xref: /linux/crypto/Kconfig (revision ed0356eda153f6a95649e11feb7b07083caf9e20)
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
30d99324c2SGeert Uytterhoeven	  This option enables the fips boot option which is
31d99324c2SGeert Uytterhoeven	  required if you want the 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
55b95bba5dSEric Biggersconfig CRYPTO_SKCIPHER
565cde0af2SHerbert Xu	tristate
57b95bba5dSEric Biggers	select CRYPTO_SKCIPHER2
585cde0af2SHerbert Xu	select CRYPTO_ALGAPI
596a0fcbb4SHerbert Xu
60b95bba5dSEric Biggersconfig CRYPTO_SKCIPHER2
616a0fcbb4SHerbert Xu	tristate
626a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
636a0fcbb4SHerbert Xu	select CRYPTO_RNG2
645cde0af2SHerbert Xu
65055bcee3SHerbert Xuconfig CRYPTO_HASH
66055bcee3SHerbert Xu	tristate
676a0fcbb4SHerbert Xu	select CRYPTO_HASH2
68055bcee3SHerbert Xu	select CRYPTO_ALGAPI
69055bcee3SHerbert Xu
706a0fcbb4SHerbert Xuconfig CRYPTO_HASH2
716a0fcbb4SHerbert Xu	tristate
726a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
736a0fcbb4SHerbert Xu
7417f0f4a4SNeil Hormanconfig CRYPTO_RNG
7517f0f4a4SNeil Horman	tristate
766a0fcbb4SHerbert Xu	select CRYPTO_RNG2
7717f0f4a4SNeil Horman	select CRYPTO_ALGAPI
7817f0f4a4SNeil Horman
796a0fcbb4SHerbert Xuconfig CRYPTO_RNG2
806a0fcbb4SHerbert Xu	tristate
816a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
826a0fcbb4SHerbert Xu
83401e4238SHerbert Xuconfig CRYPTO_RNG_DEFAULT
84401e4238SHerbert Xu	tristate
85401e4238SHerbert Xu	select CRYPTO_DRBG_MENU
86401e4238SHerbert Xu
873c339ab8STadeusz Strukconfig CRYPTO_AKCIPHER2
883c339ab8STadeusz Struk	tristate
893c339ab8STadeusz Struk	select CRYPTO_ALGAPI2
903c339ab8STadeusz Struk
913c339ab8STadeusz Strukconfig CRYPTO_AKCIPHER
923c339ab8STadeusz Struk	tristate
933c339ab8STadeusz Struk	select CRYPTO_AKCIPHER2
943c339ab8STadeusz Struk	select CRYPTO_ALGAPI
953c339ab8STadeusz Struk
964e5f2c40SSalvatore Benedettoconfig CRYPTO_KPP2
974e5f2c40SSalvatore Benedetto	tristate
984e5f2c40SSalvatore Benedetto	select CRYPTO_ALGAPI2
994e5f2c40SSalvatore Benedetto
1004e5f2c40SSalvatore Benedettoconfig CRYPTO_KPP
1014e5f2c40SSalvatore Benedetto	tristate
1024e5f2c40SSalvatore Benedetto	select CRYPTO_ALGAPI
1034e5f2c40SSalvatore Benedetto	select CRYPTO_KPP2
1044e5f2c40SSalvatore Benedetto
1052ebda74fSGiovanni Cabidduconfig CRYPTO_ACOMP2
1062ebda74fSGiovanni Cabiddu	tristate
1072ebda74fSGiovanni Cabiddu	select CRYPTO_ALGAPI2
1088cd579d2SBart Van Assche	select SGL_ALLOC
1092ebda74fSGiovanni Cabiddu
1102ebda74fSGiovanni Cabidduconfig CRYPTO_ACOMP
1112ebda74fSGiovanni Cabiddu	tristate
1122ebda74fSGiovanni Cabiddu	select CRYPTO_ALGAPI
1132ebda74fSGiovanni Cabiddu	select CRYPTO_ACOMP2
1142ebda74fSGiovanni Cabiddu
1152b8c19dbSHerbert Xuconfig CRYPTO_MANAGER
1162b8c19dbSHerbert Xu	tristate "Cryptographic algorithm manager"
1176a0fcbb4SHerbert Xu	select CRYPTO_MANAGER2
1182b8c19dbSHerbert Xu	help
1192b8c19dbSHerbert Xu	  Create default cryptographic template instantiations such as
1202b8c19dbSHerbert Xu	  cbc(aes).
1212b8c19dbSHerbert Xu
1226a0fcbb4SHerbert Xuconfig CRYPTO_MANAGER2
1236a0fcbb4SHerbert Xu	def_tristate CRYPTO_MANAGER || (CRYPTO_MANAGER!=n && CRYPTO_ALGAPI=y)
1246a0fcbb4SHerbert Xu	select CRYPTO_AEAD2
1256a0fcbb4SHerbert Xu	select CRYPTO_HASH2
126b95bba5dSEric Biggers	select CRYPTO_SKCIPHER2
127946cc463STadeusz Struk	select CRYPTO_AKCIPHER2
1284e5f2c40SSalvatore Benedetto	select CRYPTO_KPP2
1292ebda74fSGiovanni Cabiddu	select CRYPTO_ACOMP2
1306a0fcbb4SHerbert Xu
131a38f7907SSteffen Klassertconfig CRYPTO_USER
132a38f7907SSteffen Klassert	tristate "Userspace cryptographic algorithm configuration"
1335db017aaSHerbert Xu	depends on NET
134a38f7907SSteffen Klassert	select CRYPTO_MANAGER
135a38f7907SSteffen Klassert	help
136d19978f5SValdis.Kletnieks@vt.edu	  Userspace configuration for cryptographic instantiations such as
137a38f7907SSteffen Klassert	  cbc(aes).
138a38f7907SSteffen Klassert
139929d34caSEric Biggersif CRYPTO_MANAGER2
140929d34caSEric Biggers
141326a6346SHerbert Xuconfig CRYPTO_MANAGER_DISABLE_TESTS
142326a6346SHerbert Xu	bool "Disable run-time self tests"
14300ca28a5SHerbert Xu	default y
1440b767f96SAlexander Shishkin	help
145326a6346SHerbert Xu	  Disable run-time self tests that normally take place at
146326a6346SHerbert Xu	  algorithm registration.
1470b767f96SAlexander Shishkin
1485b2706a4SEric Biggersconfig CRYPTO_MANAGER_EXTRA_TESTS
1495b2706a4SEric Biggers	bool "Enable extra run-time crypto self tests"
1505b2706a4SEric Biggers	depends on DEBUG_KERNEL && !CRYPTO_MANAGER_DISABLE_TESTS
1515b2706a4SEric Biggers	help
1525b2706a4SEric Biggers	  Enable extra run-time self tests of registered crypto algorithms,
1535b2706a4SEric Biggers	  including randomized fuzz tests.
1545b2706a4SEric Biggers
1555b2706a4SEric Biggers	  This is intended for developer use only, as these tests take much
1565b2706a4SEric Biggers	  longer to run than the normal self tests.
1575b2706a4SEric Biggers
158929d34caSEric Biggersendif	# if CRYPTO_MANAGER2
159929d34caSEric Biggers
160584fffc8SSebastian Siewiorconfig CRYPTO_GF128MUL
161e590e132SEric Biggers	tristate
162584fffc8SSebastian Siewior
163584fffc8SSebastian Siewiorconfig CRYPTO_NULL
164584fffc8SSebastian Siewior	tristate "Null algorithms"
165149a3971SHerbert Xu	select CRYPTO_NULL2
166584fffc8SSebastian Siewior	help
167584fffc8SSebastian Siewior	  These are 'Null' algorithms, used by IPsec, which do nothing.
168584fffc8SSebastian Siewior
169149a3971SHerbert Xuconfig CRYPTO_NULL2
170dd43c4e9SHerbert Xu	tristate
171149a3971SHerbert Xu	select CRYPTO_ALGAPI2
172b95bba5dSEric Biggers	select CRYPTO_SKCIPHER2
173149a3971SHerbert Xu	select CRYPTO_HASH2
174149a3971SHerbert Xu
1755068c7a8SSteffen Klassertconfig CRYPTO_PCRYPT
1763b4afaf2SKees Cook	tristate "Parallel crypto engine"
1773b4afaf2SKees Cook	depends on SMP
1785068c7a8SSteffen Klassert	select PADATA
1795068c7a8SSteffen Klassert	select CRYPTO_MANAGER
1805068c7a8SSteffen Klassert	select CRYPTO_AEAD
1815068c7a8SSteffen Klassert	help
1825068c7a8SSteffen Klassert	  This converts an arbitrary crypto algorithm into a parallel
1835068c7a8SSteffen Klassert	  algorithm that executes in kernel threads.
1845068c7a8SSteffen Klassert
185584fffc8SSebastian Siewiorconfig CRYPTO_CRYPTD
186584fffc8SSebastian Siewior	tristate "Software async crypto daemon"
187b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
188b8a28251SLoc Ho	select CRYPTO_HASH
189584fffc8SSebastian Siewior	select CRYPTO_MANAGER
190584fffc8SSebastian Siewior	help
191584fffc8SSebastian Siewior	  This is a generic software asynchronous crypto daemon that
192584fffc8SSebastian Siewior	  converts an arbitrary synchronous software crypto algorithm
193584fffc8SSebastian Siewior	  into an asynchronous algorithm that executes in a kernel thread.
194584fffc8SSebastian Siewior
195584fffc8SSebastian Siewiorconfig CRYPTO_AUTHENC
196584fffc8SSebastian Siewior	tristate "Authenc support"
197584fffc8SSebastian Siewior	select CRYPTO_AEAD
198b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
199584fffc8SSebastian Siewior	select CRYPTO_MANAGER
200584fffc8SSebastian Siewior	select CRYPTO_HASH
201e94c6a7aSHerbert Xu	select CRYPTO_NULL
202584fffc8SSebastian Siewior	help
203584fffc8SSebastian Siewior	  Authenc: Combined mode wrapper for IPsec.
204584fffc8SSebastian Siewior	  This is required for IPSec.
205584fffc8SSebastian Siewior
206584fffc8SSebastian Siewiorconfig CRYPTO_TEST
207584fffc8SSebastian Siewior	tristate "Testing module"
208584fffc8SSebastian Siewior	depends on m
209da7f033dSHerbert Xu	select CRYPTO_MANAGER
210584fffc8SSebastian Siewior	help
211584fffc8SSebastian Siewior	  Quick & dirty crypto test module.
212584fffc8SSebastian Siewior
213266d0516SHerbert Xuconfig CRYPTO_SIMD
214266d0516SHerbert Xu	tristate
215266d0516SHerbert Xu	select CRYPTO_CRYPTD
216266d0516SHerbert Xu
217596d8750SJussi Kivilinnaconfig CRYPTO_GLUE_HELPER_X86
218596d8750SJussi Kivilinna	tristate
219596d8750SJussi Kivilinna	depends on X86
220b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
221596d8750SJussi Kivilinna
222735d37b5SBaolin Wangconfig CRYPTO_ENGINE
223735d37b5SBaolin Wang	tristate
224735d37b5SBaolin Wang
2253d6228a5SVitaly Chikunovcomment "Public-key cryptography"
2263d6228a5SVitaly Chikunov
2273d6228a5SVitaly Chikunovconfig CRYPTO_RSA
2283d6228a5SVitaly Chikunov	tristate "RSA algorithm"
2293d6228a5SVitaly Chikunov	select CRYPTO_AKCIPHER
2303d6228a5SVitaly Chikunov	select CRYPTO_MANAGER
2313d6228a5SVitaly Chikunov	select MPILIB
2323d6228a5SVitaly Chikunov	select ASN1
2333d6228a5SVitaly Chikunov	help
2343d6228a5SVitaly Chikunov	  Generic implementation of the RSA public key algorithm.
2353d6228a5SVitaly Chikunov
2363d6228a5SVitaly Chikunovconfig CRYPTO_DH
2373d6228a5SVitaly Chikunov	tristate "Diffie-Hellman algorithm"
2383d6228a5SVitaly Chikunov	select CRYPTO_KPP
2393d6228a5SVitaly Chikunov	select MPILIB
2403d6228a5SVitaly Chikunov	help
2413d6228a5SVitaly Chikunov	  Generic implementation of the Diffie-Hellman algorithm.
2423d6228a5SVitaly Chikunov
2434a2289daSVitaly Chikunovconfig CRYPTO_ECC
2444a2289daSVitaly Chikunov	tristate
2454a2289daSVitaly Chikunov
2463d6228a5SVitaly Chikunovconfig CRYPTO_ECDH
2473d6228a5SVitaly Chikunov	tristate "ECDH algorithm"
2484a2289daSVitaly Chikunov	select CRYPTO_ECC
2493d6228a5SVitaly Chikunov	select CRYPTO_KPP
2503d6228a5SVitaly Chikunov	select CRYPTO_RNG_DEFAULT
2513d6228a5SVitaly Chikunov	help
2523d6228a5SVitaly Chikunov	  Generic implementation of the ECDH algorithm
2533d6228a5SVitaly Chikunov
2540d7a7864SVitaly Chikunovconfig CRYPTO_ECRDSA
2550d7a7864SVitaly Chikunov	tristate "EC-RDSA (GOST 34.10) algorithm"
2560d7a7864SVitaly Chikunov	select CRYPTO_ECC
2570d7a7864SVitaly Chikunov	select CRYPTO_AKCIPHER
2580d7a7864SVitaly Chikunov	select CRYPTO_STREEBOG
2591036633eSVitaly Chikunov	select OID_REGISTRY
2601036633eSVitaly Chikunov	select ASN1
2610d7a7864SVitaly Chikunov	help
2620d7a7864SVitaly Chikunov	  Elliptic Curve Russian Digital Signature Algorithm (GOST R 34.10-2012,
2630d7a7864SVitaly Chikunov	  RFC 7091, ISO/IEC 14888-3:2018) is one of the Russian cryptographic
2640d7a7864SVitaly Chikunov	  standard algorithms (called GOST algorithms). Only signature verification
2650d7a7864SVitaly Chikunov	  is implemented.
2660d7a7864SVitaly Chikunov
267584fffc8SSebastian Siewiorcomment "Authenticated Encryption with Associated Data"
268584fffc8SSebastian Siewior
269584fffc8SSebastian Siewiorconfig CRYPTO_CCM
270584fffc8SSebastian Siewior	tristate "CCM support"
271584fffc8SSebastian Siewior	select CRYPTO_CTR
272f15f05b0SArd Biesheuvel	select CRYPTO_HASH
273584fffc8SSebastian Siewior	select CRYPTO_AEAD
274c8a3315aSEric Biggers	select CRYPTO_MANAGER
275584fffc8SSebastian Siewior	help
276584fffc8SSebastian Siewior	  Support for Counter with CBC MAC. Required for IPsec.
277584fffc8SSebastian Siewior
278584fffc8SSebastian Siewiorconfig CRYPTO_GCM
279584fffc8SSebastian Siewior	tristate "GCM/GMAC support"
280584fffc8SSebastian Siewior	select CRYPTO_CTR
281584fffc8SSebastian Siewior	select CRYPTO_AEAD
2829382d97aSHuang Ying	select CRYPTO_GHASH
2839489667dSJussi Kivilinna	select CRYPTO_NULL
284c8a3315aSEric Biggers	select CRYPTO_MANAGER
285584fffc8SSebastian Siewior	help
286584fffc8SSebastian Siewior	  Support for Galois/Counter Mode (GCM) and Galois Message
287584fffc8SSebastian Siewior	  Authentication Code (GMAC). Required for IPSec.
288584fffc8SSebastian Siewior
28971ebc4d1SMartin Williconfig CRYPTO_CHACHA20POLY1305
29071ebc4d1SMartin Willi	tristate "ChaCha20-Poly1305 AEAD support"
29171ebc4d1SMartin Willi	select CRYPTO_CHACHA20
29271ebc4d1SMartin Willi	select CRYPTO_POLY1305
29371ebc4d1SMartin Willi	select CRYPTO_AEAD
294c8a3315aSEric Biggers	select CRYPTO_MANAGER
29571ebc4d1SMartin Willi	help
29671ebc4d1SMartin Willi	  ChaCha20-Poly1305 AEAD support, RFC7539.
29771ebc4d1SMartin Willi
29871ebc4d1SMartin Willi	  Support for the AEAD wrapper using the ChaCha20 stream cipher combined
29971ebc4d1SMartin Willi	  with the Poly1305 authenticator. It is defined in RFC7539 for use in
30071ebc4d1SMartin Willi	  IETF protocols.
30171ebc4d1SMartin Willi
302f606a88eSOndrej Mosnacekconfig CRYPTO_AEGIS128
303f606a88eSOndrej Mosnacek	tristate "AEGIS-128 AEAD algorithm"
304f606a88eSOndrej Mosnacek	select CRYPTO_AEAD
305f606a88eSOndrej Mosnacek	select CRYPTO_AES  # for AES S-box tables
306f606a88eSOndrej Mosnacek	help
307f606a88eSOndrej Mosnacek	 Support for the AEGIS-128 dedicated AEAD algorithm.
308f606a88eSOndrej Mosnacek
309a4397635SArd Biesheuvelconfig CRYPTO_AEGIS128_SIMD
310a4397635SArd Biesheuvel	bool "Support SIMD acceleration for AEGIS-128"
311a4397635SArd Biesheuvel	depends on CRYPTO_AEGIS128 && ((ARM || ARM64) && KERNEL_MODE_NEON)
31283053677SArd Biesheuvel	depends on !ARM || CC_IS_CLANG || GCC_VERSION >= 40800
313a4397635SArd Biesheuvel	default y
314a4397635SArd Biesheuvel
3151d373d4eSOndrej Mosnacekconfig CRYPTO_AEGIS128_AESNI_SSE2
3161d373d4eSOndrej Mosnacek	tristate "AEGIS-128 AEAD algorithm (x86_64 AESNI+SSE2 implementation)"
3171d373d4eSOndrej Mosnacek	depends on X86 && 64BIT
3181d373d4eSOndrej Mosnacek	select CRYPTO_AEAD
319de272ca7SEric Biggers	select CRYPTO_SIMD
3201d373d4eSOndrej Mosnacek	help
3214e5180ebSOndrej Mosnacek	 AESNI+SSE2 implementation of the AEGIS-128 dedicated AEAD algorithm.
3221d373d4eSOndrej Mosnacek
323584fffc8SSebastian Siewiorconfig CRYPTO_SEQIV
324584fffc8SSebastian Siewior	tristate "Sequence Number IV Generator"
325584fffc8SSebastian Siewior	select CRYPTO_AEAD
326b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
327856e3f40SHerbert Xu	select CRYPTO_NULL
328401e4238SHerbert Xu	select CRYPTO_RNG_DEFAULT
329c8a3315aSEric Biggers	select CRYPTO_MANAGER
330584fffc8SSebastian Siewior	help
331584fffc8SSebastian Siewior	  This IV generator generates an IV based on a sequence number by
332584fffc8SSebastian Siewior	  xoring it with a salt.  This algorithm is mainly useful for CTR
333584fffc8SSebastian Siewior
334a10f554fSHerbert Xuconfig CRYPTO_ECHAINIV
335a10f554fSHerbert Xu	tristate "Encrypted Chain IV Generator"
336a10f554fSHerbert Xu	select CRYPTO_AEAD
337a10f554fSHerbert Xu	select CRYPTO_NULL
338401e4238SHerbert Xu	select CRYPTO_RNG_DEFAULT
339c8a3315aSEric Biggers	select CRYPTO_MANAGER
340a10f554fSHerbert Xu	help
341a10f554fSHerbert Xu	  This IV generator generates an IV based on the encryption of
342a10f554fSHerbert Xu	  a sequence number xored with a salt.  This is the default
343a10f554fSHerbert Xu	  algorithm for CBC.
344a10f554fSHerbert Xu
345584fffc8SSebastian Siewiorcomment "Block modes"
346584fffc8SSebastian Siewior
347584fffc8SSebastian Siewiorconfig CRYPTO_CBC
348584fffc8SSebastian Siewior	tristate "CBC support"
349b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
350584fffc8SSebastian Siewior	select CRYPTO_MANAGER
351584fffc8SSebastian Siewior	help
352584fffc8SSebastian Siewior	  CBC: Cipher Block Chaining mode
353584fffc8SSebastian Siewior	  This block cipher algorithm is required for IPSec.
354584fffc8SSebastian Siewior
355a7d85e06SJames Bottomleyconfig CRYPTO_CFB
356a7d85e06SJames Bottomley	tristate "CFB support"
357b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
358a7d85e06SJames Bottomley	select CRYPTO_MANAGER
359a7d85e06SJames Bottomley	help
360a7d85e06SJames Bottomley	  CFB: Cipher FeedBack mode
361a7d85e06SJames Bottomley	  This block cipher algorithm is required for TPM2 Cryptography.
362a7d85e06SJames Bottomley
363584fffc8SSebastian Siewiorconfig CRYPTO_CTR
364584fffc8SSebastian Siewior	tristate "CTR support"
365b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
366584fffc8SSebastian Siewior	select CRYPTO_SEQIV
367584fffc8SSebastian Siewior	select CRYPTO_MANAGER
368584fffc8SSebastian Siewior	help
369584fffc8SSebastian Siewior	  CTR: Counter mode
370584fffc8SSebastian Siewior	  This block cipher algorithm is required for IPSec.
371584fffc8SSebastian Siewior
372584fffc8SSebastian Siewiorconfig CRYPTO_CTS
373584fffc8SSebastian Siewior	tristate "CTS support"
374b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
375c8a3315aSEric Biggers	select CRYPTO_MANAGER
376584fffc8SSebastian Siewior	help
377584fffc8SSebastian Siewior	  CTS: Cipher Text Stealing
378584fffc8SSebastian Siewior	  This is the Cipher Text Stealing mode as described by
379ecd6d5c9SGilad Ben-Yossef	  Section 8 of rfc2040 and referenced by rfc3962
380ecd6d5c9SGilad Ben-Yossef	  (rfc3962 includes errata information in its Appendix A) or
381ecd6d5c9SGilad Ben-Yossef	  CBC-CS3 as defined by NIST in Sp800-38A addendum from Oct 2010.
382584fffc8SSebastian Siewior	  This mode is required for Kerberos gss mechanism support
383584fffc8SSebastian Siewior	  for AES encryption.
384584fffc8SSebastian Siewior
385ecd6d5c9SGilad Ben-Yossef	  See: https://csrc.nist.gov/publications/detail/sp/800-38a/addendum/final
386ecd6d5c9SGilad Ben-Yossef
387584fffc8SSebastian Siewiorconfig CRYPTO_ECB
388584fffc8SSebastian Siewior	tristate "ECB support"
389b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
390584fffc8SSebastian Siewior	select CRYPTO_MANAGER
391584fffc8SSebastian Siewior	help
392584fffc8SSebastian Siewior	  ECB: Electronic CodeBook mode
393584fffc8SSebastian Siewior	  This is the simplest block cipher algorithm.  It simply encrypts
394584fffc8SSebastian Siewior	  the input block by block.
395584fffc8SSebastian Siewior
396584fffc8SSebastian Siewiorconfig CRYPTO_LRW
3972470a2b2SJussi Kivilinna	tristate "LRW support"
398b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
399584fffc8SSebastian Siewior	select CRYPTO_MANAGER
400584fffc8SSebastian Siewior	select CRYPTO_GF128MUL
401584fffc8SSebastian Siewior	help
402584fffc8SSebastian Siewior	  LRW: Liskov Rivest Wagner, a tweakable, non malleable, non movable
403584fffc8SSebastian Siewior	  narrow block cipher mode for dm-crypt.  Use it with cipher
404584fffc8SSebastian Siewior	  specification string aes-lrw-benbi, the key must be 256, 320 or 384.
405584fffc8SSebastian Siewior	  The first 128, 192 or 256 bits in the key are used for AES and the
406584fffc8SSebastian Siewior	  rest is used to tie each cipher block to its logical position.
407584fffc8SSebastian Siewior
408e497c518SGilad Ben-Yossefconfig CRYPTO_OFB
409e497c518SGilad Ben-Yossef	tristate "OFB support"
410b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
411e497c518SGilad Ben-Yossef	select CRYPTO_MANAGER
412e497c518SGilad Ben-Yossef	help
413e497c518SGilad Ben-Yossef	  OFB: the Output Feedback mode makes a block cipher into a synchronous
414e497c518SGilad Ben-Yossef	  stream cipher. It generates keystream blocks, which are then XORed
415e497c518SGilad Ben-Yossef	  with the plaintext blocks to get the ciphertext. Flipping a bit in the
416e497c518SGilad Ben-Yossef	  ciphertext produces a flipped bit in the plaintext at the same
417e497c518SGilad Ben-Yossef	  location. This property allows many error correcting codes to function
418e497c518SGilad Ben-Yossef	  normally even when applied before encryption.
419e497c518SGilad Ben-Yossef
420584fffc8SSebastian Siewiorconfig CRYPTO_PCBC
421584fffc8SSebastian Siewior	tristate "PCBC support"
422b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
423584fffc8SSebastian Siewior	select CRYPTO_MANAGER
424584fffc8SSebastian Siewior	help
425584fffc8SSebastian Siewior	  PCBC: Propagating Cipher Block Chaining mode
426584fffc8SSebastian Siewior	  This block cipher algorithm is required for RxRPC.
427584fffc8SSebastian Siewior
428584fffc8SSebastian Siewiorconfig CRYPTO_XTS
4295bcf8e6dSJussi Kivilinna	tristate "XTS support"
430b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
431584fffc8SSebastian Siewior	select CRYPTO_MANAGER
43212cb3a1cSMilan Broz	select CRYPTO_ECB
433584fffc8SSebastian Siewior	help
434584fffc8SSebastian Siewior	  XTS: IEEE1619/D16 narrow block cipher use with aes-xts-plain,
435584fffc8SSebastian Siewior	  key size 256, 384 or 512 bits. This implementation currently
436584fffc8SSebastian Siewior	  can't handle a sectorsize which is not a multiple of 16 bytes.
437584fffc8SSebastian Siewior
4381c49678eSStephan Muellerconfig CRYPTO_KEYWRAP
4391c49678eSStephan Mueller	tristate "Key wrapping support"
440b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
441c8a3315aSEric Biggers	select CRYPTO_MANAGER
4421c49678eSStephan Mueller	help
4431c49678eSStephan Mueller	  Support for key wrapping (NIST SP800-38F / RFC3394) without
4441c49678eSStephan Mueller	  padding.
4451c49678eSStephan Mueller
44626609a21SEric Biggersconfig CRYPTO_NHPOLY1305
44726609a21SEric Biggers	tristate
44826609a21SEric Biggers	select CRYPTO_HASH
44948ea8c6eSArd Biesheuvel	select CRYPTO_LIB_POLY1305_GENERIC
45026609a21SEric Biggers
451012c8238SEric Biggersconfig CRYPTO_NHPOLY1305_SSE2
452012c8238SEric Biggers	tristate "NHPoly1305 hash function (x86_64 SSE2 implementation)"
453012c8238SEric Biggers	depends on X86 && 64BIT
454012c8238SEric Biggers	select CRYPTO_NHPOLY1305
455012c8238SEric Biggers	help
456012c8238SEric Biggers	  SSE2 optimized implementation of the hash function used by the
457012c8238SEric Biggers	  Adiantum encryption mode.
458012c8238SEric Biggers
4590f961f9fSEric Biggersconfig CRYPTO_NHPOLY1305_AVX2
4600f961f9fSEric Biggers	tristate "NHPoly1305 hash function (x86_64 AVX2 implementation)"
4610f961f9fSEric Biggers	depends on X86 && 64BIT
4620f961f9fSEric Biggers	select CRYPTO_NHPOLY1305
4630f961f9fSEric Biggers	help
4640f961f9fSEric Biggers	  AVX2 optimized implementation of the hash function used by the
4650f961f9fSEric Biggers	  Adiantum encryption mode.
4660f961f9fSEric Biggers
467059c2a4dSEric Biggersconfig CRYPTO_ADIANTUM
468059c2a4dSEric Biggers	tristate "Adiantum support"
469059c2a4dSEric Biggers	select CRYPTO_CHACHA20
47048ea8c6eSArd Biesheuvel	select CRYPTO_LIB_POLY1305_GENERIC
471059c2a4dSEric Biggers	select CRYPTO_NHPOLY1305
472c8a3315aSEric Biggers	select CRYPTO_MANAGER
473059c2a4dSEric Biggers	help
474059c2a4dSEric Biggers	  Adiantum is a tweakable, length-preserving encryption mode
475059c2a4dSEric Biggers	  designed for fast and secure disk encryption, especially on
476059c2a4dSEric Biggers	  CPUs without dedicated crypto instructions.  It encrypts
477059c2a4dSEric Biggers	  each sector using the XChaCha12 stream cipher, two passes of
478059c2a4dSEric Biggers	  an ε-almost-∆-universal hash function, and an invocation of
479059c2a4dSEric Biggers	  the AES-256 block cipher on a single 16-byte block.  On CPUs
480059c2a4dSEric Biggers	  without AES instructions, Adiantum is much faster than
481059c2a4dSEric Biggers	  AES-XTS.
482059c2a4dSEric Biggers
483059c2a4dSEric Biggers	  Adiantum's security is provably reducible to that of its
484059c2a4dSEric Biggers	  underlying stream and block ciphers, subject to a security
485059c2a4dSEric Biggers	  bound.  Unlike XTS, Adiantum is a true wide-block encryption
486059c2a4dSEric Biggers	  mode, so it actually provides an even stronger notion of
487059c2a4dSEric Biggers	  security than XTS, subject to the security bound.
488059c2a4dSEric Biggers
489059c2a4dSEric Biggers	  If unsure, say N.
490059c2a4dSEric Biggers
491be1eb7f7SArd Biesheuvelconfig CRYPTO_ESSIV
492be1eb7f7SArd Biesheuvel	tristate "ESSIV support for block encryption"
493be1eb7f7SArd Biesheuvel	select CRYPTO_AUTHENC
494be1eb7f7SArd Biesheuvel	help
495be1eb7f7SArd Biesheuvel	  Encrypted salt-sector initialization vector (ESSIV) is an IV
496be1eb7f7SArd Biesheuvel	  generation method that is used in some cases by fscrypt and/or
497be1eb7f7SArd Biesheuvel	  dm-crypt. It uses the hash of the block encryption key as the
498be1eb7f7SArd Biesheuvel	  symmetric key for a block encryption pass applied to the input
499be1eb7f7SArd Biesheuvel	  IV, making low entropy IV sources more suitable for block
500be1eb7f7SArd Biesheuvel	  encryption.
501be1eb7f7SArd Biesheuvel
502be1eb7f7SArd Biesheuvel	  This driver implements a crypto API template that can be
503be1eb7f7SArd Biesheuvel	  instantiated either as a skcipher or as a aead (depending on the
504be1eb7f7SArd Biesheuvel	  type of the first template argument), and which defers encryption
505be1eb7f7SArd Biesheuvel	  and decryption requests to the encapsulated cipher after applying
506be1eb7f7SArd Biesheuvel	  ESSIV to the input IV. Note that in the aead case, it is assumed
507be1eb7f7SArd Biesheuvel	  that the keys are presented in the same format used by the authenc
508be1eb7f7SArd Biesheuvel	  template, and that the IV appears at the end of the authenticated
509be1eb7f7SArd Biesheuvel	  associated data (AAD) region (which is how dm-crypt uses it.)
510be1eb7f7SArd Biesheuvel
511be1eb7f7SArd Biesheuvel	  Note that the use of ESSIV is not recommended for new deployments,
512be1eb7f7SArd Biesheuvel	  and so this only needs to be enabled when interoperability with
513be1eb7f7SArd Biesheuvel	  existing encrypted volumes of filesystems is required, or when
514be1eb7f7SArd Biesheuvel	  building for a particular system that requires it (e.g., when
515be1eb7f7SArd Biesheuvel	  the SoC in question has accelerated CBC but not XTS, making CBC
516be1eb7f7SArd Biesheuvel	  combined with ESSIV the only feasible mode for h/w accelerated
517be1eb7f7SArd Biesheuvel	  block encryption)
518be1eb7f7SArd Biesheuvel
519584fffc8SSebastian Siewiorcomment "Hash modes"
520584fffc8SSebastian Siewior
52193b5e86aSJussi Kivilinnaconfig CRYPTO_CMAC
52293b5e86aSJussi Kivilinna	tristate "CMAC support"
52393b5e86aSJussi Kivilinna	select CRYPTO_HASH
52493b5e86aSJussi Kivilinna	select CRYPTO_MANAGER
52593b5e86aSJussi Kivilinna	help
52693b5e86aSJussi Kivilinna	  Cipher-based Message Authentication Code (CMAC) specified by
52793b5e86aSJussi Kivilinna	  The National Institute of Standards and Technology (NIST).
52893b5e86aSJussi Kivilinna
52993b5e86aSJussi Kivilinna	  https://tools.ietf.org/html/rfc4493
53093b5e86aSJussi Kivilinna	  http://csrc.nist.gov/publications/nistpubs/800-38B/SP_800-38B.pdf
53193b5e86aSJussi Kivilinna
5321da177e4SLinus Torvaldsconfig CRYPTO_HMAC
5338425165dSHerbert Xu	tristate "HMAC support"
5340796ae06SHerbert Xu	select CRYPTO_HASH
53543518407SHerbert Xu	select CRYPTO_MANAGER
5361da177e4SLinus Torvalds	help
5371da177e4SLinus Torvalds	  HMAC: Keyed-Hashing for Message Authentication (RFC2104).
5381da177e4SLinus Torvalds	  This is required for IPSec.
5391da177e4SLinus Torvalds
540333b0d7eSKazunori MIYAZAWAconfig CRYPTO_XCBC
541333b0d7eSKazunori MIYAZAWA	tristate "XCBC support"
542333b0d7eSKazunori MIYAZAWA	select CRYPTO_HASH
543333b0d7eSKazunori MIYAZAWA	select CRYPTO_MANAGER
544333b0d7eSKazunori MIYAZAWA	help
545333b0d7eSKazunori MIYAZAWA	  XCBC: Keyed-Hashing with encryption algorithm
546333b0d7eSKazunori MIYAZAWA		http://www.ietf.org/rfc/rfc3566.txt
547333b0d7eSKazunori MIYAZAWA		http://csrc.nist.gov/encryption/modes/proposedmodes/
548333b0d7eSKazunori MIYAZAWA		 xcbc-mac/xcbc-mac-spec.pdf
549333b0d7eSKazunori MIYAZAWA
550f1939f7cSShane Wangconfig CRYPTO_VMAC
551f1939f7cSShane Wang	tristate "VMAC support"
552f1939f7cSShane Wang	select CRYPTO_HASH
553f1939f7cSShane Wang	select CRYPTO_MANAGER
554f1939f7cSShane Wang	help
555f1939f7cSShane Wang	  VMAC is a message authentication algorithm designed for
556f1939f7cSShane Wang	  very high speed on 64-bit architectures.
557f1939f7cSShane Wang
558f1939f7cSShane Wang	  See also:
559f1939f7cSShane Wang	  <http://fastcrypto.org/vmac>
560f1939f7cSShane Wang
561584fffc8SSebastian Siewiorcomment "Digest"
562584fffc8SSebastian Siewior
563584fffc8SSebastian Siewiorconfig CRYPTO_CRC32C
564584fffc8SSebastian Siewior	tristate "CRC32c CRC algorithm"
5655773a3e6SHerbert Xu	select CRYPTO_HASH
5666a0962b2SDarrick J. Wong	select CRC32
5671da177e4SLinus Torvalds	help
568584fffc8SSebastian Siewior	  Castagnoli, et al Cyclic Redundancy-Check Algorithm.  Used
569584fffc8SSebastian Siewior	  by iSCSI for header and data digests and by others.
57069c35efcSHerbert Xu	  See Castagnoli93.  Module will be crc32c.
5711da177e4SLinus Torvalds
5728cb51ba8SAustin Zhangconfig CRYPTO_CRC32C_INTEL
5738cb51ba8SAustin Zhang	tristate "CRC32c INTEL hardware acceleration"
5748cb51ba8SAustin Zhang	depends on X86
5758cb51ba8SAustin Zhang	select CRYPTO_HASH
5768cb51ba8SAustin Zhang	help
5778cb51ba8SAustin Zhang	  In Intel processor with SSE4.2 supported, the processor will
5788cb51ba8SAustin Zhang	  support CRC32C implementation using hardware accelerated CRC32
5798cb51ba8SAustin Zhang	  instruction. This option will create 'crc32c-intel' module,
5808cb51ba8SAustin Zhang	  which will enable any routine to use the CRC32 instruction to
5818cb51ba8SAustin Zhang	  gain performance compared with software implementation.
5828cb51ba8SAustin Zhang	  Module will be crc32c-intel.
5838cb51ba8SAustin Zhang
5847cf31864SJean Delvareconfig CRYPTO_CRC32C_VPMSUM
5856dd7a82cSAnton Blanchard	tristate "CRC32c CRC algorithm (powerpc64)"
586c12abf34SMichael Ellerman	depends on PPC64 && ALTIVEC
5876dd7a82cSAnton Blanchard	select CRYPTO_HASH
5886dd7a82cSAnton Blanchard	select CRC32
5896dd7a82cSAnton Blanchard	help
5906dd7a82cSAnton Blanchard	  CRC32c algorithm implemented using vector polynomial multiply-sum
5916dd7a82cSAnton Blanchard	  (vpmsum) instructions, introduced in POWER8. Enable on POWER8
5926dd7a82cSAnton Blanchard	  and newer processors for improved performance.
5936dd7a82cSAnton Blanchard
5946dd7a82cSAnton Blanchard
595442a7c40SDavid S. Millerconfig CRYPTO_CRC32C_SPARC64
596442a7c40SDavid S. Miller	tristate "CRC32c CRC algorithm (SPARC64)"
597442a7c40SDavid S. Miller	depends on SPARC64
598442a7c40SDavid S. Miller	select CRYPTO_HASH
599442a7c40SDavid S. Miller	select CRC32
600442a7c40SDavid S. Miller	help
601442a7c40SDavid S. Miller	  CRC32c CRC algorithm implemented using sparc64 crypto instructions,
602442a7c40SDavid S. Miller	  when available.
603442a7c40SDavid S. Miller
60478c37d19SAlexander Boykoconfig CRYPTO_CRC32
60578c37d19SAlexander Boyko	tristate "CRC32 CRC algorithm"
60678c37d19SAlexander Boyko	select CRYPTO_HASH
60778c37d19SAlexander Boyko	select CRC32
60878c37d19SAlexander Boyko	help
60978c37d19SAlexander Boyko	  CRC-32-IEEE 802.3 cyclic redundancy-check algorithm.
61078c37d19SAlexander Boyko	  Shash crypto api wrappers to crc32_le function.
61178c37d19SAlexander Boyko
61278c37d19SAlexander Boykoconfig CRYPTO_CRC32_PCLMUL
61378c37d19SAlexander Boyko	tristate "CRC32 PCLMULQDQ hardware acceleration"
61478c37d19SAlexander Boyko	depends on X86
61578c37d19SAlexander Boyko	select CRYPTO_HASH
61678c37d19SAlexander Boyko	select CRC32
61778c37d19SAlexander Boyko	help
61878c37d19SAlexander Boyko	  From Intel Westmere and AMD Bulldozer processor with SSE4.2
61978c37d19SAlexander Boyko	  and PCLMULQDQ supported, the processor will support
62078c37d19SAlexander Boyko	  CRC32 PCLMULQDQ implementation using hardware accelerated PCLMULQDQ
621af8cb01fShaco	  instruction. This option will create 'crc32-pclmul' module,
62278c37d19SAlexander Boyko	  which will enable any routine to use the CRC-32-IEEE 802.3 checksum
62378c37d19SAlexander Boyko	  and gain better performance as compared with the table implementation.
62478c37d19SAlexander Boyko
6254a5dc51eSMarcin Nowakowskiconfig CRYPTO_CRC32_MIPS
6264a5dc51eSMarcin Nowakowski	tristate "CRC32c and CRC32 CRC algorithm (MIPS)"
6274a5dc51eSMarcin Nowakowski	depends on MIPS_CRC_SUPPORT
6284a5dc51eSMarcin Nowakowski	select CRYPTO_HASH
6294a5dc51eSMarcin Nowakowski	help
6304a5dc51eSMarcin Nowakowski	  CRC32c and CRC32 CRC algorithms implemented using mips crypto
6314a5dc51eSMarcin Nowakowski	  instructions, when available.
6324a5dc51eSMarcin Nowakowski
6334a5dc51eSMarcin Nowakowski
63467882e76SNikolay Borisovconfig CRYPTO_XXHASH
63567882e76SNikolay Borisov	tristate "xxHash hash algorithm"
63667882e76SNikolay Borisov	select CRYPTO_HASH
63767882e76SNikolay Borisov	select XXHASH
63867882e76SNikolay Borisov	help
63967882e76SNikolay Borisov	  xxHash non-cryptographic hash algorithm. Extremely fast, working at
64067882e76SNikolay Borisov	  speeds close to RAM limits.
64167882e76SNikolay Borisov
64291d68933SDavid Sterbaconfig CRYPTO_BLAKE2B
64391d68933SDavid Sterba	tristate "BLAKE2b digest algorithm"
64491d68933SDavid Sterba	select CRYPTO_HASH
64591d68933SDavid Sterba	help
64691d68933SDavid Sterba	  Implementation of cryptographic hash function BLAKE2b (or just BLAKE2),
64791d68933SDavid Sterba	  optimized for 64bit platforms and can produce digests of any size
64891d68933SDavid Sterba	  between 1 to 64.  The keyed hash is also implemented.
64991d68933SDavid Sterba
65091d68933SDavid Sterba	  This module provides the following algorithms:
65191d68933SDavid Sterba
65291d68933SDavid Sterba	  - blake2b-160
65391d68933SDavid Sterba	  - blake2b-256
65491d68933SDavid Sterba	  - blake2b-384
65591d68933SDavid Sterba	  - blake2b-512
65691d68933SDavid Sterba
65791d68933SDavid Sterba	  See https://blake2.net for further information.
65891d68933SDavid Sterba
6597f9b0880SArd Biesheuvelconfig CRYPTO_BLAKE2S
6607f9b0880SArd Biesheuvel	tristate "BLAKE2s digest algorithm"
6617f9b0880SArd Biesheuvel	select CRYPTO_LIB_BLAKE2S_GENERIC
6627f9b0880SArd Biesheuvel	select CRYPTO_HASH
6637f9b0880SArd Biesheuvel	help
6647f9b0880SArd Biesheuvel	  Implementation of cryptographic hash function BLAKE2s
6657f9b0880SArd Biesheuvel	  optimized for 8-32bit platforms and can produce digests of any size
6667f9b0880SArd Biesheuvel	  between 1 to 32.  The keyed hash is also implemented.
6677f9b0880SArd Biesheuvel
6687f9b0880SArd Biesheuvel	  This module provides the following algorithms:
6697f9b0880SArd Biesheuvel
6707f9b0880SArd Biesheuvel	  - blake2s-128
6717f9b0880SArd Biesheuvel	  - blake2s-160
6727f9b0880SArd Biesheuvel	  - blake2s-224
6737f9b0880SArd Biesheuvel	  - blake2s-256
6747f9b0880SArd Biesheuvel
6757f9b0880SArd Biesheuvel	  See https://blake2.net for further information.
6767f9b0880SArd Biesheuvel
677*ed0356edSJason A. Donenfeldconfig CRYPTO_BLAKE2S_X86
678*ed0356edSJason A. Donenfeld	tristate "BLAKE2s digest algorithm (x86 accelerated version)"
679*ed0356edSJason A. Donenfeld	depends on X86 && 64BIT
680*ed0356edSJason A. Donenfeld	select CRYPTO_LIB_BLAKE2S_GENERIC
681*ed0356edSJason A. Donenfeld	select CRYPTO_ARCH_HAVE_LIB_BLAKE2S
682*ed0356edSJason A. Donenfeld
68368411521SHerbert Xuconfig CRYPTO_CRCT10DIF
68468411521SHerbert Xu	tristate "CRCT10DIF algorithm"
68568411521SHerbert Xu	select CRYPTO_HASH
68668411521SHerbert Xu	help
68768411521SHerbert Xu	  CRC T10 Data Integrity Field computation is being cast as
68868411521SHerbert Xu	  a crypto transform.  This allows for faster crc t10 diff
68968411521SHerbert Xu	  transforms to be used if they are available.
69068411521SHerbert Xu
69168411521SHerbert Xuconfig CRYPTO_CRCT10DIF_PCLMUL
69268411521SHerbert Xu	tristate "CRCT10DIF PCLMULQDQ hardware acceleration"
69368411521SHerbert Xu	depends on X86 && 64BIT && CRC_T10DIF
69468411521SHerbert Xu	select CRYPTO_HASH
69568411521SHerbert Xu	help
69668411521SHerbert Xu	  For x86_64 processors with SSE4.2 and PCLMULQDQ supported,
69768411521SHerbert Xu	  CRC T10 DIF PCLMULQDQ computation can be hardware
69868411521SHerbert Xu	  accelerated PCLMULQDQ instruction. This option will create
699af8cb01fShaco	  'crct10dif-pclmul' module, which is faster when computing the
70068411521SHerbert Xu	  crct10dif checksum as compared with the generic table implementation.
70168411521SHerbert Xu
702b01df1c1SDaniel Axtensconfig CRYPTO_CRCT10DIF_VPMSUM
703b01df1c1SDaniel Axtens	tristate "CRC32T10DIF powerpc64 hardware acceleration"
704b01df1c1SDaniel Axtens	depends on PPC64 && ALTIVEC && CRC_T10DIF
705b01df1c1SDaniel Axtens	select CRYPTO_HASH
706b01df1c1SDaniel Axtens	help
707b01df1c1SDaniel Axtens	  CRC10T10DIF algorithm implemented using vector polynomial
708b01df1c1SDaniel Axtens	  multiply-sum (vpmsum) instructions, introduced in POWER8. Enable on
709b01df1c1SDaniel Axtens	  POWER8 and newer processors for improved performance.
710b01df1c1SDaniel Axtens
711146c8688SDaniel Axtensconfig CRYPTO_VPMSUM_TESTER
712146c8688SDaniel Axtens	tristate "Powerpc64 vpmsum hardware acceleration tester"
713146c8688SDaniel Axtens	depends on CRYPTO_CRCT10DIF_VPMSUM && CRYPTO_CRC32C_VPMSUM
714146c8688SDaniel Axtens	help
715146c8688SDaniel Axtens	  Stress test for CRC32c and CRC-T10DIF algorithms implemented with
716146c8688SDaniel Axtens	  POWER8 vpmsum instructions.
717146c8688SDaniel Axtens	  Unless you are testing these algorithms, you don't need this.
718146c8688SDaniel Axtens
7192cdc6899SHuang Yingconfig CRYPTO_GHASH
7208dfa20fcSEric Biggers	tristate "GHASH hash function"
7212cdc6899SHuang Ying	select CRYPTO_GF128MUL
722578c60fbSArnd Bergmann	select CRYPTO_HASH
7232cdc6899SHuang Ying	help
7248dfa20fcSEric Biggers	  GHASH is the hash function used in GCM (Galois/Counter Mode).
7258dfa20fcSEric Biggers	  It is not a general-purpose cryptographic hash function.
7262cdc6899SHuang Ying
727f979e014SMartin Williconfig CRYPTO_POLY1305
728f979e014SMartin Willi	tristate "Poly1305 authenticator algorithm"
729578c60fbSArnd Bergmann	select CRYPTO_HASH
73048ea8c6eSArd Biesheuvel	select CRYPTO_LIB_POLY1305_GENERIC
731f979e014SMartin Willi	help
732f979e014SMartin Willi	  Poly1305 authenticator algorithm, RFC7539.
733f979e014SMartin Willi
734f979e014SMartin Willi	  Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
735f979e014SMartin Willi	  It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
736f979e014SMartin Willi	  in IETF protocols. This is the portable C implementation of Poly1305.
737f979e014SMartin Willi
738c70f4abeSMartin Williconfig CRYPTO_POLY1305_X86_64
739b1ccc8f4SMartin Willi	tristate "Poly1305 authenticator algorithm (x86_64/SSE2/AVX2)"
740c70f4abeSMartin Willi	depends on X86 && 64BIT
7411b2c6a51SArd Biesheuvel	select CRYPTO_LIB_POLY1305_GENERIC
742f0e89bcfSArd Biesheuvel	select CRYPTO_ARCH_HAVE_LIB_POLY1305
743c70f4abeSMartin Willi	help
744c70f4abeSMartin Willi	  Poly1305 authenticator algorithm, RFC7539.
745c70f4abeSMartin Willi
746c70f4abeSMartin Willi	  Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
747c70f4abeSMartin Willi	  It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
748c70f4abeSMartin Willi	  in IETF protocols. This is the x86_64 assembler implementation using SIMD
749c70f4abeSMartin Willi	  instructions.
750c70f4abeSMartin Willi
751a11d055eSArd Biesheuvelconfig CRYPTO_POLY1305_MIPS
752a11d055eSArd Biesheuvel	tristate "Poly1305 authenticator algorithm (MIPS optimized)"
753a11d055eSArd Biesheuvel	depends on CPU_MIPS32 || (CPU_MIPS64 && 64BIT)
754a11d055eSArd Biesheuvel	select CRYPTO_ARCH_HAVE_LIB_POLY1305
755a11d055eSArd Biesheuvel
7561da177e4SLinus Torvaldsconfig CRYPTO_MD4
7571da177e4SLinus Torvalds	tristate "MD4 digest algorithm"
758808a1763SAdrian-Ken Rueegsegger	select CRYPTO_HASH
7591da177e4SLinus Torvalds	help
7601da177e4SLinus Torvalds	  MD4 message digest algorithm (RFC1320).
7611da177e4SLinus Torvalds
7621da177e4SLinus Torvaldsconfig CRYPTO_MD5
7631da177e4SLinus Torvalds	tristate "MD5 digest algorithm"
76414b75ba7SAdrian-Ken Rueegsegger	select CRYPTO_HASH
7651da177e4SLinus Torvalds	help
7661da177e4SLinus Torvalds	  MD5 message digest algorithm (RFC1321).
7671da177e4SLinus Torvalds
768d69e75deSAaro Koskinenconfig CRYPTO_MD5_OCTEON
769d69e75deSAaro Koskinen	tristate "MD5 digest algorithm (OCTEON)"
770d69e75deSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
771d69e75deSAaro Koskinen	select CRYPTO_MD5
772d69e75deSAaro Koskinen	select CRYPTO_HASH
773d69e75deSAaro Koskinen	help
774d69e75deSAaro Koskinen	  MD5 message digest algorithm (RFC1321) implemented
775d69e75deSAaro Koskinen	  using OCTEON crypto instructions, when available.
776d69e75deSAaro Koskinen
777e8e59953SMarkus Stockhausenconfig CRYPTO_MD5_PPC
778e8e59953SMarkus Stockhausen	tristate "MD5 digest algorithm (PPC)"
779e8e59953SMarkus Stockhausen	depends on PPC
780e8e59953SMarkus Stockhausen	select CRYPTO_HASH
781e8e59953SMarkus Stockhausen	help
782e8e59953SMarkus Stockhausen	  MD5 message digest algorithm (RFC1321) implemented
783e8e59953SMarkus Stockhausen	  in PPC assembler.
784e8e59953SMarkus Stockhausen
785fa4dfedcSDavid S. Millerconfig CRYPTO_MD5_SPARC64
786fa4dfedcSDavid S. Miller	tristate "MD5 digest algorithm (SPARC64)"
787fa4dfedcSDavid S. Miller	depends on SPARC64
788fa4dfedcSDavid S. Miller	select CRYPTO_MD5
789fa4dfedcSDavid S. Miller	select CRYPTO_HASH
790fa4dfedcSDavid S. Miller	help
791fa4dfedcSDavid S. Miller	  MD5 message digest algorithm (RFC1321) implemented
792fa4dfedcSDavid S. Miller	  using sparc64 crypto instructions, when available.
793fa4dfedcSDavid S. Miller
794584fffc8SSebastian Siewiorconfig CRYPTO_MICHAEL_MIC
795584fffc8SSebastian Siewior	tristate "Michael MIC keyed digest algorithm"
79619e2bf14SAdrian-Ken Rueegsegger	select CRYPTO_HASH
797584fffc8SSebastian Siewior	help
798584fffc8SSebastian Siewior	  Michael MIC is used for message integrity protection in TKIP
799584fffc8SSebastian Siewior	  (IEEE 802.11i). This algorithm is required for TKIP, but it
800584fffc8SSebastian Siewior	  should not be used for other purposes because of the weakness
801584fffc8SSebastian Siewior	  of the algorithm.
802584fffc8SSebastian Siewior
80382798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD128
80482798f90SAdrian-Ken Rueegsegger	tristate "RIPEMD-128 digest algorithm"
8057c4468bcSHerbert Xu	select CRYPTO_HASH
80682798f90SAdrian-Ken Rueegsegger	help
80782798f90SAdrian-Ken Rueegsegger	  RIPEMD-128 (ISO/IEC 10118-3:2004).
80882798f90SAdrian-Ken Rueegsegger
80982798f90SAdrian-Ken Rueegsegger	  RIPEMD-128 is a 128-bit cryptographic hash function. It should only
81035ed4b35SMichael Witten	  be used as a secure replacement for RIPEMD. For other use cases,
81182798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 should be used.
81282798f90SAdrian-Ken Rueegsegger
81382798f90SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
8146d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
81582798f90SAdrian-Ken Rueegsegger
81682798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD160
81782798f90SAdrian-Ken Rueegsegger	tristate "RIPEMD-160 digest algorithm"
818e5835fbaSHerbert Xu	select CRYPTO_HASH
81982798f90SAdrian-Ken Rueegsegger	help
82082798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 (ISO/IEC 10118-3:2004).
82182798f90SAdrian-Ken Rueegsegger
82282798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 is a 160-bit cryptographic hash function. It is intended
82382798f90SAdrian-Ken Rueegsegger	  to be used as a secure replacement for the 128-bit hash functions
824b6d44341SAdrian Bunk	  MD4, MD5 and it's predecessor RIPEMD
825b6d44341SAdrian Bunk	  (not to be confused with RIPEMD-128).
82682798f90SAdrian-Ken Rueegsegger
827b6d44341SAdrian Bunk	  It's speed is comparable to SHA1 and there are no known attacks
828b6d44341SAdrian Bunk	  against RIPEMD-160.
829534fe2c1SAdrian-Ken Rueegsegger
830534fe2c1SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
8316d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
832534fe2c1SAdrian-Ken Rueegsegger
833534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD256
834534fe2c1SAdrian-Ken Rueegsegger	tristate "RIPEMD-256 digest algorithm"
835d8a5e2e9SHerbert Xu	select CRYPTO_HASH
836534fe2c1SAdrian-Ken Rueegsegger	help
837b6d44341SAdrian Bunk	  RIPEMD-256 is an optional extension of RIPEMD-128 with a
838b6d44341SAdrian Bunk	  256 bit hash. It is intended for applications that require
839b6d44341SAdrian Bunk	  longer hash-results, without needing a larger security level
840b6d44341SAdrian Bunk	  (than RIPEMD-128).
841534fe2c1SAdrian-Ken Rueegsegger
842534fe2c1SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
8436d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
844534fe2c1SAdrian-Ken Rueegsegger
845534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD320
846534fe2c1SAdrian-Ken Rueegsegger	tristate "RIPEMD-320 digest algorithm"
8473b8efb4cSHerbert Xu	select CRYPTO_HASH
848534fe2c1SAdrian-Ken Rueegsegger	help
849b6d44341SAdrian Bunk	  RIPEMD-320 is an optional extension of RIPEMD-160 with a
850b6d44341SAdrian Bunk	  320 bit hash. It is intended for applications that require
851b6d44341SAdrian Bunk	  longer hash-results, without needing a larger security level
852b6d44341SAdrian Bunk	  (than RIPEMD-160).
853534fe2c1SAdrian-Ken Rueegsegger
85482798f90SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
8556d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
85682798f90SAdrian-Ken Rueegsegger
8571da177e4SLinus Torvaldsconfig CRYPTO_SHA1
8581da177e4SLinus Torvalds	tristate "SHA1 digest algorithm"
85954ccb367SAdrian-Ken Rueegsegger	select CRYPTO_HASH
8601da177e4SLinus Torvalds	help
8611da177e4SLinus Torvalds	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
8621da177e4SLinus Torvalds
86366be8951SMathias Krauseconfig CRYPTO_SHA1_SSSE3
864e38b6b7fStim	tristate "SHA1 digest algorithm (SSSE3/AVX/AVX2/SHA-NI)"
86566be8951SMathias Krause	depends on X86 && 64BIT
86666be8951SMathias Krause	select CRYPTO_SHA1
86766be8951SMathias Krause	select CRYPTO_HASH
86866be8951SMathias Krause	help
86966be8951SMathias Krause	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
87066be8951SMathias Krause	  using Supplemental SSE3 (SSSE3) instructions or Advanced Vector
871e38b6b7fStim	  Extensions (AVX/AVX2) or SHA-NI(SHA Extensions New Instructions),
872e38b6b7fStim	  when available.
87366be8951SMathias Krause
8748275d1aaSTim Chenconfig CRYPTO_SHA256_SSSE3
875e38b6b7fStim	tristate "SHA256 digest algorithm (SSSE3/AVX/AVX2/SHA-NI)"
8768275d1aaSTim Chen	depends on X86 && 64BIT
8778275d1aaSTim Chen	select CRYPTO_SHA256
8788275d1aaSTim Chen	select CRYPTO_HASH
8798275d1aaSTim Chen	help
8808275d1aaSTim Chen	  SHA-256 secure hash standard (DFIPS 180-2) implemented
8818275d1aaSTim Chen	  using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
8828275d1aaSTim Chen	  Extensions version 1 (AVX1), or Advanced Vector Extensions
883e38b6b7fStim	  version 2 (AVX2) instructions, or SHA-NI (SHA Extensions New
884e38b6b7fStim	  Instructions) when available.
8858275d1aaSTim Chen
88687de4579STim Chenconfig CRYPTO_SHA512_SSSE3
88787de4579STim Chen	tristate "SHA512 digest algorithm (SSSE3/AVX/AVX2)"
88887de4579STim Chen	depends on X86 && 64BIT
88987de4579STim Chen	select CRYPTO_SHA512
89087de4579STim Chen	select CRYPTO_HASH
89187de4579STim Chen	help
89287de4579STim Chen	  SHA-512 secure hash standard (DFIPS 180-2) implemented
89387de4579STim Chen	  using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
89487de4579STim Chen	  Extensions version 1 (AVX1), or Advanced Vector Extensions
89587de4579STim Chen	  version 2 (AVX2) instructions, when available.
89687de4579STim Chen
897efdb6f6eSAaro Koskinenconfig CRYPTO_SHA1_OCTEON
898efdb6f6eSAaro Koskinen	tristate "SHA1 digest algorithm (OCTEON)"
899efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
900efdb6f6eSAaro Koskinen	select CRYPTO_SHA1
901efdb6f6eSAaro Koskinen	select CRYPTO_HASH
902efdb6f6eSAaro Koskinen	help
903efdb6f6eSAaro Koskinen	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
904efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
905efdb6f6eSAaro Koskinen
9064ff28d4cSDavid S. Millerconfig CRYPTO_SHA1_SPARC64
9074ff28d4cSDavid S. Miller	tristate "SHA1 digest algorithm (SPARC64)"
9084ff28d4cSDavid S. Miller	depends on SPARC64
9094ff28d4cSDavid S. Miller	select CRYPTO_SHA1
9104ff28d4cSDavid S. Miller	select CRYPTO_HASH
9114ff28d4cSDavid S. Miller	help
9124ff28d4cSDavid S. Miller	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
9134ff28d4cSDavid S. Miller	  using sparc64 crypto instructions, when available.
9144ff28d4cSDavid S. Miller
915323a6bf1SMichael Ellermanconfig CRYPTO_SHA1_PPC
916323a6bf1SMichael Ellerman	tristate "SHA1 digest algorithm (powerpc)"
917323a6bf1SMichael Ellerman	depends on PPC
918323a6bf1SMichael Ellerman	help
919323a6bf1SMichael Ellerman	  This is the powerpc hardware accelerated implementation of the
920323a6bf1SMichael Ellerman	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
921323a6bf1SMichael Ellerman
922d9850fc5SMarkus Stockhausenconfig CRYPTO_SHA1_PPC_SPE
923d9850fc5SMarkus Stockhausen	tristate "SHA1 digest algorithm (PPC SPE)"
924d9850fc5SMarkus Stockhausen	depends on PPC && SPE
925d9850fc5SMarkus Stockhausen	help
926d9850fc5SMarkus Stockhausen	  SHA-1 secure hash standard (DFIPS 180-4) implemented
927d9850fc5SMarkus Stockhausen	  using powerpc SPE SIMD instruction set.
928d9850fc5SMarkus Stockhausen
9291da177e4SLinus Torvaldsconfig CRYPTO_SHA256
930cd12fb90SJonathan Lynch	tristate "SHA224 and SHA256 digest algorithm"
93150e109b5SAdrian-Ken Rueegsegger	select CRYPTO_HASH
93208c327f6SHans de Goede	select CRYPTO_LIB_SHA256
9331da177e4SLinus Torvalds	help
9341da177e4SLinus Torvalds	  SHA256 secure hash standard (DFIPS 180-2).
9351da177e4SLinus Torvalds
9361da177e4SLinus Torvalds	  This version of SHA implements a 256 bit hash with 128 bits of
9371da177e4SLinus Torvalds	  security against collision attacks.
9381da177e4SLinus Torvalds
939cd12fb90SJonathan Lynch	  This code also includes SHA-224, a 224 bit hash with 112 bits
940cd12fb90SJonathan Lynch	  of security against collision attacks.
941cd12fb90SJonathan Lynch
9422ecc1e95SMarkus Stockhausenconfig CRYPTO_SHA256_PPC_SPE
9432ecc1e95SMarkus Stockhausen	tristate "SHA224 and SHA256 digest algorithm (PPC SPE)"
9442ecc1e95SMarkus Stockhausen	depends on PPC && SPE
9452ecc1e95SMarkus Stockhausen	select CRYPTO_SHA256
9462ecc1e95SMarkus Stockhausen	select CRYPTO_HASH
9472ecc1e95SMarkus Stockhausen	help
9482ecc1e95SMarkus Stockhausen	  SHA224 and SHA256 secure hash standard (DFIPS 180-2)
9492ecc1e95SMarkus Stockhausen	  implemented using powerpc SPE SIMD instruction set.
9502ecc1e95SMarkus Stockhausen
951efdb6f6eSAaro Koskinenconfig CRYPTO_SHA256_OCTEON
952efdb6f6eSAaro Koskinen	tristate "SHA224 and SHA256 digest algorithm (OCTEON)"
953efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
954efdb6f6eSAaro Koskinen	select CRYPTO_SHA256
955efdb6f6eSAaro Koskinen	select CRYPTO_HASH
956efdb6f6eSAaro Koskinen	help
957efdb6f6eSAaro Koskinen	  SHA-256 secure hash standard (DFIPS 180-2) implemented
958efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
959efdb6f6eSAaro Koskinen
96086c93b24SDavid S. Millerconfig CRYPTO_SHA256_SPARC64
96186c93b24SDavid S. Miller	tristate "SHA224 and SHA256 digest algorithm (SPARC64)"
96286c93b24SDavid S. Miller	depends on SPARC64
96386c93b24SDavid S. Miller	select CRYPTO_SHA256
96486c93b24SDavid S. Miller	select CRYPTO_HASH
96586c93b24SDavid S. Miller	help
96686c93b24SDavid S. Miller	  SHA-256 secure hash standard (DFIPS 180-2) implemented
96786c93b24SDavid S. Miller	  using sparc64 crypto instructions, when available.
96886c93b24SDavid S. Miller
9691da177e4SLinus Torvaldsconfig CRYPTO_SHA512
9701da177e4SLinus Torvalds	tristate "SHA384 and SHA512 digest algorithms"
971bd9d20dbSAdrian-Ken Rueegsegger	select CRYPTO_HASH
9721da177e4SLinus Torvalds	help
9731da177e4SLinus Torvalds	  SHA512 secure hash standard (DFIPS 180-2).
9741da177e4SLinus Torvalds
9751da177e4SLinus Torvalds	  This version of SHA implements a 512 bit hash with 256 bits of
9761da177e4SLinus Torvalds	  security against collision attacks.
9771da177e4SLinus Torvalds
9781da177e4SLinus Torvalds	  This code also includes SHA-384, a 384 bit hash with 192 bits
9791da177e4SLinus Torvalds	  of security against collision attacks.
9801da177e4SLinus Torvalds
981efdb6f6eSAaro Koskinenconfig CRYPTO_SHA512_OCTEON
982efdb6f6eSAaro Koskinen	tristate "SHA384 and SHA512 digest algorithms (OCTEON)"
983efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
984efdb6f6eSAaro Koskinen	select CRYPTO_SHA512
985efdb6f6eSAaro Koskinen	select CRYPTO_HASH
986efdb6f6eSAaro Koskinen	help
987efdb6f6eSAaro Koskinen	  SHA-512 secure hash standard (DFIPS 180-2) implemented
988efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
989efdb6f6eSAaro Koskinen
990775e0c69SDavid S. Millerconfig CRYPTO_SHA512_SPARC64
991775e0c69SDavid S. Miller	tristate "SHA384 and SHA512 digest algorithm (SPARC64)"
992775e0c69SDavid S. Miller	depends on SPARC64
993775e0c69SDavid S. Miller	select CRYPTO_SHA512
994775e0c69SDavid S. Miller	select CRYPTO_HASH
995775e0c69SDavid S. Miller	help
996775e0c69SDavid S. Miller	  SHA-512 secure hash standard (DFIPS 180-2) implemented
997775e0c69SDavid S. Miller	  using sparc64 crypto instructions, when available.
998775e0c69SDavid S. Miller
99953964b9eSJeff Garzikconfig CRYPTO_SHA3
100053964b9eSJeff Garzik	tristate "SHA3 digest algorithm"
100153964b9eSJeff Garzik	select CRYPTO_HASH
100253964b9eSJeff Garzik	help
100353964b9eSJeff Garzik	  SHA-3 secure hash standard (DFIPS 202). It's based on
100453964b9eSJeff Garzik	  cryptographic sponge function family called Keccak.
100553964b9eSJeff Garzik
100653964b9eSJeff Garzik	  References:
100753964b9eSJeff Garzik	  http://keccak.noekeon.org/
100853964b9eSJeff Garzik
10094f0fc160SGilad Ben-Yossefconfig CRYPTO_SM3
10104f0fc160SGilad Ben-Yossef	tristate "SM3 digest algorithm"
10114f0fc160SGilad Ben-Yossef	select CRYPTO_HASH
10124f0fc160SGilad Ben-Yossef	help
10134f0fc160SGilad Ben-Yossef	  SM3 secure hash function as defined by OSCCA GM/T 0004-2012 SM3).
10144f0fc160SGilad Ben-Yossef	  It is part of the Chinese Commercial Cryptography suite.
10154f0fc160SGilad Ben-Yossef
10164f0fc160SGilad Ben-Yossef	  References:
10174f0fc160SGilad Ben-Yossef	  http://www.oscca.gov.cn/UpFile/20101222141857786.pdf
10184f0fc160SGilad Ben-Yossef	  https://datatracker.ietf.org/doc/html/draft-shen-sm3-hash
10194f0fc160SGilad Ben-Yossef
1020fe18957eSVitaly Chikunovconfig CRYPTO_STREEBOG
1021fe18957eSVitaly Chikunov	tristate "Streebog Hash Function"
1022fe18957eSVitaly Chikunov	select CRYPTO_HASH
1023fe18957eSVitaly Chikunov	help
1024fe18957eSVitaly Chikunov	  Streebog Hash Function (GOST R 34.11-2012, RFC 6986) is one of the Russian
1025fe18957eSVitaly Chikunov	  cryptographic standard algorithms (called GOST algorithms).
1026fe18957eSVitaly Chikunov	  This setting enables two hash algorithms with 256 and 512 bits output.
1027fe18957eSVitaly Chikunov
1028fe18957eSVitaly Chikunov	  References:
1029fe18957eSVitaly Chikunov	  https://tc26.ru/upload/iblock/fed/feddbb4d26b685903faa2ba11aea43f6.pdf
1030fe18957eSVitaly Chikunov	  https://tools.ietf.org/html/rfc6986
1031fe18957eSVitaly Chikunov
10321da177e4SLinus Torvaldsconfig CRYPTO_TGR192
10331da177e4SLinus Torvalds	tristate "Tiger digest algorithms"
1034f63fbd3dSAdrian-Ken Rueegsegger	select CRYPTO_HASH
10351da177e4SLinus Torvalds	help
10361da177e4SLinus Torvalds	  Tiger hash algorithm 192, 160 and 128-bit hashes
10371da177e4SLinus Torvalds
10381da177e4SLinus Torvalds	  Tiger is a hash function optimized for 64-bit processors while
10391da177e4SLinus Torvalds	  still having decent performance on 32-bit processors.
10401da177e4SLinus Torvalds	  Tiger was developed by Ross Anderson and Eli Biham.
10411da177e4SLinus Torvalds
10421da177e4SLinus Torvalds	  See also:
10431da177e4SLinus Torvalds	  <http://www.cs.technion.ac.il/~biham/Reports/Tiger/>.
10441da177e4SLinus Torvalds
1045584fffc8SSebastian Siewiorconfig CRYPTO_WP512
1046584fffc8SSebastian Siewior	tristate "Whirlpool digest algorithms"
10474946510bSAdrian-Ken Rueegsegger	select CRYPTO_HASH
10481da177e4SLinus Torvalds	help
1049584fffc8SSebastian Siewior	  Whirlpool hash algorithm 512, 384 and 256-bit hashes
10501da177e4SLinus Torvalds
1051584fffc8SSebastian Siewior	  Whirlpool-512 is part of the NESSIE cryptographic primitives.
1052584fffc8SSebastian Siewior	  Whirlpool will be part of the ISO/IEC 10118-3:2003(E) standard
10531da177e4SLinus Torvalds
10541da177e4SLinus Torvalds	  See also:
10556d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/WhirlpoolPage.html>
10561da177e4SLinus Torvalds
10570e1227d3SHuang Yingconfig CRYPTO_GHASH_CLMUL_NI_INTEL
10588dfa20fcSEric Biggers	tristate "GHASH hash function (CLMUL-NI accelerated)"
10598af00860SRichard Weinberger	depends on X86 && 64BIT
10600e1227d3SHuang Ying	select CRYPTO_CRYPTD
10610e1227d3SHuang Ying	help
10628dfa20fcSEric Biggers	  This is the x86_64 CLMUL-NI accelerated implementation of
10638dfa20fcSEric Biggers	  GHASH, the hash function used in GCM (Galois/Counter mode).
10640e1227d3SHuang Ying
1065584fffc8SSebastian Siewiorcomment "Ciphers"
10661da177e4SLinus Torvalds
10671da177e4SLinus Torvaldsconfig CRYPTO_AES
10681da177e4SLinus Torvalds	tristate "AES cipher algorithms"
1069cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
10705bb12d78SArd Biesheuvel	select CRYPTO_LIB_AES
10711da177e4SLinus Torvalds	help
10721da177e4SLinus Torvalds	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
10731da177e4SLinus Torvalds	  algorithm.
10741da177e4SLinus Torvalds
10751da177e4SLinus Torvalds	  Rijndael appears to be consistently a very good performer in
10761da177e4SLinus Torvalds	  both hardware and software across a wide range of computing
10771da177e4SLinus Torvalds	  environments regardless of its use in feedback or non-feedback
10781da177e4SLinus Torvalds	  modes. Its key setup time is excellent, and its key agility is
10791da177e4SLinus Torvalds	  good. Rijndael's very low memory requirements make it very well
10801da177e4SLinus Torvalds	  suited for restricted-space environments, in which it also
10811da177e4SLinus Torvalds	  demonstrates excellent performance. Rijndael's operations are
10821da177e4SLinus Torvalds	  among the easiest to defend against power and timing attacks.
10831da177e4SLinus Torvalds
10841da177e4SLinus Torvalds	  The AES specifies three key sizes: 128, 192 and 256 bits
10851da177e4SLinus Torvalds
10861da177e4SLinus Torvalds	  See <http://csrc.nist.gov/CryptoToolkit/aes/> for more information.
10871da177e4SLinus Torvalds
1088b5e0b032SArd Biesheuvelconfig CRYPTO_AES_TI
1089b5e0b032SArd Biesheuvel	tristate "Fixed time AES cipher"
1090b5e0b032SArd Biesheuvel	select CRYPTO_ALGAPI
1091e59c1c98SArd Biesheuvel	select CRYPTO_LIB_AES
1092b5e0b032SArd Biesheuvel	help
1093b5e0b032SArd Biesheuvel	  This is a generic implementation of AES that attempts to eliminate
1094b5e0b032SArd Biesheuvel	  data dependent latencies as much as possible without affecting
1095b5e0b032SArd Biesheuvel	  performance too much. It is intended for use by the generic CCM
1096b5e0b032SArd Biesheuvel	  and GCM drivers, and other CTR or CMAC/XCBC based modes that rely
1097b5e0b032SArd Biesheuvel	  solely on encryption (although decryption is supported as well, but
1098b5e0b032SArd Biesheuvel	  with a more dramatic performance hit)
1099b5e0b032SArd Biesheuvel
1100b5e0b032SArd Biesheuvel	  Instead of using 16 lookup tables of 1 KB each, (8 for encryption and
1101b5e0b032SArd Biesheuvel	  8 for decryption), this implementation only uses just two S-boxes of
1102b5e0b032SArd Biesheuvel	  256 bytes each, and attempts to eliminate data dependent latencies by
1103b5e0b032SArd Biesheuvel	  prefetching the entire table into the cache at the start of each
11040a6a40c2SEric Biggers	  block. Interrupts are also disabled to avoid races where cachelines
11050a6a40c2SEric Biggers	  are evicted when the CPU is interrupted to do something else.
1106b5e0b032SArd Biesheuvel
110754b6a1bdSHuang Yingconfig CRYPTO_AES_NI_INTEL
110854b6a1bdSHuang Ying	tristate "AES cipher algorithms (AES-NI)"
11098af00860SRichard Weinberger	depends on X86
111085671860SHerbert Xu	select CRYPTO_AEAD
11112c53fd11SArd Biesheuvel	select CRYPTO_LIB_AES
111254b6a1bdSHuang Ying	select CRYPTO_ALGAPI
1113b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
11147643a11aSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86 if 64BIT
111585671860SHerbert Xu	select CRYPTO_SIMD
111654b6a1bdSHuang Ying	help
111754b6a1bdSHuang Ying	  Use Intel AES-NI instructions for AES algorithm.
111854b6a1bdSHuang Ying
111954b6a1bdSHuang Ying	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
112054b6a1bdSHuang Ying	  algorithm.
112154b6a1bdSHuang Ying
112254b6a1bdSHuang Ying	  Rijndael appears to be consistently a very good performer in
112354b6a1bdSHuang Ying	  both hardware and software across a wide range of computing
112454b6a1bdSHuang Ying	  environments regardless of its use in feedback or non-feedback
112554b6a1bdSHuang Ying	  modes. Its key setup time is excellent, and its key agility is
112654b6a1bdSHuang Ying	  good. Rijndael's very low memory requirements make it very well
112754b6a1bdSHuang Ying	  suited for restricted-space environments, in which it also
112854b6a1bdSHuang Ying	  demonstrates excellent performance. Rijndael's operations are
112954b6a1bdSHuang Ying	  among the easiest to defend against power and timing attacks.
113054b6a1bdSHuang Ying
113154b6a1bdSHuang Ying	  The AES specifies three key sizes: 128, 192 and 256 bits
113254b6a1bdSHuang Ying
113354b6a1bdSHuang Ying	  See <http://csrc.nist.gov/encryption/aes/> for more information.
113454b6a1bdSHuang Ying
11350d258efbSMathias Krause	  In addition to AES cipher algorithm support, the acceleration
11360d258efbSMathias Krause	  for some popular block cipher mode is supported too, including
1137944585a6SArd Biesheuvel	  ECB, CBC, LRW, XTS. The 64 bit version has additional
11380d258efbSMathias Krause	  acceleration for CTR.
11392cf4ac8bSHuang Ying
11409bf4852dSDavid S. Millerconfig CRYPTO_AES_SPARC64
11419bf4852dSDavid S. Miller	tristate "AES cipher algorithms (SPARC64)"
11429bf4852dSDavid S. Miller	depends on SPARC64
1143b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
11449bf4852dSDavid S. Miller	help
11459bf4852dSDavid S. Miller	  Use SPARC64 crypto opcodes for AES algorithm.
11469bf4852dSDavid S. Miller
11479bf4852dSDavid S. Miller	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
11489bf4852dSDavid S. Miller	  algorithm.
11499bf4852dSDavid S. Miller
11509bf4852dSDavid S. Miller	  Rijndael appears to be consistently a very good performer in
11519bf4852dSDavid S. Miller	  both hardware and software across a wide range of computing
11529bf4852dSDavid S. Miller	  environments regardless of its use in feedback or non-feedback
11539bf4852dSDavid S. Miller	  modes. Its key setup time is excellent, and its key agility is
11549bf4852dSDavid S. Miller	  good. Rijndael's very low memory requirements make it very well
11559bf4852dSDavid S. Miller	  suited for restricted-space environments, in which it also
11569bf4852dSDavid S. Miller	  demonstrates excellent performance. Rijndael's operations are
11579bf4852dSDavid S. Miller	  among the easiest to defend against power and timing attacks.
11589bf4852dSDavid S. Miller
11599bf4852dSDavid S. Miller	  The AES specifies three key sizes: 128, 192 and 256 bits
11609bf4852dSDavid S. Miller
11619bf4852dSDavid S. Miller	  See <http://csrc.nist.gov/encryption/aes/> for more information.
11629bf4852dSDavid S. Miller
11639bf4852dSDavid S. Miller	  In addition to AES cipher algorithm support, the acceleration
11649bf4852dSDavid S. Miller	  for some popular block cipher mode is supported too, including
11659bf4852dSDavid S. Miller	  ECB and CBC.
11669bf4852dSDavid S. Miller
1167504c6143SMarkus Stockhausenconfig CRYPTO_AES_PPC_SPE
1168504c6143SMarkus Stockhausen	tristate "AES cipher algorithms (PPC SPE)"
1169504c6143SMarkus Stockhausen	depends on PPC && SPE
1170b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1171504c6143SMarkus Stockhausen	help
1172504c6143SMarkus Stockhausen	  AES cipher algorithms (FIPS-197). Additionally the acceleration
1173504c6143SMarkus Stockhausen	  for popular block cipher modes ECB, CBC, CTR and XTS is supported.
1174504c6143SMarkus Stockhausen	  This module should only be used for low power (router) devices
1175504c6143SMarkus Stockhausen	  without hardware AES acceleration (e.g. caam crypto). It reduces the
1176504c6143SMarkus Stockhausen	  size of the AES tables from 16KB to 8KB + 256 bytes and mitigates
1177504c6143SMarkus Stockhausen	  timining attacks. Nevertheless it might be not as secure as other
1178504c6143SMarkus Stockhausen	  architecture specific assembler implementations that work on 1KB
1179504c6143SMarkus Stockhausen	  tables or 256 bytes S-boxes.
1180504c6143SMarkus Stockhausen
11811da177e4SLinus Torvaldsconfig CRYPTO_ANUBIS
11821da177e4SLinus Torvalds	tristate "Anubis cipher algorithm"
1183cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
11841da177e4SLinus Torvalds	help
11851da177e4SLinus Torvalds	  Anubis cipher algorithm.
11861da177e4SLinus Torvalds
11871da177e4SLinus Torvalds	  Anubis is a variable key length cipher which can use keys from
11881da177e4SLinus Torvalds	  128 bits to 320 bits in length.  It was evaluated as a entrant
11891da177e4SLinus Torvalds	  in the NESSIE competition.
11901da177e4SLinus Torvalds
11911da177e4SLinus Torvalds	  See also:
11926d8de74cSJustin P. Mattock	  <https://www.cosic.esat.kuleuven.be/nessie/reports/>
11936d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/AnubisPage.html>
11941da177e4SLinus Torvalds
1195584fffc8SSebastian Siewiorconfig CRYPTO_ARC4
1196584fffc8SSebastian Siewior	tristate "ARC4 cipher algorithm"
1197b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1198dc51f257SArd Biesheuvel	select CRYPTO_LIB_ARC4
1199e2ee95b8SHye-Shik Chang	help
1200584fffc8SSebastian Siewior	  ARC4 cipher algorithm.
1201e2ee95b8SHye-Shik Chang
1202584fffc8SSebastian Siewior	  ARC4 is a stream cipher using keys ranging from 8 bits to 2048
1203584fffc8SSebastian Siewior	  bits in length.  This algorithm is required for driver-based
1204584fffc8SSebastian Siewior	  WEP, but it should not be for other purposes because of the
1205584fffc8SSebastian Siewior	  weakness of the algorithm.
1206584fffc8SSebastian Siewior
1207584fffc8SSebastian Siewiorconfig CRYPTO_BLOWFISH
1208584fffc8SSebastian Siewior	tristate "Blowfish cipher algorithm"
1209584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
121052ba867cSJussi Kivilinna	select CRYPTO_BLOWFISH_COMMON
1211584fffc8SSebastian Siewior	help
1212584fffc8SSebastian Siewior	  Blowfish cipher algorithm, by Bruce Schneier.
1213584fffc8SSebastian Siewior
1214584fffc8SSebastian Siewior	  This is a variable key length cipher which can use keys from 32
1215584fffc8SSebastian Siewior	  bits to 448 bits in length.  It's fast, simple and specifically
1216584fffc8SSebastian Siewior	  designed for use on "large microprocessors".
1217e2ee95b8SHye-Shik Chang
1218e2ee95b8SHye-Shik Chang	  See also:
1219584fffc8SSebastian Siewior	  <http://www.schneier.com/blowfish.html>
1220584fffc8SSebastian Siewior
122152ba867cSJussi Kivilinnaconfig CRYPTO_BLOWFISH_COMMON
122252ba867cSJussi Kivilinna	tristate
122352ba867cSJussi Kivilinna	help
122452ba867cSJussi Kivilinna	  Common parts of the Blowfish cipher algorithm shared by the
122552ba867cSJussi Kivilinna	  generic c and the assembler implementations.
122652ba867cSJussi Kivilinna
122752ba867cSJussi Kivilinna	  See also:
122852ba867cSJussi Kivilinna	  <http://www.schneier.com/blowfish.html>
122952ba867cSJussi Kivilinna
123064b94ceaSJussi Kivilinnaconfig CRYPTO_BLOWFISH_X86_64
123164b94ceaSJussi Kivilinna	tristate "Blowfish cipher algorithm (x86_64)"
1232f21a7c19SAl Viro	depends on X86 && 64BIT
1233b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
123464b94ceaSJussi Kivilinna	select CRYPTO_BLOWFISH_COMMON
123564b94ceaSJussi Kivilinna	help
123664b94ceaSJussi Kivilinna	  Blowfish cipher algorithm (x86_64), by Bruce Schneier.
123764b94ceaSJussi Kivilinna
123864b94ceaSJussi Kivilinna	  This is a variable key length cipher which can use keys from 32
123964b94ceaSJussi Kivilinna	  bits to 448 bits in length.  It's fast, simple and specifically
124064b94ceaSJussi Kivilinna	  designed for use on "large microprocessors".
124164b94ceaSJussi Kivilinna
124264b94ceaSJussi Kivilinna	  See also:
124364b94ceaSJussi Kivilinna	  <http://www.schneier.com/blowfish.html>
124464b94ceaSJussi Kivilinna
1245584fffc8SSebastian Siewiorconfig CRYPTO_CAMELLIA
1246584fffc8SSebastian Siewior	tristate "Camellia cipher algorithms"
1247584fffc8SSebastian Siewior	depends on CRYPTO
1248584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1249584fffc8SSebastian Siewior	help
1250584fffc8SSebastian Siewior	  Camellia cipher algorithms module.
1251584fffc8SSebastian Siewior
1252584fffc8SSebastian Siewior	  Camellia is a symmetric key block cipher developed jointly
1253584fffc8SSebastian Siewior	  at NTT and Mitsubishi Electric Corporation.
1254584fffc8SSebastian Siewior
1255584fffc8SSebastian Siewior	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1256584fffc8SSebastian Siewior
1257584fffc8SSebastian Siewior	  See also:
1258584fffc8SSebastian Siewior	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1259584fffc8SSebastian Siewior
12600b95ec56SJussi Kivilinnaconfig CRYPTO_CAMELLIA_X86_64
12610b95ec56SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64)"
1262f21a7c19SAl Viro	depends on X86 && 64BIT
12630b95ec56SJussi Kivilinna	depends on CRYPTO
1264b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1265964263afSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
12660b95ec56SJussi Kivilinna	help
12670b95ec56SJussi Kivilinna	  Camellia cipher algorithm module (x86_64).
12680b95ec56SJussi Kivilinna
12690b95ec56SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
12700b95ec56SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
12710b95ec56SJussi Kivilinna
12720b95ec56SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
12730b95ec56SJussi Kivilinna
12740b95ec56SJussi Kivilinna	  See also:
12750b95ec56SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
12760b95ec56SJussi Kivilinna
1277d9b1d2e7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1278d9b1d2e7SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX)"
1279d9b1d2e7SJussi Kivilinna	depends on X86 && 64BIT
1280d9b1d2e7SJussi Kivilinna	depends on CRYPTO
1281b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1282d9b1d2e7SJussi Kivilinna	select CRYPTO_CAMELLIA_X86_64
128344893bc2SEric Biggers	select CRYPTO_GLUE_HELPER_X86
128444893bc2SEric Biggers	select CRYPTO_SIMD
1285d9b1d2e7SJussi Kivilinna	select CRYPTO_XTS
1286d9b1d2e7SJussi Kivilinna	help
1287d9b1d2e7SJussi Kivilinna	  Camellia cipher algorithm module (x86_64/AES-NI/AVX).
1288d9b1d2e7SJussi Kivilinna
1289d9b1d2e7SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
1290d9b1d2e7SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
1291d9b1d2e7SJussi Kivilinna
1292d9b1d2e7SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1293d9b1d2e7SJussi Kivilinna
1294d9b1d2e7SJussi Kivilinna	  See also:
1295d9b1d2e7SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1296d9b1d2e7SJussi Kivilinna
1297f3f935a7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX2_X86_64
1298f3f935a7SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX2)"
1299f3f935a7SJussi Kivilinna	depends on X86 && 64BIT
1300f3f935a7SJussi Kivilinna	depends on CRYPTO
1301f3f935a7SJussi Kivilinna	select CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1302f3f935a7SJussi Kivilinna	help
1303f3f935a7SJussi Kivilinna	  Camellia cipher algorithm module (x86_64/AES-NI/AVX2).
1304f3f935a7SJussi Kivilinna
1305f3f935a7SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
1306f3f935a7SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
1307f3f935a7SJussi Kivilinna
1308f3f935a7SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1309f3f935a7SJussi Kivilinna
1310f3f935a7SJussi Kivilinna	  See also:
1311f3f935a7SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1312f3f935a7SJussi Kivilinna
131381658ad0SDavid S. Millerconfig CRYPTO_CAMELLIA_SPARC64
131481658ad0SDavid S. Miller	tristate "Camellia cipher algorithm (SPARC64)"
131581658ad0SDavid S. Miller	depends on SPARC64
131681658ad0SDavid S. Miller	depends on CRYPTO
131781658ad0SDavid S. Miller	select CRYPTO_ALGAPI
1318b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
131981658ad0SDavid S. Miller	help
132081658ad0SDavid S. Miller	  Camellia cipher algorithm module (SPARC64).
132181658ad0SDavid S. Miller
132281658ad0SDavid S. Miller	  Camellia is a symmetric key block cipher developed jointly
132381658ad0SDavid S. Miller	  at NTT and Mitsubishi Electric Corporation.
132481658ad0SDavid S. Miller
132581658ad0SDavid S. Miller	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
132681658ad0SDavid S. Miller
132781658ad0SDavid S. Miller	  See also:
132881658ad0SDavid S. Miller	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
132981658ad0SDavid S. Miller
1330044ab525SJussi Kivilinnaconfig CRYPTO_CAST_COMMON
1331044ab525SJussi Kivilinna	tristate
1332044ab525SJussi Kivilinna	help
1333044ab525SJussi Kivilinna	  Common parts of the CAST cipher algorithms shared by the
1334044ab525SJussi Kivilinna	  generic c and the assembler implementations.
1335044ab525SJussi Kivilinna
1336584fffc8SSebastian Siewiorconfig CRYPTO_CAST5
1337584fffc8SSebastian Siewior	tristate "CAST5 (CAST-128) cipher algorithm"
1338584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1339044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
1340584fffc8SSebastian Siewior	help
1341584fffc8SSebastian Siewior	  The CAST5 encryption algorithm (synonymous with CAST-128) is
1342584fffc8SSebastian Siewior	  described in RFC2144.
1343584fffc8SSebastian Siewior
13444d6d6a2cSJohannes Goetzfriedconfig CRYPTO_CAST5_AVX_X86_64
13454d6d6a2cSJohannes Goetzfried	tristate "CAST5 (CAST-128) cipher algorithm (x86_64/AVX)"
13464d6d6a2cSJohannes Goetzfried	depends on X86 && 64BIT
1347b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
13484d6d6a2cSJohannes Goetzfried	select CRYPTO_CAST5
13491e63183aSEric Biggers	select CRYPTO_CAST_COMMON
13501e63183aSEric Biggers	select CRYPTO_SIMD
13514d6d6a2cSJohannes Goetzfried	help
13524d6d6a2cSJohannes Goetzfried	  The CAST5 encryption algorithm (synonymous with CAST-128) is
13534d6d6a2cSJohannes Goetzfried	  described in RFC2144.
13544d6d6a2cSJohannes Goetzfried
13554d6d6a2cSJohannes Goetzfried	  This module provides the Cast5 cipher algorithm that processes
13564d6d6a2cSJohannes Goetzfried	  sixteen blocks parallel using the AVX instruction set.
13574d6d6a2cSJohannes Goetzfried
1358584fffc8SSebastian Siewiorconfig CRYPTO_CAST6
1359584fffc8SSebastian Siewior	tristate "CAST6 (CAST-256) cipher algorithm"
1360584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1361044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
1362584fffc8SSebastian Siewior	help
1363584fffc8SSebastian Siewior	  The CAST6 encryption algorithm (synonymous with CAST-256) is
1364584fffc8SSebastian Siewior	  described in RFC2612.
1365584fffc8SSebastian Siewior
13664ea1277dSJohannes Goetzfriedconfig CRYPTO_CAST6_AVX_X86_64
13674ea1277dSJohannes Goetzfried	tristate "CAST6 (CAST-256) cipher algorithm (x86_64/AVX)"
13684ea1277dSJohannes Goetzfried	depends on X86 && 64BIT
1369b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
13704ea1277dSJohannes Goetzfried	select CRYPTO_CAST6
13714bd96924SEric Biggers	select CRYPTO_CAST_COMMON
13724bd96924SEric Biggers	select CRYPTO_GLUE_HELPER_X86
13734bd96924SEric Biggers	select CRYPTO_SIMD
13744ea1277dSJohannes Goetzfried	select CRYPTO_XTS
13754ea1277dSJohannes Goetzfried	help
13764ea1277dSJohannes Goetzfried	  The CAST6 encryption algorithm (synonymous with CAST-256) is
13774ea1277dSJohannes Goetzfried	  described in RFC2612.
13784ea1277dSJohannes Goetzfried
13794ea1277dSJohannes Goetzfried	  This module provides the Cast6 cipher algorithm that processes
13804ea1277dSJohannes Goetzfried	  eight blocks parallel using the AVX instruction set.
13814ea1277dSJohannes Goetzfried
1382584fffc8SSebastian Siewiorconfig CRYPTO_DES
1383584fffc8SSebastian Siewior	tristate "DES and Triple DES EDE cipher algorithms"
1384584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
138504007b0eSArd Biesheuvel	select CRYPTO_LIB_DES
1386584fffc8SSebastian Siewior	help
1387584fffc8SSebastian Siewior	  DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3).
1388584fffc8SSebastian Siewior
1389c5aac2dfSDavid S. Millerconfig CRYPTO_DES_SPARC64
1390c5aac2dfSDavid S. Miller	tristate "DES and Triple DES EDE cipher algorithms (SPARC64)"
139197da37b3SDave Jones	depends on SPARC64
1392c5aac2dfSDavid S. Miller	select CRYPTO_ALGAPI
139304007b0eSArd Biesheuvel	select CRYPTO_LIB_DES
1394b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1395c5aac2dfSDavid S. Miller	help
1396c5aac2dfSDavid S. Miller	  DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3),
1397c5aac2dfSDavid S. Miller	  optimized using SPARC64 crypto opcodes.
1398c5aac2dfSDavid S. Miller
13996574e6c6SJussi Kivilinnaconfig CRYPTO_DES3_EDE_X86_64
14006574e6c6SJussi Kivilinna	tristate "Triple DES EDE cipher algorithm (x86-64)"
14016574e6c6SJussi Kivilinna	depends on X86 && 64BIT
1402b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
140304007b0eSArd Biesheuvel	select CRYPTO_LIB_DES
14046574e6c6SJussi Kivilinna	help
14056574e6c6SJussi Kivilinna	  Triple DES EDE (FIPS 46-3) algorithm.
14066574e6c6SJussi Kivilinna
14076574e6c6SJussi Kivilinna	  This module provides implementation of the Triple DES EDE cipher
14086574e6c6SJussi Kivilinna	  algorithm that is optimized for x86-64 processors. Two versions of
14096574e6c6SJussi Kivilinna	  algorithm are provided; regular processing one input block and
14106574e6c6SJussi Kivilinna	  one that processes three blocks parallel.
14116574e6c6SJussi Kivilinna
1412584fffc8SSebastian Siewiorconfig CRYPTO_FCRYPT
1413584fffc8SSebastian Siewior	tristate "FCrypt cipher algorithm"
1414584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1415b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1416584fffc8SSebastian Siewior	help
1417584fffc8SSebastian Siewior	  FCrypt algorithm used by RxRPC.
1418584fffc8SSebastian Siewior
1419584fffc8SSebastian Siewiorconfig CRYPTO_KHAZAD
1420584fffc8SSebastian Siewior	tristate "Khazad cipher algorithm"
1421584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1422584fffc8SSebastian Siewior	help
1423584fffc8SSebastian Siewior	  Khazad cipher algorithm.
1424584fffc8SSebastian Siewior
1425584fffc8SSebastian Siewior	  Khazad was a finalist in the initial NESSIE competition.  It is
1426584fffc8SSebastian Siewior	  an algorithm optimized for 64-bit processors with good performance
1427584fffc8SSebastian Siewior	  on 32-bit processors.  Khazad uses an 128 bit key size.
1428584fffc8SSebastian Siewior
1429584fffc8SSebastian Siewior	  See also:
14306d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/KhazadPage.html>
1431e2ee95b8SHye-Shik Chang
14322407d608STan Swee Hengconfig CRYPTO_SALSA20
14333b4afaf2SKees Cook	tristate "Salsa20 stream cipher algorithm"
1434b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
14352407d608STan Swee Heng	help
14362407d608STan Swee Heng	  Salsa20 stream cipher algorithm.
14372407d608STan Swee Heng
14382407d608STan Swee Heng	  Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT
14392407d608STan Swee Heng	  Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/>
14402407d608STan Swee Heng
14412407d608STan Swee Heng	  The Salsa20 stream cipher algorithm is designed by Daniel J.
14422407d608STan Swee Heng	  Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html>
14431da177e4SLinus Torvalds
1444c08d0e64SMartin Williconfig CRYPTO_CHACHA20
1445aa762409SEric Biggers	tristate "ChaCha stream cipher algorithms"
14465fb8ef25SArd Biesheuvel	select CRYPTO_LIB_CHACHA_GENERIC
1447b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1448c08d0e64SMartin Willi	help
1449aa762409SEric Biggers	  The ChaCha20, XChaCha20, and XChaCha12 stream cipher algorithms.
1450c08d0e64SMartin Willi
1451c08d0e64SMartin Willi	  ChaCha20 is a 256-bit high-speed stream cipher designed by Daniel J.
1452c08d0e64SMartin Willi	  Bernstein and further specified in RFC7539 for use in IETF protocols.
1453de61d7aeSEric Biggers	  This is the portable C implementation of ChaCha20.  See also:
1454c08d0e64SMartin Willi	  <http://cr.yp.to/chacha/chacha-20080128.pdf>
1455c08d0e64SMartin Willi
1456de61d7aeSEric Biggers	  XChaCha20 is the application of the XSalsa20 construction to ChaCha20
1457de61d7aeSEric Biggers	  rather than to Salsa20.  XChaCha20 extends ChaCha20's nonce length
1458de61d7aeSEric Biggers	  from 64 bits (or 96 bits using the RFC7539 convention) to 192 bits,
1459de61d7aeSEric Biggers	  while provably retaining ChaCha20's security.  See also:
1460de61d7aeSEric Biggers	  <https://cr.yp.to/snuffle/xsalsa-20081128.pdf>
1461de61d7aeSEric Biggers
1462aa762409SEric Biggers	  XChaCha12 is XChaCha20 reduced to 12 rounds, with correspondingly
1463aa762409SEric Biggers	  reduced security margin but increased performance.  It can be needed
1464aa762409SEric Biggers	  in some performance-sensitive scenarios.
1465aa762409SEric Biggers
1466c9320b6dSMartin Williconfig CRYPTO_CHACHA20_X86_64
14674af78261SEric Biggers	tristate "ChaCha stream cipher algorithms (x86_64/SSSE3/AVX2/AVX-512VL)"
1468c9320b6dSMartin Willi	depends on X86 && 64BIT
1469b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
147028e8d89bSArd Biesheuvel	select CRYPTO_LIB_CHACHA_GENERIC
147184e03fa3SArd Biesheuvel	select CRYPTO_ARCH_HAVE_LIB_CHACHA
1472c9320b6dSMartin Willi	help
14737a507d62SEric Biggers	  SSSE3, AVX2, and AVX-512VL optimized implementations of the ChaCha20,
14747a507d62SEric Biggers	  XChaCha20, and XChaCha12 stream ciphers.
1475c9320b6dSMartin Willi
14763a2f58f3SArd Biesheuvelconfig CRYPTO_CHACHA_MIPS
14773a2f58f3SArd Biesheuvel	tristate "ChaCha stream cipher algorithms (MIPS 32r2 optimized)"
14783a2f58f3SArd Biesheuvel	depends on CPU_MIPS32_R2
14793a2f58f3SArd Biesheuvel	select CRYPTO_BLKCIPHER
14803a2f58f3SArd Biesheuvel	select CRYPTO_ARCH_HAVE_LIB_CHACHA
14813a2f58f3SArd Biesheuvel
1482584fffc8SSebastian Siewiorconfig CRYPTO_SEED
1483584fffc8SSebastian Siewior	tristate "SEED cipher algorithm"
1484584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1485584fffc8SSebastian Siewior	help
1486584fffc8SSebastian Siewior	  SEED cipher algorithm (RFC4269).
1487584fffc8SSebastian Siewior
1488584fffc8SSebastian Siewior	  SEED is a 128-bit symmetric key block cipher that has been
1489584fffc8SSebastian Siewior	  developed by KISA (Korea Information Security Agency) as a
1490584fffc8SSebastian Siewior	  national standard encryption algorithm of the Republic of Korea.
1491584fffc8SSebastian Siewior	  It is a 16 round block cipher with the key size of 128 bit.
1492584fffc8SSebastian Siewior
1493584fffc8SSebastian Siewior	  See also:
1494584fffc8SSebastian Siewior	  <http://www.kisa.or.kr/kisa/seed/jsp/seed_eng.jsp>
1495584fffc8SSebastian Siewior
1496584fffc8SSebastian Siewiorconfig CRYPTO_SERPENT
1497584fffc8SSebastian Siewior	tristate "Serpent cipher algorithm"
1498584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1499584fffc8SSebastian Siewior	help
1500584fffc8SSebastian Siewior	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1501584fffc8SSebastian Siewior
1502584fffc8SSebastian Siewior	  Keys are allowed to be from 0 to 256 bits in length, in steps
1503584fffc8SSebastian Siewior	  of 8 bits.  Also includes the 'Tnepres' algorithm, a reversed
1504584fffc8SSebastian Siewior	  variant of Serpent for compatibility with old kerneli.org code.
1505584fffc8SSebastian Siewior
1506584fffc8SSebastian Siewior	  See also:
1507584fffc8SSebastian Siewior	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1508584fffc8SSebastian Siewior
1509937c30d7SJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_X86_64
1510937c30d7SJussi Kivilinna	tristate "Serpent cipher algorithm (x86_64/SSE2)"
1511937c30d7SJussi Kivilinna	depends on X86 && 64BIT
1512b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1513596d8750SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1514937c30d7SJussi Kivilinna	select CRYPTO_SERPENT
1515e0f409dcSEric Biggers	select CRYPTO_SIMD
1516937c30d7SJussi Kivilinna	help
1517937c30d7SJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1518937c30d7SJussi Kivilinna
1519937c30d7SJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
1520937c30d7SJussi Kivilinna	  of 8 bits.
1521937c30d7SJussi Kivilinna
15221e6232f8SMasanari Iida	  This module provides Serpent cipher algorithm that processes eight
1523937c30d7SJussi Kivilinna	  blocks parallel using SSE2 instruction set.
1524937c30d7SJussi Kivilinna
1525937c30d7SJussi Kivilinna	  See also:
1526937c30d7SJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1527937c30d7SJussi Kivilinna
1528251496dbSJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_586
1529251496dbSJussi Kivilinna	tristate "Serpent cipher algorithm (i586/SSE2)"
1530251496dbSJussi Kivilinna	depends on X86 && !64BIT
1531b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1532596d8750SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1533251496dbSJussi Kivilinna	select CRYPTO_SERPENT
1534e0f409dcSEric Biggers	select CRYPTO_SIMD
1535251496dbSJussi Kivilinna	help
1536251496dbSJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1537251496dbSJussi Kivilinna
1538251496dbSJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
1539251496dbSJussi Kivilinna	  of 8 bits.
1540251496dbSJussi Kivilinna
1541251496dbSJussi Kivilinna	  This module provides Serpent cipher algorithm that processes four
1542251496dbSJussi Kivilinna	  blocks parallel using SSE2 instruction set.
1543251496dbSJussi Kivilinna
1544251496dbSJussi Kivilinna	  See also:
1545251496dbSJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1546251496dbSJussi Kivilinna
15477efe4076SJohannes Goetzfriedconfig CRYPTO_SERPENT_AVX_X86_64
15487efe4076SJohannes Goetzfried	tristate "Serpent cipher algorithm (x86_64/AVX)"
15497efe4076SJohannes Goetzfried	depends on X86 && 64BIT
1550b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
15511d0debbdSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
15527efe4076SJohannes Goetzfried	select CRYPTO_SERPENT
1553e16bf974SEric Biggers	select CRYPTO_SIMD
15547efe4076SJohannes Goetzfried	select CRYPTO_XTS
15557efe4076SJohannes Goetzfried	help
15567efe4076SJohannes Goetzfried	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
15577efe4076SJohannes Goetzfried
15587efe4076SJohannes Goetzfried	  Keys are allowed to be from 0 to 256 bits in length, in steps
15597efe4076SJohannes Goetzfried	  of 8 bits.
15607efe4076SJohannes Goetzfried
15617efe4076SJohannes Goetzfried	  This module provides the Serpent cipher algorithm that processes
15627efe4076SJohannes Goetzfried	  eight blocks parallel using the AVX instruction set.
15637efe4076SJohannes Goetzfried
15647efe4076SJohannes Goetzfried	  See also:
15657efe4076SJohannes Goetzfried	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
15667efe4076SJohannes Goetzfried
156756d76c96SJussi Kivilinnaconfig CRYPTO_SERPENT_AVX2_X86_64
156856d76c96SJussi Kivilinna	tristate "Serpent cipher algorithm (x86_64/AVX2)"
156956d76c96SJussi Kivilinna	depends on X86 && 64BIT
157056d76c96SJussi Kivilinna	select CRYPTO_SERPENT_AVX_X86_64
157156d76c96SJussi Kivilinna	help
157256d76c96SJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
157356d76c96SJussi Kivilinna
157456d76c96SJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
157556d76c96SJussi Kivilinna	  of 8 bits.
157656d76c96SJussi Kivilinna
157756d76c96SJussi Kivilinna	  This module provides Serpent cipher algorithm that processes 16
157856d76c96SJussi Kivilinna	  blocks parallel using AVX2 instruction set.
157956d76c96SJussi Kivilinna
158056d76c96SJussi Kivilinna	  See also:
158156d76c96SJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
158256d76c96SJussi Kivilinna
1583747c8ce4SGilad Ben-Yossefconfig CRYPTO_SM4
1584747c8ce4SGilad Ben-Yossef	tristate "SM4 cipher algorithm"
1585747c8ce4SGilad Ben-Yossef	select CRYPTO_ALGAPI
1586747c8ce4SGilad Ben-Yossef	help
1587747c8ce4SGilad Ben-Yossef	  SM4 cipher algorithms (OSCCA GB/T 32907-2016).
1588747c8ce4SGilad Ben-Yossef
1589747c8ce4SGilad Ben-Yossef	  SM4 (GBT.32907-2016) is a cryptographic standard issued by the
1590747c8ce4SGilad Ben-Yossef	  Organization of State Commercial Administration of China (OSCCA)
1591747c8ce4SGilad Ben-Yossef	  as an authorized cryptographic algorithms for the use within China.
1592747c8ce4SGilad Ben-Yossef
1593747c8ce4SGilad Ben-Yossef	  SMS4 was originally created for use in protecting wireless
1594747c8ce4SGilad Ben-Yossef	  networks, and is mandated in the Chinese National Standard for
1595747c8ce4SGilad Ben-Yossef	  Wireless LAN WAPI (Wired Authentication and Privacy Infrastructure)
1596747c8ce4SGilad Ben-Yossef	  (GB.15629.11-2003).
1597747c8ce4SGilad Ben-Yossef
1598747c8ce4SGilad Ben-Yossef	  The latest SM4 standard (GBT.32907-2016) was proposed by OSCCA and
1599747c8ce4SGilad Ben-Yossef	  standardized through TC 260 of the Standardization Administration
1600747c8ce4SGilad Ben-Yossef	  of the People's Republic of China (SAC).
1601747c8ce4SGilad Ben-Yossef
1602747c8ce4SGilad Ben-Yossef	  The input, output, and key of SMS4 are each 128 bits.
1603747c8ce4SGilad Ben-Yossef
1604747c8ce4SGilad Ben-Yossef	  See also: <https://eprint.iacr.org/2008/329.pdf>
1605747c8ce4SGilad Ben-Yossef
1606747c8ce4SGilad Ben-Yossef	  If unsure, say N.
1607747c8ce4SGilad Ben-Yossef
1608584fffc8SSebastian Siewiorconfig CRYPTO_TEA
1609584fffc8SSebastian Siewior	tristate "TEA, XTEA and XETA cipher algorithms"
1610584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1611584fffc8SSebastian Siewior	help
1612584fffc8SSebastian Siewior	  TEA cipher algorithm.
1613584fffc8SSebastian Siewior
1614584fffc8SSebastian Siewior	  Tiny Encryption Algorithm is a simple cipher that uses
1615584fffc8SSebastian Siewior	  many rounds for security.  It is very fast and uses
1616584fffc8SSebastian Siewior	  little memory.
1617584fffc8SSebastian Siewior
1618584fffc8SSebastian Siewior	  Xtendend Tiny Encryption Algorithm is a modification to
1619584fffc8SSebastian Siewior	  the TEA algorithm to address a potential key weakness
1620584fffc8SSebastian Siewior	  in the TEA algorithm.
1621584fffc8SSebastian Siewior
1622584fffc8SSebastian Siewior	  Xtendend Encryption Tiny Algorithm is a mis-implementation
1623584fffc8SSebastian Siewior	  of the XTEA algorithm for compatibility purposes.
1624584fffc8SSebastian Siewior
1625584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH
1626584fffc8SSebastian Siewior	tristate "Twofish cipher algorithm"
1627584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1628584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1629584fffc8SSebastian Siewior	help
1630584fffc8SSebastian Siewior	  Twofish cipher algorithm.
1631584fffc8SSebastian Siewior
1632584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1633584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1634584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1635584fffc8SSebastian Siewior	  bits.
1636584fffc8SSebastian Siewior
1637584fffc8SSebastian Siewior	  See also:
1638584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1639584fffc8SSebastian Siewior
1640584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_COMMON
1641584fffc8SSebastian Siewior	tristate
1642584fffc8SSebastian Siewior	help
1643584fffc8SSebastian Siewior	  Common parts of the Twofish cipher algorithm shared by the
1644584fffc8SSebastian Siewior	  generic c and the assembler implementations.
1645584fffc8SSebastian Siewior
1646584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_586
1647584fffc8SSebastian Siewior	tristate "Twofish cipher algorithms (i586)"
1648584fffc8SSebastian Siewior	depends on (X86 || UML_X86) && !64BIT
1649584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1650584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1651584fffc8SSebastian Siewior	help
1652584fffc8SSebastian Siewior	  Twofish cipher algorithm.
1653584fffc8SSebastian Siewior
1654584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1655584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1656584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1657584fffc8SSebastian Siewior	  bits.
1658584fffc8SSebastian Siewior
1659584fffc8SSebastian Siewior	  See also:
1660584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1661584fffc8SSebastian Siewior
1662584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_X86_64
1663584fffc8SSebastian Siewior	tristate "Twofish cipher algorithm (x86_64)"
1664584fffc8SSebastian Siewior	depends on (X86 || UML_X86) && 64BIT
1665584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1666584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1667584fffc8SSebastian Siewior	help
1668584fffc8SSebastian Siewior	  Twofish cipher algorithm (x86_64).
1669584fffc8SSebastian Siewior
1670584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1671584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1672584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1673584fffc8SSebastian Siewior	  bits.
1674584fffc8SSebastian Siewior
1675584fffc8SSebastian Siewior	  See also:
1676584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1677584fffc8SSebastian Siewior
16788280daadSJussi Kivilinnaconfig CRYPTO_TWOFISH_X86_64_3WAY
16798280daadSJussi Kivilinna	tristate "Twofish cipher algorithm (x86_64, 3-way parallel)"
1680f21a7c19SAl Viro	depends on X86 && 64BIT
1681b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
16828280daadSJussi Kivilinna	select CRYPTO_TWOFISH_COMMON
16838280daadSJussi Kivilinna	select CRYPTO_TWOFISH_X86_64
1684414cb5e7SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
16858280daadSJussi Kivilinna	help
16868280daadSJussi Kivilinna	  Twofish cipher algorithm (x86_64, 3-way parallel).
16878280daadSJussi Kivilinna
16888280daadSJussi Kivilinna	  Twofish was submitted as an AES (Advanced Encryption Standard)
16898280daadSJussi Kivilinna	  candidate cipher by researchers at CounterPane Systems.  It is a
16908280daadSJussi Kivilinna	  16 round block cipher supporting key sizes of 128, 192, and 256
16918280daadSJussi Kivilinna	  bits.
16928280daadSJussi Kivilinna
16938280daadSJussi Kivilinna	  This module provides Twofish cipher algorithm that processes three
16948280daadSJussi Kivilinna	  blocks parallel, utilizing resources of out-of-order CPUs better.
16958280daadSJussi Kivilinna
16968280daadSJussi Kivilinna	  See also:
16978280daadSJussi Kivilinna	  <http://www.schneier.com/twofish.html>
16988280daadSJussi Kivilinna
1699107778b5SJohannes Goetzfriedconfig CRYPTO_TWOFISH_AVX_X86_64
1700107778b5SJohannes Goetzfried	tristate "Twofish cipher algorithm (x86_64/AVX)"
1701107778b5SJohannes Goetzfried	depends on X86 && 64BIT
1702b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
1703a7378d4eSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
17040e6ab46dSEric Biggers	select CRYPTO_SIMD
1705107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_COMMON
1706107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_X86_64
1707107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_X86_64_3WAY
1708107778b5SJohannes Goetzfried	help
1709107778b5SJohannes Goetzfried	  Twofish cipher algorithm (x86_64/AVX).
1710107778b5SJohannes Goetzfried
1711107778b5SJohannes Goetzfried	  Twofish was submitted as an AES (Advanced Encryption Standard)
1712107778b5SJohannes Goetzfried	  candidate cipher by researchers at CounterPane Systems.  It is a
1713107778b5SJohannes Goetzfried	  16 round block cipher supporting key sizes of 128, 192, and 256
1714107778b5SJohannes Goetzfried	  bits.
1715107778b5SJohannes Goetzfried
1716107778b5SJohannes Goetzfried	  This module provides the Twofish cipher algorithm that processes
1717107778b5SJohannes Goetzfried	  eight blocks parallel using the AVX Instruction Set.
1718107778b5SJohannes Goetzfried
1719107778b5SJohannes Goetzfried	  See also:
1720107778b5SJohannes Goetzfried	  <http://www.schneier.com/twofish.html>
1721107778b5SJohannes Goetzfried
1722584fffc8SSebastian Siewiorcomment "Compression"
1723584fffc8SSebastian Siewior
17241da177e4SLinus Torvaldsconfig CRYPTO_DEFLATE
17251da177e4SLinus Torvalds	tristate "Deflate compression algorithm"
1726cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
1727f6ded09dSGiovanni Cabiddu	select CRYPTO_ACOMP2
17281da177e4SLinus Torvalds	select ZLIB_INFLATE
17291da177e4SLinus Torvalds	select ZLIB_DEFLATE
17301da177e4SLinus Torvalds	help
17311da177e4SLinus Torvalds	  This is the Deflate algorithm (RFC1951), specified for use in
17321da177e4SLinus Torvalds	  IPSec with the IPCOMP protocol (RFC3173, RFC2394).
17331da177e4SLinus Torvalds
17341da177e4SLinus Torvalds	  You will most probably want this if using IPSec.
17351da177e4SLinus Torvalds
17360b77abb3SZoltan Sogorconfig CRYPTO_LZO
17370b77abb3SZoltan Sogor	tristate "LZO compression algorithm"
17380b77abb3SZoltan Sogor	select CRYPTO_ALGAPI
1739ac9d2c4bSGiovanni Cabiddu	select CRYPTO_ACOMP2
17400b77abb3SZoltan Sogor	select LZO_COMPRESS
17410b77abb3SZoltan Sogor	select LZO_DECOMPRESS
17420b77abb3SZoltan Sogor	help
17430b77abb3SZoltan Sogor	  This is the LZO algorithm.
17440b77abb3SZoltan Sogor
174535a1fc18SSeth Jenningsconfig CRYPTO_842
174635a1fc18SSeth Jennings	tristate "842 compression algorithm"
17472062c5b6SDan Streetman	select CRYPTO_ALGAPI
17486a8de3aeSGiovanni Cabiddu	select CRYPTO_ACOMP2
17492062c5b6SDan Streetman	select 842_COMPRESS
17502062c5b6SDan Streetman	select 842_DECOMPRESS
175135a1fc18SSeth Jennings	help
175235a1fc18SSeth Jennings	  This is the 842 algorithm.
175335a1fc18SSeth Jennings
17540ea8530dSChanho Minconfig CRYPTO_LZ4
17550ea8530dSChanho Min	tristate "LZ4 compression algorithm"
17560ea8530dSChanho Min	select CRYPTO_ALGAPI
17578cd9330eSGiovanni Cabiddu	select CRYPTO_ACOMP2
17580ea8530dSChanho Min	select LZ4_COMPRESS
17590ea8530dSChanho Min	select LZ4_DECOMPRESS
17600ea8530dSChanho Min	help
17610ea8530dSChanho Min	  This is the LZ4 algorithm.
17620ea8530dSChanho Min
17630ea8530dSChanho Minconfig CRYPTO_LZ4HC
17640ea8530dSChanho Min	tristate "LZ4HC compression algorithm"
17650ea8530dSChanho Min	select CRYPTO_ALGAPI
176691d53d96SGiovanni Cabiddu	select CRYPTO_ACOMP2
17670ea8530dSChanho Min	select LZ4HC_COMPRESS
17680ea8530dSChanho Min	select LZ4_DECOMPRESS
17690ea8530dSChanho Min	help
17700ea8530dSChanho Min	  This is the LZ4 high compression mode algorithm.
17710ea8530dSChanho Min
1772d28fc3dbSNick Terrellconfig CRYPTO_ZSTD
1773d28fc3dbSNick Terrell	tristate "Zstd compression algorithm"
1774d28fc3dbSNick Terrell	select CRYPTO_ALGAPI
1775d28fc3dbSNick Terrell	select CRYPTO_ACOMP2
1776d28fc3dbSNick Terrell	select ZSTD_COMPRESS
1777d28fc3dbSNick Terrell	select ZSTD_DECOMPRESS
1778d28fc3dbSNick Terrell	help
1779d28fc3dbSNick Terrell	  This is the zstd algorithm.
1780d28fc3dbSNick Terrell
178117f0f4a4SNeil Hormancomment "Random Number Generation"
178217f0f4a4SNeil Horman
178317f0f4a4SNeil Hormanconfig CRYPTO_ANSI_CPRNG
178417f0f4a4SNeil Horman	tristate "Pseudo Random Number Generation for Cryptographic modules"
178517f0f4a4SNeil Horman	select CRYPTO_AES
178617f0f4a4SNeil Horman	select CRYPTO_RNG
178717f0f4a4SNeil Horman	help
178817f0f4a4SNeil Horman	  This option enables the generic pseudo random number generator
178917f0f4a4SNeil Horman	  for cryptographic modules.  Uses the Algorithm specified in
17907dd607e8SJiri Kosina	  ANSI X9.31 A.2.4. Note that this option must be enabled if
17917dd607e8SJiri Kosina	  CRYPTO_FIPS is selected
179217f0f4a4SNeil Horman
1793f2c89a10SHerbert Xumenuconfig CRYPTO_DRBG_MENU
1794419090c6SStephan Mueller	tristate "NIST SP800-90A DRBG"
1795419090c6SStephan Mueller	help
1796419090c6SStephan Mueller	  NIST SP800-90A compliant DRBG. In the following submenu, one or
1797419090c6SStephan Mueller	  more of the DRBG types must be selected.
1798419090c6SStephan Mueller
1799f2c89a10SHerbert Xuif CRYPTO_DRBG_MENU
1800419090c6SStephan Mueller
1801419090c6SStephan Muellerconfig CRYPTO_DRBG_HMAC
1802401e4238SHerbert Xu	bool
1803419090c6SStephan Mueller	default y
1804419090c6SStephan Mueller	select CRYPTO_HMAC
1805826775bbSHerbert Xu	select CRYPTO_SHA256
1806419090c6SStephan Mueller
1807419090c6SStephan Muellerconfig CRYPTO_DRBG_HASH
1808419090c6SStephan Mueller	bool "Enable Hash DRBG"
1809826775bbSHerbert Xu	select CRYPTO_SHA256
1810419090c6SStephan Mueller	help
1811419090c6SStephan Mueller	  Enable the Hash DRBG variant as defined in NIST SP800-90A.
1812419090c6SStephan Mueller
1813419090c6SStephan Muellerconfig CRYPTO_DRBG_CTR
1814419090c6SStephan Mueller	bool "Enable CTR DRBG"
1815419090c6SStephan Mueller	select CRYPTO_AES
181635591285SStephan Mueller	depends on CRYPTO_CTR
1817419090c6SStephan Mueller	help
1818419090c6SStephan Mueller	  Enable the CTR DRBG variant as defined in NIST SP800-90A.
1819419090c6SStephan Mueller
1820f2c89a10SHerbert Xuconfig CRYPTO_DRBG
1821f2c89a10SHerbert Xu	tristate
1822401e4238SHerbert Xu	default CRYPTO_DRBG_MENU
1823f2c89a10SHerbert Xu	select CRYPTO_RNG
1824bb5530e4SStephan Mueller	select CRYPTO_JITTERENTROPY
1825f2c89a10SHerbert Xu
1826f2c89a10SHerbert Xuendif	# if CRYPTO_DRBG_MENU
1827419090c6SStephan Mueller
1828bb5530e4SStephan Muellerconfig CRYPTO_JITTERENTROPY
1829bb5530e4SStephan Mueller	tristate "Jitterentropy Non-Deterministic Random Number Generator"
18302f313e02SArnd Bergmann	select CRYPTO_RNG
1831bb5530e4SStephan Mueller	help
1832bb5530e4SStephan Mueller	  The Jitterentropy RNG is a noise that is intended
1833bb5530e4SStephan Mueller	  to provide seed to another RNG. The RNG does not
1834bb5530e4SStephan Mueller	  perform any cryptographic whitening of the generated
1835bb5530e4SStephan Mueller	  random numbers. This Jitterentropy RNG registers with
1836bb5530e4SStephan Mueller	  the kernel crypto API and can be used by any caller.
1837bb5530e4SStephan Mueller
183803c8efc1SHerbert Xuconfig CRYPTO_USER_API
183903c8efc1SHerbert Xu	tristate
184003c8efc1SHerbert Xu
1841fe869cdbSHerbert Xuconfig CRYPTO_USER_API_HASH
1842fe869cdbSHerbert Xu	tristate "User-space interface for hash algorithms"
18437451708fSHerbert Xu	depends on NET
1844fe869cdbSHerbert Xu	select CRYPTO_HASH
1845fe869cdbSHerbert Xu	select CRYPTO_USER_API
1846fe869cdbSHerbert Xu	help
1847fe869cdbSHerbert Xu	  This option enables the user-spaces interface for hash
1848fe869cdbSHerbert Xu	  algorithms.
1849fe869cdbSHerbert Xu
18508ff59090SHerbert Xuconfig CRYPTO_USER_API_SKCIPHER
18518ff59090SHerbert Xu	tristate "User-space interface for symmetric key cipher algorithms"
18527451708fSHerbert Xu	depends on NET
1853b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
18548ff59090SHerbert Xu	select CRYPTO_USER_API
18558ff59090SHerbert Xu	help
18568ff59090SHerbert Xu	  This option enables the user-spaces interface for symmetric
18578ff59090SHerbert Xu	  key cipher algorithms.
18588ff59090SHerbert Xu
18592f375538SStephan Muellerconfig CRYPTO_USER_API_RNG
18602f375538SStephan Mueller	tristate "User-space interface for random number generator algorithms"
18612f375538SStephan Mueller	depends on NET
18622f375538SStephan Mueller	select CRYPTO_RNG
18632f375538SStephan Mueller	select CRYPTO_USER_API
18642f375538SStephan Mueller	help
18652f375538SStephan Mueller	  This option enables the user-spaces interface for random
18662f375538SStephan Mueller	  number generator algorithms.
18672f375538SStephan Mueller
1868b64a2d95SHerbert Xuconfig CRYPTO_USER_API_AEAD
1869b64a2d95SHerbert Xu	tristate "User-space interface for AEAD cipher algorithms"
1870b64a2d95SHerbert Xu	depends on NET
1871b64a2d95SHerbert Xu	select CRYPTO_AEAD
1872b95bba5dSEric Biggers	select CRYPTO_SKCIPHER
187372548b09SStephan Mueller	select CRYPTO_NULL
1874b64a2d95SHerbert Xu	select CRYPTO_USER_API
1875b64a2d95SHerbert Xu	help
1876b64a2d95SHerbert Xu	  This option enables the user-spaces interface for AEAD
1877b64a2d95SHerbert Xu	  cipher algorithms.
1878b64a2d95SHerbert Xu
1879cac5818cSCorentin Labbeconfig CRYPTO_STATS
1880cac5818cSCorentin Labbe	bool "Crypto usage statistics for User-space"
1881a6a31385SCorentin Labbe	depends on CRYPTO_USER
1882cac5818cSCorentin Labbe	help
1883cac5818cSCorentin Labbe	  This option enables the gathering of crypto stats.
1884cac5818cSCorentin Labbe	  This will collect:
1885cac5818cSCorentin Labbe	  - encrypt/decrypt size and numbers of symmeric operations
1886cac5818cSCorentin Labbe	  - compress/decompress size and numbers of compress operations
1887cac5818cSCorentin Labbe	  - size and numbers of hash operations
1888cac5818cSCorentin Labbe	  - encrypt/decrypt/sign/verify numbers for asymmetric operations
1889cac5818cSCorentin Labbe	  - generate/seed numbers for rng operations
1890cac5818cSCorentin Labbe
1891ee08997fSDmitry Kasatkinconfig CRYPTO_HASH_INFO
1892ee08997fSDmitry Kasatkin	bool
1893ee08997fSDmitry Kasatkin
1894746b2e02SArd Biesheuvelsource "lib/crypto/Kconfig"
18951da177e4SLinus Torvaldssource "drivers/crypto/Kconfig"
18968636a1f9SMasahiro Yamadasource "crypto/asymmetric_keys/Kconfig"
18978636a1f9SMasahiro Yamadasource "certs/Kconfig"
18981da177e4SLinus Torvalds
1899cce9e06dSHerbert Xuendif	# if CRYPTO
1900