775e0c69SDavid S. Millerconfig CRYPTO_SHA512_SPARC64
898775e0c69SDavid S. Miller	tristate "SHA384 and SHA512 digest algorithm (SPARC64)"
899775e0c69SDavid S. Miller	depends on SPARC64
900775e0c69SDavid S. Miller	select CRYPTO_SHA512
901775e0c69SDavid S. Miller	select CRYPTO_HASH
902775e0c69SDavid S. Miller	help
903775e0c69SDavid S. Miller	  SHA-512 secure hash standard (DFIPS 180-2) implemented
904775e0c69SDavid S. Miller	  using sparc64 crypto instructions, when available.
905775e0c69SDavid S. Miller
90653964b9eSJeff Garzikconfig CRYPTO_SHA3
90753964b9eSJeff Garzik	tristate "SHA3 digest algorithm"
90853964b9eSJeff Garzik	select CRYPTO_HASH
90953964b9eSJeff Garzik	help
91053964b9eSJeff Garzik	  SHA-3 secure hash standard (DFIPS 202). It's based on
91153964b9eSJeff Garzik	  cryptographic sponge function family called Keccak.
91253964b9eSJeff Garzik
91353964b9eSJeff Garzik	  References:
91453964b9eSJeff Garzik	  http://keccak.noekeon.org/
91553964b9eSJeff Garzik
9164f0fc160SGilad Ben-Yossefconfig CRYPTO_SM3
9174f0fc160SGilad Ben-Yossef	tristate "SM3 digest algorithm"
9184f0fc160SGilad Ben-Yossef	select CRYPTO_HASH
9194f0fc160SGilad Ben-Yossef	help
9204f0fc160SGilad Ben-Yossef	  SM3 secure hash function as defined by OSCCA GM/T 0004-2012 SM3).
9214f0fc160SGilad Ben-Yossef	  It is part of the Chinese Commercial Cryptography suite.
9224f0fc160SGilad Ben-Yossef
9234f0fc160SGilad Ben-Yossef	  References:
9244f0fc160SGilad Ben-Yossef	  http://www.oscca.gov.cn/UpFile/20101222141857786.pdf
9254f0fc160SGilad Ben-Yossef	  https://datatracker.ietf.org/doc/html/draft-shen-sm3-hash
9264f0fc160SGilad Ben-Yossef
9271da177e4SLinus Torvaldsconfig CRYPTO_TGR192
9281da177e4SLinus Torvalds	tristate "Tiger digest algorithms"
929f63fbd3dSAdrian-Ken Rueegsegger	select CRYPTO_HASH
9301da177e4SLinus Torvalds	help
9311da177e4SLinus Torvalds	  Tiger hash algorithm 192, 160 and 128-bit hashes
9321da177e4SLinus Torvalds
9331da177e4SLinus Torvalds	  Tiger is a hash function optimized for 64-bit processors while
9341da177e4SLinus Torvalds	  still having decent performance on 32-bit processors.
9351da177e4SLinus Torvalds	  Tiger was developed by Ross Anderson and Eli Biham.
9361da177e4SLinus Torvalds
9371da177e4SLinus Torvalds	  See also:
9381da177e4SLinus Torvalds	  <http://www.cs.technion.ac.il/~biham/Reports/Tiger/>.
9391da177e4SLinus Torvalds
940584fffc8SSebastian Siewiorconfig CRYPTO_WP512
941584fffc8SSebastian Siewior	tristate "Whirlpool digest algorithms"
9424946510bSAdrian-Ken Rueegsegger	select CRYPTO_HASH
9431da177e4SLinus Torvalds	help
944584fffc8SSebastian Siewior	  Whirlpool hash algorithm 512, 384 and 256-bit hashes
9451da177e4SLinus Torvalds
946584fffc8SSebastian Siewior	  Whirlpool-512 is part of the NESSIE cryptographic primitives.
947584fffc8SSebastian Siewior	  Whirlpool will be part of the ISO/IEC 10118-3:2003(E) standard
9481da177e4SLinus Torvalds
9491da177e4SLinus Torvalds	  See also:
9506d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/WhirlpoolPage.html>
9511da177e4SLinus Torvalds
9520e1227d3SHuang Yingconfig CRYPTO_GHASH_CLMUL_NI_INTEL
9530e1227d3SHuang Ying	tristate "GHASH digest algorithm (CLMUL-NI accelerated)"
9548af00860SRichard Weinberger	depends on X86 && 64BIT
9550e1227d3SHuang Ying	select CRYPTO_CRYPTD
9560e1227d3SHuang Ying	help
9570e1227d3SHuang Ying	  GHASH is message digest algorithm for GCM (Galois/Counter Mode).
9580e1227d3SHuang Ying	  The implementation is accelerated by CLMUL-NI of Intel.
9590e1227d3SHuang Ying
960584fffc8SSebastian Siewiorcomment "Ciphers"
9611da177e4SLinus Torvalds
9621da177e4SLinus Torvaldsconfig CRYPTO_AES
9631da177e4SLinus Torvalds	tristate "AES cipher algorithms"
964cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
9651da177e4SLinus Torvalds	help
9661da177e4SLinus Torvalds	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
9671da177e4SLinus Torvalds	  algorithm.
9681da177e4SLinus Torvalds
9691da177e4SLinus Torvalds	  Rijndael appears to be consistently a very good performer in
9701da177e4SLinus Torvalds	  both hardware and software across a wide range of computing
9711da177e4SLinus Torvalds	  environments regardless of its use in feedback or non-feedback
9721da177e4SLinus Torvalds	  modes. Its key setup time is excellent, and its key agility is
9731da177e4SLinus Torvalds	  good. Rijndael's very low memory requirements make it very well
9741da177e4SLinus Torvalds	  suited for restricted-space environments, in which it also
9751da177e4SLinus Torvalds	  demonstrates excellent performance. Rijndael's operations are
9761da177e4SLinus Torvalds	  among the easiest to defend against power and timing attacks.
9771da177e4SLinus Torvalds
9781da177e4SLinus Torvalds	  The AES specifies three key sizes: 128, 192 and 256 bits
9791da177e4SLinus Torvalds
9801da177e4SLinus Torvalds	  See <http://csrc.nist.gov/CryptoToolkit/aes/> for more information.
9811da177e4SLinus Torvalds
982b5e0b032SArd Biesheuvelconfig CRYPTO_AES_TI
983b5e0b032SArd Biesheuvel	tristate "Fixed time AES cipher"
984b5e0b032SArd Biesheuvel	select CRYPTO_ALGAPI
985b5e0b032SArd Biesheuvel	help
986b5e0b032SArd Biesheuvel	  This is a generic implementation of AES that attempts to eliminate
987b5e0b032SArd Biesheuvel	  data dependent latencies as much as possible without affecting
988b5e0b032SArd Biesheuvel	  performance too much. It is intended for use by the generic CCM
989b5e0b032SArd Biesheuvel	  and GCM drivers, and other CTR or CMAC/XCBC based modes that rely
990b5e0b032SArd Biesheuvel	  solely on encryption (although decryption is supported as well, but
991b5e0b032SArd Biesheuvel	  with a more dramatic performance hit)
992b5e0b032SArd Biesheuvel
993b5e0b032SArd Biesheuvel	  Instead of using 16 lookup tables of 1 KB each, (8 for encryption and
994b5e0b032SArd Biesheuvel	  8 for decryption), this implementation only uses just two S-boxes of
995b5e0b032SArd Biesheuvel	  256 bytes each, and attempts to eliminate data dependent latencies by
996b5e0b032SArd Biesheuvel	  prefetching the entire table into the cache at the start of each
997b5e0b032SArd Biesheuvel	  block.
998b5e0b032SArd Biesheuvel
9991da177e4SLinus Torvaldsconfig CRYPTO_AES_586
10001da177e4SLinus Torvalds	tristate "AES cipher algorithms (i586)"
1001cce9e06dSHerbert Xu	depends on (X86 || UML_X86) && !64BIT
1002cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
10035157dea8SSebastian Siewior	select CRYPTO_AES
10041da177e4SLinus Torvalds	help
10051da177e4SLinus Torvalds	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
10061da177e4SLinus Torvalds	  algorithm.
10071da177e4SLinus Torvalds
10081da177e4SLinus Torvalds	  Rijndael appears to be consistently a very good performer in
10091da177e4SLinus Torvalds	  both hardware and software across a wide range of computing
10101da177e4SLinus Torvalds	  environments regardless of its use in feedback or non-feedback
10111da177e4SLinus Torvalds	  modes. Its key setup time is excellent, and its key agility is
10121da177e4SLinus Torvalds	  good. Rijndael's very low memory requirements make it very well
10131da177e4SLinus Torvalds	  suited for restricted-space environments, in which it also
10141da177e4SLinus Torvalds	  demonstrates excellent performance. Rijndael's operations are
10151da177e4SLinus Torvalds	  among the easiest to defend against power and timing attacks.
10161da177e4SLinus Torvalds
10171da177e4SLinus Torvalds	  The AES specifies three key sizes: 128, 192 and 256 bits
10181da177e4SLinus Torvalds
10191da177e4SLinus Torvalds	  See <http://csrc.nist.gov/encryption/aes/> for more information.
10201da177e4SLinus Torvalds
1021a2a892a2SAndreas Steinmetzconfig CRYPTO_AES_X86_64
1022a2a892a2SAndreas Steinmetz	tristate "AES cipher algorithms (x86_64)"
1023cce9e06dSHerbert Xu	depends on (X86 || UML_X86) && 64BIT
1024cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
102581190b32SSebastian Siewior	select CRYPTO_AES
1026a2a892a2SAndreas Steinmetz	help
1027a2a892a2SAndreas Steinmetz	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
1028a2a892a2SAndreas Steinmetz	  algorithm.
1029a2a892a2SAndreas Steinmetz
1030a2a892a2SAndreas Steinmetz	  Rijndael appears to be consistently a very good performer in
1031a2a892a2SAndreas Steinmetz	  both hardware and software across a wide range of computing
1032a2a892a2SAndreas Steinmetz	  environments regardless of its use in feedback or non-feedback
1033a2a892a2SAndreas Steinmetz	  modes. Its key setup time is excellent, and its key agility is
1034a2a892a2SAndreas Steinmetz	  good. Rijndael's very low memory requirements make it very well
1035a2a892a2SAndreas Steinmetz	  suited for restricted-space environments, in which it also
1036a2a892a2SAndreas Steinmetz	  demonstrates excellent performance. Rijndael's operations are
1037a2a892a2SAndreas Steinmetz	  among the easiest to defend against power and timing attacks.
1038a2a892a2SAndreas Steinmetz
1039a2a892a2SAndreas Steinmetz	  The AES specifies three key sizes: 128, 192 and 256 bits
1040a2a892a2SAndreas Steinmetz
1041a2a892a2SAndreas Steinmetz	  See <http://csrc.nist.gov/encryption/aes/> for more information.
1042a2a892a2SAndreas Steinmetz
104354b6a1bdSHuang Yingconfig CRYPTO_AES_NI_INTEL
104454b6a1bdSHuang Ying	tristate "AES cipher algorithms (AES-NI)"
10458af00860SRichard Weinberger	depends on X86
104685671860SHerbert Xu	select CRYPTO_AEAD
10470d258efbSMathias Krause	select CRYPTO_AES_X86_64 if 64BIT
10480d258efbSMathias Krause	select CRYPTO_AES_586 if !64BIT
104954b6a1bdSHuang Ying	select CRYPTO_ALGAPI
105085671860SHerbert Xu	select CRYPTO_BLKCIPHER
10517643a11aSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86 if 64BIT
105285671860SHerbert Xu	select CRYPTO_SIMD
105354b6a1bdSHuang Ying	help
105454b6a1bdSHuang Ying	  Use Intel AES-NI instructions for AES algorithm.
105554b6a1bdSHuang Ying
105654b6a1bdSHuang Ying	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
105754b6a1bdSHuang Ying	  algorithm.
105854b6a1bdSHuang Ying
105954b6a1bdSHuang Ying	  Rijndael appears to be consistently a very good performer in
106054b6a1bdSHuang Ying	  both hardware and software across a wide range of computing
106154b6a1bdSHuang Ying	  environments regardless of its use in feedback or non-feedback
106254b6a1bdSHuang Ying	  modes. Its key setup time is excellent, and its key agility is
106354b6a1bdSHuang Ying	  good. Rijndael's very low memory requirements make it very well
106454b6a1bdSHuang Ying	  suited for restricted-space environments, in which it also
106554b6a1bdSHuang Ying	  demonstrates excellent performance. Rijndael's operations are
106654b6a1bdSHuang Ying	  among the easiest to defend against power and timing attacks.
106754b6a1bdSHuang Ying
106854b6a1bdSHuang Ying	  The AES specifies three key sizes: 128, 192 and 256 bits
106954b6a1bdSHuang Ying
107054b6a1bdSHuang Ying	  See <http://csrc.nist.gov/encryption/aes/> for more information.
107154b6a1bdSHuang Ying
10720d258efbSMathias Krause	  In addition to AES cipher algorithm support, the acceleration
10730d258efbSMathias Krause	  for some popular block cipher mode is supported too, including
10740d258efbSMathias Krause	  ECB, CBC, LRW, PCBC, XTS. The 64 bit version has additional
10750d258efbSMathias Krause	  acceleration for CTR.
10762cf4ac8bSHuang Ying
10779bf4852dSDavid S. Millerconfig CRYPTO_AES_SPARC64
10789bf4852dSDavid S. Miller	tristate "AES cipher algorithms (SPARC64)"
10799bf4852dSDavid S. Miller	depends on SPARC64
10809bf4852dSDavid S. Miller	select CRYPTO_CRYPTD
10819bf4852dSDavid S. Miller	select CRYPTO_ALGAPI
10829bf4852dSDavid S. Miller	help
10839bf4852dSDavid S. Miller	  Use SPARC64 crypto opcodes for AES algorithm.
10849bf4852dSDavid S. Miller
10859bf4852dSDavid S. Miller	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
10869bf4852dSDavid S. Miller	  algorithm.
10879bf4852dSDavid S. Miller
10889bf4852dSDavid S. Miller	  Rijndael appears to be consistently a very good performer in
10899bf4852dSDavid S. Miller	  both hardware and software across a wide range of computing
10909bf4852dSDavid S. Miller	  environments regardless of its use in feedback or non-feedback
10919bf4852dSDavid S. Miller	  modes. Its key setup time is excellent, and its key agility is
10929bf4852dSDavid S. Miller	  good. Rijndael's very low memory requirements make it very well
10939bf4852dSDavid S. Miller	  suited for restricted-space environments, in which it also
10949bf4852dSDavid S. Miller	  demonstrates excellent performance. Rijndael's operations are
10959bf4852dSDavid S. Miller	  among the easiest to defend against power and timing attacks.
10969bf4852dSDavid S. Miller
10979bf4852dSDavid S. Miller	  The AES specifies three key sizes: 128, 192 and 256 bits
10989bf4852dSDavid S. Miller
10999bf4852dSDavid S. Miller	  See <http://csrc.nist.gov/encryption/aes/> for more information.
11009bf4852dSDavid S. Miller
11019bf4852dSDavid S. Miller	  In addition to AES cipher algorithm support, the acceleration
11029bf4852dSDavid S. Miller	  for some popular block cipher mode is supported too, including
11039bf4852dSDavid S. Miller	  ECB and CBC.
11049bf4852dSDavid S. Miller
1105504c6143SMarkus Stockhausenconfig CRYPTO_AES_PPC_SPE
1106504c6143SMarkus Stockhausen	tristate "AES cipher algorithms (PPC SPE)"
1107504c6143SMarkus Stockhausen	depends on PPC && SPE
1108504c6143SMarkus Stockhausen	help
1109504c6143SMarkus Stockhausen	  AES cipher algorithms (FIPS-197). Additionally the acceleration
1110504c6143SMarkus Stockhausen	  for popular block cipher modes ECB, CBC, CTR and XTS is supported.
1111504c6143SMarkus Stockhausen	  This module should only be used for low power (router) devices
1112504c6143SMarkus Stockhausen	  without hardware AES acceleration (e.g. caam crypto). It reduces the
1113504c6143SMarkus Stockhausen	  size of the AES tables from 16KB to 8KB + 256 bytes and mitigates
1114504c6143SMarkus Stockhausen	  timining attacks. Nevertheless it might be not as secure as other
1115504c6143SMarkus Stockhausen	  architecture specific assembler implementations that work on 1KB
1116504c6143SMarkus Stockhausen	  tables or 256 bytes S-boxes.
1117504c6143SMarkus Stockhausen
11181da177e4SLinus Torvaldsconfig CRYPTO_ANUBIS
11191da177e4SLinus Torvalds	tristate "Anubis cipher algorithm"
1120cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
11211da177e4SLinus Torvalds	help
11221da177e4SLinus Torvalds	  Anubis cipher algorithm.
11231da177e4SLinus Torvalds
11241da177e4SLinus Torvalds	  Anubis is a variable key length cipher which can use keys from
11251da177e4SLinus Torvalds	  128 bits to 320 bits in length.  It was evaluated as a entrant
11261da177e4SLinus Torvalds	  in the NESSIE competition.
11271da177e4SLinus Torvalds
11281da177e4SLinus Torvalds	  See also:
11296d8de74cSJustin P. Mattock	  <https://www.cosic.esat.kuleuven.be/nessie/reports/>
11306d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/AnubisPage.html>
11311da177e4SLinus Torvalds
1132584fffc8SSebastian Siewiorconfig CRYPTO_ARC4
1133584fffc8SSebastian Siewior	tristate "ARC4 cipher algorithm"
1134b9b0f080SSebastian Andrzej Siewior	select CRYPTO_BLKCIPHER
1135e2ee95b8SHye-Shik Chang	help
1136584fffc8SSebastian Siewior	  ARC4 cipher algorithm.
1137e2ee95b8SHye-Shik Chang
1138584fffc8SSebastian Siewior	  ARC4 is a stream cipher using keys ranging from 8 bits to 2048
1139584fffc8SSebastian Siewior	  bits in length.  This algorithm is required for driver-based
1140584fffc8SSebastian Siewior	  WEP, but it should not be for other purposes because of the
1141584fffc8SSebastian Siewior	  weakness of the algorithm.
1142584fffc8SSebastian Siewior
1143584fffc8SSebastian Siewiorconfig CRYPTO_BLOWFISH
1144584fffc8SSebastian Siewior	tristate "Blowfish cipher algorithm"
1145584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
114652ba867cSJussi Kivilinna	select CRYPTO_BLOWFISH_COMMON
1147584fffc8SSebastian Siewior	help
1148584fffc8SSebastian Siewior	  Blowfish cipher algorithm, by Bruce Schneier.
1149584fffc8SSebastian Siewior
1150584fffc8SSebastian Siewior	  This is a variable key length cipher which can use keys from 32
1151584fffc8SSebastian Siewior	  bits to 448 bits in length.  It's fast, simple and specifically
1152584fffc8SSebastian Siewior	  designed for use on "large microprocessors".
1153e2ee95b8SHye-Shik Chang
1154e2ee95b8SHye-Shik Chang	  See also:
1155584fffc8SSebastian Siewior	  <http://www.schneier.com/blowfish.html>
1156584fffc8SSebastian Siewior
115752ba867cSJussi Kivilinnaconfig CRYPTO_BLOWFISH_COMMON
115852ba867cSJussi Kivilinna	tristate
115952ba867cSJussi Kivilinna	help
116052ba867cSJussi Kivilinna	  Common parts of the Blowfish cipher algorithm shared by the
116152ba867cSJussi Kivilinna	  generic c and the assembler implementations.
116252ba867cSJussi Kivilinna
116352ba867cSJussi Kivilinna	  See also:
116452ba867cSJussi Kivilinna	  <http://www.schneier.com/blowfish.html>
116552ba867cSJussi Kivilinna
116664b94ceaSJussi Kivilinnaconfig CRYPTO_BLOWFISH_X86_64
116764b94ceaSJussi Kivilinna	tristate "Blowfish cipher algorithm (x86_64)"
1168f21a7c19SAl Viro	depends on X86 && 64BIT
1169c1679171SEric Biggers	select CRYPTO_BLKCIPHER
117064b94ceaSJussi Kivilinna	select CRYPTO_BLOWFISH_COMMON
117164b94ceaSJussi Kivilinna	help
117264b94ceaSJussi Kivilinna	  Blowfish cipher algorithm (x86_64), by Bruce Schneier.
117364b94ceaSJussi Kivilinna
117464b94ceaSJussi Kivilinna	  This is a variable key length cipher which can use keys from 32
117564b94ceaSJussi Kivilinna	  bits to 448 bits in length.  It's fast, simple and specifically
117664b94ceaSJussi Kivilinna	  designed for use on "large microprocessors".
117764b94ceaSJussi Kivilinna
117864b94ceaSJussi Kivilinna	  See also:
117964b94ceaSJussi Kivilinna	  <http://www.schneier.com/blowfish.html>
118064b94ceaSJussi Kivilinna
1181584fffc8SSebastian Siewiorconfig CRYPTO_CAMELLIA
1182584fffc8SSebastian Siewior	tristate "Camellia cipher algorithms"
1183584fffc8SSebastian Siewior	depends on CRYPTO
1184584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1185584fffc8SSebastian Siewior	help
1186584fffc8SSebastian Siewior	  Camellia cipher algorithms module.
1187584fffc8SSebastian Siewior
1188584fffc8SSebastian Siewior	  Camellia is a symmetric key block cipher developed jointly
1189584fffc8SSebastian Siewior	  at NTT and Mitsubishi Electric Corporation.
1190584fffc8SSebastian Siewior
1191584fffc8SSebastian Siewior	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1192584fffc8SSebastian Siewior
1193584fffc8SSebastian Siewior	  See also:
1194584fffc8SSebastian Siewior	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1195584fffc8SSebastian Siewior
11960b95ec56SJussi Kivilinnaconfig CRYPTO_CAMELLIA_X86_64
11970b95ec56SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64)"
1198f21a7c19SAl Viro	depends on X86 && 64BIT
11990b95ec56SJussi Kivilinna	depends on CRYPTO
12001af6d037SEric Biggers	select CRYPTO_BLKCIPHER
1201964263afSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
12020b95ec56SJussi Kivilinna	help
12030b95ec56SJussi Kivilinna	  Camellia cipher algorithm module (x86_64).
12040b95ec56SJussi Kivilinna
12050b95ec56SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
12060b95ec56SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
12070b95ec56SJussi Kivilinna
12080b95ec56SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
12090b95ec56SJussi Kivilinna
12100b95ec56SJussi Kivilinna	  See also:
12110b95ec56SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
12120b95ec56SJussi Kivilinna
1213d9b1d2e7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1214d9b1d2e7SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX)"
1215d9b1d2e7SJussi Kivilinna	depends on X86 && 64BIT
1216d9b1d2e7SJussi Kivilinna	depends on CRYPTO
121744893bc2SEric Biggers	select CRYPTO_BLKCIPHER
1218d9b1d2e7SJussi Kivilinna	select CRYPTO_CAMELLIA_X86_64
121944893bc2SEric Biggers	select CRYPTO_GLUE_HELPER_X86
122044893bc2SEric Biggers	select CRYPTO_SIMD
1221d9b1d2e7SJussi Kivilinna	select CRYPTO_XTS
1222d9b1d2e7SJussi Kivilinna	help
1223d9b1d2e7SJussi Kivilinna	  Camellia cipher algorithm module (x86_64/AES-NI/AVX).
1224d9b1d2e7SJussi Kivilinna
1225d9b1d2e7SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
1226d9b1d2e7SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
1227d9b1d2e7SJussi Kivilinna
1228d9b1d2e7SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1229d9b1d2e7SJussi Kivilinna
1230d9b1d2e7SJussi Kivilinna	  See also:
1231d9b1d2e7SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1232d9b1d2e7SJussi Kivilinna
1233f3f935a7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX2_X86_64
1234f3f935a7SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX2)"
1235f3f935a7SJussi Kivilinna	depends on X86 && 64BIT
1236f3f935a7SJussi Kivilinna	depends on CRYPTO
1237f3f935a7SJussi Kivilinna	select CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1238f3f935a7SJussi Kivilinna	help
1239f3f935a7SJussi Kivilinna	  Camellia cipher algorithm module (x86_64/AES-NI/AVX2).
1240f3f935a7SJussi Kivilinna
1241f3f935a7SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
1242f3f935a7SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
1243f3f935a7SJussi Kivilinna
1244f3f935a7SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1245f3f935a7SJussi Kivilinna
1246f3f935a7SJussi Kivilinna	  See also:
1247f3f935a7SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1248f3f935a7SJussi Kivilinna
124981658ad0SDavid S. Millerconfig CRYPTO_CAMELLIA_SPARC64
125081658ad0SDavid S. Miller	tristate "Camellia cipher algorithm (SPARC64)"
125181658ad0SDavid S. Miller	depends on SPARC64
125281658ad0SDavid S. Miller	depends on CRYPTO
125381658ad0SDavid S. Miller	select CRYPTO_ALGAPI
125481658ad0SDavid S. Miller	help
125581658ad0SDavid S. Miller	  Camellia cipher algorithm module (SPARC64).
125681658ad0SDavid S. Miller
125781658ad0SDavid S. Miller	  Camellia is a symmetric key block cipher developed jointly
125881658ad0SDavid S. Miller	  at NTT and Mitsubishi Electric Corporation.
125981658ad0SDavid S. Miller
126081658ad0SDavid S. Miller	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
126181658ad0SDavid S. Miller
126281658ad0SDavid S. Miller	  See also:
126381658ad0SDavid S. Miller	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
126481658ad0SDavid S. Miller
1265044ab525SJussi Kivilinnaconfig CRYPTO_CAST_COMMON
1266044ab525SJussi Kivilinna	tristate
1267044ab525SJussi Kivilinna	help
1268044ab525SJussi Kivilinna	  Common parts of the CAST cipher algorithms shared by the
1269044ab525SJussi Kivilinna	  generic c and the assembler implementations.
1270044ab525SJussi Kivilinna
1271584fffc8SSebastian Siewiorconfig CRYPTO_CAST5
1272584fffc8SSebastian Siewior	tristate "CAST5 (CAST-128) cipher algorithm"
1273584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1274044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
1275584fffc8SSebastian Siewior	help
1276584fffc8SSebastian Siewior	  The CAST5 encryption algorithm (synonymous with CAST-128) is
1277584fffc8SSebastian Siewior	  described in RFC2144.
1278584fffc8SSebastian Siewior
12794d6d6a2cSJohannes Goetzfriedconfig CRYPTO_CAST5_AVX_X86_64
12804d6d6a2cSJohannes Goetzfried	tristate "CAST5 (CAST-128) cipher algorithm (x86_64/AVX)"
12814d6d6a2cSJohannes Goetzfried	depends on X86 && 64BIT
12821e63183aSEric Biggers	select CRYPTO_BLKCIPHER
12834d6d6a2cSJohannes Goetzfried	select CRYPTO_CAST5
12841e63183aSEric Biggers	select CRYPTO_CAST_COMMON
12851e63183aSEric Biggers	select CRYPTO_SIMD
12864d6d6a2cSJohannes Goetzfried	help
12874d6d6a2cSJohannes Goetzfried	  The CAST5 encryption algorithm (synonymous with CAST-128) is
12884d6d6a2cSJohannes Goetzfried	  described in RFC2144.
12894d6d6a2cSJohannes Goetzfried
12904d6d6a2cSJohannes Goetzfried	  This module provides the Cast5 cipher algorithm that processes
12914d6d6a2cSJohannes Goetzfried	  sixteen blocks parallel using the AVX instruction set.
12924d6d6a2cSJohannes Goetzfried
1293584fffc8SSebastian Siewiorconfig CRYPTO_CAST6
1294584fffc8SSebastian Siewior	tristate "CAST6 (CAST-256) cipher algorithm"
1295584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1296044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
1297584fffc8SSebastian Siewior	help
1298584fffc8SSebastian Siewior	  The CAST6 encryption algorithm (synonymous with CAST-256) is
1299584fffc8SSebastian Siewior	  described in RFC2612.
1300584fffc8SSebastian Siewior
13014ea1277dSJohannes Goetzfriedconfig CRYPTO_CAST6_AVX_X86_64
13024ea1277dSJohannes Goetzfried	tristate "CAST6 (CAST-256) cipher algorithm (x86_64/AVX)"
13034ea1277dSJohannes Goetzfried	depends on X86 && 64BIT
13044bd96924SEric Biggers	select CRYPTO_BLKCIPHER
13054ea1277dSJohannes Goetzfried	select CRYPTO_CAST6
13064bd96924SEric Biggers	select CRYPTO_CAST_COMMON
13074bd96924SEric Biggers	select CRYPTO_GLUE_HELPER_X86
13084bd96924SEric Biggers	select CRYPTO_SIMD
13094ea1277dSJohannes Goetzfried	select CRYPTO_XTS
13104ea1277dSJohannes Goetzfried	help
13114ea1277dSJohannes Goetzfried	  The CAST6 encryption algorithm (synonymous with CAST-256) is
13124ea1277dSJohannes Goetzfried	  described in RFC2612.
13134ea1277dSJohannes Goetzfried
13144ea1277dSJohannes Goetzfried	  This module provides the Cast6 cipher algorithm that processes
13154ea1277dSJohannes Goetzfried	  eight blocks parallel using the AVX instruction set.
13164ea1277dSJohannes Goetzfried
1317584fffc8SSebastian Siewiorconfig CRYPTO_DES
1318584fffc8SSebastian Siewior	tristate "DES and Triple DES EDE cipher algorithms"
1319584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1320584fffc8SSebastian Siewior	help
1321584fffc8SSebastian Siewior	  DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3).
1322584fffc8SSebastian Siewior
1323c5aac2dfSDavid S. Millerconfig CRYPTO_DES_SPARC64
1324c5aac2dfSDavid S. Miller	tristate "DES and Triple DES EDE cipher algorithms (SPARC64)"
132597da37b3SDave Jones	depends on SPARC64
1326c5aac2dfSDavid S. Miller	select CRYPTO_ALGAPI
1327c5aac2dfSDavid S. Miller	select CRYPTO_DES
1328c5aac2dfSDavid S. Miller	help
1329c5aac2dfSDavid S. Miller	  DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3),
1330c5aac2dfSDavid S. Miller	  optimized using SPARC64 crypto opcodes.
1331c5aac2dfSDavid S. Miller
13326574e6c6SJussi Kivilinnaconfig CRYPTO_DES3_EDE_X86_64
13336574e6c6SJussi Kivilinna	tristate "Triple DES EDE cipher algorithm (x86-64)"
13346574e6c6SJussi Kivilinna	depends on X86 && 64BIT
133509c0f03bSEric Biggers	select CRYPTO_BLKCIPHER
13366574e6c6SJussi Kivilinna	select CRYPTO_DES
13376574e6c6SJussi Kivilinna	help
13386574e6c6SJussi Kivilinna	  Triple DES EDE (FIPS 46-3) algorithm.
13396574e6c6SJussi Kivilinna
13406574e6c6SJussi Kivilinna	  This module provides implementation of the Triple DES EDE cipher
13416574e6c6SJussi Kivilinna	  algorithm that is optimized for x86-64 processors. Two versions of
13426574e6c6SJussi Kivilinna	  algorithm are provided; regular processing one input block and
13436574e6c6SJussi Kivilinna	  one that processes three blocks parallel.
13446574e6c6SJussi Kivilinna
1345584fffc8SSebastian Siewiorconfig CRYPTO_FCRYPT
1346584fffc8SSebastian Siewior	tristate "FCrypt cipher algorithm"
1347584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1348584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
1349584fffc8SSebastian Siewior	help
1350584fffc8SSebastian Siewior	  FCrypt algorithm used by RxRPC.
1351584fffc8SSebastian Siewior
1352584fffc8SSebastian Siewiorconfig CRYPTO_KHAZAD
1353584fffc8SSebastian Siewior	tristate "Khazad cipher algorithm"
1354584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1355584fffc8SSebastian Siewior	help
1356584fffc8SSebastian Siewior	  Khazad cipher algorithm.
1357584fffc8SSebastian Siewior
1358584fffc8SSebastian Siewior	  Khazad was a finalist in the initial NESSIE competition.  It is
1359584fffc8SSebastian Siewior	  an algorithm optimized for 64-bit processors with good performance
1360584fffc8SSebastian Siewior	  on 32-bit processors.  Khazad uses an 128 bit key size.
1361584fffc8SSebastian Siewior
1362584fffc8SSebastian Siewior	  See also:
13636d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/KhazadPage.html>
1364e2ee95b8SHye-Shik Chang
13652407d608STan Swee Hengconfig CRYPTO_SALSA20
13663b4afaf2SKees Cook	tristate "Salsa20 stream cipher algorithm"
13672407d608STan Swee Heng	select CRYPTO_BLKCIPHER
13682407d608STan Swee Heng	help
13692407d608STan Swee Heng	  Salsa20 stream cipher algorithm.
13702407d608STan Swee Heng
13712407d608STan Swee Heng	  Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT
13722407d608STan Swee Heng	  Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/>
13732407d608STan Swee Heng
13742407d608STan Swee Heng	  The Salsa20 stream cipher algorithm is designed by Daniel J.
13752407d608STan Swee Heng	  Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html>
13761da177e4SLinus Torvalds
1377c08d0e64SMartin Williconfig CRYPTO_CHACHA20
1378c08d0e64SMartin Willi	tristate "ChaCha20 cipher algorithm"
1379c08d0e64SMartin Willi	select CRYPTO_BLKCIPHER
1380c08d0e64SMartin Willi	help
1381c08d0e64SMartin Willi	  ChaCha20 cipher algorithm, RFC7539.
1382c08d0e64SMartin Willi
1383c08d0e64SMartin Willi	  ChaCha20 is a 256-bit high-speed stream cipher designed by Daniel J.
1384c08d0e64SMartin Willi	  Bernstein and further specified in RFC7539 for use in IETF protocols.
1385c08d0e64SMartin Willi	  This is the portable C implementation of ChaCha20.
1386c08d0e64SMartin Willi
1387c08d0e64SMartin Willi	  See also:
1388c08d0e64SMartin Willi	  <http://cr.yp.to/chacha/chacha-20080128.pdf>
1389c08d0e64SMartin Willi
1390c9320b6dSMartin Williconfig CRYPTO_CHACHA20_X86_64
13913d1e93cdSMartin Willi	tristate "ChaCha20 cipher algorithm (x86_64/SSSE3/AVX2)"
1392c9320b6dSMartin Willi	depends on X86 && 64BIT
1393c9320b6dSMartin Willi	select CRYPTO_BLKCIPHER
1394c9320b6dSMartin Willi	select CRYPTO_CHACHA20
1395c9320b6dSMartin Willi	help
1396c9320b6dSMartin Willi	  ChaCha20 cipher algorithm, RFC7539.
1397c9320b6dSMartin Willi
1398c9320b6dSMartin Willi	  ChaCha20 is a 256-bit high-speed stream cipher designed by Daniel J.
1399c9320b6dSMartin Willi	  Bernstein and further specified in RFC7539 for use in IETF protocols.
1400c9320b6dSMartin Willi	  This is the x86_64 assembler implementation using SIMD instructions.
1401c9320b6dSMartin Willi
1402c9320b6dSMartin Willi	  See also:
1403c9320b6dSMartin Willi	  <http://cr.yp.to/chacha/chacha-20080128.pdf>
1404c9320b6dSMartin Willi
1405584fffc8SSebastian Siewiorconfig CRYPTO_SEED
1406584fffc8SSebastian Siewior	tristate "SEED cipher algorithm"
1407584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1408584fffc8SSebastian Siewior	help
1409584fffc8SSebastian Siewior	  SEED cipher algorithm (RFC4269).
1410584fffc8SSebastian Siewior
1411584fffc8SSebastian Siewior	  SEED is a 128-bit symmetric key block cipher that has been
1412584fffc8SSebastian Siewior	  developed by KISA (Korea Information Security Agency) as a
1413584fffc8SSebastian Siewior	  national standard encryption algorithm of the Republic of Korea.
1414584fffc8SSebastian Siewior	  It is a 16 round block cipher with the key size of 128 bit.
1415584fffc8SSebastian Siewior
1416584fffc8SSebastian Siewior	  See also:
1417584fffc8SSebastian Siewior	  <http://www.kisa.or.kr/kisa/seed/jsp/seed_eng.jsp>
1418584fffc8SSebastian Siewior
1419584fffc8SSebastian Siewiorconfig CRYPTO_SERPENT
1420584fffc8SSebastian Siewior	tristate "Serpent cipher algorithm"
1421584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1422584fffc8SSebastian Siewior	help
1423584fffc8SSebastian Siewior	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1424584fffc8SSebastian Siewior
1425584fffc8SSebastian Siewior	  Keys are allowed to be from 0 to 256 bits in length, in steps
1426584fffc8SSebastian Siewior	  of 8 bits.  Also includes the 'Tnepres' algorithm, a reversed
1427584fffc8SSebastian Siewior	  variant of Serpent for compatibility with old kerneli.org code.
1428584fffc8SSebastian Siewior
1429584fffc8SSebastian Siewior	  See also:
1430584fffc8SSebastian Siewior	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1431584fffc8SSebastian Siewior
1432937c30d7SJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_X86_64
1433937c30d7SJussi Kivilinna	tristate "Serpent cipher algorithm (x86_64/SSE2)"
1434937c30d7SJussi Kivilinna	depends on X86 && 64BIT
1435e0f409dcSEric Biggers	select CRYPTO_BLKCIPHER
1436596d8750SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1437937c30d7SJussi Kivilinna	select CRYPTO_SERPENT
1438e0f409dcSEric Biggers	select CRYPTO_SIMD
1439937c30d7SJussi Kivilinna	help
1440937c30d7SJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1441937c30d7SJussi Kivilinna
1442937c30d7SJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
1443937c30d7SJussi Kivilinna	  of 8 bits.
1444937c30d7SJussi Kivilinna
14451e6232f8SMasanari Iida	  This module provides Serpent cipher algorithm that processes eight
1446937c30d7SJussi Kivilinna	  blocks parallel using SSE2 instruction set.
1447937c30d7SJussi Kivilinna
1448937c30d7SJussi Kivilinna	  See also:
1449937c30d7SJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1450937c30d7SJussi Kivilinna
1451251496dbSJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_586
1452251496dbSJussi Kivilinna	tristate "Serpent cipher algorithm (i586/SSE2)"
1453251496dbSJussi Kivilinna	depends on X86 && !64BIT
1454e0f409dcSEric Biggers	select CRYPTO_BLKCIPHER
1455596d8750SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1456251496dbSJussi Kivilinna	select CRYPTO_SERPENT
1457e0f409dcSEric Biggers	select CRYPTO_SIMD
1458251496dbSJussi Kivilinna	help
1459251496dbSJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1460251496dbSJussi Kivilinna
1461251496dbSJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
1462251496dbSJussi Kivilinna	  of 8 bits.
1463251496dbSJussi Kivilinna
1464251496dbSJussi Kivilinna	  This module provides Serpent cipher algorithm that processes four
1465251496dbSJussi Kivilinna	  blocks parallel using SSE2 instruction set.
1466251496dbSJussi Kivilinna
1467251496dbSJussi Kivilinna	  See also:
1468251496dbSJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1469251496dbSJussi Kivilinna
14707efe4076SJohannes Goetzfriedconfig CRYPTO_SERPENT_AVX_X86_64
14717efe4076SJohannes Goetzfried	tristate "Serpent cipher algorithm (x86_64/AVX)"
14727efe4076SJohannes Goetzfried	depends on X86 && 64BIT
1473e16bf974SEric Biggers	select CRYPTO_BLKCIPHER
14741d0debbdSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
14757efe4076SJohannes Goetzfried	select CRYPTO_SERPENT
1476e16bf974SEric Biggers	select CRYPTO_SIMD
14777efe4076SJohannes Goetzfried	select CRYPTO_XTS
14787efe4076SJohannes Goetzfried	help
14797efe4076SJohannes Goetzfried	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
14807efe4076SJohannes Goetzfried
14817efe4076SJohannes Goetzfried	  Keys are allowed to be from 0 to 256 bits in length, in steps
14827efe4076SJohannes Goetzfried	  of 8 bits.
14837efe4076SJohannes Goetzfried
14847efe4076SJohannes Goetzfried	  This module provides the Serpent cipher algorithm that processes
14857efe4076SJohannes Goetzfried	  eight blocks parallel using the AVX instruction set.
14867efe4076SJohannes Goetzfried
14877efe4076SJohannes Goetzfried	  See also:
14887efe4076SJohannes Goetzfried	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
14897efe4076SJohannes Goetzfried
149056d76c96SJussi Kivilinnaconfig CRYPTO_SERPENT_AVX2_X86_64
149156d76c96SJussi Kivilinna	tristate "Serpent cipher algorithm (x86_64/AVX2)"
149256d76c96SJussi Kivilinna	depends on X86 && 64BIT
149356d76c96SJussi Kivilinna	select CRYPTO_SERPENT_AVX_X86_64
149456d76c96SJussi Kivilinna	help
149556d76c96SJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
149656d76c96SJussi Kivilinna
149756d76c96SJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
149856d76c96SJussi Kivilinna	  of 8 bits.
149956d76c96SJussi Kivilinna
150056d76c96SJussi Kivilinna	  This module provides Serpent cipher algorithm that processes 16
150156d76c96SJussi Kivilinna	  blocks parallel using AVX2 instruction set.
150256d76c96SJussi Kivilinna
150356d76c96SJussi Kivilinna	  See also:
150456d76c96SJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
150556d76c96SJussi Kivilinna
1506747c8ce4SGilad Ben-Yossefconfig CRYPTO_SM4
1507747c8ce4SGilad Ben-Yossef	tristate "SM4 cipher algorithm"
1508747c8ce4SGilad Ben-Yossef	select CRYPTO_ALGAPI
1509747c8ce4SGilad Ben-Yossef	help
1510747c8ce4SGilad Ben-Yossef	  SM4 cipher algorithms (OSCCA GB/T 32907-2016).
1511747c8ce4SGilad Ben-Yossef
1512747c8ce4SGilad Ben-Yossef	  SM4 (GBT.32907-2016) is a cryptographic standard issued by the
1513747c8ce4SGilad Ben-Yossef	  Organization of State Commercial Administration of China (OSCCA)
1514747c8ce4SGilad Ben-Yossef	  as an authorized cryptographic algorithms for the use within China.
1515747c8ce4SGilad Ben-Yossef
1516747c8ce4SGilad Ben-Yossef	  SMS4 was originally created for use in protecting wireless
1517747c8ce4SGilad Ben-Yossef	  networks, and is mandated in the Chinese National Standard for
1518747c8ce4SGilad Ben-Yossef	  Wireless LAN WAPI (Wired Authentication and Privacy Infrastructure)
1519747c8ce4SGilad Ben-Yossef	  (GB.15629.11-2003).
1520747c8ce4SGilad Ben-Yossef
1521747c8ce4SGilad Ben-Yossef	  The latest SM4 standard (GBT.32907-2016) was proposed by OSCCA and
1522747c8ce4SGilad Ben-Yossef	  standardized through TC 260 of the Standardization Administration
1523747c8ce4SGilad Ben-Yossef	  of the People's Republic of China (SAC).
1524747c8ce4SGilad Ben-Yossef
1525747c8ce4SGilad Ben-Yossef	  The input, output, and key of SMS4 are each 128 bits.
1526747c8ce4SGilad Ben-Yossef
1527747c8ce4SGilad Ben-Yossef	  See also: <https://eprint.iacr.org/2008/329.pdf>
1528747c8ce4SGilad Ben-Yossef
1529747c8ce4SGilad Ben-Yossef	  If unsure, say N.
1530747c8ce4SGilad Ben-Yossef
1531584fffc8SSebastian Siewiorconfig CRYPTO_TEA
1532584fffc8SSebastian Siewior	tristate "TEA, XTEA and XETA cipher algorithms"
1533584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1534584fffc8SSebastian Siewior	help
1535584fffc8SSebastian Siewior	  TEA cipher algorithm.
1536584fffc8SSebastian Siewior
1537584fffc8SSebastian Siewior	  Tiny Encryption Algorithm is a simple cipher that uses
1538584fffc8SSebastian Siewior	  many rounds for security.  It is very fast and uses
1539584fffc8SSebastian Siewior	  little memory.
1540584fffc8SSebastian Siewior
1541584fffc8SSebastian Siewior	  Xtendend Tiny Encryption Algorithm is a modification to
1542584fffc8SSebastian Siewior	  the TEA algorithm to address a potential key weakness
1543584fffc8SSebastian Siewior	  in the TEA algorithm.
1544584fffc8SSebastian Siewior
1545584fffc8SSebastian Siewior	  Xtendend Encryption Tiny Algorithm is a mis-implementation
1546584fffc8SSebastian Siewior	  of the XTEA algorithm for compatibility purposes.
1547584fffc8SSebastian Siewior
1548584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH
1549584fffc8SSebastian Siewior	tristate "Twofish cipher algorithm"
1550584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1551584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1552584fffc8SSebastian Siewior	help
1553584fffc8SSebastian Siewior	  Twofish cipher algorithm.
1554584fffc8SSebastian Siewior
1555584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1556584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1557584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1558584fffc8SSebastian Siewior	  bits.
1559584fffc8SSebastian Siewior
1560584fffc8SSebastian Siewior	  See also:
1561584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1562584fffc8SSebastian Siewior
1563584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_COMMON
1564584fffc8SSebastian Siewior	tristate
1565584fffc8SSebastian Siewior	help
1566584fffc8SSebastian Siewior	  Common parts of the Twofish cipher algorithm shared by the
1567584fffc8SSebastian Siewior	  generic c and the assembler implementations.
1568584fffc8SSebastian Siewior
1569584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_586
1570584fffc8SSebastian Siewior	tristate "Twofish cipher algorithms (i586)"
1571584fffc8SSebastian Siewior	depends on (X86 || UML_X86) && !64BIT
1572584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1573584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1574584fffc8SSebastian Siewior	help
1575584fffc8SSebastian Siewior	  Twofish cipher algorithm.
1576584fffc8SSebastian Siewior
1577584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1578584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1579584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1580584fffc8SSebastian Siewior	  bits.
1581584fffc8SSebastian Siewior
1582584fffc8SSebastian Siewior	  See also:
1583584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1584584fffc8SSebastian Siewior
1585584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_X86_64
1586584fffc8SSebastian Siewior	tristate "Twofish cipher algorithm (x86_64)"
1587584fffc8SSebastian Siewior	depends on (X86 || UML_X86) && 64BIT
1588584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1589584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1590584fffc8SSebastian Siewior	help
1591584fffc8SSebastian Siewior	  Twofish cipher algorithm (x86_64).
1592584fffc8SSebastian Siewior
1593584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1594584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1595584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1596584fffc8SSebastian Siewior	  bits.
1597584fffc8SSebastian Siewior
1598584fffc8SSebastian Siewior	  See also:
1599584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1600584fffc8SSebastian Siewior
16018280daadSJussi Kivilinnaconfig CRYPTO_TWOFISH_X86_64_3WAY
16028280daadSJussi Kivilinna	tristate "Twofish cipher algorithm (x86_64, 3-way parallel)"
1603f21a7c19SAl Viro	depends on X86 && 64BIT
160437992fa4SEric Biggers	select CRYPTO_BLKCIPHER
16058280daadSJussi Kivilinna	select CRYPTO_TWOFISH_COMMON
16068280daadSJussi Kivilinna	select CRYPTO_TWOFISH_X86_64
1607414cb5e7SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
16088280daadSJussi Kivilinna	help
16098280daadSJussi Kivilinna	  Twofish cipher algorithm (x86_64, 3-way parallel).
16108280daadSJussi Kivilinna
16118280daadSJussi Kivilinna	  Twofish was submitted as an AES (Advanced Encryption Standard)
16128280daadSJussi Kivilinna	  candidate cipher by researchers at CounterPane Systems.  It is a
16138280daadSJussi Kivilinna	  16 round block cipher supporting key sizes of 128, 192, and 256
16148280daadSJussi Kivilinna	  bits.
16158280daadSJussi Kivilinna
16168280daadSJussi Kivilinna	  This module provides Twofish cipher algorithm that processes three
16178280daadSJussi Kivilinna	  blocks parallel, utilizing resources of out-of-order CPUs better.
16188280daadSJussi Kivilinna
16198280daadSJussi Kivilinna	  See also:
16208280daadSJussi Kivilinna	  <http://www.schneier.com/twofish.html>
16218280daadSJussi Kivilinna
1622107778b5SJohannes Goetzfriedconfig CRYPTO_TWOFISH_AVX_X86_64
1623107778b5SJohannes Goetzfried	tristate "Twofish cipher algorithm (x86_64/AVX)"
1624107778b5SJohannes Goetzfried	depends on X86 && 64BIT
16250e6ab46dSEric Biggers	select CRYPTO_BLKCIPHER
1626a7378d4eSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
16270e6ab46dSEric Biggers	select CRYPTO_SIMD
1628107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_COMMON
1629107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_X86_64
1630107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_X86_64_3WAY
1631107778b5SJohannes Goetzfried	help
1632107778b5SJohannes Goetzfried	  Twofish cipher algorithm (x86_64/AVX).
1633107778b5SJohannes Goetzfried
1634107778b5SJohannes Goetzfried	  Twofish was submitted as an AES (Advanced Encryption Standard)
1635107778b5SJohannes Goetzfried	  candidate cipher by researchers at CounterPane Systems.  It is a
1636107778b5SJohannes Goetzfried	  16 round block cipher supporting key sizes of 128, 192, and 256
1637107778b5SJohannes Goetzfried	  bits.
1638107778b5SJohannes Goetzfried
1639107778b5SJohannes Goetzfried	  This module provides the Twofish cipher algorithm that processes
1640107778b5SJohannes Goetzfried	  eight blocks parallel using the AVX Instruction Set.
1641107778b5SJohannes Goetzfried
1642107778b5SJohannes Goetzfried	  See also:
1643107778b5SJohannes Goetzfried	  <http://www.schneier.com/twofish.html>
1644107778b5SJohannes Goetzfried
1645584fffc8SSebastian Siewiorcomment "Compression"
1646584fffc8SSebastian Siewior
16471da177e4SLinus Torvaldsconfig CRYPTO_DEFLATE
16481da177e4SLinus Torvalds	tristate "Deflate compression algorithm"
1649cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
1650f6ded09dSGiovanni Cabiddu	select CRYPTO_ACOMP2
16511da177e4SLinus Torvalds	select ZLIB_INFLATE
16521da177e4SLinus Torvalds	select ZLIB_DEFLATE
16531da177e4SLinus Torvalds	help
16541da177e4SLinus Torvalds	  This is the Deflate algorithm (RFC1951), specified for use in
16551da177e4SLinus Torvalds	  IPSec with the IPCOMP protocol (RFC3173, RFC2394).
16561da177e4SLinus Torvalds
16571da177e4SLinus Torvalds	  You will most probably want this if using IPSec.
16581da177e4SLinus Torvalds
16590b77abb3SZoltan Sogorconfig CRYPTO_LZO
16600b77abb3SZoltan Sogor	tristate "LZO compression algorithm"
16610b77abb3SZoltan Sogor	select CRYPTO_ALGAPI
1662ac9d2c4bSGiovanni Cabiddu	select CRYPTO_ACOMP2
16630b77abb3SZoltan Sogor	select LZO_COMPRESS
16640b77abb3SZoltan Sogor	select LZO_DECOMPRESS
16650b77abb3SZoltan Sogor	help
16660b77abb3SZoltan Sogor	  This is the LZO algorithm.
16670b77abb3SZoltan Sogor
166835a1fc18SSeth Jenningsconfig CRYPTO_842
166935a1fc18SSeth Jennings	tristate "842 compression algorithm"
16702062c5b6SDan Streetman	select CRYPTO_ALGAPI
16716a8de3aeSGiovanni Cabiddu	select CRYPTO_ACOMP2
16722062c5b6SDan Streetman	select 842_COMPRESS
16732062c5b6SDan Streetman	select 842_DECOMPRESS
167435a1fc18SSeth Jennings	help
167535a1fc18SSeth Jennings	  This is the 842 algorithm.
167635a1fc18SSeth Jennings
16770ea8530dSChanho Minconfig CRYPTO_LZ4
16780ea8530dSChanho Min	tristate "LZ4 compression algorithm"
16790ea8530dSChanho Min	select CRYPTO_ALGAPI
16808cd9330eSGiovanni Cabiddu	select CRYPTO_ACOMP2
16810ea8530dSChanho Min	select LZ4_COMPRESS
16820ea8530dSChanho Min	select LZ4_DECOMPRESS
16830ea8530dSChanho Min	help
16840ea8530dSChanho Min	  This is the LZ4 algorithm.
16850ea8530dSChanho Min
16860ea8530dSChanho Minconfig CRYPTO_LZ4HC
16870ea8530dSChanho Min	tristate "LZ4HC compression algorithm"
16880ea8530dSChanho Min	select CRYPTO_ALGAPI
168991d53d96SGiovanni Cabiddu	select CRYPTO_ACOMP2
16900ea8530dSChanho Min	select LZ4HC_COMPRESS
16910ea8530dSChanho Min	select LZ4_DECOMPRESS
16920ea8530dSChanho Min	help
16930ea8530dSChanho Min	  This is the LZ4 high compression mode algorithm.
16940ea8530dSChanho Min
1695d28fc3dbSNick Terrellconfig CRYPTO_ZSTD
1696d28fc3dbSNick Terrell	tristate "Zstd compression algorithm"
1697d28fc3dbSNick Terrell	select CRYPTO_ALGAPI
1698d28fc3dbSNick Terrell	select CRYPTO_ACOMP2
1699d28fc3dbSNick Terrell	select ZSTD_COMPRESS
1700d28fc3dbSNick Terrell	select ZSTD_DECOMPRESS
1701d28fc3dbSNick Terrell	help
1702d28fc3dbSNick Terrell	  This is the zstd algorithm.
1703d28fc3dbSNick Terrell
170417f0f4a4SNeil Hormancomment "Random Number Generation"
170517f0f4a4SNeil Horman
170617f0f4a4SNeil Hormanconfig CRYPTO_ANSI_CPRNG
170717f0f4a4SNeil Horman	tristate "Pseudo Random Number Generation for Cryptographic modules"
170817f0f4a4SNeil Horman	select CRYPTO_AES
170917f0f4a4SNeil Horman	select CRYPTO_RNG
171017f0f4a4SNeil Horman	help
171117f0f4a4SNeil Horman	  This option enables the generic pseudo random number generator
171217f0f4a4SNeil Horman	  for cryptographic modules.  Uses the Algorithm specified in
17137dd607e8SJiri Kosina	  ANSI X9.31 A.2.4. Note that this option must be enabled if
17147dd607e8SJiri Kosina	  CRYPTO_FIPS is selected
171517f0f4a4SNeil Horman
1716f2c89a10SHerbert Xumenuconfig CRYPTO_DRBG_MENU
1717419090c6SStephan Mueller	tristate "NIST SP800-90A DRBG"
1718419090c6SStephan Mueller	help
1719419090c6SStephan Mueller	  NIST SP800-90A compliant DRBG. In the following submenu, one or
1720419090c6SStephan Mueller	  more of the DRBG types must be selected.
1721419090c6SStephan Mueller
1722f2c89a10SHerbert Xuif CRYPTO_DRBG_MENU
1723419090c6SStephan Mueller
1724419090c6SStephan Muellerconfig CRYPTO_DRBG_HMAC
1725401e4238SHerbert Xu	bool
1726419090c6SStephan Mueller	default y
1727419090c6SStephan Mueller	select CRYPTO_HMAC
1728826775bbSHerbert Xu	select CRYPTO_SHA256
1729419090c6SStephan Mueller
1730419090c6SStephan Muellerconfig CRYPTO_DRBG_HASH
1731419090c6SStephan Mueller	bool "Enable Hash DRBG"
1732826775bbSHerbert Xu	select CRYPTO_SHA256
1733419090c6SStephan Mueller	help
1734419090c6SStephan Mueller	  Enable the Hash DRBG variant as defined in NIST SP800-90A.
1735419090c6SStephan Mueller
1736419090c6SStephan Muellerconfig CRYPTO_DRBG_CTR
1737419090c6SStephan Mueller	bool "Enable CTR DRBG"
1738419090c6SStephan Mueller	select CRYPTO_AES
173935591285SStephan Mueller	depends on CRYPTO_CTR
1740419090c6SStephan Mueller	help
1741419090c6SStephan Mueller	  Enable the CTR DRBG variant as defined in NIST SP800-90A.
1742419090c6SStephan Mueller
1743f2c89a10SHerbert Xuconfig CRYPTO_DRBG
1744f2c89a10SHerbert Xu	tristate
1745401e4238SHerbert Xu	default CRYPTO_DRBG_MENU
1746f2c89a10SHerbert Xu	select CRYPTO_RNG
1747bb5530e4SStephan Mueller	select CRYPTO_JITTERENTROPY
1748f2c89a10SHerbert Xu
1749f2c89a10SHerbert Xuendif	# if CRYPTO_DRBG_MENU
1750419090c6SStephan Mueller
1751bb5530e4SStephan Muellerconfig CRYPTO_JITTERENTROPY
1752bb5530e4SStephan Mueller	tristate "Jitterentropy Non-Deterministic Random Number Generator"
17532f313e02SArnd Bergmann	select CRYPTO_RNG
1754bb5530e4SStephan Mueller	help
1755bb5530e4SStephan Mueller	  The Jitterentropy RNG is a noise that is intended
1756bb5530e4SStephan Mueller	  to provide seed to another RNG. The RNG does not
1757bb5530e4SStephan Mueller	  perform any cryptographic whitening of the generated
1758bb5530e4SStephan Mueller	  random numbers. This Jitterentropy RNG registers with
1759bb5530e4SStephan Mueller	  the kernel crypto API and can be used by any caller.
1760bb5530e4SStephan Mueller
176103c8efc1SHerbert Xuconfig CRYPTO_USER_API
176203c8efc1SHerbert Xu	tristate
176303c8efc1SHerbert Xu
1764fe869cdbSHerbert Xuconfig CRYPTO_USER_API_HASH
1765fe869cdbSHerbert Xu	tristate "User-space interface for hash algorithms"
17667451708fSHerbert Xu	depends on NET
1767fe869cdbSHerbert Xu	select CRYPTO_HASH
1768fe869cdbSHerbert Xu	select CRYPTO_USER_API
1769fe869cdbSHerbert Xu	help
1770fe869cdbSHerbert Xu	  This option enables the user-spaces interface for hash
1771fe869cdbSHerbert Xu	  algorithms.
1772fe869cdbSHerbert Xu
17738ff59090SHerbert Xuconfig CRYPTO_USER_API_SKCIPHER
17748ff59090SHerbert Xu	tristate "User-space interface for symmetric key cipher algorithms"
17757451708fSHerbert Xu	depends on NET
17768ff59090SHerbert Xu	select CRYPTO_BLKCIPHER
17778ff59090SHerbert Xu	select CRYPTO_USER_API
17788ff59090SHerbert Xu	help
17798ff59090SHerbert Xu	  This option enables the user-spaces interface for symmetric
17808ff59090SHerbert Xu	  key cipher algorithms.
17818ff59090SHerbert Xu
17822f375538SStephan Muellerconfig CRYPTO_USER_API_RNG
17832f375538SStephan Mueller	tristate "User-space interface for random number generator algorithms"
17842f375538SStephan Mueller	depends on NET
17852f375538SStephan Mueller	select CRYPTO_RNG
17862f375538SStephan Mueller	select CRYPTO_USER_API
17872f375538SStephan Mueller	help
17882f375538SStephan Mueller	  This option enables the user-spaces interface for random
17892f375538SStephan Mueller	  number generator algorithms.
17902f375538SStephan Mueller
1791b64a2d95SHerbert Xuconfig CRYPTO_USER_API_AEAD
1792b64a2d95SHerbert Xu	tristate "User-space interface for AEAD cipher algorithms"
1793b64a2d95SHerbert Xu	depends on NET
1794b64a2d95SHerbert Xu	select CRYPTO_AEAD
179572548b09SStephan Mueller	select CRYPTO_BLKCIPHER
179672548b09SStephan Mueller	select CRYPTO_NULL
1797b64a2d95SHerbert Xu	select CRYPTO_USER_API
1798b64a2d95SHerbert Xu	help
1799b64a2d95SHerbert Xu	  This option enables the user-spaces interface for AEAD
1800b64a2d95SHerbert Xu	  cipher algorithms.
1801b64a2d95SHerbert Xu
1802*cac5818cSCorentin Labbeconfig CRYPTO_STATS
1803*cac5818cSCorentin Labbe	bool "Crypto usage statistics for User-space"
1804*cac5818cSCorentin Labbe	help
1805*cac5818cSCorentin Labbe	  This option enables the gathering of crypto stats.
1806*cac5818cSCorentin Labbe	  This will collect:
1807*cac5818cSCorentin Labbe	  - encrypt/decrypt size and numbers of symmeric operations
1808*cac5818cSCorentin Labbe	  - compress/decompress size and numbers of compress operations
1809*cac5818cSCorentin Labbe	  - size and numbers of hash operations
1810*cac5818cSCorentin Labbe	  - encrypt/decrypt/sign/verify numbers for asymmetric operations
1811*cac5818cSCorentin Labbe	  - generate/seed numbers for rng operations
1812*cac5818cSCorentin Labbe
1813ee08997fSDmitry Kasatkinconfig CRYPTO_HASH_INFO
1814ee08997fSDmitry Kasatkin	bool
1815ee08997fSDmitry Kasatkin
18161da177e4SLinus Torvaldssource "drivers/crypto/Kconfig"
1817964f3b3bSDavid Howellssource crypto/asymmetric_keys/Kconfig
1818cfc411e7SDavid Howellssource certs/Kconfig
18191da177e4SLinus Torvalds
1820cce9e06dSHerbert Xuendif	# if CRYPTO
1821