xref: /linux/crypto/Kconfig (revision dd43c4e92fbb135dcbf02845578db60be56a453a)
11da177e4SLinus Torvalds#
2685784aaSDan Williams# Generic algorithms support
3685784aaSDan Williams#
4685784aaSDan Williamsconfig XOR_BLOCKS
5685784aaSDan Williams	tristate
6685784aaSDan Williams
7685784aaSDan Williams#
89bc89cd8SDan Williams# async_tx api: hardware offloaded memory transfer/transform support
99bc89cd8SDan Williams#
109bc89cd8SDan Williamssource "crypto/async_tx/Kconfig"
119bc89cd8SDan Williams
129bc89cd8SDan Williams#
131da177e4SLinus Torvalds# Cryptographic API Configuration
141da177e4SLinus Torvalds#
152e290f43SJan Engelhardtmenuconfig CRYPTO
16c3715cb9SSebastian Siewior	tristate "Cryptographic API"
171da177e4SLinus Torvalds	help
181da177e4SLinus Torvalds	  This option provides the core Cryptographic API.
191da177e4SLinus Torvalds
20cce9e06dSHerbert Xuif CRYPTO
21cce9e06dSHerbert Xu
22584fffc8SSebastian Siewiorcomment "Crypto core or helper"
23584fffc8SSebastian Siewior
24ccb778e1SNeil Hormanconfig CRYPTO_FIPS
25ccb778e1SNeil Horman	bool "FIPS 200 compliance"
26f2c89a10SHerbert Xu	depends on (CRYPTO_ANSI_CPRNG || CRYPTO_DRBG) && !CRYPTO_MANAGER_DISABLE_TESTS
27002c77a4SJarod Wilson	depends on MODULE_SIG
28ccb778e1SNeil Horman	help
29ccb778e1SNeil Horman	  This options enables the fips boot option which is
30ccb778e1SNeil Horman	  required if you want to system to operate in a FIPS 200
31ccb778e1SNeil Horman	  certification.  You should say no unless you know what
32e84c5480SChuck Ebbert	  this is.
33ccb778e1SNeil Horman
34cce9e06dSHerbert Xuconfig CRYPTO_ALGAPI
35cce9e06dSHerbert Xu	tristate
366a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
37cce9e06dSHerbert Xu	help
38cce9e06dSHerbert Xu	  This option provides the API for cryptographic algorithms.
39cce9e06dSHerbert Xu
406a0fcbb4SHerbert Xuconfig CRYPTO_ALGAPI2
416a0fcbb4SHerbert Xu	tristate
426a0fcbb4SHerbert Xu
431ae97820SHerbert Xuconfig CRYPTO_AEAD
441ae97820SHerbert Xu	tristate
456a0fcbb4SHerbert Xu	select CRYPTO_AEAD2
461ae97820SHerbert Xu	select CRYPTO_ALGAPI
471ae97820SHerbert Xu
486a0fcbb4SHerbert Xuconfig CRYPTO_AEAD2
496a0fcbb4SHerbert Xu	tristate
506a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
51149a3971SHerbert Xu	select CRYPTO_NULL2
52149a3971SHerbert Xu	select CRYPTO_RNG2
536a0fcbb4SHerbert Xu
545cde0af2SHerbert Xuconfig CRYPTO_BLKCIPHER
555cde0af2SHerbert Xu	tristate
566a0fcbb4SHerbert Xu	select CRYPTO_BLKCIPHER2
575cde0af2SHerbert Xu	select CRYPTO_ALGAPI
586a0fcbb4SHerbert Xu
596a0fcbb4SHerbert Xuconfig CRYPTO_BLKCIPHER2
606a0fcbb4SHerbert Xu	tristate
616a0fcbb4SHerbert Xu	select CRYPTO_ALGAPI2
626a0fcbb4SHerbert Xu	select CRYPTO_RNG2
630a2e821dSHuang Ying	select CRYPTO_WORKQUEUE
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
87a1d2f095SGeert Uytterhoevenconfig CRYPTO_PCOMP
88a1d2f095SGeert Uytterhoeven	tristate
89bc94e596SHerbert Xu	select CRYPTO_PCOMP2
90bc94e596SHerbert Xu	select CRYPTO_ALGAPI
91bc94e596SHerbert Xu
92bc94e596SHerbert Xuconfig CRYPTO_PCOMP2
93bc94e596SHerbert Xu	tristate
94a1d2f095SGeert Uytterhoeven	select CRYPTO_ALGAPI2
95a1d2f095SGeert Uytterhoeven
963c339ab8STadeusz Strukconfig CRYPTO_AKCIPHER2
973c339ab8STadeusz Struk	tristate
983c339ab8STadeusz Struk	select CRYPTO_ALGAPI2
993c339ab8STadeusz Struk
1003c339ab8STadeusz Strukconfig CRYPTO_AKCIPHER
1013c339ab8STadeusz Struk	tristate
1023c339ab8STadeusz Struk	select CRYPTO_AKCIPHER2
1033c339ab8STadeusz Struk	select CRYPTO_ALGAPI
1043c339ab8STadeusz Struk
105cfc2bb32STadeusz Strukconfig CRYPTO_RSA
106cfc2bb32STadeusz Struk	tristate "RSA algorithm"
107425e0172STadeusz Struk	select CRYPTO_AKCIPHER
108cfc2bb32STadeusz Struk	select MPILIB
109cfc2bb32STadeusz Struk	select ASN1
110cfc2bb32STadeusz Struk	help
111cfc2bb32STadeusz Struk	  Generic implementation of the RSA public key algorithm.
112cfc2bb32STadeusz Struk
1132b8c19dbSHerbert Xuconfig CRYPTO_MANAGER
1142b8c19dbSHerbert Xu	tristate "Cryptographic algorithm manager"
1156a0fcbb4SHerbert Xu	select CRYPTO_MANAGER2
1162b8c19dbSHerbert Xu	help
1172b8c19dbSHerbert Xu	  Create default cryptographic template instantiations such as
1182b8c19dbSHerbert Xu	  cbc(aes).
1192b8c19dbSHerbert Xu
1206a0fcbb4SHerbert Xuconfig CRYPTO_MANAGER2
1216a0fcbb4SHerbert Xu	def_tristate CRYPTO_MANAGER || (CRYPTO_MANAGER!=n && CRYPTO_ALGAPI=y)
1226a0fcbb4SHerbert Xu	select CRYPTO_AEAD2
1236a0fcbb4SHerbert Xu	select CRYPTO_HASH2
1246a0fcbb4SHerbert Xu	select CRYPTO_BLKCIPHER2
125bc94e596SHerbert Xu	select CRYPTO_PCOMP2
126946cc463STadeusz Struk	select CRYPTO_AKCIPHER2
1276a0fcbb4SHerbert Xu
128a38f7907SSteffen Klassertconfig CRYPTO_USER
129a38f7907SSteffen Klassert	tristate "Userspace cryptographic algorithm configuration"
1305db017aaSHerbert Xu	depends on NET
131a38f7907SSteffen Klassert	select CRYPTO_MANAGER
132a38f7907SSteffen Klassert	help
133d19978f5SValdis.Kletnieks@vt.edu	  Userspace configuration for cryptographic instantiations such as
134a38f7907SSteffen Klassert	  cbc(aes).
135a38f7907SSteffen Klassert
136326a6346SHerbert Xuconfig CRYPTO_MANAGER_DISABLE_TESTS
137326a6346SHerbert Xu	bool "Disable run-time self tests"
13800ca28a5SHerbert Xu	default y
13900ca28a5SHerbert Xu	depends on CRYPTO_MANAGER2
1400b767f96SAlexander Shishkin	help
141326a6346SHerbert Xu	  Disable run-time self tests that normally take place at
142326a6346SHerbert Xu	  algorithm registration.
1430b767f96SAlexander Shishkin
144584fffc8SSebastian Siewiorconfig CRYPTO_GF128MUL
14508c70fc3SJussi Kivilinna	tristate "GF(2^128) multiplication functions"
146584fffc8SSebastian Siewior	help
147584fffc8SSebastian Siewior	  Efficient table driven implementation of multiplications in the
148584fffc8SSebastian Siewior	  field GF(2^128).  This is needed by some cypher modes. This
149584fffc8SSebastian Siewior	  option will be selected automatically if you select such a
150584fffc8SSebastian Siewior	  cipher mode.  Only select this option by hand if you expect to load
151584fffc8SSebastian Siewior	  an external module that requires these functions.
152584fffc8SSebastian Siewior
153584fffc8SSebastian Siewiorconfig CRYPTO_NULL
154584fffc8SSebastian Siewior	tristate "Null algorithms"
155149a3971SHerbert Xu	select CRYPTO_NULL2
156584fffc8SSebastian Siewior	help
157584fffc8SSebastian Siewior	  These are 'Null' algorithms, used by IPsec, which do nothing.
158584fffc8SSebastian Siewior
159149a3971SHerbert Xuconfig CRYPTO_NULL2
160*dd43c4e9SHerbert Xu	tristate
161149a3971SHerbert Xu	select CRYPTO_ALGAPI2
162149a3971SHerbert Xu	select CRYPTO_BLKCIPHER2
163149a3971SHerbert Xu	select CRYPTO_HASH2
164149a3971SHerbert Xu
1655068c7a8SSteffen Klassertconfig CRYPTO_PCRYPT
1663b4afaf2SKees Cook	tristate "Parallel crypto engine"
1673b4afaf2SKees Cook	depends on SMP
1685068c7a8SSteffen Klassert	select PADATA
1695068c7a8SSteffen Klassert	select CRYPTO_MANAGER
1705068c7a8SSteffen Klassert	select CRYPTO_AEAD
1715068c7a8SSteffen Klassert	help
1725068c7a8SSteffen Klassert	  This converts an arbitrary crypto algorithm into a parallel
1735068c7a8SSteffen Klassert	  algorithm that executes in kernel threads.
1745068c7a8SSteffen Klassert
17525c38d3fSHuang Yingconfig CRYPTO_WORKQUEUE
17625c38d3fSHuang Ying       tristate
17725c38d3fSHuang Ying
178584fffc8SSebastian Siewiorconfig CRYPTO_CRYPTD
179584fffc8SSebastian Siewior	tristate "Software async crypto daemon"
180584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
181b8a28251SLoc Ho	select CRYPTO_HASH
182584fffc8SSebastian Siewior	select CRYPTO_MANAGER
183254eff77SHuang Ying	select CRYPTO_WORKQUEUE
184584fffc8SSebastian Siewior	help
185584fffc8SSebastian Siewior	  This is a generic software asynchronous crypto daemon that
186584fffc8SSebastian Siewior	  converts an arbitrary synchronous software crypto algorithm
187584fffc8SSebastian Siewior	  into an asynchronous algorithm that executes in a kernel thread.
188584fffc8SSebastian Siewior
1891e65b81aSTim Chenconfig CRYPTO_MCRYPTD
1901e65b81aSTim Chen	tristate "Software async multi-buffer crypto daemon"
1911e65b81aSTim Chen	select CRYPTO_BLKCIPHER
1921e65b81aSTim Chen	select CRYPTO_HASH
1931e65b81aSTim Chen	select CRYPTO_MANAGER
1941e65b81aSTim Chen	select CRYPTO_WORKQUEUE
1951e65b81aSTim Chen	help
1961e65b81aSTim Chen	  This is a generic software asynchronous crypto daemon that
1971e65b81aSTim Chen	  provides the kernel thread to assist multi-buffer crypto
1981e65b81aSTim Chen	  algorithms for submitting jobs and flushing jobs in multi-buffer
1991e65b81aSTim Chen	  crypto algorithms.  Multi-buffer crypto algorithms are executed
2001e65b81aSTim Chen	  in the context of this kernel thread and drivers can post
2010e56673bSTed Percival	  their crypto request asynchronously to be processed by this daemon.
2021e65b81aSTim Chen
203584fffc8SSebastian Siewiorconfig CRYPTO_AUTHENC
204584fffc8SSebastian Siewior	tristate "Authenc support"
205584fffc8SSebastian Siewior	select CRYPTO_AEAD
206584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
207584fffc8SSebastian Siewior	select CRYPTO_MANAGER
208584fffc8SSebastian Siewior	select CRYPTO_HASH
209e94c6a7aSHerbert Xu	select CRYPTO_NULL
210584fffc8SSebastian Siewior	help
211584fffc8SSebastian Siewior	  Authenc: Combined mode wrapper for IPsec.
212584fffc8SSebastian Siewior	  This is required for IPSec.
213584fffc8SSebastian Siewior
214584fffc8SSebastian Siewiorconfig CRYPTO_TEST
215584fffc8SSebastian Siewior	tristate "Testing module"
216584fffc8SSebastian Siewior	depends on m
217da7f033dSHerbert Xu	select CRYPTO_MANAGER
218584fffc8SSebastian Siewior	help
219584fffc8SSebastian Siewior	  Quick & dirty crypto test module.
220584fffc8SSebastian Siewior
221a62b01cdSArd Biesheuvelconfig CRYPTO_ABLK_HELPER
222ffaf9156SJussi Kivilinna	tristate
223ffaf9156SJussi Kivilinna	select CRYPTO_CRYPTD
224ffaf9156SJussi Kivilinna
225596d8750SJussi Kivilinnaconfig CRYPTO_GLUE_HELPER_X86
226596d8750SJussi Kivilinna	tristate
227596d8750SJussi Kivilinna	depends on X86
228596d8750SJussi Kivilinna	select CRYPTO_ALGAPI
229596d8750SJussi Kivilinna
230584fffc8SSebastian Siewiorcomment "Authenticated Encryption with Associated Data"
231584fffc8SSebastian Siewior
232584fffc8SSebastian Siewiorconfig CRYPTO_CCM
233584fffc8SSebastian Siewior	tristate "CCM support"
234584fffc8SSebastian Siewior	select CRYPTO_CTR
235584fffc8SSebastian Siewior	select CRYPTO_AEAD
236584fffc8SSebastian Siewior	help
237584fffc8SSebastian Siewior	  Support for Counter with CBC MAC. Required for IPsec.
238584fffc8SSebastian Siewior
239584fffc8SSebastian Siewiorconfig CRYPTO_GCM
240584fffc8SSebastian Siewior	tristate "GCM/GMAC support"
241584fffc8SSebastian Siewior	select CRYPTO_CTR
242584fffc8SSebastian Siewior	select CRYPTO_AEAD
2439382d97aSHuang Ying	select CRYPTO_GHASH
2449489667dSJussi Kivilinna	select CRYPTO_NULL
245584fffc8SSebastian Siewior	help
246584fffc8SSebastian Siewior	  Support for Galois/Counter Mode (GCM) and Galois Message
247584fffc8SSebastian Siewior	  Authentication Code (GMAC). Required for IPSec.
248584fffc8SSebastian Siewior
24971ebc4d1SMartin Williconfig CRYPTO_CHACHA20POLY1305
25071ebc4d1SMartin Willi	tristate "ChaCha20-Poly1305 AEAD support"
25171ebc4d1SMartin Willi	select CRYPTO_CHACHA20
25271ebc4d1SMartin Willi	select CRYPTO_POLY1305
25371ebc4d1SMartin Willi	select CRYPTO_AEAD
25471ebc4d1SMartin Willi	help
25571ebc4d1SMartin Willi	  ChaCha20-Poly1305 AEAD support, RFC7539.
25671ebc4d1SMartin Willi
25771ebc4d1SMartin Willi	  Support for the AEAD wrapper using the ChaCha20 stream cipher combined
25871ebc4d1SMartin Willi	  with the Poly1305 authenticator. It is defined in RFC7539 for use in
25971ebc4d1SMartin Willi	  IETF protocols.
26071ebc4d1SMartin Willi
261584fffc8SSebastian Siewiorconfig CRYPTO_SEQIV
262584fffc8SSebastian Siewior	tristate "Sequence Number IV Generator"
263584fffc8SSebastian Siewior	select CRYPTO_AEAD
264584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
265856e3f40SHerbert Xu	select CRYPTO_NULL
266401e4238SHerbert Xu	select CRYPTO_RNG_DEFAULT
267584fffc8SSebastian Siewior	help
268584fffc8SSebastian Siewior	  This IV generator generates an IV based on a sequence number by
269584fffc8SSebastian Siewior	  xoring it with a salt.  This algorithm is mainly useful for CTR
270584fffc8SSebastian Siewior
271a10f554fSHerbert Xuconfig CRYPTO_ECHAINIV
272a10f554fSHerbert Xu	tristate "Encrypted Chain IV Generator"
273a10f554fSHerbert Xu	select CRYPTO_AEAD
274a10f554fSHerbert Xu	select CRYPTO_NULL
275401e4238SHerbert Xu	select CRYPTO_RNG_DEFAULT
2763491244cSHerbert Xu	default m
277a10f554fSHerbert Xu	help
278a10f554fSHerbert Xu	  This IV generator generates an IV based on the encryption of
279a10f554fSHerbert Xu	  a sequence number xored with a salt.  This is the default
280a10f554fSHerbert Xu	  algorithm for CBC.
281a10f554fSHerbert Xu
282584fffc8SSebastian Siewiorcomment "Block modes"
283584fffc8SSebastian Siewior
284584fffc8SSebastian Siewiorconfig CRYPTO_CBC
285584fffc8SSebastian Siewior	tristate "CBC support"
286584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
287584fffc8SSebastian Siewior	select CRYPTO_MANAGER
288584fffc8SSebastian Siewior	help
289584fffc8SSebastian Siewior	  CBC: Cipher Block Chaining mode
290584fffc8SSebastian Siewior	  This block cipher algorithm is required for IPSec.
291584fffc8SSebastian Siewior
292584fffc8SSebastian Siewiorconfig CRYPTO_CTR
293584fffc8SSebastian Siewior	tristate "CTR support"
294584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
295584fffc8SSebastian Siewior	select CRYPTO_SEQIV
296584fffc8SSebastian Siewior	select CRYPTO_MANAGER
297584fffc8SSebastian Siewior	help
298584fffc8SSebastian Siewior	  CTR: Counter mode
299584fffc8SSebastian Siewior	  This block cipher algorithm is required for IPSec.
300584fffc8SSebastian Siewior
301584fffc8SSebastian Siewiorconfig CRYPTO_CTS
302584fffc8SSebastian Siewior	tristate "CTS support"
303584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
304584fffc8SSebastian Siewior	help
305584fffc8SSebastian Siewior	  CTS: Cipher Text Stealing
306584fffc8SSebastian Siewior	  This is the Cipher Text Stealing mode as described by
307584fffc8SSebastian Siewior	  Section 8 of rfc2040 and referenced by rfc3962.
308584fffc8SSebastian Siewior	  (rfc3962 includes errata information in its Appendix A)
309584fffc8SSebastian Siewior	  This mode is required for Kerberos gss mechanism support
310584fffc8SSebastian Siewior	  for AES encryption.
311584fffc8SSebastian Siewior
312584fffc8SSebastian Siewiorconfig CRYPTO_ECB
313584fffc8SSebastian Siewior	tristate "ECB support"
314584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
315584fffc8SSebastian Siewior	select CRYPTO_MANAGER
316584fffc8SSebastian Siewior	help
317584fffc8SSebastian Siewior	  ECB: Electronic CodeBook mode
318584fffc8SSebastian Siewior	  This is the simplest block cipher algorithm.  It simply encrypts
319584fffc8SSebastian Siewior	  the input block by block.
320584fffc8SSebastian Siewior
321584fffc8SSebastian Siewiorconfig CRYPTO_LRW
3222470a2b2SJussi Kivilinna	tristate "LRW support"
323584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
324584fffc8SSebastian Siewior	select CRYPTO_MANAGER
325584fffc8SSebastian Siewior	select CRYPTO_GF128MUL
326584fffc8SSebastian Siewior	help
327584fffc8SSebastian Siewior	  LRW: Liskov Rivest Wagner, a tweakable, non malleable, non movable
328584fffc8SSebastian Siewior	  narrow block cipher mode for dm-crypt.  Use it with cipher
329584fffc8SSebastian Siewior	  specification string aes-lrw-benbi, the key must be 256, 320 or 384.
330584fffc8SSebastian Siewior	  The first 128, 192 or 256 bits in the key are used for AES and the
331584fffc8SSebastian Siewior	  rest is used to tie each cipher block to its logical position.
332584fffc8SSebastian Siewior
333584fffc8SSebastian Siewiorconfig CRYPTO_PCBC
334584fffc8SSebastian Siewior	tristate "PCBC support"
335584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
336584fffc8SSebastian Siewior	select CRYPTO_MANAGER
337584fffc8SSebastian Siewior	help
338584fffc8SSebastian Siewior	  PCBC: Propagating Cipher Block Chaining mode
339584fffc8SSebastian Siewior	  This block cipher algorithm is required for RxRPC.
340584fffc8SSebastian Siewior
341584fffc8SSebastian Siewiorconfig CRYPTO_XTS
3425bcf8e6dSJussi Kivilinna	tristate "XTS support"
343584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
344584fffc8SSebastian Siewior	select CRYPTO_MANAGER
345584fffc8SSebastian Siewior	select CRYPTO_GF128MUL
346584fffc8SSebastian Siewior	help
347584fffc8SSebastian Siewior	  XTS: IEEE1619/D16 narrow block cipher use with aes-xts-plain,
348584fffc8SSebastian Siewior	  key size 256, 384 or 512 bits. This implementation currently
349584fffc8SSebastian Siewior	  can't handle a sectorsize which is not a multiple of 16 bytes.
350584fffc8SSebastian Siewior
351584fffc8SSebastian Siewiorcomment "Hash modes"
352584fffc8SSebastian Siewior
35393b5e86aSJussi Kivilinnaconfig CRYPTO_CMAC
35493b5e86aSJussi Kivilinna	tristate "CMAC support"
35593b5e86aSJussi Kivilinna	select CRYPTO_HASH
35693b5e86aSJussi Kivilinna	select CRYPTO_MANAGER
35793b5e86aSJussi Kivilinna	help
35893b5e86aSJussi Kivilinna	  Cipher-based Message Authentication Code (CMAC) specified by
35993b5e86aSJussi Kivilinna	  The National Institute of Standards and Technology (NIST).
36093b5e86aSJussi Kivilinna
36193b5e86aSJussi Kivilinna	  https://tools.ietf.org/html/rfc4493
36293b5e86aSJussi Kivilinna	  http://csrc.nist.gov/publications/nistpubs/800-38B/SP_800-38B.pdf
36393b5e86aSJussi Kivilinna
3641da177e4SLinus Torvaldsconfig CRYPTO_HMAC
3658425165dSHerbert Xu	tristate "HMAC support"
3660796ae06SHerbert Xu	select CRYPTO_HASH
36743518407SHerbert Xu	select CRYPTO_MANAGER
3681da177e4SLinus Torvalds	help
3691da177e4SLinus Torvalds	  HMAC: Keyed-Hashing for Message Authentication (RFC2104).
3701da177e4SLinus Torvalds	  This is required for IPSec.
3711da177e4SLinus Torvalds
372333b0d7eSKazunori MIYAZAWAconfig CRYPTO_XCBC
373333b0d7eSKazunori MIYAZAWA	tristate "XCBC support"
374333b0d7eSKazunori MIYAZAWA	select CRYPTO_HASH
375333b0d7eSKazunori MIYAZAWA	select CRYPTO_MANAGER
376333b0d7eSKazunori MIYAZAWA	help
377333b0d7eSKazunori MIYAZAWA	  XCBC: Keyed-Hashing with encryption algorithm
378333b0d7eSKazunori MIYAZAWA		http://www.ietf.org/rfc/rfc3566.txt
379333b0d7eSKazunori MIYAZAWA		http://csrc.nist.gov/encryption/modes/proposedmodes/
380333b0d7eSKazunori MIYAZAWA		 xcbc-mac/xcbc-mac-spec.pdf
381333b0d7eSKazunori MIYAZAWA
382f1939f7cSShane Wangconfig CRYPTO_VMAC
383f1939f7cSShane Wang	tristate "VMAC support"
384f1939f7cSShane Wang	select CRYPTO_HASH
385f1939f7cSShane Wang	select CRYPTO_MANAGER
386f1939f7cSShane Wang	help
387f1939f7cSShane Wang	  VMAC is a message authentication algorithm designed for
388f1939f7cSShane Wang	  very high speed on 64-bit architectures.
389f1939f7cSShane Wang
390f1939f7cSShane Wang	  See also:
391f1939f7cSShane Wang	  <http://fastcrypto.org/vmac>
392f1939f7cSShane Wang
393584fffc8SSebastian Siewiorcomment "Digest"
394584fffc8SSebastian Siewior
395584fffc8SSebastian Siewiorconfig CRYPTO_CRC32C
396584fffc8SSebastian Siewior	tristate "CRC32c CRC algorithm"
3975773a3e6SHerbert Xu	select CRYPTO_HASH
3986a0962b2SDarrick J. Wong	select CRC32
3991da177e4SLinus Torvalds	help
400584fffc8SSebastian Siewior	  Castagnoli, et al Cyclic Redundancy-Check Algorithm.  Used
401584fffc8SSebastian Siewior	  by iSCSI for header and data digests and by others.
40269c35efcSHerbert Xu	  See Castagnoli93.  Module will be crc32c.
4031da177e4SLinus Torvalds
4048cb51ba8SAustin Zhangconfig CRYPTO_CRC32C_INTEL
4058cb51ba8SAustin Zhang	tristate "CRC32c INTEL hardware acceleration"
4068cb51ba8SAustin Zhang	depends on X86
4078cb51ba8SAustin Zhang	select CRYPTO_HASH
4088cb51ba8SAustin Zhang	help
4098cb51ba8SAustin Zhang	  In Intel processor with SSE4.2 supported, the processor will
4108cb51ba8SAustin Zhang	  support CRC32C implementation using hardware accelerated CRC32
4118cb51ba8SAustin Zhang	  instruction. This option will create 'crc32c-intel' module,
4128cb51ba8SAustin Zhang	  which will enable any routine to use the CRC32 instruction to
4138cb51ba8SAustin Zhang	  gain performance compared with software implementation.
4148cb51ba8SAustin Zhang	  Module will be crc32c-intel.
4158cb51ba8SAustin Zhang
416442a7c40SDavid S. Millerconfig CRYPTO_CRC32C_SPARC64
417442a7c40SDavid S. Miller	tristate "CRC32c CRC algorithm (SPARC64)"
418442a7c40SDavid S. Miller	depends on SPARC64
419442a7c40SDavid S. Miller	select CRYPTO_HASH
420442a7c40SDavid S. Miller	select CRC32
421442a7c40SDavid S. Miller	help
422442a7c40SDavid S. Miller	  CRC32c CRC algorithm implemented using sparc64 crypto instructions,
423442a7c40SDavid S. Miller	  when available.
424442a7c40SDavid S. Miller
42578c37d19SAlexander Boykoconfig CRYPTO_CRC32
42678c37d19SAlexander Boyko	tristate "CRC32 CRC algorithm"
42778c37d19SAlexander Boyko	select CRYPTO_HASH
42878c37d19SAlexander Boyko	select CRC32
42978c37d19SAlexander Boyko	help
43078c37d19SAlexander Boyko	  CRC-32-IEEE 802.3 cyclic redundancy-check algorithm.
43178c37d19SAlexander Boyko	  Shash crypto api wrappers to crc32_le function.
43278c37d19SAlexander Boyko
43378c37d19SAlexander Boykoconfig CRYPTO_CRC32_PCLMUL
43478c37d19SAlexander Boyko	tristate "CRC32 PCLMULQDQ hardware acceleration"
43578c37d19SAlexander Boyko	depends on X86
43678c37d19SAlexander Boyko	select CRYPTO_HASH
43778c37d19SAlexander Boyko	select CRC32
43878c37d19SAlexander Boyko	help
43978c37d19SAlexander Boyko	  From Intel Westmere and AMD Bulldozer processor with SSE4.2
44078c37d19SAlexander Boyko	  and PCLMULQDQ supported, the processor will support
44178c37d19SAlexander Boyko	  CRC32 PCLMULQDQ implementation using hardware accelerated PCLMULQDQ
44278c37d19SAlexander Boyko	  instruction. This option will create 'crc32-plcmul' module,
44378c37d19SAlexander Boyko	  which will enable any routine to use the CRC-32-IEEE 802.3 checksum
44478c37d19SAlexander Boyko	  and gain better performance as compared with the table implementation.
44578c37d19SAlexander Boyko
44668411521SHerbert Xuconfig CRYPTO_CRCT10DIF
44768411521SHerbert Xu	tristate "CRCT10DIF algorithm"
44868411521SHerbert Xu	select CRYPTO_HASH
44968411521SHerbert Xu	help
45068411521SHerbert Xu	  CRC T10 Data Integrity Field computation is being cast as
45168411521SHerbert Xu	  a crypto transform.  This allows for faster crc t10 diff
45268411521SHerbert Xu	  transforms to be used if they are available.
45368411521SHerbert Xu
45468411521SHerbert Xuconfig CRYPTO_CRCT10DIF_PCLMUL
45568411521SHerbert Xu	tristate "CRCT10DIF PCLMULQDQ hardware acceleration"
45668411521SHerbert Xu	depends on X86 && 64BIT && CRC_T10DIF
45768411521SHerbert Xu	select CRYPTO_HASH
45868411521SHerbert Xu	help
45968411521SHerbert Xu	  For x86_64 processors with SSE4.2 and PCLMULQDQ supported,
46068411521SHerbert Xu	  CRC T10 DIF PCLMULQDQ computation can be hardware
46168411521SHerbert Xu	  accelerated PCLMULQDQ instruction. This option will create
46268411521SHerbert Xu	  'crct10dif-plcmul' module, which is faster when computing the
46368411521SHerbert Xu	  crct10dif checksum as compared with the generic table implementation.
46468411521SHerbert Xu
4652cdc6899SHuang Yingconfig CRYPTO_GHASH
4662cdc6899SHuang Ying	tristate "GHASH digest algorithm"
4672cdc6899SHuang Ying	select CRYPTO_GF128MUL
4682cdc6899SHuang Ying	help
4692cdc6899SHuang Ying	  GHASH is message digest algorithm for GCM (Galois/Counter Mode).
4702cdc6899SHuang Ying
471f979e014SMartin Williconfig CRYPTO_POLY1305
472f979e014SMartin Willi	tristate "Poly1305 authenticator algorithm"
473f979e014SMartin Willi	help
474f979e014SMartin Willi	  Poly1305 authenticator algorithm, RFC7539.
475f979e014SMartin Willi
476f979e014SMartin Willi	  Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
477f979e014SMartin Willi	  It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
478f979e014SMartin Willi	  in IETF protocols. This is the portable C implementation of Poly1305.
479f979e014SMartin Willi
480c70f4abeSMartin Williconfig CRYPTO_POLY1305_X86_64
481b1ccc8f4SMartin Willi	tristate "Poly1305 authenticator algorithm (x86_64/SSE2/AVX2)"
482c70f4abeSMartin Willi	depends on X86 && 64BIT
483c70f4abeSMartin Willi	select CRYPTO_POLY1305
484c70f4abeSMartin Willi	help
485c70f4abeSMartin Willi	  Poly1305 authenticator algorithm, RFC7539.
486c70f4abeSMartin Willi
487c70f4abeSMartin Willi	  Poly1305 is an authenticator algorithm designed by Daniel J. Bernstein.
488c70f4abeSMartin Willi	  It is used for the ChaCha20-Poly1305 AEAD, specified in RFC7539 for use
489c70f4abeSMartin Willi	  in IETF protocols. This is the x86_64 assembler implementation using SIMD
490c70f4abeSMartin Willi	  instructions.
491c70f4abeSMartin Willi
4921da177e4SLinus Torvaldsconfig CRYPTO_MD4
4931da177e4SLinus Torvalds	tristate "MD4 digest algorithm"
494808a1763SAdrian-Ken Rueegsegger	select CRYPTO_HASH
4951da177e4SLinus Torvalds	help
4961da177e4SLinus Torvalds	  MD4 message digest algorithm (RFC1320).
4971da177e4SLinus Torvalds
4981da177e4SLinus Torvaldsconfig CRYPTO_MD5
4991da177e4SLinus Torvalds	tristate "MD5 digest algorithm"
50014b75ba7SAdrian-Ken Rueegsegger	select CRYPTO_HASH
5011da177e4SLinus Torvalds	help
5021da177e4SLinus Torvalds	  MD5 message digest algorithm (RFC1321).
5031da177e4SLinus Torvalds
504d69e75deSAaro Koskinenconfig CRYPTO_MD5_OCTEON
505d69e75deSAaro Koskinen	tristate "MD5 digest algorithm (OCTEON)"
506d69e75deSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
507d69e75deSAaro Koskinen	select CRYPTO_MD5
508d69e75deSAaro Koskinen	select CRYPTO_HASH
509d69e75deSAaro Koskinen	help
510d69e75deSAaro Koskinen	  MD5 message digest algorithm (RFC1321) implemented
511d69e75deSAaro Koskinen	  using OCTEON crypto instructions, when available.
512d69e75deSAaro Koskinen
513e8e59953SMarkus Stockhausenconfig CRYPTO_MD5_PPC
514e8e59953SMarkus Stockhausen	tristate "MD5 digest algorithm (PPC)"
515e8e59953SMarkus Stockhausen	depends on PPC
516e8e59953SMarkus Stockhausen	select CRYPTO_HASH
517e8e59953SMarkus Stockhausen	help
518e8e59953SMarkus Stockhausen	  MD5 message digest algorithm (RFC1321) implemented
519e8e59953SMarkus Stockhausen	  in PPC assembler.
520e8e59953SMarkus Stockhausen
521fa4dfedcSDavid S. Millerconfig CRYPTO_MD5_SPARC64
522fa4dfedcSDavid S. Miller	tristate "MD5 digest algorithm (SPARC64)"
523fa4dfedcSDavid S. Miller	depends on SPARC64
524fa4dfedcSDavid S. Miller	select CRYPTO_MD5
525fa4dfedcSDavid S. Miller	select CRYPTO_HASH
526fa4dfedcSDavid S. Miller	help
527fa4dfedcSDavid S. Miller	  MD5 message digest algorithm (RFC1321) implemented
528fa4dfedcSDavid S. Miller	  using sparc64 crypto instructions, when available.
529fa4dfedcSDavid S. Miller
530584fffc8SSebastian Siewiorconfig CRYPTO_MICHAEL_MIC
531584fffc8SSebastian Siewior	tristate "Michael MIC keyed digest algorithm"
53219e2bf14SAdrian-Ken Rueegsegger	select CRYPTO_HASH
533584fffc8SSebastian Siewior	help
534584fffc8SSebastian Siewior	  Michael MIC is used for message integrity protection in TKIP
535584fffc8SSebastian Siewior	  (IEEE 802.11i). This algorithm is required for TKIP, but it
536584fffc8SSebastian Siewior	  should not be used for other purposes because of the weakness
537584fffc8SSebastian Siewior	  of the algorithm.
538584fffc8SSebastian Siewior
53982798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD128
54082798f90SAdrian-Ken Rueegsegger	tristate "RIPEMD-128 digest algorithm"
5417c4468bcSHerbert Xu	select CRYPTO_HASH
54282798f90SAdrian-Ken Rueegsegger	help
54382798f90SAdrian-Ken Rueegsegger	  RIPEMD-128 (ISO/IEC 10118-3:2004).
54482798f90SAdrian-Ken Rueegsegger
54582798f90SAdrian-Ken Rueegsegger	  RIPEMD-128 is a 128-bit cryptographic hash function. It should only
54635ed4b35SMichael Witten	  be used as a secure replacement for RIPEMD. For other use cases,
54782798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 should be used.
54882798f90SAdrian-Ken Rueegsegger
54982798f90SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
5506d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
55182798f90SAdrian-Ken Rueegsegger
55282798f90SAdrian-Ken Rueegseggerconfig CRYPTO_RMD160
55382798f90SAdrian-Ken Rueegsegger	tristate "RIPEMD-160 digest algorithm"
554e5835fbaSHerbert Xu	select CRYPTO_HASH
55582798f90SAdrian-Ken Rueegsegger	help
55682798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 (ISO/IEC 10118-3:2004).
55782798f90SAdrian-Ken Rueegsegger
55882798f90SAdrian-Ken Rueegsegger	  RIPEMD-160 is a 160-bit cryptographic hash function. It is intended
55982798f90SAdrian-Ken Rueegsegger	  to be used as a secure replacement for the 128-bit hash functions
560b6d44341SAdrian Bunk	  MD4, MD5 and it's predecessor RIPEMD
561b6d44341SAdrian Bunk	  (not to be confused with RIPEMD-128).
56282798f90SAdrian-Ken Rueegsegger
563b6d44341SAdrian Bunk	  It's speed is comparable to SHA1 and there are no known attacks
564b6d44341SAdrian Bunk	  against RIPEMD-160.
565534fe2c1SAdrian-Ken Rueegsegger
566534fe2c1SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
5676d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
568534fe2c1SAdrian-Ken Rueegsegger
569534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD256
570534fe2c1SAdrian-Ken Rueegsegger	tristate "RIPEMD-256 digest algorithm"
571d8a5e2e9SHerbert Xu	select CRYPTO_HASH
572534fe2c1SAdrian-Ken Rueegsegger	help
573b6d44341SAdrian Bunk	  RIPEMD-256 is an optional extension of RIPEMD-128 with a
574b6d44341SAdrian Bunk	  256 bit hash. It is intended for applications that require
575b6d44341SAdrian Bunk	  longer hash-results, without needing a larger security level
576b6d44341SAdrian Bunk	  (than RIPEMD-128).
577534fe2c1SAdrian-Ken Rueegsegger
578534fe2c1SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
5796d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
580534fe2c1SAdrian-Ken Rueegsegger
581534fe2c1SAdrian-Ken Rueegseggerconfig CRYPTO_RMD320
582534fe2c1SAdrian-Ken Rueegsegger	tristate "RIPEMD-320 digest algorithm"
5833b8efb4cSHerbert Xu	select CRYPTO_HASH
584534fe2c1SAdrian-Ken Rueegsegger	help
585b6d44341SAdrian Bunk	  RIPEMD-320 is an optional extension of RIPEMD-160 with a
586b6d44341SAdrian Bunk	  320 bit hash. It is intended for applications that require
587b6d44341SAdrian Bunk	  longer hash-results, without needing a larger security level
588b6d44341SAdrian Bunk	  (than RIPEMD-160).
589534fe2c1SAdrian-Ken Rueegsegger
59082798f90SAdrian-Ken Rueegsegger	  Developed by Hans Dobbertin, Antoon Bosselaers and Bart Preneel.
5916d8de74cSJustin P. Mattock	  See <http://homes.esat.kuleuven.be/~bosselae/ripemd160.html>
59282798f90SAdrian-Ken Rueegsegger
5931da177e4SLinus Torvaldsconfig CRYPTO_SHA1
5941da177e4SLinus Torvalds	tristate "SHA1 digest algorithm"
59554ccb367SAdrian-Ken Rueegsegger	select CRYPTO_HASH
5961da177e4SLinus Torvalds	help
5971da177e4SLinus Torvalds	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
5981da177e4SLinus Torvalds
59966be8951SMathias Krauseconfig CRYPTO_SHA1_SSSE3
6007c1da8d0Schandramouli narayanan	tristate "SHA1 digest algorithm (SSSE3/AVX/AVX2)"
60166be8951SMathias Krause	depends on X86 && 64BIT
60266be8951SMathias Krause	select CRYPTO_SHA1
60366be8951SMathias Krause	select CRYPTO_HASH
60466be8951SMathias Krause	help
60566be8951SMathias Krause	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
60666be8951SMathias Krause	  using Supplemental SSE3 (SSSE3) instructions or Advanced Vector
6077c1da8d0Schandramouli narayanan	  Extensions (AVX/AVX2), when available.
60866be8951SMathias Krause
6098275d1aaSTim Chenconfig CRYPTO_SHA256_SSSE3
6108275d1aaSTim Chen	tristate "SHA256 digest algorithm (SSSE3/AVX/AVX2)"
6118275d1aaSTim Chen	depends on X86 && 64BIT
6128275d1aaSTim Chen	select CRYPTO_SHA256
6138275d1aaSTim Chen	select CRYPTO_HASH
6148275d1aaSTim Chen	help
6158275d1aaSTim Chen	  SHA-256 secure hash standard (DFIPS 180-2) implemented
6168275d1aaSTim Chen	  using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
6178275d1aaSTim Chen	  Extensions version 1 (AVX1), or Advanced Vector Extensions
6188275d1aaSTim Chen	  version 2 (AVX2) instructions, when available.
6198275d1aaSTim Chen
62087de4579STim Chenconfig CRYPTO_SHA512_SSSE3
62187de4579STim Chen	tristate "SHA512 digest algorithm (SSSE3/AVX/AVX2)"
62287de4579STim Chen	depends on X86 && 64BIT
62387de4579STim Chen	select CRYPTO_SHA512
62487de4579STim Chen	select CRYPTO_HASH
62587de4579STim Chen	help
62687de4579STim Chen	  SHA-512 secure hash standard (DFIPS 180-2) implemented
62787de4579STim Chen	  using Supplemental SSE3 (SSSE3) instructions, or Advanced Vector
62887de4579STim Chen	  Extensions version 1 (AVX1), or Advanced Vector Extensions
62987de4579STim Chen	  version 2 (AVX2) instructions, when available.
63087de4579STim Chen
631efdb6f6eSAaro Koskinenconfig CRYPTO_SHA1_OCTEON
632efdb6f6eSAaro Koskinen	tristate "SHA1 digest algorithm (OCTEON)"
633efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
634efdb6f6eSAaro Koskinen	select CRYPTO_SHA1
635efdb6f6eSAaro Koskinen	select CRYPTO_HASH
636efdb6f6eSAaro Koskinen	help
637efdb6f6eSAaro Koskinen	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
638efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
639efdb6f6eSAaro Koskinen
6404ff28d4cSDavid S. Millerconfig CRYPTO_SHA1_SPARC64
6414ff28d4cSDavid S. Miller	tristate "SHA1 digest algorithm (SPARC64)"
6424ff28d4cSDavid S. Miller	depends on SPARC64
6434ff28d4cSDavid S. Miller	select CRYPTO_SHA1
6444ff28d4cSDavid S. Miller	select CRYPTO_HASH
6454ff28d4cSDavid S. Miller	help
6464ff28d4cSDavid S. Miller	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
6474ff28d4cSDavid S. Miller	  using sparc64 crypto instructions, when available.
6484ff28d4cSDavid S. Miller
649323a6bf1SMichael Ellermanconfig CRYPTO_SHA1_PPC
650323a6bf1SMichael Ellerman	tristate "SHA1 digest algorithm (powerpc)"
651323a6bf1SMichael Ellerman	depends on PPC
652323a6bf1SMichael Ellerman	help
653323a6bf1SMichael Ellerman	  This is the powerpc hardware accelerated implementation of the
654323a6bf1SMichael Ellerman	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2).
655323a6bf1SMichael Ellerman
656d9850fc5SMarkus Stockhausenconfig CRYPTO_SHA1_PPC_SPE
657d9850fc5SMarkus Stockhausen	tristate "SHA1 digest algorithm (PPC SPE)"
658d9850fc5SMarkus Stockhausen	depends on PPC && SPE
659d9850fc5SMarkus Stockhausen	help
660d9850fc5SMarkus Stockhausen	  SHA-1 secure hash standard (DFIPS 180-4) implemented
661d9850fc5SMarkus Stockhausen	  using powerpc SPE SIMD instruction set.
662d9850fc5SMarkus Stockhausen
6631e65b81aSTim Chenconfig CRYPTO_SHA1_MB
6641e65b81aSTim Chen	tristate "SHA1 digest algorithm (x86_64 Multi-Buffer, Experimental)"
6651e65b81aSTim Chen	depends on X86 && 64BIT
6661e65b81aSTim Chen	select CRYPTO_SHA1
6671e65b81aSTim Chen	select CRYPTO_HASH
6681e65b81aSTim Chen	select CRYPTO_MCRYPTD
6691e65b81aSTim Chen	help
6701e65b81aSTim Chen	  SHA-1 secure hash standard (FIPS 180-1/DFIPS 180-2) implemented
6711e65b81aSTim Chen	  using multi-buffer technique.  This algorithm computes on
6721e65b81aSTim Chen	  multiple data lanes concurrently with SIMD instructions for
6731e65b81aSTim Chen	  better throughput.  It should not be enabled by default but
6741e65b81aSTim Chen	  used when there is significant amount of work to keep the keep
6751e65b81aSTim Chen	  the data lanes filled to get performance benefit.  If the data
6761e65b81aSTim Chen	  lanes remain unfilled, a flush operation will be initiated to
6771e65b81aSTim Chen	  process the crypto jobs, adding a slight latency.
6781e65b81aSTim Chen
6791da177e4SLinus Torvaldsconfig CRYPTO_SHA256
680cd12fb90SJonathan Lynch	tristate "SHA224 and SHA256 digest algorithm"
68150e109b5SAdrian-Ken Rueegsegger	select CRYPTO_HASH
6821da177e4SLinus Torvalds	help
6831da177e4SLinus Torvalds	  SHA256 secure hash standard (DFIPS 180-2).
6841da177e4SLinus Torvalds
6851da177e4SLinus Torvalds	  This version of SHA implements a 256 bit hash with 128 bits of
6861da177e4SLinus Torvalds	  security against collision attacks.
6871da177e4SLinus Torvalds
688cd12fb90SJonathan Lynch	  This code also includes SHA-224, a 224 bit hash with 112 bits
689cd12fb90SJonathan Lynch	  of security against collision attacks.
690cd12fb90SJonathan Lynch
6912ecc1e95SMarkus Stockhausenconfig CRYPTO_SHA256_PPC_SPE
6922ecc1e95SMarkus Stockhausen	tristate "SHA224 and SHA256 digest algorithm (PPC SPE)"
6932ecc1e95SMarkus Stockhausen	depends on PPC && SPE
6942ecc1e95SMarkus Stockhausen	select CRYPTO_SHA256
6952ecc1e95SMarkus Stockhausen	select CRYPTO_HASH
6962ecc1e95SMarkus Stockhausen	help
6972ecc1e95SMarkus Stockhausen	  SHA224 and SHA256 secure hash standard (DFIPS 180-2)
6982ecc1e95SMarkus Stockhausen	  implemented using powerpc SPE SIMD instruction set.
6992ecc1e95SMarkus Stockhausen
700efdb6f6eSAaro Koskinenconfig CRYPTO_SHA256_OCTEON
701efdb6f6eSAaro Koskinen	tristate "SHA224 and SHA256 digest algorithm (OCTEON)"
702efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
703efdb6f6eSAaro Koskinen	select CRYPTO_SHA256
704efdb6f6eSAaro Koskinen	select CRYPTO_HASH
705efdb6f6eSAaro Koskinen	help
706efdb6f6eSAaro Koskinen	  SHA-256 secure hash standard (DFIPS 180-2) implemented
707efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
708efdb6f6eSAaro Koskinen
70986c93b24SDavid S. Millerconfig CRYPTO_SHA256_SPARC64
71086c93b24SDavid S. Miller	tristate "SHA224 and SHA256 digest algorithm (SPARC64)"
71186c93b24SDavid S. Miller	depends on SPARC64
71286c93b24SDavid S. Miller	select CRYPTO_SHA256
71386c93b24SDavid S. Miller	select CRYPTO_HASH
71486c93b24SDavid S. Miller	help
71586c93b24SDavid S. Miller	  SHA-256 secure hash standard (DFIPS 180-2) implemented
71686c93b24SDavid S. Miller	  using sparc64 crypto instructions, when available.
71786c93b24SDavid S. Miller
7181da177e4SLinus Torvaldsconfig CRYPTO_SHA512
7191da177e4SLinus Torvalds	tristate "SHA384 and SHA512 digest algorithms"
720bd9d20dbSAdrian-Ken Rueegsegger	select CRYPTO_HASH
7211da177e4SLinus Torvalds	help
7221da177e4SLinus Torvalds	  SHA512 secure hash standard (DFIPS 180-2).
7231da177e4SLinus Torvalds
7241da177e4SLinus Torvalds	  This version of SHA implements a 512 bit hash with 256 bits of
7251da177e4SLinus Torvalds	  security against collision attacks.
7261da177e4SLinus Torvalds
7271da177e4SLinus Torvalds	  This code also includes SHA-384, a 384 bit hash with 192 bits
7281da177e4SLinus Torvalds	  of security against collision attacks.
7291da177e4SLinus Torvalds
730efdb6f6eSAaro Koskinenconfig CRYPTO_SHA512_OCTEON
731efdb6f6eSAaro Koskinen	tristate "SHA384 and SHA512 digest algorithms (OCTEON)"
732efdb6f6eSAaro Koskinen	depends on CPU_CAVIUM_OCTEON
733efdb6f6eSAaro Koskinen	select CRYPTO_SHA512
734efdb6f6eSAaro Koskinen	select CRYPTO_HASH
735efdb6f6eSAaro Koskinen	help
736efdb6f6eSAaro Koskinen	  SHA-512 secure hash standard (DFIPS 180-2) implemented
737efdb6f6eSAaro Koskinen	  using OCTEON crypto instructions, when available.
738efdb6f6eSAaro Koskinen
739775e0c69SDavid S. Millerconfig CRYPTO_SHA512_SPARC64
740775e0c69SDavid S. Miller	tristate "SHA384 and SHA512 digest algorithm (SPARC64)"
741775e0c69SDavid S. Miller	depends on SPARC64
742775e0c69SDavid S. Miller	select CRYPTO_SHA512
743775e0c69SDavid S. Miller	select CRYPTO_HASH
744775e0c69SDavid S. Miller	help
745775e0c69SDavid S. Miller	  SHA-512 secure hash standard (DFIPS 180-2) implemented
746775e0c69SDavid S. Miller	  using sparc64 crypto instructions, when available.
747775e0c69SDavid S. Miller
7481da177e4SLinus Torvaldsconfig CRYPTO_TGR192
7491da177e4SLinus Torvalds	tristate "Tiger digest algorithms"
750f63fbd3dSAdrian-Ken Rueegsegger	select CRYPTO_HASH
7511da177e4SLinus Torvalds	help
7521da177e4SLinus Torvalds	  Tiger hash algorithm 192, 160 and 128-bit hashes
7531da177e4SLinus Torvalds
7541da177e4SLinus Torvalds	  Tiger is a hash function optimized for 64-bit processors while
7551da177e4SLinus Torvalds	  still having decent performance on 32-bit processors.
7561da177e4SLinus Torvalds	  Tiger was developed by Ross Anderson and Eli Biham.
7571da177e4SLinus Torvalds
7581da177e4SLinus Torvalds	  See also:
7591da177e4SLinus Torvalds	  <http://www.cs.technion.ac.il/~biham/Reports/Tiger/>.
7601da177e4SLinus Torvalds
761584fffc8SSebastian Siewiorconfig CRYPTO_WP512
762584fffc8SSebastian Siewior	tristate "Whirlpool digest algorithms"
7634946510bSAdrian-Ken Rueegsegger	select CRYPTO_HASH
7641da177e4SLinus Torvalds	help
765584fffc8SSebastian Siewior	  Whirlpool hash algorithm 512, 384 and 256-bit hashes
7661da177e4SLinus Torvalds
767584fffc8SSebastian Siewior	  Whirlpool-512 is part of the NESSIE cryptographic primitives.
768584fffc8SSebastian Siewior	  Whirlpool will be part of the ISO/IEC 10118-3:2003(E) standard
7691da177e4SLinus Torvalds
7701da177e4SLinus Torvalds	  See also:
7716d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/WhirlpoolPage.html>
7721da177e4SLinus Torvalds
7730e1227d3SHuang Yingconfig CRYPTO_GHASH_CLMUL_NI_INTEL
7740e1227d3SHuang Ying	tristate "GHASH digest algorithm (CLMUL-NI accelerated)"
7758af00860SRichard Weinberger	depends on X86 && 64BIT
7760e1227d3SHuang Ying	select CRYPTO_CRYPTD
7770e1227d3SHuang Ying	help
7780e1227d3SHuang Ying	  GHASH is message digest algorithm for GCM (Galois/Counter Mode).
7790e1227d3SHuang Ying	  The implementation is accelerated by CLMUL-NI of Intel.
7800e1227d3SHuang Ying
781584fffc8SSebastian Siewiorcomment "Ciphers"
7821da177e4SLinus Torvalds
7831da177e4SLinus Torvaldsconfig CRYPTO_AES
7841da177e4SLinus Torvalds	tristate "AES cipher algorithms"
785cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
7861da177e4SLinus Torvalds	help
7871da177e4SLinus Torvalds	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
7881da177e4SLinus Torvalds	  algorithm.
7891da177e4SLinus Torvalds
7901da177e4SLinus Torvalds	  Rijndael appears to be consistently a very good performer in
7911da177e4SLinus Torvalds	  both hardware and software across a wide range of computing
7921da177e4SLinus Torvalds	  environments regardless of its use in feedback or non-feedback
7931da177e4SLinus Torvalds	  modes. Its key setup time is excellent, and its key agility is
7941da177e4SLinus Torvalds	  good. Rijndael's very low memory requirements make it very well
7951da177e4SLinus Torvalds	  suited for restricted-space environments, in which it also
7961da177e4SLinus Torvalds	  demonstrates excellent performance. Rijndael's operations are
7971da177e4SLinus Torvalds	  among the easiest to defend against power and timing attacks.
7981da177e4SLinus Torvalds
7991da177e4SLinus Torvalds	  The AES specifies three key sizes: 128, 192 and 256 bits
8001da177e4SLinus Torvalds
8011da177e4SLinus Torvalds	  See <http://csrc.nist.gov/CryptoToolkit/aes/> for more information.
8021da177e4SLinus Torvalds
8031da177e4SLinus Torvaldsconfig CRYPTO_AES_586
8041da177e4SLinus Torvalds	tristate "AES cipher algorithms (i586)"
805cce9e06dSHerbert Xu	depends on (X86 || UML_X86) && !64BIT
806cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
8075157dea8SSebastian Siewior	select CRYPTO_AES
8081da177e4SLinus Torvalds	help
8091da177e4SLinus Torvalds	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
8101da177e4SLinus Torvalds	  algorithm.
8111da177e4SLinus Torvalds
8121da177e4SLinus Torvalds	  Rijndael appears to be consistently a very good performer in
8131da177e4SLinus Torvalds	  both hardware and software across a wide range of computing
8141da177e4SLinus Torvalds	  environments regardless of its use in feedback or non-feedback
8151da177e4SLinus Torvalds	  modes. Its key setup time is excellent, and its key agility is
8161da177e4SLinus Torvalds	  good. Rijndael's very low memory requirements make it very well
8171da177e4SLinus Torvalds	  suited for restricted-space environments, in which it also
8181da177e4SLinus Torvalds	  demonstrates excellent performance. Rijndael's operations are
8191da177e4SLinus Torvalds	  among the easiest to defend against power and timing attacks.
8201da177e4SLinus Torvalds
8211da177e4SLinus Torvalds	  The AES specifies three key sizes: 128, 192 and 256 bits
8221da177e4SLinus Torvalds
8231da177e4SLinus Torvalds	  See <http://csrc.nist.gov/encryption/aes/> for more information.
8241da177e4SLinus Torvalds
825a2a892a2SAndreas Steinmetzconfig CRYPTO_AES_X86_64
826a2a892a2SAndreas Steinmetz	tristate "AES cipher algorithms (x86_64)"
827cce9e06dSHerbert Xu	depends on (X86 || UML_X86) && 64BIT
828cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
82981190b32SSebastian Siewior	select CRYPTO_AES
830a2a892a2SAndreas Steinmetz	help
831a2a892a2SAndreas Steinmetz	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
832a2a892a2SAndreas Steinmetz	  algorithm.
833a2a892a2SAndreas Steinmetz
834a2a892a2SAndreas Steinmetz	  Rijndael appears to be consistently a very good performer in
835a2a892a2SAndreas Steinmetz	  both hardware and software across a wide range of computing
836a2a892a2SAndreas Steinmetz	  environments regardless of its use in feedback or non-feedback
837a2a892a2SAndreas Steinmetz	  modes. Its key setup time is excellent, and its key agility is
838a2a892a2SAndreas Steinmetz	  good. Rijndael's very low memory requirements make it very well
839a2a892a2SAndreas Steinmetz	  suited for restricted-space environments, in which it also
840a2a892a2SAndreas Steinmetz	  demonstrates excellent performance. Rijndael's operations are
841a2a892a2SAndreas Steinmetz	  among the easiest to defend against power and timing attacks.
842a2a892a2SAndreas Steinmetz
843a2a892a2SAndreas Steinmetz	  The AES specifies three key sizes: 128, 192 and 256 bits
844a2a892a2SAndreas Steinmetz
845a2a892a2SAndreas Steinmetz	  See <http://csrc.nist.gov/encryption/aes/> for more information.
846a2a892a2SAndreas Steinmetz
84754b6a1bdSHuang Yingconfig CRYPTO_AES_NI_INTEL
84854b6a1bdSHuang Ying	tristate "AES cipher algorithms (AES-NI)"
8498af00860SRichard Weinberger	depends on X86
8500d258efbSMathias Krause	select CRYPTO_AES_X86_64 if 64BIT
8510d258efbSMathias Krause	select CRYPTO_AES_586 if !64BIT
85254b6a1bdSHuang Ying	select CRYPTO_CRYPTD
853801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
85454b6a1bdSHuang Ying	select CRYPTO_ALGAPI
8557643a11aSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86 if 64BIT
856023af608SJussi Kivilinna	select CRYPTO_LRW
857023af608SJussi Kivilinna	select CRYPTO_XTS
85854b6a1bdSHuang Ying	help
85954b6a1bdSHuang Ying	  Use Intel AES-NI instructions for AES algorithm.
86054b6a1bdSHuang Ying
86154b6a1bdSHuang Ying	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
86254b6a1bdSHuang Ying	  algorithm.
86354b6a1bdSHuang Ying
86454b6a1bdSHuang Ying	  Rijndael appears to be consistently a very good performer in
86554b6a1bdSHuang Ying	  both hardware and software across a wide range of computing
86654b6a1bdSHuang Ying	  environments regardless of its use in feedback or non-feedback
86754b6a1bdSHuang Ying	  modes. Its key setup time is excellent, and its key agility is
86854b6a1bdSHuang Ying	  good. Rijndael's very low memory requirements make it very well
86954b6a1bdSHuang Ying	  suited for restricted-space environments, in which it also
87054b6a1bdSHuang Ying	  demonstrates excellent performance. Rijndael's operations are
87154b6a1bdSHuang Ying	  among the easiest to defend against power and timing attacks.
87254b6a1bdSHuang Ying
87354b6a1bdSHuang Ying	  The AES specifies three key sizes: 128, 192 and 256 bits
87454b6a1bdSHuang Ying
87554b6a1bdSHuang Ying	  See <http://csrc.nist.gov/encryption/aes/> for more information.
87654b6a1bdSHuang Ying
8770d258efbSMathias Krause	  In addition to AES cipher algorithm support, the acceleration
8780d258efbSMathias Krause	  for some popular block cipher mode is supported too, including
8790d258efbSMathias Krause	  ECB, CBC, LRW, PCBC, XTS. The 64 bit version has additional
8800d258efbSMathias Krause	  acceleration for CTR.
8812cf4ac8bSHuang Ying
8829bf4852dSDavid S. Millerconfig CRYPTO_AES_SPARC64
8839bf4852dSDavid S. Miller	tristate "AES cipher algorithms (SPARC64)"
8849bf4852dSDavid S. Miller	depends on SPARC64
8859bf4852dSDavid S. Miller	select CRYPTO_CRYPTD
8869bf4852dSDavid S. Miller	select CRYPTO_ALGAPI
8879bf4852dSDavid S. Miller	help
8889bf4852dSDavid S. Miller	  Use SPARC64 crypto opcodes for AES algorithm.
8899bf4852dSDavid S. Miller
8909bf4852dSDavid S. Miller	  AES cipher algorithms (FIPS-197). AES uses the Rijndael
8919bf4852dSDavid S. Miller	  algorithm.
8929bf4852dSDavid S. Miller
8939bf4852dSDavid S. Miller	  Rijndael appears to be consistently a very good performer in
8949bf4852dSDavid S. Miller	  both hardware and software across a wide range of computing
8959bf4852dSDavid S. Miller	  environments regardless of its use in feedback or non-feedback
8969bf4852dSDavid S. Miller	  modes. Its key setup time is excellent, and its key agility is
8979bf4852dSDavid S. Miller	  good. Rijndael's very low memory requirements make it very well
8989bf4852dSDavid S. Miller	  suited for restricted-space environments, in which it also
8999bf4852dSDavid S. Miller	  demonstrates excellent performance. Rijndael's operations are
9009bf4852dSDavid S. Miller	  among the easiest to defend against power and timing attacks.
9019bf4852dSDavid S. Miller
9029bf4852dSDavid S. Miller	  The AES specifies three key sizes: 128, 192 and 256 bits
9039bf4852dSDavid S. Miller
9049bf4852dSDavid S. Miller	  See <http://csrc.nist.gov/encryption/aes/> for more information.
9059bf4852dSDavid S. Miller
9069bf4852dSDavid S. Miller	  In addition to AES cipher algorithm support, the acceleration
9079bf4852dSDavid S. Miller	  for some popular block cipher mode is supported too, including
9089bf4852dSDavid S. Miller	  ECB and CBC.
9099bf4852dSDavid S. Miller
910504c6143SMarkus Stockhausenconfig CRYPTO_AES_PPC_SPE
911504c6143SMarkus Stockhausen	tristate "AES cipher algorithms (PPC SPE)"
912504c6143SMarkus Stockhausen	depends on PPC && SPE
913504c6143SMarkus Stockhausen	help
914504c6143SMarkus Stockhausen	  AES cipher algorithms (FIPS-197). Additionally the acceleration
915504c6143SMarkus Stockhausen	  for popular block cipher modes ECB, CBC, CTR and XTS is supported.
916504c6143SMarkus Stockhausen	  This module should only be used for low power (router) devices
917504c6143SMarkus Stockhausen	  without hardware AES acceleration (e.g. caam crypto). It reduces the
918504c6143SMarkus Stockhausen	  size of the AES tables from 16KB to 8KB + 256 bytes and mitigates
919504c6143SMarkus Stockhausen	  timining attacks. Nevertheless it might be not as secure as other
920504c6143SMarkus Stockhausen	  architecture specific assembler implementations that work on 1KB
921504c6143SMarkus Stockhausen	  tables or 256 bytes S-boxes.
922504c6143SMarkus Stockhausen
9231da177e4SLinus Torvaldsconfig CRYPTO_ANUBIS
9241da177e4SLinus Torvalds	tristate "Anubis cipher algorithm"
925cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
9261da177e4SLinus Torvalds	help
9271da177e4SLinus Torvalds	  Anubis cipher algorithm.
9281da177e4SLinus Torvalds
9291da177e4SLinus Torvalds	  Anubis is a variable key length cipher which can use keys from
9301da177e4SLinus Torvalds	  128 bits to 320 bits in length.  It was evaluated as a entrant
9311da177e4SLinus Torvalds	  in the NESSIE competition.
9321da177e4SLinus Torvalds
9331da177e4SLinus Torvalds	  See also:
9346d8de74cSJustin P. Mattock	  <https://www.cosic.esat.kuleuven.be/nessie/reports/>
9356d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/AnubisPage.html>
9361da177e4SLinus Torvalds
937584fffc8SSebastian Siewiorconfig CRYPTO_ARC4
938584fffc8SSebastian Siewior	tristate "ARC4 cipher algorithm"
939b9b0f080SSebastian Andrzej Siewior	select CRYPTO_BLKCIPHER
940e2ee95b8SHye-Shik Chang	help
941584fffc8SSebastian Siewior	  ARC4 cipher algorithm.
942e2ee95b8SHye-Shik Chang
943584fffc8SSebastian Siewior	  ARC4 is a stream cipher using keys ranging from 8 bits to 2048
944584fffc8SSebastian Siewior	  bits in length.  This algorithm is required for driver-based
945584fffc8SSebastian Siewior	  WEP, but it should not be for other purposes because of the
946584fffc8SSebastian Siewior	  weakness of the algorithm.
947584fffc8SSebastian Siewior
948584fffc8SSebastian Siewiorconfig CRYPTO_BLOWFISH
949584fffc8SSebastian Siewior	tristate "Blowfish cipher algorithm"
950584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
95152ba867cSJussi Kivilinna	select CRYPTO_BLOWFISH_COMMON
952584fffc8SSebastian Siewior	help
953584fffc8SSebastian Siewior	  Blowfish cipher algorithm, by Bruce Schneier.
954584fffc8SSebastian Siewior
955584fffc8SSebastian Siewior	  This is a variable key length cipher which can use keys from 32
956584fffc8SSebastian Siewior	  bits to 448 bits in length.  It's fast, simple and specifically
957584fffc8SSebastian Siewior	  designed for use on "large microprocessors".
958e2ee95b8SHye-Shik Chang
959e2ee95b8SHye-Shik Chang	  See also:
960584fffc8SSebastian Siewior	  <http://www.schneier.com/blowfish.html>
961584fffc8SSebastian Siewior
96252ba867cSJussi Kivilinnaconfig CRYPTO_BLOWFISH_COMMON
96352ba867cSJussi Kivilinna	tristate
96452ba867cSJussi Kivilinna	help
96552ba867cSJussi Kivilinna	  Common parts of the Blowfish cipher algorithm shared by the
96652ba867cSJussi Kivilinna	  generic c and the assembler implementations.
96752ba867cSJussi Kivilinna
96852ba867cSJussi Kivilinna	  See also:
96952ba867cSJussi Kivilinna	  <http://www.schneier.com/blowfish.html>
97052ba867cSJussi Kivilinna
97164b94ceaSJussi Kivilinnaconfig CRYPTO_BLOWFISH_X86_64
97264b94ceaSJussi Kivilinna	tristate "Blowfish cipher algorithm (x86_64)"
973f21a7c19SAl Viro	depends on X86 && 64BIT
97464b94ceaSJussi Kivilinna	select CRYPTO_ALGAPI
97564b94ceaSJussi Kivilinna	select CRYPTO_BLOWFISH_COMMON
97664b94ceaSJussi Kivilinna	help
97764b94ceaSJussi Kivilinna	  Blowfish cipher algorithm (x86_64), by Bruce Schneier.
97864b94ceaSJussi Kivilinna
97964b94ceaSJussi Kivilinna	  This is a variable key length cipher which can use keys from 32
98064b94ceaSJussi Kivilinna	  bits to 448 bits in length.  It's fast, simple and specifically
98164b94ceaSJussi Kivilinna	  designed for use on "large microprocessors".
98264b94ceaSJussi Kivilinna
98364b94ceaSJussi Kivilinna	  See also:
98464b94ceaSJussi Kivilinna	  <http://www.schneier.com/blowfish.html>
98564b94ceaSJussi Kivilinna
986584fffc8SSebastian Siewiorconfig CRYPTO_CAMELLIA
987584fffc8SSebastian Siewior	tristate "Camellia cipher algorithms"
988584fffc8SSebastian Siewior	depends on CRYPTO
989584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
990584fffc8SSebastian Siewior	help
991584fffc8SSebastian Siewior	  Camellia cipher algorithms module.
992584fffc8SSebastian Siewior
993584fffc8SSebastian Siewior	  Camellia is a symmetric key block cipher developed jointly
994584fffc8SSebastian Siewior	  at NTT and Mitsubishi Electric Corporation.
995584fffc8SSebastian Siewior
996584fffc8SSebastian Siewior	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
997584fffc8SSebastian Siewior
998584fffc8SSebastian Siewior	  See also:
999584fffc8SSebastian Siewior	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1000584fffc8SSebastian Siewior
10010b95ec56SJussi Kivilinnaconfig CRYPTO_CAMELLIA_X86_64
10020b95ec56SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64)"
1003f21a7c19SAl Viro	depends on X86 && 64BIT
10040b95ec56SJussi Kivilinna	depends on CRYPTO
10050b95ec56SJussi Kivilinna	select CRYPTO_ALGAPI
1006964263afSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
10070b95ec56SJussi Kivilinna	select CRYPTO_LRW
10080b95ec56SJussi Kivilinna	select CRYPTO_XTS
10090b95ec56SJussi Kivilinna	help
10100b95ec56SJussi Kivilinna	  Camellia cipher algorithm module (x86_64).
10110b95ec56SJussi Kivilinna
10120b95ec56SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
10130b95ec56SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
10140b95ec56SJussi Kivilinna
10150b95ec56SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
10160b95ec56SJussi Kivilinna
10170b95ec56SJussi Kivilinna	  See also:
10180b95ec56SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
10190b95ec56SJussi Kivilinna
1020d9b1d2e7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1021d9b1d2e7SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX)"
1022d9b1d2e7SJussi Kivilinna	depends on X86 && 64BIT
1023d9b1d2e7SJussi Kivilinna	depends on CRYPTO
1024d9b1d2e7SJussi Kivilinna	select CRYPTO_ALGAPI
1025d9b1d2e7SJussi Kivilinna	select CRYPTO_CRYPTD
1026801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
1027d9b1d2e7SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1028d9b1d2e7SJussi Kivilinna	select CRYPTO_CAMELLIA_X86_64
1029d9b1d2e7SJussi Kivilinna	select CRYPTO_LRW
1030d9b1d2e7SJussi Kivilinna	select CRYPTO_XTS
1031d9b1d2e7SJussi Kivilinna	help
1032d9b1d2e7SJussi Kivilinna	  Camellia cipher algorithm module (x86_64/AES-NI/AVX).
1033d9b1d2e7SJussi Kivilinna
1034d9b1d2e7SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
1035d9b1d2e7SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
1036d9b1d2e7SJussi Kivilinna
1037d9b1d2e7SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1038d9b1d2e7SJussi Kivilinna
1039d9b1d2e7SJussi Kivilinna	  See also:
1040d9b1d2e7SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1041d9b1d2e7SJussi Kivilinna
1042f3f935a7SJussi Kivilinnaconfig CRYPTO_CAMELLIA_AESNI_AVX2_X86_64
1043f3f935a7SJussi Kivilinna	tristate "Camellia cipher algorithm (x86_64/AES-NI/AVX2)"
1044f3f935a7SJussi Kivilinna	depends on X86 && 64BIT
1045f3f935a7SJussi Kivilinna	depends on CRYPTO
1046f3f935a7SJussi Kivilinna	select CRYPTO_ALGAPI
1047f3f935a7SJussi Kivilinna	select CRYPTO_CRYPTD
1048801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
1049f3f935a7SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1050f3f935a7SJussi Kivilinna	select CRYPTO_CAMELLIA_X86_64
1051f3f935a7SJussi Kivilinna	select CRYPTO_CAMELLIA_AESNI_AVX_X86_64
1052f3f935a7SJussi Kivilinna	select CRYPTO_LRW
1053f3f935a7SJussi Kivilinna	select CRYPTO_XTS
1054f3f935a7SJussi Kivilinna	help
1055f3f935a7SJussi Kivilinna	  Camellia cipher algorithm module (x86_64/AES-NI/AVX2).
1056f3f935a7SJussi Kivilinna
1057f3f935a7SJussi Kivilinna	  Camellia is a symmetric key block cipher developed jointly
1058f3f935a7SJussi Kivilinna	  at NTT and Mitsubishi Electric Corporation.
1059f3f935a7SJussi Kivilinna
1060f3f935a7SJussi Kivilinna	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
1061f3f935a7SJussi Kivilinna
1062f3f935a7SJussi Kivilinna	  See also:
1063f3f935a7SJussi Kivilinna	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
1064f3f935a7SJussi Kivilinna
106581658ad0SDavid S. Millerconfig CRYPTO_CAMELLIA_SPARC64
106681658ad0SDavid S. Miller	tristate "Camellia cipher algorithm (SPARC64)"
106781658ad0SDavid S. Miller	depends on SPARC64
106881658ad0SDavid S. Miller	depends on CRYPTO
106981658ad0SDavid S. Miller	select CRYPTO_ALGAPI
107081658ad0SDavid S. Miller	help
107181658ad0SDavid S. Miller	  Camellia cipher algorithm module (SPARC64).
107281658ad0SDavid S. Miller
107381658ad0SDavid S. Miller	  Camellia is a symmetric key block cipher developed jointly
107481658ad0SDavid S. Miller	  at NTT and Mitsubishi Electric Corporation.
107581658ad0SDavid S. Miller
107681658ad0SDavid S. Miller	  The Camellia specifies three key sizes: 128, 192 and 256 bits.
107781658ad0SDavid S. Miller
107881658ad0SDavid S. Miller	  See also:
107981658ad0SDavid S. Miller	  <https://info.isl.ntt.co.jp/crypt/eng/camellia/index_s.html>
108081658ad0SDavid S. Miller
1081044ab525SJussi Kivilinnaconfig CRYPTO_CAST_COMMON
1082044ab525SJussi Kivilinna	tristate
1083044ab525SJussi Kivilinna	help
1084044ab525SJussi Kivilinna	  Common parts of the CAST cipher algorithms shared by the
1085044ab525SJussi Kivilinna	  generic c and the assembler implementations.
1086044ab525SJussi Kivilinna
1087584fffc8SSebastian Siewiorconfig CRYPTO_CAST5
1088584fffc8SSebastian Siewior	tristate "CAST5 (CAST-128) cipher algorithm"
1089584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1090044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
1091584fffc8SSebastian Siewior	help
1092584fffc8SSebastian Siewior	  The CAST5 encryption algorithm (synonymous with CAST-128) is
1093584fffc8SSebastian Siewior	  described in RFC2144.
1094584fffc8SSebastian Siewior
10954d6d6a2cSJohannes Goetzfriedconfig CRYPTO_CAST5_AVX_X86_64
10964d6d6a2cSJohannes Goetzfried	tristate "CAST5 (CAST-128) cipher algorithm (x86_64/AVX)"
10974d6d6a2cSJohannes Goetzfried	depends on X86 && 64BIT
10984d6d6a2cSJohannes Goetzfried	select CRYPTO_ALGAPI
10994d6d6a2cSJohannes Goetzfried	select CRYPTO_CRYPTD
1100801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
1101044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
11024d6d6a2cSJohannes Goetzfried	select CRYPTO_CAST5
11034d6d6a2cSJohannes Goetzfried	help
11044d6d6a2cSJohannes Goetzfried	  The CAST5 encryption algorithm (synonymous with CAST-128) is
11054d6d6a2cSJohannes Goetzfried	  described in RFC2144.
11064d6d6a2cSJohannes Goetzfried
11074d6d6a2cSJohannes Goetzfried	  This module provides the Cast5 cipher algorithm that processes
11084d6d6a2cSJohannes Goetzfried	  sixteen blocks parallel using the AVX instruction set.
11094d6d6a2cSJohannes Goetzfried
1110584fffc8SSebastian Siewiorconfig CRYPTO_CAST6
1111584fffc8SSebastian Siewior	tristate "CAST6 (CAST-256) cipher algorithm"
1112584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1113044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
1114584fffc8SSebastian Siewior	help
1115584fffc8SSebastian Siewior	  The CAST6 encryption algorithm (synonymous with CAST-256) is
1116584fffc8SSebastian Siewior	  described in RFC2612.
1117584fffc8SSebastian Siewior
11184ea1277dSJohannes Goetzfriedconfig CRYPTO_CAST6_AVX_X86_64
11194ea1277dSJohannes Goetzfried	tristate "CAST6 (CAST-256) cipher algorithm (x86_64/AVX)"
11204ea1277dSJohannes Goetzfried	depends on X86 && 64BIT
11214ea1277dSJohannes Goetzfried	select CRYPTO_ALGAPI
11224ea1277dSJohannes Goetzfried	select CRYPTO_CRYPTD
1123801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
11244ea1277dSJohannes Goetzfried	select CRYPTO_GLUE_HELPER_X86
1125044ab525SJussi Kivilinna	select CRYPTO_CAST_COMMON
11264ea1277dSJohannes Goetzfried	select CRYPTO_CAST6
11274ea1277dSJohannes Goetzfried	select CRYPTO_LRW
11284ea1277dSJohannes Goetzfried	select CRYPTO_XTS
11294ea1277dSJohannes Goetzfried	help
11304ea1277dSJohannes Goetzfried	  The CAST6 encryption algorithm (synonymous with CAST-256) is
11314ea1277dSJohannes Goetzfried	  described in RFC2612.
11324ea1277dSJohannes Goetzfried
11334ea1277dSJohannes Goetzfried	  This module provides the Cast6 cipher algorithm that processes
11344ea1277dSJohannes Goetzfried	  eight blocks parallel using the AVX instruction set.
11354ea1277dSJohannes Goetzfried
1136584fffc8SSebastian Siewiorconfig CRYPTO_DES
1137584fffc8SSebastian Siewior	tristate "DES and Triple DES EDE cipher algorithms"
1138584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1139584fffc8SSebastian Siewior	help
1140584fffc8SSebastian Siewior	  DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3).
1141584fffc8SSebastian Siewior
1142c5aac2dfSDavid S. Millerconfig CRYPTO_DES_SPARC64
1143c5aac2dfSDavid S. Miller	tristate "DES and Triple DES EDE cipher algorithms (SPARC64)"
114497da37b3SDave Jones	depends on SPARC64
1145c5aac2dfSDavid S. Miller	select CRYPTO_ALGAPI
1146c5aac2dfSDavid S. Miller	select CRYPTO_DES
1147c5aac2dfSDavid S. Miller	help
1148c5aac2dfSDavid S. Miller	  DES cipher algorithm (FIPS 46-2), and Triple DES EDE (FIPS 46-3),
1149c5aac2dfSDavid S. Miller	  optimized using SPARC64 crypto opcodes.
1150c5aac2dfSDavid S. Miller
11516574e6c6SJussi Kivilinnaconfig CRYPTO_DES3_EDE_X86_64
11526574e6c6SJussi Kivilinna	tristate "Triple DES EDE cipher algorithm (x86-64)"
11536574e6c6SJussi Kivilinna	depends on X86 && 64BIT
11546574e6c6SJussi Kivilinna	select CRYPTO_ALGAPI
11556574e6c6SJussi Kivilinna	select CRYPTO_DES
11566574e6c6SJussi Kivilinna	help
11576574e6c6SJussi Kivilinna	  Triple DES EDE (FIPS 46-3) algorithm.
11586574e6c6SJussi Kivilinna
11596574e6c6SJussi Kivilinna	  This module provides implementation of the Triple DES EDE cipher
11606574e6c6SJussi Kivilinna	  algorithm that is optimized for x86-64 processors. Two versions of
11616574e6c6SJussi Kivilinna	  algorithm are provided; regular processing one input block and
11626574e6c6SJussi Kivilinna	  one that processes three blocks parallel.
11636574e6c6SJussi Kivilinna
1164584fffc8SSebastian Siewiorconfig CRYPTO_FCRYPT
1165584fffc8SSebastian Siewior	tristate "FCrypt cipher algorithm"
1166584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1167584fffc8SSebastian Siewior	select CRYPTO_BLKCIPHER
1168584fffc8SSebastian Siewior	help
1169584fffc8SSebastian Siewior	  FCrypt algorithm used by RxRPC.
1170584fffc8SSebastian Siewior
1171584fffc8SSebastian Siewiorconfig CRYPTO_KHAZAD
1172584fffc8SSebastian Siewior	tristate "Khazad cipher algorithm"
1173584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1174584fffc8SSebastian Siewior	help
1175584fffc8SSebastian Siewior	  Khazad cipher algorithm.
1176584fffc8SSebastian Siewior
1177584fffc8SSebastian Siewior	  Khazad was a finalist in the initial NESSIE competition.  It is
1178584fffc8SSebastian Siewior	  an algorithm optimized for 64-bit processors with good performance
1179584fffc8SSebastian Siewior	  on 32-bit processors.  Khazad uses an 128 bit key size.
1180584fffc8SSebastian Siewior
1181584fffc8SSebastian Siewior	  See also:
11826d8de74cSJustin P. Mattock	  <http://www.larc.usp.br/~pbarreto/KhazadPage.html>
1183e2ee95b8SHye-Shik Chang
11842407d608STan Swee Hengconfig CRYPTO_SALSA20
11853b4afaf2SKees Cook	tristate "Salsa20 stream cipher algorithm"
11862407d608STan Swee Heng	select CRYPTO_BLKCIPHER
11872407d608STan Swee Heng	help
11882407d608STan Swee Heng	  Salsa20 stream cipher algorithm.
11892407d608STan Swee Heng
11902407d608STan Swee Heng	  Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT
11912407d608STan Swee Heng	  Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/>
11922407d608STan Swee Heng
11932407d608STan Swee Heng	  The Salsa20 stream cipher algorithm is designed by Daniel J.
11942407d608STan Swee Heng	  Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html>
11951da177e4SLinus Torvalds
1196974e4b75STan Swee Hengconfig CRYPTO_SALSA20_586
11973b4afaf2SKees Cook	tristate "Salsa20 stream cipher algorithm (i586)"
1198974e4b75STan Swee Heng	depends on (X86 || UML_X86) && !64BIT
1199974e4b75STan Swee Heng	select CRYPTO_BLKCIPHER
1200974e4b75STan Swee Heng	help
1201974e4b75STan Swee Heng	  Salsa20 stream cipher algorithm.
1202974e4b75STan Swee Heng
1203974e4b75STan Swee Heng	  Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT
1204974e4b75STan Swee Heng	  Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/>
1205974e4b75STan Swee Heng
1206974e4b75STan Swee Heng	  The Salsa20 stream cipher algorithm is designed by Daniel J.
1207974e4b75STan Swee Heng	  Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html>
1208974e4b75STan Swee Heng
12099a7dafbbSTan Swee Hengconfig CRYPTO_SALSA20_X86_64
12103b4afaf2SKees Cook	tristate "Salsa20 stream cipher algorithm (x86_64)"
12119a7dafbbSTan Swee Heng	depends on (X86 || UML_X86) && 64BIT
12129a7dafbbSTan Swee Heng	select CRYPTO_BLKCIPHER
12139a7dafbbSTan Swee Heng	help
12149a7dafbbSTan Swee Heng	  Salsa20 stream cipher algorithm.
12159a7dafbbSTan Swee Heng
12169a7dafbbSTan Swee Heng	  Salsa20 is a stream cipher submitted to eSTREAM, the ECRYPT
12179a7dafbbSTan Swee Heng	  Stream Cipher Project. See <http://www.ecrypt.eu.org/stream/>
12189a7dafbbSTan Swee Heng
12199a7dafbbSTan Swee Heng	  The Salsa20 stream cipher algorithm is designed by Daniel J.
12209a7dafbbSTan Swee Heng	  Bernstein <djb@cr.yp.to>. See <http://cr.yp.to/snuffle.html>
12219a7dafbbSTan Swee Heng
1222c08d0e64SMartin Williconfig CRYPTO_CHACHA20
1223c08d0e64SMartin Willi	tristate "ChaCha20 cipher algorithm"
1224c08d0e64SMartin Willi	select CRYPTO_BLKCIPHER
1225c08d0e64SMartin Willi	help
1226c08d0e64SMartin Willi	  ChaCha20 cipher algorithm, RFC7539.
1227c08d0e64SMartin Willi
1228c08d0e64SMartin Willi	  ChaCha20 is a 256-bit high-speed stream cipher designed by Daniel J.
1229c08d0e64SMartin Willi	  Bernstein and further specified in RFC7539 for use in IETF protocols.
1230c08d0e64SMartin Willi	  This is the portable C implementation of ChaCha20.
1231c08d0e64SMartin Willi
1232c08d0e64SMartin Willi	  See also:
1233c08d0e64SMartin Willi	  <http://cr.yp.to/chacha/chacha-20080128.pdf>
1234c08d0e64SMartin Willi
1235c9320b6dSMartin Williconfig CRYPTO_CHACHA20_X86_64
12363d1e93cdSMartin Willi	tristate "ChaCha20 cipher algorithm (x86_64/SSSE3/AVX2)"
1237c9320b6dSMartin Willi	depends on X86 && 64BIT
1238c9320b6dSMartin Willi	select CRYPTO_BLKCIPHER
1239c9320b6dSMartin Willi	select CRYPTO_CHACHA20
1240c9320b6dSMartin Willi	help
1241c9320b6dSMartin Willi	  ChaCha20 cipher algorithm, RFC7539.
1242c9320b6dSMartin Willi
1243c9320b6dSMartin Willi	  ChaCha20 is a 256-bit high-speed stream cipher designed by Daniel J.
1244c9320b6dSMartin Willi	  Bernstein and further specified in RFC7539 for use in IETF protocols.
1245c9320b6dSMartin Willi	  This is the x86_64 assembler implementation using SIMD instructions.
1246c9320b6dSMartin Willi
1247c9320b6dSMartin Willi	  See also:
1248c9320b6dSMartin Willi	  <http://cr.yp.to/chacha/chacha-20080128.pdf>
1249c9320b6dSMartin Willi
1250584fffc8SSebastian Siewiorconfig CRYPTO_SEED
1251584fffc8SSebastian Siewior	tristate "SEED cipher algorithm"
1252584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1253584fffc8SSebastian Siewior	help
1254584fffc8SSebastian Siewior	  SEED cipher algorithm (RFC4269).
1255584fffc8SSebastian Siewior
1256584fffc8SSebastian Siewior	  SEED is a 128-bit symmetric key block cipher that has been
1257584fffc8SSebastian Siewior	  developed by KISA (Korea Information Security Agency) as a
1258584fffc8SSebastian Siewior	  national standard encryption algorithm of the Republic of Korea.
1259584fffc8SSebastian Siewior	  It is a 16 round block cipher with the key size of 128 bit.
1260584fffc8SSebastian Siewior
1261584fffc8SSebastian Siewior	  See also:
1262584fffc8SSebastian Siewior	  <http://www.kisa.or.kr/kisa/seed/jsp/seed_eng.jsp>
1263584fffc8SSebastian Siewior
1264584fffc8SSebastian Siewiorconfig CRYPTO_SERPENT
1265584fffc8SSebastian Siewior	tristate "Serpent cipher algorithm"
1266584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1267584fffc8SSebastian Siewior	help
1268584fffc8SSebastian Siewior	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1269584fffc8SSebastian Siewior
1270584fffc8SSebastian Siewior	  Keys are allowed to be from 0 to 256 bits in length, in steps
1271584fffc8SSebastian Siewior	  of 8 bits.  Also includes the 'Tnepres' algorithm, a reversed
1272584fffc8SSebastian Siewior	  variant of Serpent for compatibility with old kerneli.org code.
1273584fffc8SSebastian Siewior
1274584fffc8SSebastian Siewior	  See also:
1275584fffc8SSebastian Siewior	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1276584fffc8SSebastian Siewior
1277937c30d7SJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_X86_64
1278937c30d7SJussi Kivilinna	tristate "Serpent cipher algorithm (x86_64/SSE2)"
1279937c30d7SJussi Kivilinna	depends on X86 && 64BIT
1280937c30d7SJussi Kivilinna	select CRYPTO_ALGAPI
1281341975bfSJussi Kivilinna	select CRYPTO_CRYPTD
1282801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
1283596d8750SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1284937c30d7SJussi Kivilinna	select CRYPTO_SERPENT
1285feaf0cfcSJussi Kivilinna	select CRYPTO_LRW
1286feaf0cfcSJussi Kivilinna	select CRYPTO_XTS
1287937c30d7SJussi Kivilinna	help
1288937c30d7SJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1289937c30d7SJussi Kivilinna
1290937c30d7SJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
1291937c30d7SJussi Kivilinna	  of 8 bits.
1292937c30d7SJussi Kivilinna
12931e6232f8SMasanari Iida	  This module provides Serpent cipher algorithm that processes eight
1294937c30d7SJussi Kivilinna	  blocks parallel using SSE2 instruction set.
1295937c30d7SJussi Kivilinna
1296937c30d7SJussi Kivilinna	  See also:
1297937c30d7SJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1298937c30d7SJussi Kivilinna
1299251496dbSJussi Kivilinnaconfig CRYPTO_SERPENT_SSE2_586
1300251496dbSJussi Kivilinna	tristate "Serpent cipher algorithm (i586/SSE2)"
1301251496dbSJussi Kivilinna	depends on X86 && !64BIT
1302251496dbSJussi Kivilinna	select CRYPTO_ALGAPI
1303341975bfSJussi Kivilinna	select CRYPTO_CRYPTD
1304801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
1305596d8750SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1306251496dbSJussi Kivilinna	select CRYPTO_SERPENT
1307feaf0cfcSJussi Kivilinna	select CRYPTO_LRW
1308feaf0cfcSJussi Kivilinna	select CRYPTO_XTS
1309251496dbSJussi Kivilinna	help
1310251496dbSJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
1311251496dbSJussi Kivilinna
1312251496dbSJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
1313251496dbSJussi Kivilinna	  of 8 bits.
1314251496dbSJussi Kivilinna
1315251496dbSJussi Kivilinna	  This module provides Serpent cipher algorithm that processes four
1316251496dbSJussi Kivilinna	  blocks parallel using SSE2 instruction set.
1317251496dbSJussi Kivilinna
1318251496dbSJussi Kivilinna	  See also:
1319251496dbSJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
1320251496dbSJussi Kivilinna
13217efe4076SJohannes Goetzfriedconfig CRYPTO_SERPENT_AVX_X86_64
13227efe4076SJohannes Goetzfried	tristate "Serpent cipher algorithm (x86_64/AVX)"
13237efe4076SJohannes Goetzfried	depends on X86 && 64BIT
13247efe4076SJohannes Goetzfried	select CRYPTO_ALGAPI
13257efe4076SJohannes Goetzfried	select CRYPTO_CRYPTD
1326801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
13271d0debbdSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
13287efe4076SJohannes Goetzfried	select CRYPTO_SERPENT
13297efe4076SJohannes Goetzfried	select CRYPTO_LRW
13307efe4076SJohannes Goetzfried	select CRYPTO_XTS
13317efe4076SJohannes Goetzfried	help
13327efe4076SJohannes Goetzfried	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
13337efe4076SJohannes Goetzfried
13347efe4076SJohannes Goetzfried	  Keys are allowed to be from 0 to 256 bits in length, in steps
13357efe4076SJohannes Goetzfried	  of 8 bits.
13367efe4076SJohannes Goetzfried
13377efe4076SJohannes Goetzfried	  This module provides the Serpent cipher algorithm that processes
13387efe4076SJohannes Goetzfried	  eight blocks parallel using the AVX instruction set.
13397efe4076SJohannes Goetzfried
13407efe4076SJohannes Goetzfried	  See also:
13417efe4076SJohannes Goetzfried	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
13427efe4076SJohannes Goetzfried
134356d76c96SJussi Kivilinnaconfig CRYPTO_SERPENT_AVX2_X86_64
134456d76c96SJussi Kivilinna	tristate "Serpent cipher algorithm (x86_64/AVX2)"
134556d76c96SJussi Kivilinna	depends on X86 && 64BIT
134656d76c96SJussi Kivilinna	select CRYPTO_ALGAPI
134756d76c96SJussi Kivilinna	select CRYPTO_CRYPTD
1348801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
134956d76c96SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
135056d76c96SJussi Kivilinna	select CRYPTO_SERPENT
135156d76c96SJussi Kivilinna	select CRYPTO_SERPENT_AVX_X86_64
135256d76c96SJussi Kivilinna	select CRYPTO_LRW
135356d76c96SJussi Kivilinna	select CRYPTO_XTS
135456d76c96SJussi Kivilinna	help
135556d76c96SJussi Kivilinna	  Serpent cipher algorithm, by Anderson, Biham & Knudsen.
135656d76c96SJussi Kivilinna
135756d76c96SJussi Kivilinna	  Keys are allowed to be from 0 to 256 bits in length, in steps
135856d76c96SJussi Kivilinna	  of 8 bits.
135956d76c96SJussi Kivilinna
136056d76c96SJussi Kivilinna	  This module provides Serpent cipher algorithm that processes 16
136156d76c96SJussi Kivilinna	  blocks parallel using AVX2 instruction set.
136256d76c96SJussi Kivilinna
136356d76c96SJussi Kivilinna	  See also:
136456d76c96SJussi Kivilinna	  <http://www.cl.cam.ac.uk/~rja14/serpent.html>
136556d76c96SJussi Kivilinna
1366584fffc8SSebastian Siewiorconfig CRYPTO_TEA
1367584fffc8SSebastian Siewior	tristate "TEA, XTEA and XETA cipher algorithms"
1368584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1369584fffc8SSebastian Siewior	help
1370584fffc8SSebastian Siewior	  TEA cipher algorithm.
1371584fffc8SSebastian Siewior
1372584fffc8SSebastian Siewior	  Tiny Encryption Algorithm is a simple cipher that uses
1373584fffc8SSebastian Siewior	  many rounds for security.  It is very fast and uses
1374584fffc8SSebastian Siewior	  little memory.
1375584fffc8SSebastian Siewior
1376584fffc8SSebastian Siewior	  Xtendend Tiny Encryption Algorithm is a modification to
1377584fffc8SSebastian Siewior	  the TEA algorithm to address a potential key weakness
1378584fffc8SSebastian Siewior	  in the TEA algorithm.
1379584fffc8SSebastian Siewior
1380584fffc8SSebastian Siewior	  Xtendend Encryption Tiny Algorithm is a mis-implementation
1381584fffc8SSebastian Siewior	  of the XTEA algorithm for compatibility purposes.
1382584fffc8SSebastian Siewior
1383584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH
1384584fffc8SSebastian Siewior	tristate "Twofish cipher algorithm"
1385584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1386584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1387584fffc8SSebastian Siewior	help
1388584fffc8SSebastian Siewior	  Twofish cipher algorithm.
1389584fffc8SSebastian Siewior
1390584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1391584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1392584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1393584fffc8SSebastian Siewior	  bits.
1394584fffc8SSebastian Siewior
1395584fffc8SSebastian Siewior	  See also:
1396584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1397584fffc8SSebastian Siewior
1398584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_COMMON
1399584fffc8SSebastian Siewior	tristate
1400584fffc8SSebastian Siewior	help
1401584fffc8SSebastian Siewior	  Common parts of the Twofish cipher algorithm shared by the
1402584fffc8SSebastian Siewior	  generic c and the assembler implementations.
1403584fffc8SSebastian Siewior
1404584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_586
1405584fffc8SSebastian Siewior	tristate "Twofish cipher algorithms (i586)"
1406584fffc8SSebastian Siewior	depends on (X86 || UML_X86) && !64BIT
1407584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1408584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1409584fffc8SSebastian Siewior	help
1410584fffc8SSebastian Siewior	  Twofish cipher algorithm.
1411584fffc8SSebastian Siewior
1412584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1413584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1414584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1415584fffc8SSebastian Siewior	  bits.
1416584fffc8SSebastian Siewior
1417584fffc8SSebastian Siewior	  See also:
1418584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1419584fffc8SSebastian Siewior
1420584fffc8SSebastian Siewiorconfig CRYPTO_TWOFISH_X86_64
1421584fffc8SSebastian Siewior	tristate "Twofish cipher algorithm (x86_64)"
1422584fffc8SSebastian Siewior	depends on (X86 || UML_X86) && 64BIT
1423584fffc8SSebastian Siewior	select CRYPTO_ALGAPI
1424584fffc8SSebastian Siewior	select CRYPTO_TWOFISH_COMMON
1425584fffc8SSebastian Siewior	help
1426584fffc8SSebastian Siewior	  Twofish cipher algorithm (x86_64).
1427584fffc8SSebastian Siewior
1428584fffc8SSebastian Siewior	  Twofish was submitted as an AES (Advanced Encryption Standard)
1429584fffc8SSebastian Siewior	  candidate cipher by researchers at CounterPane Systems.  It is a
1430584fffc8SSebastian Siewior	  16 round block cipher supporting key sizes of 128, 192, and 256
1431584fffc8SSebastian Siewior	  bits.
1432584fffc8SSebastian Siewior
1433584fffc8SSebastian Siewior	  See also:
1434584fffc8SSebastian Siewior	  <http://www.schneier.com/twofish.html>
1435584fffc8SSebastian Siewior
14368280daadSJussi Kivilinnaconfig CRYPTO_TWOFISH_X86_64_3WAY
14378280daadSJussi Kivilinna	tristate "Twofish cipher algorithm (x86_64, 3-way parallel)"
1438f21a7c19SAl Viro	depends on X86 && 64BIT
14398280daadSJussi Kivilinna	select CRYPTO_ALGAPI
14408280daadSJussi Kivilinna	select CRYPTO_TWOFISH_COMMON
14418280daadSJussi Kivilinna	select CRYPTO_TWOFISH_X86_64
1442414cb5e7SJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1443e7cda5d2SJussi Kivilinna	select CRYPTO_LRW
1444e7cda5d2SJussi Kivilinna	select CRYPTO_XTS
14458280daadSJussi Kivilinna	help
14468280daadSJussi Kivilinna	  Twofish cipher algorithm (x86_64, 3-way parallel).
14478280daadSJussi Kivilinna
14488280daadSJussi Kivilinna	  Twofish was submitted as an AES (Advanced Encryption Standard)
14498280daadSJussi Kivilinna	  candidate cipher by researchers at CounterPane Systems.  It is a
14508280daadSJussi Kivilinna	  16 round block cipher supporting key sizes of 128, 192, and 256
14518280daadSJussi Kivilinna	  bits.
14528280daadSJussi Kivilinna
14538280daadSJussi Kivilinna	  This module provides Twofish cipher algorithm that processes three
14548280daadSJussi Kivilinna	  blocks parallel, utilizing resources of out-of-order CPUs better.
14558280daadSJussi Kivilinna
14568280daadSJussi Kivilinna	  See also:
14578280daadSJussi Kivilinna	  <http://www.schneier.com/twofish.html>
14588280daadSJussi Kivilinna
1459107778b5SJohannes Goetzfriedconfig CRYPTO_TWOFISH_AVX_X86_64
1460107778b5SJohannes Goetzfried	tristate "Twofish cipher algorithm (x86_64/AVX)"
1461107778b5SJohannes Goetzfried	depends on X86 && 64BIT
1462107778b5SJohannes Goetzfried	select CRYPTO_ALGAPI
1463107778b5SJohannes Goetzfried	select CRYPTO_CRYPTD
1464801201aaSArd Biesheuvel	select CRYPTO_ABLK_HELPER
1465a7378d4eSJussi Kivilinna	select CRYPTO_GLUE_HELPER_X86
1466107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_COMMON
1467107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_X86_64
1468107778b5SJohannes Goetzfried	select CRYPTO_TWOFISH_X86_64_3WAY
1469107778b5SJohannes Goetzfried	select CRYPTO_LRW
1470107778b5SJohannes Goetzfried	select CRYPTO_XTS
1471107778b5SJohannes Goetzfried	help
1472107778b5SJohannes Goetzfried	  Twofish cipher algorithm (x86_64/AVX).
1473107778b5SJohannes Goetzfried
1474107778b5SJohannes Goetzfried	  Twofish was submitted as an AES (Advanced Encryption Standard)
1475107778b5SJohannes Goetzfried	  candidate cipher by researchers at CounterPane Systems.  It is a
1476107778b5SJohannes Goetzfried	  16 round block cipher supporting key sizes of 128, 192, and 256
1477107778b5SJohannes Goetzfried	  bits.
1478107778b5SJohannes Goetzfried
1479107778b5SJohannes Goetzfried	  This module provides the Twofish cipher algorithm that processes
1480107778b5SJohannes Goetzfried	  eight blocks parallel using the AVX Instruction Set.
1481107778b5SJohannes Goetzfried
1482107778b5SJohannes Goetzfried	  See also:
1483107778b5SJohannes Goetzfried	  <http://www.schneier.com/twofish.html>
1484107778b5SJohannes Goetzfried
1485584fffc8SSebastian Siewiorcomment "Compression"
1486584fffc8SSebastian Siewior
14871da177e4SLinus Torvaldsconfig CRYPTO_DEFLATE
14881da177e4SLinus Torvalds	tristate "Deflate compression algorithm"
1489cce9e06dSHerbert Xu	select CRYPTO_ALGAPI
14901da177e4SLinus Torvalds	select ZLIB_INFLATE
14911da177e4SLinus Torvalds	select ZLIB_DEFLATE
14921da177e4SLinus Torvalds	help
14931da177e4SLinus Torvalds	  This is the Deflate algorithm (RFC1951), specified for use in
14941da177e4SLinus Torvalds	  IPSec with the IPCOMP protocol (RFC3173, RFC2394).
14951da177e4SLinus Torvalds
14961da177e4SLinus Torvalds	  You will most probably want this if using IPSec.
14971da177e4SLinus Torvalds
1498bf68e65eSGeert Uytterhoevenconfig CRYPTO_ZLIB
1499bf68e65eSGeert Uytterhoeven	tristate "Zlib compression algorithm"
1500bf68e65eSGeert Uytterhoeven	select CRYPTO_PCOMP
1501bf68e65eSGeert Uytterhoeven	select ZLIB_INFLATE
1502bf68e65eSGeert Uytterhoeven	select ZLIB_DEFLATE
1503bf68e65eSGeert Uytterhoeven	select NLATTR
1504bf68e65eSGeert Uytterhoeven	help
1505bf68e65eSGeert Uytterhoeven	  This is the zlib algorithm.
1506bf68e65eSGeert Uytterhoeven
15070b77abb3SZoltan Sogorconfig CRYPTO_LZO
15080b77abb3SZoltan Sogor	tristate "LZO compression algorithm"
15090b77abb3SZoltan Sogor	select CRYPTO_ALGAPI
15100b77abb3SZoltan Sogor	select LZO_COMPRESS
15110b77abb3SZoltan Sogor	select LZO_DECOMPRESS
15120b77abb3SZoltan Sogor	help
15130b77abb3SZoltan Sogor	  This is the LZO algorithm.
15140b77abb3SZoltan Sogor
151535a1fc18SSeth Jenningsconfig CRYPTO_842
151635a1fc18SSeth Jennings	tristate "842 compression algorithm"
15172062c5b6SDan Streetman	select CRYPTO_ALGAPI
15182062c5b6SDan Streetman	select 842_COMPRESS
15192062c5b6SDan Streetman	select 842_DECOMPRESS
152035a1fc18SSeth Jennings	help
152135a1fc18SSeth Jennings	  This is the 842 algorithm.
152235a1fc18SSeth Jennings
15230ea8530dSChanho Minconfig CRYPTO_LZ4
15240ea8530dSChanho Min	tristate "LZ4 compression algorithm"
15250ea8530dSChanho Min	select CRYPTO_ALGAPI
15260ea8530dSChanho Min	select LZ4_COMPRESS
15270ea8530dSChanho Min	select LZ4_DECOMPRESS
15280ea8530dSChanho Min	help
15290ea8530dSChanho Min	  This is the LZ4 algorithm.
15300ea8530dSChanho Min
15310ea8530dSChanho Minconfig CRYPTO_LZ4HC
15320ea8530dSChanho Min	tristate "LZ4HC compression algorithm"
15330ea8530dSChanho Min	select CRYPTO_ALGAPI
15340ea8530dSChanho Min	select LZ4HC_COMPRESS
15350ea8530dSChanho Min	select LZ4_DECOMPRESS
15360ea8530dSChanho Min	help
15370ea8530dSChanho Min	  This is the LZ4 high compression mode algorithm.
15380ea8530dSChanho Min
153917f0f4a4SNeil Hormancomment "Random Number Generation"
154017f0f4a4SNeil Horman
154117f0f4a4SNeil Hormanconfig CRYPTO_ANSI_CPRNG
154217f0f4a4SNeil Horman	tristate "Pseudo Random Number Generation for Cryptographic modules"
154317f0f4a4SNeil Horman	select CRYPTO_AES
154417f0f4a4SNeil Horman	select CRYPTO_RNG
154517f0f4a4SNeil Horman	help
154617f0f4a4SNeil Horman	  This option enables the generic pseudo random number generator
154717f0f4a4SNeil Horman	  for cryptographic modules.  Uses the Algorithm specified in
15487dd607e8SJiri Kosina	  ANSI X9.31 A.2.4. Note that this option must be enabled if
15497dd607e8SJiri Kosina	  CRYPTO_FIPS is selected
155017f0f4a4SNeil Horman
1551f2c89a10SHerbert Xumenuconfig CRYPTO_DRBG_MENU
1552419090c6SStephan Mueller	tristate "NIST SP800-90A DRBG"
1553419090c6SStephan Mueller	help
1554419090c6SStephan Mueller	  NIST SP800-90A compliant DRBG. In the following submenu, one or
1555419090c6SStephan Mueller	  more of the DRBG types must be selected.
1556419090c6SStephan Mueller
1557f2c89a10SHerbert Xuif CRYPTO_DRBG_MENU
1558419090c6SStephan Mueller
1559419090c6SStephan Muellerconfig CRYPTO_DRBG_HMAC
1560401e4238SHerbert Xu	bool
1561419090c6SStephan Mueller	default y
1562419090c6SStephan Mueller	select CRYPTO_HMAC
1563826775bbSHerbert Xu	select CRYPTO_SHA256
1564419090c6SStephan Mueller
1565419090c6SStephan Muellerconfig CRYPTO_DRBG_HASH
1566419090c6SStephan Mueller	bool "Enable Hash DRBG"
1567826775bbSHerbert Xu	select CRYPTO_SHA256
1568419090c6SStephan Mueller	help
1569419090c6SStephan Mueller	  Enable the Hash DRBG variant as defined in NIST SP800-90A.
1570419090c6SStephan Mueller
1571419090c6SStephan Muellerconfig CRYPTO_DRBG_CTR
1572419090c6SStephan Mueller	bool "Enable CTR DRBG"
1573419090c6SStephan Mueller	select CRYPTO_AES
1574419090c6SStephan Mueller	help
1575419090c6SStephan Mueller	  Enable the CTR DRBG variant as defined in NIST SP800-90A.
1576419090c6SStephan Mueller
1577f2c89a10SHerbert Xuconfig CRYPTO_DRBG
1578f2c89a10SHerbert Xu	tristate
1579401e4238SHerbert Xu	default CRYPTO_DRBG_MENU
1580f2c89a10SHerbert Xu	select CRYPTO_RNG
1581bb5530e4SStephan Mueller	select CRYPTO_JITTERENTROPY
1582f2c89a10SHerbert Xu
1583f2c89a10SHerbert Xuendif	# if CRYPTO_DRBG_MENU
1584419090c6SStephan Mueller
1585bb5530e4SStephan Muellerconfig CRYPTO_JITTERENTROPY
1586bb5530e4SStephan Mueller	tristate "Jitterentropy Non-Deterministic Random Number Generator"
1587bb5530e4SStephan Mueller	help
1588bb5530e4SStephan Mueller	  The Jitterentropy RNG is a noise that is intended
1589bb5530e4SStephan Mueller	  to provide seed to another RNG. The RNG does not
1590bb5530e4SStephan Mueller	  perform any cryptographic whitening of the generated
1591bb5530e4SStephan Mueller	  random numbers. This Jitterentropy RNG registers with
1592bb5530e4SStephan Mueller	  the kernel crypto API and can be used by any caller.
1593bb5530e4SStephan Mueller
159403c8efc1SHerbert Xuconfig CRYPTO_USER_API
159503c8efc1SHerbert Xu	tristate
159603c8efc1SHerbert Xu
1597fe869cdbSHerbert Xuconfig CRYPTO_USER_API_HASH
1598fe869cdbSHerbert Xu	tristate "User-space interface for hash algorithms"
15997451708fSHerbert Xu	depends on NET
1600fe869cdbSHerbert Xu	select CRYPTO_HASH
1601fe869cdbSHerbert Xu	select CRYPTO_USER_API
1602fe869cdbSHerbert Xu	help
1603fe869cdbSHerbert Xu	  This option enables the user-spaces interface for hash
1604fe869cdbSHerbert Xu	  algorithms.
1605fe869cdbSHerbert Xu
16068ff59090SHerbert Xuconfig CRYPTO_USER_API_SKCIPHER
16078ff59090SHerbert Xu	tristate "User-space interface for symmetric key cipher algorithms"
16087451708fSHerbert Xu	depends on NET
16098ff59090SHerbert Xu	select CRYPTO_BLKCIPHER
16108ff59090SHerbert Xu	select CRYPTO_USER_API
16118ff59090SHerbert Xu	help
16128ff59090SHerbert Xu	  This option enables the user-spaces interface for symmetric
16138ff59090SHerbert Xu	  key cipher algorithms.
16148ff59090SHerbert Xu
16152f375538SStephan Muellerconfig CRYPTO_USER_API_RNG
16162f375538SStephan Mueller	tristate "User-space interface for random number generator algorithms"
16172f375538SStephan Mueller	depends on NET
16182f375538SStephan Mueller	select CRYPTO_RNG
16192f375538SStephan Mueller	select CRYPTO_USER_API
16202f375538SStephan Mueller	help
16212f375538SStephan Mueller	  This option enables the user-spaces interface for random
16222f375538SStephan Mueller	  number generator algorithms.
16232f375538SStephan Mueller
1624b64a2d95SHerbert Xuconfig CRYPTO_USER_API_AEAD
1625b64a2d95SHerbert Xu	tristate "User-space interface for AEAD cipher algorithms"
1626b64a2d95SHerbert Xu	depends on NET
1627b64a2d95SHerbert Xu	select CRYPTO_AEAD
1628b64a2d95SHerbert Xu	select CRYPTO_USER_API
1629b64a2d95SHerbert Xu	help
1630b64a2d95SHerbert Xu	  This option enables the user-spaces interface for AEAD
1631b64a2d95SHerbert Xu	  cipher algorithms.
1632b64a2d95SHerbert Xu
1633ee08997fSDmitry Kasatkinconfig CRYPTO_HASH_INFO
1634ee08997fSDmitry Kasatkin	bool
1635ee08997fSDmitry Kasatkin
16361da177e4SLinus Torvaldssource "drivers/crypto/Kconfig"
1637964f3b3bSDavid Howellssource crypto/asymmetric_keys/Kconfig
16381da177e4SLinus Torvalds
1639cce9e06dSHerbert Xuendif	# if CRYPTO
1640