]> git.ipfire.org Git - thirdparty/openssl.git/blob - doc/man7/migration_guide.pod
Update the EVP_PKEY_get_id documentation
[thirdparty/openssl.git] / doc / man7 / migration_guide.pod
1 =pod
2
3 =head1 NAME
4
5 migration_guide - OpenSSL migration guide
6
7 =head1 SYNOPSIS
8
9 See the individual manual pages for details.
10
11 =head1 DESCRIPTION
12
13 This guide details the changes required to migrate to new versions of OpenSSL.
14 Currently this covers OpenSSL 3.0 & 3.1. For earlier versions refer to
15 L<https://github.com/openssl/openssl/blob/master/CHANGES.md>.
16 For an overview of some of the key concepts introduced in OpenSSL 3.0 see
17 L<crypto(7)>.
18
19 =head1 OPENSSL 3.1
20
21 =head2 Main Changes from OpenSSL 3.0
22
23 The FIPS provider in OpenSSL 3.1 includes some non-FIPS validated algorithms,
24 consequently the property query C<fips=yes> is mandatory for applications that
25 want to operate in a FIPS approved manner. The algorithms are:
26
27 =over 4
28
29 =item Triple DES ECB
30
31 =item Triple DES CBC
32
33 =item EdDSA
34
35 =back
36
37 There are no other changes requiring additional migration measures since OpenSSL 3.0.
38
39 =head1 OPENSSL 3.0
40
41 =head2 Main Changes from OpenSSL 1.1.1
42
43 =head3 Major Release
44
45 OpenSSL 3.0 is a major release and consequently any application that currently
46 uses an older version of OpenSSL will at the very least need to be recompiled in
47 order to work with the new version. It is the intention that the large majority
48 of applications will work unchanged with OpenSSL 3.0 if those applications
49 previously worked with OpenSSL 1.1.1. However this is not guaranteed and some
50 changes may be required in some cases. Changes may also be required if
51 applications need to take advantage of some of the new features available in
52 OpenSSL 3.0 such as the availability of the FIPS module.
53
54 =head3 License Change
55
56 In previous versions, OpenSSL was licensed under the L<dual OpenSSL and SSLeay
57 licenses|https://www.openssl.org/source/license-openssl-ssleay.txt>
58 (both licenses apply). From OpenSSL 3.0 this is replaced by the
59 L<Apache License v2|https://www.openssl.org/source/apache-license-2.0.txt>.
60
61 =head3 Providers and FIPS support
62
63 One of the key changes from OpenSSL 1.1.1 is the introduction of the Provider
64 concept. Providers collect together and make available algorithm implementations.
65 With OpenSSL 3.0 it is possible to specify, either programmatically or via a
66 config file, which providers you want to use for any given application.
67 OpenSSL 3.0 comes with 5 different providers as standard. Over time third
68 parties may distribute additional providers that can be plugged into OpenSSL.
69 All algorithm implementations available via providers are accessed through the
70 "high level" APIs (for example those functions prefixed with C<EVP>). They cannot
71 be accessed using the L</Low Level APIs>.
72
73 One of the standard providers available is the FIPS provider. This makes
74 available FIPS validated cryptographic algorithms.
75 The FIPS provider is disabled by default and needs to be enabled explicitly
76 at configuration time using the C<enable-fips> option. If it is enabled,
77 the FIPS provider gets built and installed in addition to the other standard
78 providers. No separate installation procedure is necessary.
79 There is however a dedicated C<install_fips> make target, which serves the
80 special purpose of installing only the FIPS provider into an existing
81 OpenSSL installation.
82
83 Not all algorithms may be available for the application at a particular moment.
84 If the application code uses any digest or cipher algorithm via the EVP interface,
85 the application should verify the result of the L<EVP_EncryptInit(3)>,
86 L<EVP_EncryptInit_ex(3)>, and L<EVP_DigestInit(3)> functions. In case when
87 the requested algorithm is not available, these functions will fail.
88
89 See also L</Legacy Algorithms> for information on the legacy provider.
90
91 See also L</Completing the installation of the FIPS Module> and
92 L</Using the FIPS Module in applications>.
93
94 =head3 Low Level APIs
95
96 OpenSSL has historically provided two sets of APIs for invoking cryptographic
97 algorithms: the "high level" APIs (such as the C<EVP> APIs) and the "low level"
98 APIs. The high level APIs are typically designed to work across all algorithm
99 types. The "low level" APIs are targeted at a specific algorithm implementation.
100 For example, the EVP APIs provide the functions L<EVP_EncryptInit_ex(3)>,
101 L<EVP_EncryptUpdate(3)> and L<EVP_EncryptFinal(3)> to perform symmetric
102 encryption. Those functions can be used with the algorithms AES, CHACHA, 3DES etc.
103 On the other hand, to do AES encryption using the low level APIs you would have
104 to call AES specific functions such as L<AES_set_encrypt_key(3)>,
105 L<AES_encrypt(3)>, and so on. The functions for 3DES are different.
106 Use of the low level APIs has been informally discouraged by the OpenSSL
107 development team for a long time. However in OpenSSL 3.0 this is made more
108 formal. All such low level APIs have been deprecated. You may still use them in
109 your applications, but you may start to see deprecation warnings during
110 compilation (dependent on compiler support for this). Deprecated APIs may be
111 removed from future versions of OpenSSL so you are strongly encouraged to update
112 your code to use the high level APIs instead.
113
114 This is described in more detail in L</Deprecation of Low Level Functions>
115
116 =head3 Legacy Algorithms
117
118 Some cryptographic algorithms such as B<MD2> and B<DES> that were available via
119 the EVP APIs are now considered legacy and their use is strongly discouraged.
120 These legacy EVP algorithms are still available in OpenSSL 3.0 but not by
121 default. If you want to use them then you must load the legacy provider.
122 This can be as simple as a config file change, or can be done programmatically.
123 See L<OSSL_PROVIDER-legacy(7)> for a complete list of algorithms.
124 Applications using the EVP APIs to access these algorithms should instead use
125 more modern algorithms. If that is not possible then these applications
126 should ensure that the legacy provider has been loaded. This can be achieved
127 either programmatically or via configuration. See L<crypto(7)> man page for
128 more information about providers.
129
130 =head3 Engines and "METHOD" APIs
131
132 The refactoring to support Providers conflicts internally with the APIs used to
133 support engines, including the ENGINE API and any function that creates or
134 modifies custom "METHODS" (for example L<EVP_MD_meth_new(3)>,
135 L<EVP_CIPHER_meth_new(3)>, L<EVP_PKEY_meth_new(3)>, L<RSA_meth_new(3)>,
136 L<EC_KEY_METHOD_new(3)>, etc.). These functions are being deprecated in
137 OpenSSL 3.0, and users of these APIs should know that their use can likely
138 bypass provider selection and configuration, with unintended consequences.
139 This is particularly relevant for applications written to use the OpenSSL 3.0
140 FIPS module, as detailed below. Authors and maintainers of external engines are
141 strongly encouraged to refactor their code transforming engines into providers
142 using the new Provider API and avoiding deprecated methods.
143
144 =head3 Support of legacy engines
145
146 If openssl is not built without engine support or deprecated API support, engines
147 will still work. However, their applicability will be limited.
148
149 New algorithms provided via engines will still work.
150
151 Engine-backed keys can be loaded via custom B<OSSL_STORE> implementation.
152 In this case the B<EVP_PKEY> objects created via L<ENGINE_load_private_key(3)>
153 will be considered legacy and will continue to work.
154
155 To ensure the future compatibility, the engines should be turned to providers.
156 To prefer the provider-based hardware offload, you can specify the default
157 properties to prefer your provider.
158
159 =head3 Versioning Scheme
160
161 The OpenSSL versioning scheme has changed with the OpenSSL 3.0 release. The new
162 versioning scheme has this format:
163
164 MAJOR.MINOR.PATCH
165
166 For OpenSSL 1.1.1 and below, different patch levels were indicated by a letter
167 at the end of the release version number. This will no longer be used and
168 instead the patch level is indicated by the final number in the version. A
169 change in the second (MINOR) number indicates that new features may have been
170 added. OpenSSL versions with the same major number are API and ABI compatible.
171 If the major number changes then API and ABI compatibility is not guaranteed.
172
173 For more information, see L<OpenSSL_version(3)>.
174
175 =head3 Other major new features
176
177 =head4 Certificate Management Protocol (CMP, RFC 4210)
178
179 This also covers CRMF (RFC 4211) and HTTP transfer (RFC 6712)
180 See L<openssl-cmp(1)> and L<OSSL_CMP_exec_certreq(3)> as starting points.
181
182 =head4 HTTP(S) client
183
184 A proper HTTP(S) client that supports GET and POST, redirection, plain and
185 ASN.1-encoded contents, proxies, and timeouts.
186
187 =head4 Key Derivation Function API (EVP_KDF)
188
189 This simplifies the process of adding new KDF and PRF implementations.
190
191 Previously KDF algorithms had been shoe-horned into using the EVP_PKEY object
192 which was not a logical mapping.
193 Existing applications that use KDF algorithms using EVP_PKEY
194 (scrypt, TLS1 PRF and HKDF) may be slower as they use an EVP_KDF bridge
195 internally.
196 All new applications should use the new L<EVP_KDF(3)> interface.
197 See also L<OSSL_PROVIDER-default(7)/Key Derivation Function (KDF)> and
198 L<OSSL_PROVIDER-FIPS(7)/Key Derivation Function (KDF)>.
199
200 =head4 Message Authentication Code API (EVP_MAC)
201
202 This simplifies the process of adding MAC implementations.
203
204 This includes a generic EVP_PKEY to EVP_MAC bridge, to facilitate the continued
205 use of MACs through raw private keys in functionality such as
206 L<EVP_DigestSign(3)> and L<EVP_DigestVerify(3)>.
207
208 All new applications should use the new L<EVP_MAC(3)> interface.
209 See also L<OSSL_PROVIDER-default(7)/Message Authentication Code (MAC)>
210 and L<OSSL_PROVIDER-FIPS(7)/Message Authentication Code (MAC)>.
211
212 =head4 Algorithm Fetching
213
214 Using calls to convenience functions such as EVP_sha256() and EVP_aes_256_gcm() may
215 incur a performance penalty when using providers.
216 Retrieving algorithms from providers involves searching for an algorithm by name.
217 This is much slower than directly accessing a method table.
218 It is recommended to prefetch algorithms if an algorithm is used many times.
219 See L<crypto(7)/Performance>, L<crypto(7)/Explicit fetching> and L<crypto(7)/Implicit fetching>.
220
221 =head4 Support for Linux Kernel TLS
222
223 In order to use KTLS, support for it must be compiled in using the
224 C<enable-ktls> configuration option. It must also be enabled at run time using
225 the B<SSL_OP_ENABLE_KTLS> option.
226
227 =head4 New Algorithms
228
229 =over 4
230
231 =item *
232
233 KDF algorithms "SINGLE STEP" and "SSH"
234
235 See L<EVP_KDF-SS(7)> and L<EVP_KDF-SSHKDF(7)>
236
237 =item *
238
239 MAC Algorithms "GMAC" and "KMAC"
240
241 See L<EVP_MAC-GMAC(7)> and L<EVP_MAC-KMAC(7)>.
242
243 =item *
244
245 KEM Algorithm "RSASVE"
246
247 See L<EVP_KEM-RSA(7)>.
248
249 =item *
250
251 Cipher Algorithm "AES-SIV"
252
253 See L<EVP_EncryptInit(3)/SIV Mode>.
254
255 =item *
256
257 AES Key Wrap inverse ciphers supported by EVP layer.
258
259 The inverse ciphers use AES decryption for wrapping, and AES encryption for
260 unwrapping. The algorithms are: "AES-128-WRAP-INV", "AES-192-WRAP-INV",
261 "AES-256-WRAP-INV", "AES-128-WRAP-PAD-INV", "AES-192-WRAP-PAD-INV" and
262 "AES-256-WRAP-PAD-INV".
263
264 =item *
265
266 CTS ciphers added to EVP layer.
267
268 The algorithms are "AES-128-CBC-CTS", "AES-192-CBC-CTS", "AES-256-CBC-CTS",
269 "CAMELLIA-128-CBC-CTS", "CAMELLIA-192-CBC-CTS" and "CAMELLIA-256-CBC-CTS".
270 CS1, CS2 and CS3 variants are supported.
271
272 =back
273
274 =head4 CMS and PKCS#7 updates
275
276 =over 4
277
278 =item *
279
280 Added CAdES-BES signature verification support.
281
282 =item *
283
284 Added CAdES-BES signature scheme and attributes support (RFC 5126) to CMS API.
285
286 =item *
287
288 Added AuthEnvelopedData content type structure (RFC 5083) using AES_GCM
289
290 This uses the AES-GCM parameter (RFC 5084) for the Cryptographic Message Syntax.
291 Its purpose is to support encryption and decryption of a digital envelope that
292 is both authenticated and encrypted using AES GCM mode.
293
294 =item *
295
296 L<PKCS7_get_octet_string(3)> and L<PKCS7_type_is_other(3)> were made public.
297
298 =back
299
300 =head4 PKCS#12 API updates
301
302 The default algorithms for pkcs12 creation with the PKCS12_create() function
303 were changed to more modern PBKDF2 and AES based algorithms. The default
304 MAC iteration count was changed to PKCS12_DEFAULT_ITER to make it equal
305 with the password-based encryption iteration count. The default digest
306 algorithm for the MAC computation was changed to SHA-256. The pkcs12
307 application now supports -legacy option that restores the previous
308 default algorithms to support interoperability with legacy systems.
309
310 Added enhanced PKCS#12 APIs which accept a library context B<OSSL_LIB_CTX>
311 and (where relevant) a property query. Other APIs which handle PKCS#7 and
312 PKCS#8 objects have also been enhanced where required. This includes:
313
314 L<PKCS12_add_key_ex(3)>, L<PKCS12_add_safe_ex(3)>, L<PKCS12_add_safes_ex(3)>,
315 L<PKCS12_create_ex(3)>, L<PKCS12_decrypt_skey_ex(3)>, L<PKCS12_init_ex(3)>,
316 L<PKCS12_item_decrypt_d2i_ex(3)>, L<PKCS12_item_i2d_encrypt_ex(3)>,
317 L<PKCS12_key_gen_asc_ex(3)>, L<PKCS12_key_gen_uni_ex(3)>, L<PKCS12_key_gen_utf8_ex(3)>,
318 L<PKCS12_pack_p7encdata_ex(3)>, L<PKCS12_pbe_crypt_ex(3)>, L<PKCS12_PBE_keyivgen_ex(3)>,
319 L<PKCS12_SAFEBAG_create_pkcs8_encrypt_ex(3)>, L<PKCS5_pbe2_set_iv_ex(3)>,
320 L<PKCS5_pbe_set0_algor_ex(3)>, L<PKCS5_pbe_set_ex(3)>, L<PKCS5_pbkdf2_set_ex(3)>,
321 L<PKCS5_v2_PBE_keyivgen_ex(3)>, L<PKCS5_v2_scrypt_keyivgen_ex(3)>,
322 L<PKCS8_decrypt_ex(3)>, L<PKCS8_encrypt_ex(3)>, L<PKCS8_set0_pbe_ex(3)>.
323
324 As part of this change the EVP_PBE_xxx APIs can also accept a library
325 context and property query and will call an extended version of the key/IV
326 derivation function which supports these parameters. This includes
327 L<EVP_PBE_CipherInit_ex(3)>, L<EVP_PBE_find_ex(3)> and L<EVP_PBE_scrypt_ex(3)>.
328
329 =head4 Windows thread synchronization changes
330
331 Windows thread synchronization uses read/write primitives (SRWLock) when
332 supported by the OS, otherwise CriticalSection continues to be used.
333
334 =head4 Trace API
335
336 A new generic trace API has been added which provides support for enabling
337 instrumentation through trace output. This feature is mainly intended as an aid
338 for developers and is disabled by default. To utilize it, OpenSSL needs to be
339 configured with the C<enable-trace> option.
340
341 If the tracing API is enabled, the application can activate trace output by
342 registering BIOs as trace channels for a number of tracing and debugging
343 categories. See L<OSSL_trace_enabled(3)>.
344
345 =head4 Key validation updates
346
347 L<EVP_PKEY_public_check(3)> and L<EVP_PKEY_param_check(3)> now work for
348 more key types. This includes RSA, DSA, ED25519, X25519, ED448 and X448.
349 Previously (in 1.1.1) they would return -2. For key types that do not have
350 parameters then L<EVP_PKEY_param_check(3)> will always return 1.
351
352 =head3 Other notable deprecations and changes
353
354 =head4 The function code part of an OpenSSL error code is no longer relevant
355
356 This code is now always set to zero. Related functions are deprecated.
357
358 =head4 STACK and HASH macros have been cleaned up
359
360 The type-safe wrappers are declared everywhere and implemented once.
361 See L<DEFINE_STACK_OF(3)> and L<DEFINE_LHASH_OF_EX(3)>.
362
363 =head4 The RAND_DRBG subsystem has been removed
364
365 The new L<EVP_RAND(3)> is a partial replacement: the DRBG callback framework is
366 absent. The RAND_DRBG API did not fit well into the new provider concept as
367 implemented by EVP_RAND and EVP_RAND_CTX.
368
369 =head4 Removed FIPS_mode() and FIPS_mode_set()
370
371 These functions are legacy APIs that are not applicable to the new provider
372 model. Applications should instead use
373 L<EVP_default_properties_is_fips_enabled(3)> and
374 L<EVP_default_properties_enable_fips(3)>.
375
376 =head4 Key generation is slower
377
378 The Miller-Rabin test now uses 64 rounds, which is used for all prime generation,
379 including RSA key generation. This affects the time for larger keys sizes.
380
381 The default key generation method for the regular 2-prime RSA keys was changed
382 to the FIPS186-4 B.3.6 method (Generation of Probable Primes with Conditions
383 Based on Auxiliary Probable Primes). This method is slower than the original
384 method.
385
386 =head4 Change PBKDF2 to conform to SP800-132 instead of the older PKCS5 RFC2898
387
388 This checks that the salt length is at least 128 bits, the derived key length is
389 at least 112 bits, and that the iteration count is at least 1000.
390 For backwards compatibility these checks are disabled by default in the
391 default provider, but are enabled by default in the FIPS provider.
392
393 To enable or disable the checks see B<OSSL_KDF_PARAM_PKCS5> in
394 L<EVP_KDF-PBKDF2(7)>. The parameter can be set using L<EVP_KDF_derive(3)>.
395
396 =head4 Enforce a minimum DH modulus size of 512 bits
397
398 Smaller sizes now result in an error.
399
400 =head4 SM2 key changes
401
402 EC EVP_PKEYs with the SM2 curve have been reworked to automatically become
403 EVP_PKEY_SM2 rather than EVP_PKEY_EC.
404
405 Unlike in previous OpenSSL versions, this means that applications cannot
406 call C<EVP_PKEY_set_alias_type(pkey, EVP_PKEY_SM2)> to get SM2 computations.
407
408 Parameter and key generation is also reworked to make it possible
409 to generate EVP_PKEY_SM2 parameters and keys. Applications must now generate
410 SM2 keys directly and must not create an EVP_PKEY_EC key first. It is no longer
411 possible to import an SM2 key with domain parameters other than the SM2 elliptic
412 curve ones.
413
414 Validation of SM2 keys has been separated from the validation of regular EC
415 keys, allowing to improve the SM2 validation process to reject loaded private
416 keys that are not conforming to the SM2 ISO standard.
417 In particular, a private scalar I<k> outside the range I<< 1 <= k < n-1 >> is
418 now correctly rejected.
419
420 =head4 EVP_PKEY_set_alias_type() method has been removed
421
422 This function made a B<EVP_PKEY> object mutable after it had been set up. In
423 OpenSSL 3.0 it was decided that a provided key should not be able to change its
424 type, so this function has been removed.
425
426 =head4 Functions that return an internal key should be treated as read only
427
428 Functions such as L<EVP_PKEY_get0_RSA(3)> behave slightly differently in
429 OpenSSL 3.0. Previously they returned a pointer to the low-level key used
430 internally by libcrypto. From OpenSSL 3.0 this key may now be held in a
431 provider. Calling these functions will only return a handle on the internal key
432 where the EVP_PKEY was constructed using this key in the first place, for
433 example using a function or macro such as L<EVP_PKEY_assign_RSA(3)>,
434 L<EVP_PKEY_set1_RSA(3)>, etc.
435 Where the EVP_PKEY holds a provider managed key, then these functions now return
436 a cached copy of the key. Changes to the internal provider key that take place
437 after the first time the cached key is accessed will not be reflected back in
438 the cached copy. Similarly any changes made to the cached copy by application
439 code will not be reflected back in the internal provider key.
440
441 For the above reasons the keys returned from these functions should typically be
442 treated as read-only. To emphasise this the value returned from
443 L<EVP_PKEY_get0_RSA(3)>, L<EVP_PKEY_get0_DSA(3)>, L<EVP_PKEY_get0_EC_KEY(3)> and
444 L<EVP_PKEY_get0_DH(3)> have been made const. This may break some existing code.
445 Applications broken by this change should be modified. The preferred solution is
446 to refactor the code to avoid the use of these deprecated functions. Failing
447 this the code should be modified to use a const pointer instead.
448 The L<EVP_PKEY_get1_RSA(3)>, L<EVP_PKEY_get1_DSA(3)>, L<EVP_PKEY_get1_EC_KEY(3)>
449 and L<EVP_PKEY_get1_DH(3)> functions continue to return a non-const pointer to
450 enable them to be "freed". However they should also be treated as read-only.
451
452 =head4 The public key check has moved from EVP_PKEY_derive() to EVP_PKEY_derive_set_peer()
453
454 This may mean result in an error in L<EVP_PKEY_derive_set_peer(3)> rather than
455 during L<EVP_PKEY_derive(3)>.
456 To disable this check use EVP_PKEY_derive_set_peer_ex(dh, peer, 0).
457
458 =head4 The print format has cosmetic changes for some functions
459
460 The output from numerous "printing" functions such as L<X509_signature_print(3)>,
461 L<X509_print_ex(3)>, L<X509_CRL_print_ex(3)>, and other similar functions has been
462 amended such that there may be cosmetic differences between the output
463 observed in 1.1.1 and 3.0. This also applies to the B<-text> output from the
464 B<openssl x509> and B<openssl crl> applications.
465
466 =head4 Interactive mode from the B<openssl> program has been removed
467
468 From now on, running it without arguments is equivalent to B<openssl help>.
469
470 =head4 The error return values from some control calls (ctrl) have changed
471
472 One significant change is that controls which used to return -2 for
473 invalid inputs, now return -1 indicating a generic error condition instead.
474
475 =head4 DH and DHX key types have different settable parameters
476
477 Previously (in 1.1.1) these conflicting parameters were allowed, but will now
478 result in errors. See L<EVP_PKEY-DH(7)> for further details. This affects the
479 behaviour of L<openssl-genpkey(1)> for DH parameter generation.
480
481 =head4 EVP_CIPHER_CTX_set_flags() ordering change
482
483 If using a cipher from a provider the B<EVP_CIPH_FLAG_LENGTH_BITS> flag can only
484 be set B<after> the cipher has been assigned to the cipher context.
485 See L<EVP_EncryptInit(3)/FLAGS> for more information.
486
487 =head4 Validation of operation context parameters
488
489 Due to move of the implementation of cryptographic operations to the
490 providers, validation of various operation parameters can be postponed until
491 the actual operation is executed where previously it happened immediately
492 when an operation parameter was set.
493
494 For example when setting an unsupported curve with
495 EVP_PKEY_CTX_set_ec_paramgen_curve_nid() this function call will not fail
496 but later keygen operations with the EVP_PKEY_CTX will fail.
497
498 =head4 Removal of function code from the error codes
499
500 The function code part of the error code is now always set to 0. For that
501 reason the ERR_GET_FUNC() macro was removed. Applications must resolve
502 the error codes only using the library number and the reason code.
503
504 =head4 ChaCha20-Poly1305 cipher does not allow a truncated IV length to be used
505
506 In OpenSSL 3.0 setting the IV length to any value other than 12 will result in an
507 error.
508 Prior to OpenSSL 3.0 the ivlen could be smaller that the required 12 byte length,
509 using EVP_CIPHER_CTX_ctrl(ctx, EVP_CRTL_AEAD_SET_IVLEN, ivlen, NULL). This resulted
510 in an IV that had leading zero padding.
511
512 =head2 Installation and Compilation
513
514 Please refer to the INSTALL.md file in the top of the distribution for
515 instructions on how to build and install OpenSSL 3.0. Please also refer to the
516 various platform specific NOTES files for your specific platform.
517
518 =head2 Upgrading from OpenSSL 1.1.1
519
520 Upgrading to OpenSSL 3.0 from OpenSSL 1.1.1 should be relatively straight
521 forward in most cases. The most likely area where you will encounter problems
522 is if you have used low level APIs in your code (as discussed above). In that
523 case you are likely to start seeing deprecation warnings when compiling your
524 application. If this happens you have 3 options:
525
526 =over 4
527
528 =item 1.
529
530 Ignore the warnings. They are just warnings. The deprecated functions are still present and you may still use them. However be aware that they may be removed from a future version of OpenSSL.
531
532 =item 2.
533
534 Suppress the warnings. Refer to your compiler documentation on how to do this.
535
536 =item 3.
537
538 Remove your usage of the low level APIs. In this case you will need to rewrite your code to use the high level APIs instead
539
540 =back
541
542 =head3 Error code changes
543
544 As OpenSSL 3.0 provides a brand new Encoder/Decoder mechanism for working with
545 widely used file formats, application code that checks for particular error
546 reason codes on key loading failures might need an update.
547
548 Password-protected keys may deserve special attention. If only some errors
549 are treated as an indicator that the user should be asked about the password again,
550 it's worth testing these scenarios and processing the newly relevant codes.
551
552 There may be more cases to treat specially, depending on the calling application code.
553
554 =head2 Upgrading from OpenSSL 1.0.2
555
556 Upgrading to OpenSSL 3.0 from OpenSSL 1.0.2 is likely to be significantly more
557 difficult. In addition to the issues discussed above in the section about
558 L</Upgrading from OpenSSL 1.1.1>, the main things to be aware of are:
559
560 =over 4
561
562 =item 1.
563
564 The build and installation procedure has changed significantly.
565
566 Check the file INSTALL.md in the top of the installation for instructions on how
567 to build and install OpenSSL for your platform. Also read the various NOTES
568 files in the same directory, as applicable for your platform.
569
570 =item 2.
571
572 Many structures have been made opaque in OpenSSL 3.0.
573
574 The structure definitions have been removed from the public header files and
575 moved to internal header files. In practice this means that you can no longer
576 stack allocate some structures. Instead they must be heap allocated through some
577 function call (typically those function names have a C<_new> suffix to them).
578 Additionally you must use "setter" or "getter" functions to access the fields
579 within those structures.
580
581 For example code that previously looked like this:
582
583 EVP_MD_CTX md_ctx;
584
585 /* This line will now generate compiler errors */
586 EVP_MD_CTX_init(&md_ctx);
587
588 The code needs to be amended to look like this:
589
590 EVP_MD_CTX *md_ctx;
591
592 md_ctx = EVP_MD_CTX_new();
593 ...
594 ...
595 EVP_MD_CTX_free(md_ctx);
596
597 =item 3.
598
599 Support for TLSv1.3 has been added.
600
601 This has a number of implications for SSL/TLS applications. See the
602 L<TLS1.3 page|https://wiki.openssl.org/index.php/TLS1.3> for further details.
603
604 =back
605
606 More details about the breaking changes between OpenSSL versions 1.0.2 and 1.1.0
607 can be found on the
608 L<OpenSSL 1.1.0 Changes page|https://wiki.openssl.org/index.php/OpenSSL_1.1.0_Changes>.
609
610 =head3 Upgrading from the OpenSSL 2.0 FIPS Object Module
611
612 The OpenSSL 2.0 FIPS Object Module was a separate download that had to be built
613 separately and then integrated into your main OpenSSL 1.0.2 build.
614 In OpenSSL 3.0 the FIPS support is fully integrated into the mainline version of
615 OpenSSL and is no longer a separate download. For further information see
616 L</Completing the installation of the FIPS Module>.
617
618 The function calls FIPS_mode() and FIPS_mode_set() have been removed
619 from OpenSSL 3.0. You should rewrite your application to not use them.
620 See L<fips_module(7)> and L<OSSL_PROVIDER-FIPS(7)> for details.
621
622 =head2 Completing the installation of the FIPS Module
623
624 The FIPS Module will be built and installed automatically if FIPS support has
625 been configured. The current documentation can be found in the
626 L<README-FIPS|https://github.com/openssl/openssl/blob/master/README-FIPS.md> file.
627
628 =head2 Programming
629
630 Applications written to work with OpenSSL 1.1.1 will mostly just work with
631 OpenSSL 3.0. However changes will be required if you want to take advantage of
632 some of the new features that OpenSSL 3.0 makes available. In order to do that
633 you need to understand some new concepts introduced in OpenSSL 3.0.
634 Read L<crypto(7)/Library contexts> for further information.
635
636 =head3 Library Context
637
638 A library context allows different components of a complex application to each
639 use a different library context and have different providers loaded with
640 different configuration settings.
641 See L<crypto(7)/Library contexts> for further info.
642
643 If the user creates an B<OSSL_LIB_CTX> via L<OSSL_LIB_CTX_new(3)> then many
644 functions may need to be changed to pass additional parameters to handle the
645 library context.
646
647 =head4 Using a Library Context - Old functions that should be changed
648
649 If a library context is needed then all EVP_* digest functions that return a
650 B<const EVP_MD *> such as EVP_sha256() should be replaced with a call to
651 L<EVP_MD_fetch(3)>. See L<crypto(7)/ALGORITHM FETCHING>.
652
653 If a library context is needed then all EVP_* cipher functions that return a
654 B<const EVP_CIPHER *> such as EVP_aes_128_cbc() should be replaced vith a call to
655 L<EVP_CIPHER_fetch(3)>. See L<crypto(7)/ALGORITHM FETCHING>.
656
657 Some functions can be passed an object that has already been set up with a library
658 context such as L<d2i_X509(3)>, L<d2i_X509_CRL(3)>, L<d2i_X509_REQ(3)> and
659 L<d2i_X509_PUBKEY(3)>. If NULL is passed instead then the created object will be
660 set up with the default library context. Use L<X509_new_ex(3)>,
661 L<X509_CRL_new_ex(3)>, L<X509_REQ_new_ex(3)> and L<X509_PUBKEY_new_ex(3)> if a
662 library context is required.
663
664 All functions listed below with a I<NAME> have a replacement function I<NAME_ex>
665 that takes B<OSSL_LIB_CTX> as an additional argument. Functions that have other
666 mappings are listed along with the respective name.
667
668 =over 4
669
670 =item *
671
672 L<ASN1_item_new(3)>, L<ASN1_item_d2i(3)>, L<ASN1_item_d2i_fp(3)>,
673 L<ASN1_item_d2i_bio(3)>, L<ASN1_item_sign(3)> and L<ASN1_item_verify(3)>
674
675 =item *
676
677 L<BIO_new(3)>
678
679 =item *
680
681 b2i_RSA_PVK_bio() and i2b_PVK_bio()
682
683 =item *
684
685 L<BN_CTX_new(3)> and L<BN_CTX_secure_new(3)>
686
687 =item *
688
689 L<CMS_AuthEnvelopedData_create(3)>, L<CMS_ContentInfo_new(3)>, L<CMS_data_create(3)>,
690 L<CMS_digest_create(3)>, L<CMS_EncryptedData_encrypt(3)>, L<CMS_encrypt(3)>,
691 L<CMS_EnvelopedData_create(3)>, L<CMS_ReceiptRequest_create0(3)> and L<CMS_sign(3)>
692
693 =item *
694
695 L<CONF_modules_load_file(3)>
696
697 =item *
698
699 L<CTLOG_new(3)>, L<CTLOG_new_from_base64(3)> and L<CTLOG_STORE_new(3)>
700
701 =item *
702
703 L<CT_POLICY_EVAL_CTX_new(3)>
704
705 =item *
706
707 L<d2i_AutoPrivateKey(3)>, L<d2i_PrivateKey(3)> and L<d2i_PUBKEY(3)>
708
709 =item *
710
711 L<d2i_PrivateKey_bio(3)> and L<d2i_PrivateKey_fp(3)>
712
713 Use L<d2i_PrivateKey_ex_bio(3)> and L<d2i_PrivateKey_ex_fp(3)>
714
715 =item *
716
717 L<EC_GROUP_new(3)>
718
719 Use L<EC_GROUP_new_by_curve_name_ex(3)> or L<EC_GROUP_new_from_params(3)>.
720
721 =item *
722
723 L<EVP_DigestSignInit(3)> and L<EVP_DigestVerifyInit(3)>
724
725 =item *
726
727 L<EVP_PBE_CipherInit(3)>, L<EVP_PBE_find(3)> and L<EVP_PBE_scrypt(3)>
728
729 =item *
730
731 L<PKCS5_PBE_keyivgen(3)>
732
733 =item *
734
735 L<EVP_PKCS82PKEY(3)>
736
737 =item *
738
739 L<EVP_PKEY_CTX_new_id(3)>
740
741 Use L<EVP_PKEY_CTX_new_from_name(3)>
742
743 =item *
744
745 L<EVP_PKEY_derive_set_peer(3)>, L<EVP_PKEY_new_raw_private_key(3)>
746 and L<EVP_PKEY_new_raw_public_key(3)>
747
748 =item *
749
750 L<EVP_SignFinal(3)> and L<EVP_VerifyFinal(3)>
751
752 =item *
753
754 L<NCONF_new(3)>
755
756 =item *
757
758 L<OCSP_RESPID_match(3)> and L<OCSP_RESPID_set_by_key(3)>
759
760 =item *
761
762 L<OPENSSL_thread_stop(3)>
763
764 =item *
765
766 L<OSSL_STORE_open(3)>
767
768 =item *
769
770 L<PEM_read_bio_Parameters(3)>, L<PEM_read_bio_PrivateKey(3)>, L<PEM_read_bio_PUBKEY(3)>,
771 L<PEM_read_PrivateKey(3)> and L<PEM_read_PUBKEY(3)>
772
773 =item *
774
775 L<PEM_write_bio_PrivateKey(3)>, L<PEM_write_bio_PUBKEY(3)>, L<PEM_write_PrivateKey(3)>
776 and L<PEM_write_PUBKEY(3)>
777
778 =item *
779
780 L<PEM_X509_INFO_read_bio(3)> and L<PEM_X509_INFO_read(3)>
781
782 =item *
783
784 L<PKCS12_add_key(3)>, L<PKCS12_add_safe(3)>, L<PKCS12_add_safes(3)>,
785 L<PKCS12_create(3)>, L<PKCS12_decrypt_skey(3)>, L<PKCS12_init(3)>, L<PKCS12_item_decrypt_d2i(3)>,
786 L<PKCS12_item_i2d_encrypt(3)>, L<PKCS12_key_gen_asc(3)>, L<PKCS12_key_gen_uni(3)>,
787 L<PKCS12_key_gen_utf8(3)>, L<PKCS12_pack_p7encdata(3)>, L<PKCS12_pbe_crypt(3)>,
788 L<PKCS12_PBE_keyivgen(3)>, L<PKCS12_SAFEBAG_create_pkcs8_encrypt(3)>
789
790 =item *
791
792 L<PKCS5_pbe_set0_algor(3)>, L<PKCS5_pbe_set(3)>, L<PKCS5_pbe2_set_iv(3)>,
793 L<PKCS5_pbkdf2_set(3)> and L<PKCS5_v2_scrypt_keyivgen(3)>
794
795 =item *
796
797 L<PKCS7_encrypt(3)>, L<PKCS7_new(3)> and L<PKCS7_sign(3)>
798
799 =item *
800
801 L<PKCS8_decrypt(3)>, L<PKCS8_encrypt(3)> and L<PKCS8_set0_pbe(3)>
802
803 =item *
804
805 L<RAND_bytes(3)> and L<RAND_priv_bytes(3)>
806
807 =item *
808
809 L<SMIME_write_ASN1(3)>
810
811 =item *
812
813 L<SSL_load_client_CA_file(3)>
814
815 =item *
816
817 L<SSL_CTX_new(3)>
818
819 =item *
820
821 L<TS_RESP_CTX_new(3)>
822
823 =item *
824
825 L<X509_CRL_new(3)>
826
827 =item *
828
829 L<X509_load_cert_crl_file(3)> and L<X509_load_cert_file(3)>
830
831 =item *
832
833 L<X509_LOOKUP_by_subject(3)> and L<X509_LOOKUP_ctrl(3)>
834
835 =item *
836
837 L<X509_NAME_hash(3)>
838
839 =item *
840
841 L<X509_new(3)>
842
843 =item *
844
845 L<X509_REQ_new(3)> and L<X509_REQ_verify(3)>
846
847 =item *
848
849 L<X509_STORE_CTX_new(3)>, L<X509_STORE_set_default_paths(3)>, L<X509_STORE_load_file(3)>,
850 L<X509_STORE_load_locations(3)> and L<X509_STORE_load_store(3)>
851
852 =back
853
854 =head4 New functions that use a Library context
855
856 The following functions can be passed a library context if required.
857 Passing NULL will use the default library context.
858
859 =over 4
860
861 =item *
862
863 L<BIO_new_from_core_bio(3)>
864
865 =item *
866
867 L<EVP_ASYM_CIPHER_fetch(3)> and L<EVP_ASYM_CIPHER_do_all_provided(3)>
868
869 =item *
870
871 L<EVP_CIPHER_fetch(3)> and L<EVP_CIPHER_do_all_provided(3)>
872
873 =item *
874
875 L<EVP_default_properties_enable_fips(3)> and
876 L<EVP_default_properties_is_fips_enabled(3)>
877
878 =item *
879
880 L<EVP_KDF_fetch(3)> and L<EVP_KDF_do_all_provided(3)>
881
882 =item *
883
884 L<EVP_KEM_fetch(3)> and L<EVP_KEM_do_all_provided(3)>
885
886 =item *
887
888 L<EVP_KEYEXCH_fetch(3)> and L<EVP_KEYEXCH_do_all_provided(3)>
889
890 =item *
891
892 L<EVP_KEYMGMT_fetch(3)> and L<EVP_KEYMGMT_do_all_provided(3)>
893
894 =item *
895
896 L<EVP_MAC_fetch(3)> and L<EVP_MAC_do_all_provided(3)>
897
898 =item *
899
900 L<EVP_MD_fetch(3)> and L<EVP_MD_do_all_provided(3)>
901
902 =item *
903
904 L<EVP_PKEY_CTX_new_from_pkey(3)>
905
906 =item *
907
908 L<EVP_PKEY_Q_keygen(3)>
909
910 =item *
911
912 L<EVP_Q_mac(3)> and L<EVP_Q_digest(3)>
913
914 =item *
915
916 L<EVP_RAND(3)> and L<EVP_RAND_do_all_provided(3)>
917
918 =item *
919
920 L<EVP_set_default_properties(3)>
921
922 =item *
923
924 L<EVP_SIGNATURE_fetch(3)> and L<EVP_SIGNATURE_do_all_provided(3)>
925
926 =item *
927
928 L<OSSL_CMP_CTX_new(3)> and L<OSSL_CMP_SRV_CTX_new(3)>
929
930 =item *
931
932 L<OSSL_CRMF_ENCRYPTEDVALUE_get1_encCert(3)>
933
934 =item *
935
936 L<OSSL_CRMF_MSG_create_popo(3)> and L<OSSL_CRMF_MSGS_verify_popo(3)>
937
938 =item *
939
940 L<OSSL_CRMF_pbm_new(3)> and L<OSSL_CRMF_pbmp_new(3)>
941
942 =item *
943
944 L<OSSL_DECODER_CTX_add_extra(3)> and L<OSSL_DECODER_CTX_new_for_pkey(3)>
945
946 =item *
947
948 L<OSSL_DECODER_fetch(3)> and L<OSSL_DECODER_do_all_provided(3)>
949
950 =item *
951
952 L<OSSL_ENCODER_CTX_add_extra(3)>
953
954 =item *
955
956 L<OSSL_ENCODER_fetch(3)> and L<OSSL_ENCODER_do_all_provided(3)>
957
958 =item *
959
960 L<OSSL_LIB_CTX_free(3)>, L<OSSL_LIB_CTX_load_config(3)> and L<OSSL_LIB_CTX_set0_default(3)>
961
962 =item *
963
964 L<OSSL_PROVIDER_add_builtin(3)>, L<OSSL_PROVIDER_available(3)>,
965 L<OSSL_PROVIDER_do_all(3)>, L<OSSL_PROVIDER_load(3)>,
966 L<OSSL_PROVIDER_set_default_search_path(3)> and L<OSSL_PROVIDER_try_load(3)>
967
968 =item *
969
970 L<OSSL_SELF_TEST_get_callback(3)> and L<OSSL_SELF_TEST_set_callback(3)>
971
972 =item *
973
974 L<OSSL_STORE_attach(3)>
975
976 =item *
977
978 L<OSSL_STORE_LOADER_fetch(3)> and L<OSSL_STORE_LOADER_do_all_provided(3)>
979
980 =item *
981
982 L<RAND_get0_primary(3)>, L<RAND_get0_private(3)>, L<RAND_get0_public(3)>,
983 L<RAND_set_DRBG_type(3)> and L<RAND_set_seed_source_type(3)>
984
985 =back
986
987 =head3 Providers
988
989 Providers are described in detail here L<crypto(7)/Providers>.
990 See also L<crypto(7)/OPENSSL PROVIDERS>.
991
992 =head3 Fetching algorithms and property queries
993
994 Implicit and Explicit Fetching is described in detail here
995 L<crypto(7)/ALGORITHM FETCHING>.
996
997 =head3 Mapping EVP controls and flags to provider L<OSSL_PARAM(3)> parameters
998
999 The existing functions for controls (such as L<EVP_CIPHER_CTX_ctrl(3)>) and
1000 manipulating flags (such as L<EVP_MD_CTX_set_flags(3)>)internally use
1001 B<OSSL_PARAMS> to pass information to/from provider objects.
1002 See L<OSSL_PARAM(3)> for additional information related to parameters.
1003
1004 For ciphers see L<EVP_EncryptInit(3)/CONTROLS>, L<EVP_EncryptInit(3)/FLAGS> and
1005 L<EVP_EncryptInit(3)/PARAMETERS>.
1006
1007 For digests see L<EVP_DigestInit(3)/CONTROLS>, L<EVP_DigestInit(3)/FLAGS> and
1008 L<EVP_DigestInit(3)/PARAMETERS>.
1009
1010 =head3 Deprecation of Low Level Functions
1011
1012 A significant number of APIs have been deprecated in OpenSSL 3.0.
1013 This section describes some common categories of deprecations.
1014 See L</Deprecated function mappings> for the list of deprecated functions
1015 that refer to these categories.
1016
1017 =head4 Providers are a replacement for engines and low-level method overrides
1018
1019 Any accessor that uses an ENGINE is deprecated (such as EVP_PKEY_set1_engine()).
1020 Applications using engines should instead use providers.
1021
1022 Before providers were added algorithms were overridden by changing the methods
1023 used by algorithms. All these methods such as RSA_new_method() and RSA_meth_new()
1024 are now deprecated and can be replaced by using providers instead.
1025
1026 =head4 Deprecated i2d and d2i functions for low-level key types
1027
1028 Any i2d and d2i functions such as d2i_DHparams() that take a low-level key type
1029 have been deprecated. Applications should instead use the L<OSSL_DECODER(3)> and
1030 L<OSSL_ENCODER(3)> APIs to read and write files.
1031 See L<d2i_RSAPrivateKey(3)/Migration> for further details.
1032
1033 =head4 Deprecated low-level key object getters and setters
1034
1035 Applications that set or get low-level key objects (such as EVP_PKEY_set1_DH()
1036 or EVP_PKEY_get0()) should instead use the OSSL_ENCODER
1037 (See L<OSSL_ENCODER_to_bio(3)>) or OSSL_DECODER (See L<OSSL_DECODER_from_bio(3)>)
1038 APIs, or alternatively use L<EVP_PKEY_fromdata(3)> or L<EVP_PKEY_todata(3)>.
1039
1040 =head4 Deprecated low-level key parameter getters
1041
1042 Functions that access low-level objects directly such as L<RSA_get0_n(3)> are now
1043 deprecated. Applications should use one of L<EVP_PKEY_get_bn_param(3)>,
1044 L<EVP_PKEY_get_int_param(3)>, l<EVP_PKEY_get_size_t_param(3)>,
1045 L<EVP_PKEY_get_utf8_string_param(3)>, L<EVP_PKEY_get_octet_string_param(3)> or
1046 L<EVP_PKEY_get_params(3)> to access fields from an EVP_PKEY.
1047 Gettable parameters are listed in L<EVP_PKEY-RSA(7)/Common RSA parameters>,
1048 L<EVP_PKEY-DH(7)/DH parameters>, L<EVP_PKEY-DSA(7)/DSA parameters>,
1049 L<EVP_PKEY-FFC(7)/FFC parameters>, L<EVP_PKEY-EC(7)/Common EC parameters> and
1050 L<EVP_PKEY-X25519(7)/Common X25519, X448, ED25519 and ED448 parameters>.
1051 Applications may also use L<EVP_PKEY_todata(3)> to return all fields.
1052
1053 =head4 Deprecated low-level key parameter setters
1054
1055 Functions that access low-level objects directly such as L<RSA_set0_crt_params(3)>
1056 are now deprecated. Applications should use L<EVP_PKEY_fromdata(3)> to create
1057 new keys from user provided key data. Keys should be immutable once they are
1058 created, so if required the user may use L<EVP_PKEY_todata(3)>, L<OSSL_PARAM_merge(3)>,
1059 and L<EVP_PKEY_fromdata(3)> to create a modified key.
1060 See L<EVP_PKEY-DH(7)/Examples> for more information.
1061 See L</Deprecated low-level key generation functions> for information on
1062 generating a key using parameters.
1063
1064 =head4 Deprecated low-level object creation
1065
1066 Low-level objects were created using methods such as L<RSA_new(3)>,
1067 L<RSA_up_ref(3)> and L<RSA_free(3)>. Applications should instead use the
1068 high-level EVP_PKEY APIs, e.g. L<EVP_PKEY_new(3)>, L<EVP_PKEY_up_ref(3)> and
1069 L<EVP_PKEY_free(3)>.
1070 See also L<EVP_PKEY_CTX_new_from_name(3)> and L<EVP_PKEY_CTX_new_from_pkey(3)>.
1071
1072 EVP_PKEYs may be created in a variety of ways:
1073 See also L</Deprecated low-level key generation functions>,
1074 L</Deprecated low-level key reading and writing functions> and
1075 L</Deprecated low-level key parameter setters>.
1076
1077 =head4 Deprecated low-level encryption functions
1078
1079 Low-level encryption functions such as L<AES_encrypt(3)> and L<AES_decrypt(3)>
1080 have been informally discouraged from use for a long time. Applications should
1081 instead use the high level EVP APIs L<EVP_EncryptInit_ex(3)>,
1082 L<EVP_EncryptUpdate(3)>, and L<EVP_EncryptFinal_ex(3)> or
1083 L<EVP_DecryptInit_ex(3)>, L<EVP_DecryptUpdate(3)> and L<EVP_DecryptFinal_ex(3)>.
1084
1085 =head4 Deprecated low-level digest functions
1086
1087 Use of low-level digest functions such as L<SHA1_Init(3)> have been
1088 informally discouraged from use for a long time. Applications should instead
1089 use the the high level EVP APIs L<EVP_DigestInit_ex(3)>, L<EVP_DigestUpdate(3)>
1090 and L<EVP_DigestFinal_ex(3)>, or the quick one-shot L<EVP_Q_digest(3)>.
1091
1092 Note that the functions L<SHA1(3)>, L<SHA224(3)>, L<SHA256(3)>, L<SHA384(3)>
1093 and L<SHA512(3)> have changed to macros that use L<EVP_Q_digest(3)>.
1094
1095 =head4 Deprecated low-level signing functions
1096
1097 Use of low-level signing functions such as L<DSA_sign(3)> have been
1098 informally discouraged for a long time. Instead applications should use
1099 L<EVP_DigestSign(3)> and L<EVP_DigestVerify(3)>.
1100 See also L<EVP_SIGNATURE-RSA(7)>, L<EVP_SIGNATURE-DSA(7)>,
1101 L<EVP_SIGNATURE-ECDSA(7)> and L<EVP_SIGNATURE-ED25519(7)>.
1102
1103 =head4 Deprecated low-level MAC functions
1104
1105 Low-level mac functions such as L<CMAC_Init(3)> are deprecated.
1106 Applications should instead use the new L<EVP_MAC(3)> interface, using
1107 L<EVP_MAC_CTX_new(3)>, L<EVP_MAC_CTX_free(3)>, L<EVP_MAC_init(3)>,
1108 L<EVP_MAC_update(3)> and L<EVP_MAC_final(3)> or the single-shot MAC function
1109 L<EVP_Q_mac(3)>.
1110 See L<EVP_MAC(3)>, L<EVP_MAC-HMAC(7)>, L<EVP_MAC-CMAC(7)>, L<EVP_MAC-GMAC(7)>,
1111 L<EVP_MAC-KMAC(7)>, L<EVP_MAC-BLAKE2(7)>, L<EVP_MAC-Poly1305(7)> and
1112 L<EVP_MAC-Siphash(7)> for additional information.
1113
1114 Note that the one-shot method HMAC() is still available for compatibility purposes,
1115 but this can also be replaced by using EVP_Q_MAC if a library context is required.
1116
1117 =head4 Deprecated low-level validation functions
1118
1119 Low-level validation functions such as L<DH_check(3)> have been informally
1120 discouraged from use for a long time. Applications should instead use the high-level
1121 EVP_PKEY APIs such as L<EVP_PKEY_check(3)>, L<EVP_PKEY_param_check(3)>,
1122 L<EVP_PKEY_param_check_quick(3)>, L<EVP_PKEY_public_check(3)>,
1123 L<EVP_PKEY_public_check_quick(3)>, L<EVP_PKEY_private_check(3)>,
1124 and L<EVP_PKEY_pairwise_check(3)>.
1125
1126 =head4 Deprecated low-level key exchange functions
1127
1128 Many low-level functions have been informally discouraged from use for a long
1129 time. Applications should instead use L<EVP_PKEY_derive(3)>.
1130 See L<EVP_KEYEXCH-DH(7)>, L<EVP_KEYEXCH-ECDH(7)> and L<EVP_KEYEXCH-X25519(7)>.
1131
1132 =head4 Deprecated low-level key generation functions
1133
1134 Many low-level functions have been informally discouraged from use for a long
1135 time. Applications should instead use L<EVP_PKEY_keygen_init(3)> and
1136 L<EVP_PKEY_generate(3)> as described in L<EVP_PKEY-DSA(7)>, L<EVP_PKEY-DH(7)>,
1137 L<EVP_PKEY-RSA(7)>, L<EVP_PKEY-EC(7)> and L<EVP_PKEY-X25519(7)>.
1138 The 'quick' one-shot function L<EVP_PKEY_Q_keygen(3)> and macros for the most
1139 common cases: <EVP_RSA_gen(3)> and L<EVP_EC_gen(3)> may also be used.
1140
1141 =head4 Deprecated low-level key reading and writing functions
1142
1143 Use of low-level objects (such as DSA) has been informally discouraged from use
1144 for a long time. Functions to read and write these low-level objects (such as
1145 PEM_read_DSA_PUBKEY()) should be replaced. Applications should instead use
1146 L<OSSL_ENCODER_to_bio(3)> and L<OSSL_DECODER_from_bio(3)>.
1147
1148 =head4 Deprecated low-level key printing functions
1149
1150 Use of low-level objects (such as DSA) has been informally discouraged from use
1151 for a long time. Functions to print these low-level objects such as
1152 DSA_print() should be replaced with the equivalent EVP_PKEY functions.
1153 Application should use one of L<EVP_PKEY_print_public(3)>,
1154 L<EVP_PKEY_print_private(3)>, L<EVP_PKEY_print_params(3)>,
1155 L<EVP_PKEY_print_public_fp(3)>, L<EVP_PKEY_print_private_fp(3)> or
1156 L<EVP_PKEY_print_params_fp(3)>. Note that internally these use
1157 L<OSSL_ENCODER_to_bio(3)> and L<OSSL_DECODER_from_bio(3)>.
1158
1159 =head3 Deprecated function mappings
1160
1161 The following functions have been deprecated in 3.0.
1162
1163 =over 4
1164
1165 =item *
1166
1167 AES_bi_ige_encrypt() and AES_ige_encrypt()
1168
1169 There is no replacement for the IGE functions. New code should not use these modes.
1170 These undocumented functions were never integrated into the EVP layer.
1171 They implemented the AES Infinite Garble Extension (IGE) mode and AES
1172 Bi-directional IGE mode. These modes were never formally standardised and
1173 usage of these functions is believed to be very small. In particular
1174 AES_bi_ige_encrypt() has a known bug. It accepts 2 AES keys, but only one
1175 is ever used. The security implications are believed to be minimal, but
1176 this issue was never fixed for backwards compatibility reasons.
1177
1178 =item *
1179
1180 AES_encrypt(), AES_decrypt(), AES_set_encrypt_key(), AES_set_decrypt_key(),
1181 AES_cbc_encrypt(), AES_cfb128_encrypt(), AES_cfb1_encrypt(), AES_cfb8_encrypt(),
1182 AES_ecb_encrypt(), AES_ofb128_encrypt()
1183
1184 =item *
1185
1186 AES_unwrap_key(), AES_wrap_key()
1187
1188 See L</Deprecated low-level encryption functions>
1189
1190 =item *
1191
1192 AES_options()
1193
1194 There is no replacement. It returned a string indicating if the AES code was unrolled.
1195
1196 =item *
1197
1198 ASN1_digest(), ASN1_sign(), ASN1_verify()
1199
1200 There are no replacements. These old functions are not used, and could be
1201 disabled with the macro NO_ASN1_OLD since OpenSSL 0.9.7.
1202
1203 =item *
1204
1205 ASN1_STRING_length_set()
1206
1207 Use L<ASN1_STRING_set(3)> or L<ASN1_STRING_set0(3)> instead.
1208 This was a potentially unsafe function that could change the bounds of a
1209 previously passed in pointer.
1210
1211 =item *
1212
1213 BF_encrypt(), BF_decrypt(), BF_set_key(), BF_cbc_encrypt(), BF_cfb64_encrypt(),
1214 BF_ecb_encrypt(), BF_ofb64_encrypt()
1215
1216 See L</Deprecated low-level encryption functions>.
1217 The Blowfish algorithm has been moved to the L<Legacy Provider|/Legacy Algorithms>.
1218
1219 =item *
1220
1221 BF_options()
1222
1223 There is no replacement. This option returned a constant string.
1224
1225 =item *
1226
1227 BIO_get_callback(), BIO_set_callback(), BIO_debug_callback()
1228
1229 Use the respective non-deprecated _ex() functions.
1230
1231 =item *
1232
1233 BN_is_prime_ex(), BN_is_prime_fasttest_ex()
1234
1235 Use L<BN_check_prime(3)> which avoids possible misuse and always uses at least
1236 64 rounds of the Miller-Rabin primality test.
1237
1238 =item *
1239
1240 BN_pseudo_rand(), BN_pseudo_rand_range()
1241
1242 Use L<BN_rand(3)> and L<BN_rand_range(3)>.
1243
1244 =item *
1245
1246 BN_X931_derive_prime_ex(), BN_X931_generate_prime_ex(), BN_X931_generate_Xpq()
1247
1248 There are no replacements for these low-level functions. They were used internally
1249 by RSA_X931_derive_ex() and RSA_X931_generate_key_ex() which are also deprecated.
1250 Use L<EVP_PKEY_keygen(3)> instead.
1251
1252 =item *
1253
1254 Camellia_encrypt(), Camellia_decrypt(), Camellia_set_key(),
1255 Camellia_cbc_encrypt(), Camellia_cfb128_encrypt(), Camellia_cfb1_encrypt(),
1256 Camellia_cfb8_encrypt(), Camellia_ctr128_encrypt(), Camellia_ecb_encrypt(),
1257 Camellia_ofb128_encrypt()
1258
1259 See L</Deprecated low-level encryption functions>.
1260
1261 =item *
1262
1263 CAST_encrypt(), CAST_decrypt(), CAST_set_key(), CAST_cbc_encrypt(),
1264 CAST_cfb64_encrypt(), CAST_ecb_encrypt(), CAST_ofb64_encrypt()
1265
1266 See L</Deprecated low-level encryption functions>.
1267 The CAST algorithm has been moved to the L<Legacy Provider|/Legacy Algorithms>.
1268
1269 =item *
1270
1271 CMAC_CTX_new(), CMAC_CTX_cleanup(), CMAC_CTX_copy(), CMAC_CTX_free(),
1272 CMAC_CTX_get0_cipher_ctx()
1273
1274 See L</Deprecated low-level MAC functions>.
1275
1276 =item *
1277
1278 CMAC_Init(), CMAC_Update(), CMAC_Final(), CMAC_resume()
1279
1280 See L</Deprecated low-level MAC functions>.
1281
1282 =item *
1283
1284 CRYPTO_mem_ctrl(), CRYPTO_mem_debug_free(), CRYPTO_mem_debug_malloc(),
1285 CRYPTO_mem_debug_pop(), CRYPTO_mem_debug_push(), CRYPTO_mem_debug_realloc(),
1286 CRYPTO_mem_leaks(), CRYPTO_mem_leaks_cb(), CRYPTO_mem_leaks_fp(),
1287 CRYPTO_set_mem_debug()
1288
1289 Memory-leak checking has been deprecated in favor of more modern development
1290 tools, such as compiler memory and leak sanitizers or Valgrind.
1291
1292 =item *
1293
1294 CRYPTO_cts128_encrypt_block(), CRYPTO_cts128_encrypt(),
1295 CRYPTO_cts128_decrypt_block(), CRYPTO_cts128_decrypt(),
1296 CRYPTO_nistcts128_encrypt_block(), CRYPTO_nistcts128_encrypt(),
1297 CRYPTO_nistcts128_decrypt_block(), CRYPTO_nistcts128_decrypt()
1298
1299 Use the higher level functions EVP_CipherInit_ex2(), EVP_CipherUpdate() and
1300 EVP_CipherFinal_ex() instead.
1301 See the "cts_mode" parameter in
1302 L<EVP_EncryptInit(3)/Gettable and Settable EVP_CIPHER_CTX parameters>.
1303 See L<EVP_EncryptInit(3)/EXAMPLES> for a AES-256-CBC-CTS example.
1304
1305 =item *
1306
1307 d2i_DHparams(), d2i_DHxparams(), d2i_DSAparams(), d2i_DSAPrivateKey(),
1308 d2i_DSAPrivateKey_bio(), d2i_DSAPrivateKey_fp(), d2i_DSA_PUBKEY(),
1309 d2i_DSA_PUBKEY_bio(), d2i_DSA_PUBKEY_fp(), d2i_DSAPublicKey(),
1310 d2i_ECParameters(), d2i_ECPrivateKey(), d2i_ECPrivateKey_bio(),
1311 d2i_ECPrivateKey_fp(), d2i_EC_PUBKEY(), d2i_EC_PUBKEY_bio(),
1312 d2i_EC_PUBKEY_fp(), o2i_ECPublicKey(), d2i_RSAPrivateKey(),
1313 d2i_RSAPrivateKey_bio(), d2i_RSAPrivateKey_fp(), d2i_RSA_PUBKEY(),
1314 d2i_RSA_PUBKEY_bio(), d2i_RSA_PUBKEY_fp(), d2i_RSAPublicKey(),
1315 d2i_RSAPublicKey_bio(), d2i_RSAPublicKey_fp()
1316
1317 See L</Deprecated i2d and d2i functions for low-level key types>
1318
1319 =item *
1320
1321 DES_crypt(), DES_fcrypt(), DES_encrypt1(), DES_encrypt2(), DES_encrypt3(),
1322 DES_decrypt3(), DES_ede3_cbc_encrypt(), DES_ede3_cfb64_encrypt(),
1323 DES_ede3_cfb_encrypt(),DES_ede3_ofb64_encrypt(),
1324 DES_ecb_encrypt(), DES_ecb3_encrypt(), DES_ofb64_encrypt(), DES_ofb_encrypt(),
1325 DES_cfb64_encrypt DES_cfb_encrypt(), DES_cbc_encrypt(), DES_ncbc_encrypt(),
1326 DES_pcbc_encrypt(), DES_xcbc_encrypt(), DES_cbc_cksum(), DES_quad_cksum(),
1327 DES_check_key_parity(), DES_is_weak_key(), DES_key_sched(), DES_options(),
1328 DES_random_key(), DES_set_key(), DES_set_key_checked(), DES_set_key_unchecked(),
1329 DES_set_odd_parity(), DES_string_to_2keys(), DES_string_to_key()
1330
1331 See L</Deprecated low-level encryption functions>.
1332 Algorithms for "DESX-CBC", "DES-ECB", "DES-CBC", "DES-OFB", "DES-CFB",
1333 "DES-CFB1" and "DES-CFB8" have been moved to the L<Legacy Provider|/Legacy Algorithms>.
1334
1335 =item *
1336
1337 DH_bits(), DH_security_bits(), DH_size()
1338
1339 Use L<EVP_PKEY_get_bits(3)>, L<EVP_PKEY_get_security_bits(3)> and
1340 L<EVP_PKEY_get_size(3)>.
1341
1342 =item *
1343
1344 DH_check(), DH_check_ex(), DH_check_params(), DH_check_params_ex(),
1345 DH_check_pub_key(), DH_check_pub_key_ex()
1346
1347 See L</Deprecated low-level validation functions>
1348
1349 =item *
1350
1351 DH_clear_flags(), DH_test_flags(), DH_set_flags()
1352
1353 The B<DH_FLAG_CACHE_MONT_P> flag has been deprecated without replacement.
1354 The B<DH_FLAG_TYPE_DH> and B<DH_FLAG_TYPE_DHX> have been deprecated.
1355 Use EVP_PKEY_is_a() to determine the type of a key.
1356 There is no replacement for setting these flags.
1357
1358 =item *
1359
1360 DH_compute_key() DH_compute_key_padded()
1361
1362 See L</Deprecated low-level key exchange functions>.
1363
1364 =item *
1365
1366 DH_new(), DH_new_by_nid(), DH_free(), DH_up_ref()
1367
1368 See L</Deprecated low-level object creation>
1369
1370 =item *
1371
1372 DH_generate_key(), DH_generate_parameters_ex()
1373
1374 See L</Deprecated low-level key generation functions>.
1375
1376 =item *
1377
1378 DH_get0_pqg(), DH_get0_p(), DH_get0_q(), DH_get0_g(), DH_get0_key(),
1379 DH_get0_priv_key(), DH_get0_pub_key(), DH_get_length(), DH_get_nid()
1380
1381 See L</Deprecated low-level key parameter getters>
1382
1383 =item *
1384
1385 DH_get_1024_160(), DH_get_2048_224(), DH_get_2048_256()
1386
1387 Applications should instead set the B<OSSL_PKEY_PARAM_GROUP_NAME> as specified in
1388 L<EVP_PKEY-DH(7)/DH parameters>) to one of "dh_1024_160", "dh_2048_224" or
1389 "dh_2048_256" when generating a DH key.
1390
1391 =item *
1392
1393 DH_KDF_X9_42()
1394
1395 Applications should use L<EVP_PKEY_CTX_set_dh_kdf_type(3)> instead.
1396
1397 =item *
1398
1399 DH_get_default_method(), DH_get0_engine(), DH_meth_*(), DH_new_method(),
1400 DH_OpenSSL(), DH_get_ex_data(), DH_set_default_method(), DH_set_method(),
1401 DH_set_ex_data()
1402
1403 See L</Providers are a replacement for engines and low-level method overrides>
1404
1405 =item *
1406
1407 DHparams_print(), DHparams_print_fp()
1408
1409 See L</Deprecated low-level key printing functions>
1410
1411 =item *
1412
1413 DH_set0_key(), DH_set0_pqg(), DH_set_length()
1414
1415 See L</Deprecated low-level key parameter setters>
1416
1417 =item *
1418
1419 DSA_bits(), DSA_security_bits(), DSA_size()
1420
1421 Use L<EVP_PKEY_get_bits(3)>, L<EVP_PKEY_get_security_bits(3)> and
1422 L<EVP_PKEY_get_size(3)>.
1423
1424 =item *
1425
1426 DHparams_dup(), DSA_dup_DH()
1427
1428 There is no direct replacement. Applications may use L<EVP_PKEY_copy_parameters(3)>
1429 and L<EVP_PKEY_dup(3)> instead.
1430
1431 =item *
1432
1433 DSA_generate_key(), DSA_generate_parameters_ex()
1434
1435 See L</Deprecated low-level key generation functions>.
1436
1437 =item *
1438
1439 DSA_get0_engine(), DSA_get_default_method(), DSA_get_ex_data(),
1440 DSA_get_method(), DSA_meth_*(), DSA_new_method(), DSA_OpenSSL(),
1441 DSA_set_default_method(), DSA_set_ex_data(), DSA_set_method()
1442
1443 See L</Providers are a replacement for engines and low-level method overrides>.
1444
1445 =item *
1446
1447 DSA_get0_p(), DSA_get0_q(), DSA_get0_g(), DSA_get0_pqg(), DSA_get0_key(),
1448 DSA_get0_priv_key(), DSA_get0_pub_key()
1449
1450 See L</Deprecated low-level key parameter getters>.
1451
1452 =item *
1453
1454 DSA_new(), DSA_free(), DSA_up_ref()
1455
1456 See L</Deprecated low-level object creation>
1457
1458 =item *
1459
1460 DSAparams_dup()
1461
1462 There is no direct replacement. Applications may use L<EVP_PKEY_copy_parameters(3)>
1463 and L<EVP_PKEY_dup(3)> instead.
1464
1465 =item *
1466
1467 DSAparams_print(), DSAparams_print_fp(), DSA_print(), DSA_print_fp()
1468
1469 See L</Deprecated low-level key printing functions>
1470
1471 =item *
1472
1473 DSA_set0_key(), DSA_set0_pqg()
1474
1475 See L</Deprecated low-level key parameter setters>
1476
1477 =item *
1478
1479 DSA_set_flags(), DSA_clear_flags(), DSA_test_flags()
1480
1481 The B<DSA_FLAG_CACHE_MONT_P> flag has been deprecated without replacement.
1482
1483 =item *
1484
1485 DSA_sign(), DSA_do_sign(), DSA_sign_setup(), DSA_verify(), DSA_do_verify()
1486
1487 See L</Deprecated low-level signing functions>.
1488
1489 =item *
1490
1491 ECDH_compute_key()
1492
1493 See L</Deprecated low-level key exchange functions>.
1494
1495 =item *
1496
1497 ECDH_KDF_X9_62()
1498
1499 Applications may either set this using the helper function
1500 L<EVP_PKEY_CTX_set_ecdh_kdf_type(3)> or by setting an L<OSSL_PARAM(3)> using the
1501 "kdf-type" as shown in L<EVP_KEYEXCH-ECDH(7)/EXAMPLES>
1502
1503 =item *
1504
1505 ECDSA_sign(), ECDSA_sign_ex(), ECDSA_sign_setup(), ECDSA_do_sign(),
1506 ECDSA_do_sign_ex(), ECDSA_verify(), ECDSA_do_verify()
1507
1508 See L</Deprecated low-level signing functions>.
1509
1510 =item *
1511
1512 ECDSA_size()
1513
1514 Applications should use L<EVP_PKEY_get_size(3)>.
1515
1516 =item *
1517
1518 EC_GF2m_simple_method(), EC_GFp_mont_method(), EC_GFp_nist_method(),
1519 EC_GFp_nistp224_method(), EC_GFp_nistp256_method(), EC_GFp_nistp521_method(),
1520 EC_GFp_simple_method()
1521
1522 There are no replacements for these functions. Applications should rely on the
1523 library automatically assigning a suitable method internally when an EC_GROUP
1524 is constructed.
1525
1526 =item *
1527
1528 EC_GROUP_clear_free()
1529
1530 Use L<EC_GROUP_free(3)> instead.
1531
1532 =item *
1533
1534 EC_GROUP_get_curve_GF2m(), EC_GROUP_get_curve_GFp(), EC_GROUP_set_curve_GF2m(),
1535 EC_GROUP_set_curve_GFp()
1536
1537 Applications should use L<EC_GROUP_get_curve(3)> and L<EC_GROUP_set_curve(3)>.
1538
1539 =item *
1540
1541 EC_GROUP_have_precompute_mult(), EC_GROUP_precompute_mult(),
1542 EC_KEY_precompute_mult()
1543
1544 These functions are not widely used. Applications should instead switch to
1545 named curves which OpenSSL has hardcoded lookup tables for.
1546
1547 =item *
1548
1549 EC_GROUP_new(), EC_GROUP_method_of(), EC_POINT_method_of()
1550
1551 EC_METHOD is now an internal-only concept and a suitable EC_METHOD is assigned
1552 internally without application intervention.
1553 Users of EC_GROUP_new() should switch to a different suitable constructor.
1554
1555 =item *
1556
1557 EC_KEY_can_sign()
1558
1559 Applications should use L<EVP_PKEY_can_sign(3)> instead.
1560
1561 =item *
1562
1563 EC_KEY_check_key()
1564
1565 See L</Deprecated low-level validation functions>
1566
1567 =item *
1568
1569 EC_KEY_set_flags(), EC_KEY_get_flags(), EC_KEY_clear_flags()
1570
1571 See L<EVP_PKEY-EC(7)/Common EC parameters> which handles flags as separate
1572 parameters for B<OSSL_PKEY_PARAM_EC_POINT_CONVERSION_FORMAT>,
1573 B<OSSL_PKEY_PARAM_EC_GROUP_CHECK_TYPE>, B<OSSL_PKEY_PARAM_EC_ENCODING>,
1574 B<OSSL_PKEY_PARAM_USE_COFACTOR_ECDH> and
1575 B<OSSL_PKEY_PARAM_EC_INCLUDE_PUBLIC>.
1576 See also L<EVP_PKEY-EC(7)/EXAMPLES>
1577
1578 =item *
1579
1580 EC_KEY_dup(), EC_KEY_copy()
1581
1582 There is no direct replacement. Applications may use L<EVP_PKEY_copy_parameters(3)>
1583 and L<EVP_PKEY_dup(3)> instead.
1584
1585 =item *
1586
1587 EC_KEY_decoded_from_explicit_params()
1588
1589 There is no replacement.
1590
1591 =item *
1592
1593 EC_KEY_generate_key()
1594
1595 See L</Deprecated low-level key generation functions>.
1596
1597 =item *
1598
1599 EC_KEY_get0_group(), EC_KEY_get0_private_key(), EC_KEY_get0_public_key(),
1600 EC_KEY_get_conv_form(), EC_KEY_get_enc_flags()
1601
1602 See L</Deprecated low-level key parameter getters>.
1603
1604 =item *
1605
1606 EC_KEY_get0_engine(), EC_KEY_get_default_method(), EC_KEY_get_method(),
1607 EC_KEY_new_method(), EC_KEY_get_ex_data(), EC_KEY_OpenSSL(),
1608 EC_KEY_set_ex_data(), EC_KEY_set_default_method(), EC_KEY_METHOD_*(),
1609 EC_KEY_set_method()
1610
1611 See L</Providers are a replacement for engines and low-level method overrides>
1612
1613 =item *
1614
1615 EC_METHOD_get_field_type()
1616
1617 Use L<EC_GROUP_get_field_type(3)> instead.
1618 See L</Providers are a replacement for engines and low-level method overrides>
1619
1620 =item *
1621
1622 EC_KEY_key2buf(), EC_KEY_oct2key(), EC_KEY_oct2priv(), EC_KEY_priv2buf(),
1623 EC_KEY_priv2oct()
1624
1625 There are no replacements for these.
1626
1627 =item *
1628
1629 EC_KEY_new(), EC_KEY_new_by_curve_name(), EC_KEY_free(), EC_KEY_up_ref()
1630
1631 See L</Deprecated low-level object creation>
1632
1633 =item *
1634
1635 EC_KEY_print(), EC_KEY_print_fp()
1636
1637 See L</Deprecated low-level key printing functions>
1638
1639 =item *
1640
1641 EC_KEY_set_asn1_flag(), EC_KEY_set_conv_form(), EC_KEY_set_enc_flags()
1642
1643 See L</Deprecated low-level key parameter setters>.
1644
1645 =item *
1646
1647 EC_KEY_set_group(), EC_KEY_set_private_key(), EC_KEY_set_public_key(),
1648 EC_KEY_set_public_key_affine_coordinates()
1649
1650 See L</Deprecated low-level key parameter setters>.
1651
1652 =item *
1653
1654 ECParameters_print(), ECParameters_print_fp(), ECPKParameters_print(),
1655 ECPKParameters_print_fp()
1656
1657 See L</Deprecated low-level key printing functions>
1658
1659 =item *
1660
1661 EC_POINT_bn2point(), EC_POINT_point2bn()
1662
1663 These functions were not particularly useful, since EC point serialization
1664 formats are not individual big-endian integers.
1665
1666 =item *
1667
1668 EC_POINT_get_affine_coordinates_GF2m(), EC_POINT_get_affine_coordinates_GFp(),
1669 EC_POINT_set_affine_coordinates_GF2m(), EC_POINT_set_affine_coordinates_GFp()
1670
1671 Applications should use L<EC_POINT_get_affine_coordinates(3)> and
1672 L<EC_POINT_set_affine_coordinates(3)> instead.
1673
1674 =item *
1675
1676 EC_POINT_get_Jprojective_coordinates_GFp(), EC_POINT_set_Jprojective_coordinates_GFp()
1677
1678 These functions are not widely used. Applications should instead use the
1679 L<EC_POINT_set_affine_coordinates(3)> and L<EC_POINT_get_affine_coordinates(3)>
1680 functions.
1681
1682 =item *
1683
1684 EC_POINT_make_affine(), EC_POINTs_make_affine()
1685
1686 There is no replacement. These functions were not widely used, and OpenSSL
1687 automatically performs this conversion when needed.
1688
1689 =item *
1690
1691 EC_POINT_set_compressed_coordinates_GF2m(), EC_POINT_set_compressed_coordinates_GFp()
1692
1693 Applications should use L<EC_POINT_set_compressed_coordinates(3)> instead.
1694
1695 =item *
1696
1697 EC_POINTs_mul()
1698
1699 This function is not widely used. Applications should instead use the
1700 L<EC_POINT_mul(3)> function.
1701
1702 =item *
1703
1704 B<ENGINE_*()>
1705
1706 All engine functions are deprecated. An engine should be rewritten as a provider.
1707 See L</Providers are a replacement for engines and low-level method overrides>.
1708
1709 =item *
1710
1711 B<ERR_load_*()>, ERR_func_error_string(), ERR_get_error_line(),
1712 ERR_get_error_line_data(), ERR_get_state()
1713
1714 OpenSSL now loads error strings automatically so these functions are not needed.
1715
1716 =item *
1717
1718 ERR_peek_error_line_data(), ERR_peek_last_error_line_data()
1719
1720 The new functions are L<ERR_peek_error_func(3)>, L<ERR_peek_last_error_func(3)>,
1721 L<ERR_peek_error_data(3)>, L<ERR_peek_last_error_data(3)>, L<ERR_get_error_all(3)>,
1722 L<ERR_peek_error_all(3)> and L<ERR_peek_last_error_all(3)>.
1723 Applications should use L<ERR_get_error_all(3)>, or pick information
1724 with ERR_peek functions and finish off with getting the error code by using
1725 L<ERR_get_error(3)>.
1726
1727 =item *
1728
1729 EVP_CIPHER_CTX_iv(), EVP_CIPHER_CTX_iv_noconst(), EVP_CIPHER_CTX_original_iv()
1730
1731 Applications should instead use L<EVP_CIPHER_CTX_get_updated_iv(3)>,
1732 L<EVP_CIPHER_CTX_get_updated_iv(3)> and L<EVP_CIPHER_CTX_get_original_iv(3)>
1733 respectively.
1734 See L<EVP_CIPHER_CTX_get_original_iv(3)> for further information.
1735
1736 =item *
1737
1738 B<EVP_CIPHER_meth_*()>, EVP_MD_CTX_set_update_fn(), EVP_MD_CTX_update_fn(),
1739 B<EVP_MD_meth_*()>
1740
1741 See L</Providers are a replacement for engines and low-level method overrides>.
1742
1743 =item *
1744
1745 EVP_PKEY_CTRL_PKCS7_ENCRYPT(), EVP_PKEY_CTRL_PKCS7_DECRYPT(),
1746 EVP_PKEY_CTRL_PKCS7_SIGN(), EVP_PKEY_CTRL_CMS_ENCRYPT(),
1747 EVP_PKEY_CTRL_CMS_DECRYPT(), and EVP_PKEY_CTRL_CMS_SIGN()
1748
1749 These control operations are not invoked by the OpenSSL library anymore and
1750 are replaced by direct checks of the key operation against the key type
1751 when the operation is initialized.
1752
1753 =item *
1754
1755 EVP_PKEY_CTX_get0_dh_kdf_ukm(), EVP_PKEY_CTX_get0_ecdh_kdf_ukm()
1756
1757 See the "kdf-ukm" item in L<EVP_KEYEXCH-DH(7)/DH key exchange parameters> and
1758 L<EVP_KEYEXCH-ECDH(7)/ECDH Key Exchange parameters>.
1759 These functions are obsolete and should not be required.
1760
1761 =item *
1762
1763 EVP_PKEY_CTX_set_rsa_keygen_pubexp()
1764
1765 Applications should use L<EVP_PKEY_CTX_set1_rsa_keygen_pubexp(3)> instead.
1766
1767 =item *
1768
1769 EVP_PKEY_cmp(), EVP_PKEY_cmp_parameters()
1770
1771 Applications should use L<EVP_PKEY_eq(3)> and L<EVP_PKEY_parameters_eq(3)> instead.
1772 See L<EVP_PKEY_copy_parameters(3)> for further details.
1773
1774 =item *
1775
1776 EVP_PKEY_encrypt_old(), EVP_PKEY_decrypt_old(),
1777
1778 Applications should use L<EVP_PKEY_encrypt_init(3)> and L<EVP_PKEY_encrypt(3)> or
1779 L<EVP_PKEY_decrypt_init(3)> and L<EVP_PKEY_decrypt(3)> instead.
1780
1781 =item *
1782
1783 EVP_PKEY_get0()
1784
1785 This function returns NULL if the key comes from a provider.
1786
1787 =item *
1788
1789 EVP_PKEY_get0_DH(), EVP_PKEY_get0_DSA(), EVP_PKEY_get0_EC_KEY(), EVP_PKEY_get0_RSA(),
1790 EVP_PKEY_get1_DH(), EVP_PKEY_get1_DSA(), EVP_PKEY_get1_EC_KEY and EVP_PKEY_get1_RSA(),
1791 EVP_PKEY_get0_hmac(), EVP_PKEY_get0_poly1305(), EVP_PKEY_get0_siphash()
1792
1793 See L</Functions that return an internal key should be treated as read only>.
1794
1795 =item *
1796
1797 B<EVP_PKEY_meth_*()>
1798
1799 See L</Providers are a replacement for engines and low-level method overrides>.
1800
1801 =item *
1802
1803 EVP_PKEY_new_CMAC_key()
1804
1805 See L</Deprecated low-level MAC functions>.
1806
1807 =item *
1808
1809 EVP_PKEY_assign(), EVP_PKEY_set1_DH(), EVP_PKEY_set1_DSA(),
1810 EVP_PKEY_set1_EC_KEY(), EVP_PKEY_set1_RSA()
1811
1812 See L</Deprecated low-level key object getters and setters>
1813
1814 =item *
1815
1816 EVP_PKEY_set1_tls_encodedpoint() EVP_PKEY_get1_tls_encodedpoint()
1817
1818 These functions were previously used by libssl to set or get an encoded public
1819 key into/from an EVP_PKEY object. With OpenSSL 3.0 these are replaced by the more
1820 generic functions L<EVP_PKEY_set1_encoded_public_key(3)> and
1821 L<EVP_PKEY_get1_encoded_public_key(3)>.
1822 The old versions have been converted to deprecated macros that just call the
1823 new functions.
1824
1825 =item *
1826
1827 EVP_PKEY_set1_engine(), EVP_PKEY_get0_engine()
1828
1829 See L</Providers are a replacement for engines and low-level method overrides>.
1830
1831 =item *
1832
1833 EVP_PKEY_set_alias_type()
1834
1835 This function has been removed. There is no replacement.
1836 See L</EVP_PKEY_set_alias_type() method has been removed>
1837
1838 =item *
1839
1840 HMAC_Init_ex(), HMAC_Update(), HMAC_Final(), HMAC_size()
1841
1842 See L</Deprecated low-level MAC functions>.
1843
1844 =item *
1845
1846 HMAC_CTX_new(), HMAC_CTX_free(), HMAC_CTX_copy(), HMAC_CTX_reset(),
1847 HMAC_CTX_set_flags(), HMAC_CTX_get_md()
1848
1849 See L</Deprecated low-level MAC functions>.
1850
1851 =item *
1852
1853 i2d_DHparams(), i2d_DHxparams()
1854
1855 See L</Deprecated low-level key reading and writing functions>
1856 and L<d2i_RSAPrivateKey(3)/Migration>
1857
1858 =item *
1859
1860 i2d_DSAparams(), i2d_DSAPrivateKey(), i2d_DSAPrivateKey_bio(),
1861 i2d_DSAPrivateKey_fp(), i2d_DSA_PUBKEY(), i2d_DSA_PUBKEY_bio(),
1862 i2d_DSA_PUBKEY_fp(), i2d_DSAPublicKey()
1863
1864 See L</Deprecated low-level key reading and writing functions>
1865 and L<d2i_RSAPrivateKey(3)/Migration>
1866
1867 =item *
1868
1869 i2d_ECParameters(), i2d_ECPrivateKey(), i2d_ECPrivateKey_bio(),
1870 i2d_ECPrivateKey_fp(), i2d_EC_PUBKEY(), i2d_EC_PUBKEY_bio(),
1871 i2d_EC_PUBKEY_fp(), i2o_ECPublicKey()
1872
1873 See L</Deprecated low-level key reading and writing functions>
1874 and L<d2i_RSAPrivateKey(3)/Migration>
1875
1876 =item *
1877
1878 i2d_RSAPrivateKey(), i2d_RSAPrivateKey_bio(), i2d_RSAPrivateKey_fp(),
1879 i2d_RSA_PUBKEY(), i2d_RSA_PUBKEY_bio(), i2d_RSA_PUBKEY_fp(),
1880 i2d_RSAPublicKey(), i2d_RSAPublicKey_bio(), i2d_RSAPublicKey_fp()
1881
1882 See L</Deprecated low-level key reading and writing functions>
1883 and L<d2i_RSAPrivateKey(3)/Migration>
1884
1885 =item *
1886
1887 IDEA_encrypt(), IDEA_set_decrypt_key(), IDEA_set_encrypt_key(),
1888 IDEA_cbc_encrypt(), IDEA_cfb64_encrypt(), IDEA_ecb_encrypt(),
1889 IDEA_ofb64_encrypt()
1890
1891 See L</Deprecated low-level encryption functions>.
1892 IDEA has been moved to the L<Legacy Provider|/Legacy Algorithms>.
1893
1894 =item *
1895
1896 IDEA_options()
1897
1898 There is no replacement. This function returned a constant string.
1899
1900 =item *
1901
1902 MD2(), MD2_Init(), MD2_Update(), MD2_Final()
1903
1904 See L</Deprecated low-level encryption functions>.
1905 MD2 has been moved to the L<Legacy Provider|/Legacy Algorithms>.
1906
1907 =item *
1908
1909 MD2_options()
1910
1911 There is no replacement. This function returned a constant string.
1912
1913 =item *
1914
1915 MD4(), MD4_Init(), MD4_Update(), MD4_Final(), MD4_Transform()
1916
1917 See L</Deprecated low-level encryption functions>.
1918 MD4 has been moved to the L<Legacy Provider|/Legacy Algorithms>.
1919
1920 =item *
1921
1922 MDC2(), MDC2_Init(), MDC2_Update(), MDC2_Final()
1923
1924 See L</Deprecated low-level encryption functions>.
1925 MDC2 has been moved to the L<Legacy Provider|/Legacy Algorithms>.
1926
1927 =item *
1928
1929 MD5(), MD5_Init(), MD5_Update(), MD5_Final(), MD5_Transform()
1930
1931 See L</Deprecated low-level encryption functions>.
1932
1933 =item *
1934
1935 NCONF_WIN32()
1936
1937 This undocumented function has no replacement.
1938 See L<config(5)/HISTORY> for more details.
1939
1940 =item *
1941
1942 OCSP_parse_url()
1943
1944 Use L<OSSL_HTTP_parse_url(3)> instead.
1945
1946 =item *
1947
1948 B<OCSP_REQ_CTX> type and B<OCSP_REQ_CTX_*()> functions
1949
1950 These methods were used to collect all necessary data to form a HTTP request,
1951 and to perform the HTTP transfer with that request. With OpenSSL 3.0, the
1952 type is B<OSSL_HTTP_REQ_CTX>, and the deprecated functions are replaced
1953 with B<OSSL_HTTP_REQ_CTX_*()>. See L<OSSL_HTTP_REQ_CTX(3)> for additional
1954 details.
1955
1956 =item *
1957
1958 OPENSSL_fork_child(), OPENSSL_fork_parent(), OPENSSL_fork_prepare()
1959
1960 There is no replacement for these functions. These pthread fork support methods
1961 were unused by OpenSSL.
1962
1963 =item *
1964
1965 OSSL_STORE_ctrl(), OSSL_STORE_do_all_loaders(), OSSL_STORE_LOADER_get0_engine(),
1966 OSSL_STORE_LOADER_get0_scheme(), OSSL_STORE_LOADER_new(),
1967 OSSL_STORE_LOADER_set_attach(), OSSL_STORE_LOADER_set_close(),
1968 OSSL_STORE_LOADER_set_ctrl(), OSSL_STORE_LOADER_set_eof(),
1969 OSSL_STORE_LOADER_set_error(), OSSL_STORE_LOADER_set_expect(),
1970 OSSL_STORE_LOADER_set_find(), OSSL_STORE_LOADER_set_load(),
1971 OSSL_STORE_LOADER_set_open(), OSSL_STORE_LOADER_set_open_ex(),
1972 OSSL_STORE_register_loader(), OSSL_STORE_unregister_loader(),
1973 OSSL_STORE_vctrl()
1974
1975 These functions helped applications and engines create loaders for
1976 schemes they supported. These are all deprecated and discouraged in favour of
1977 provider implementations, see L<provider-storemgmt(7)>.
1978
1979 =item *
1980
1981 PEM_read_DHparams(), PEM_read_bio_DHparams(),
1982 PEM_read_DSAparams(), PEM_read_bio_DSAparams(),
1983 PEM_read_DSAPrivateKey(), PEM_read_DSA_PUBKEY(),
1984 PEM_read_bio_DSAPrivateKey and PEM_read_bio_DSA_PUBKEY(),
1985 PEM_read_ECPKParameters(), PEM_read_ECPrivateKey(), PEM_read_EC_PUBKEY(),
1986 PEM_read_bio_ECPKParameters(), PEM_read_bio_ECPrivateKey(), PEM_read_bio_EC_PUBKEY(),
1987 PEM_read_RSAPrivateKey(), PEM_read_RSA_PUBKEY(), PEM_read_RSAPublicKey(),
1988 PEM_read_bio_RSAPrivateKey(), PEM_read_bio_RSA_PUBKEY(), PEM_read_bio_RSAPublicKey(),
1989 PEM_write_bio_DHparams(), PEM_write_bio_DHxparams(), PEM_write_DHparams(), PEM_write_DHxparams(),
1990 PEM_write_DSAparams(), PEM_write_DSAPrivateKey(), PEM_write_DSA_PUBKEY(),
1991 PEM_write_bio_DSAparams(), PEM_write_bio_DSAPrivateKey(), PEM_write_bio_DSA_PUBKEY(),
1992 PEM_write_ECPKParameters(), PEM_write_ECPrivateKey(), PEM_write_EC_PUBKEY(),
1993 PEM_write_bio_ECPKParameters(), PEM_write_bio_ECPrivateKey(), PEM_write_bio_EC_PUBKEY(),
1994 PEM_write_RSAPrivateKey(), PEM_write_RSA_PUBKEY(), PEM_write_RSAPublicKey(),
1995 PEM_write_bio_RSAPrivateKey(), PEM_write_bio_RSA_PUBKEY(),
1996 PEM_write_bio_RSAPublicKey(),
1997
1998 See L</Deprecated low-level key reading and writing functions>
1999
2000 =item *
2001
2002 PKCS1_MGF1()
2003
2004 See L</Deprecated low-level encryption functions>.
2005
2006 =item *
2007
2008 RAND_get_rand_method(), RAND_set_rand_method(), RAND_OpenSSL(),
2009 RAND_set_rand_engine()
2010
2011 Applications should instead use L<RAND_set_DRBG_type(3)>,
2012 L<EVP_RAND(3)> and L<EVP_RAND(7)>.
2013 See L<RAND_set_rand_method(3)> for more details.
2014
2015 =item *
2016
2017 RC2_encrypt(), RC2_decrypt(), RC2_set_key(), RC2_cbc_encrypt(), RC2_cfb64_encrypt(),
2018 RC2_ecb_encrypt(), RC2_ofb64_encrypt(),
2019 RC4(), RC4_set_key(), RC4_options(),
2020 RC5_32_encrypt(), RC5_32_set_key(), RC5_32_decrypt(), RC5_32_cbc_encrypt(),
2021 RC5_32_cfb64_encrypt(), RC5_32_ecb_encrypt(), RC5_32_ofb64_encrypt()
2022
2023 See L</Deprecated low-level encryption functions>.
2024 The Algorithms "RC2", "RC4" and "RC5" have been moved to the L<Legacy Provider|/Legacy Algorithms>.
2025
2026 =item *
2027
2028 RIPEMD160(), RIPEMD160_Init(), RIPEMD160_Update(), RIPEMD160_Final(),
2029 RIPEMD160_Transform()
2030
2031 See L</Deprecated low-level digest functions>.
2032 The RIPE algorithm has been moved to the L<Legacy Provider|/Legacy Algorithms>.
2033
2034 =item *
2035
2036 RSA_bits(), RSA_security_bits(), RSA_size()
2037
2038 Use L<EVP_PKEY_get_bits(3)>, L<EVP_PKEY_get_security_bits(3)> and
2039 L<EVP_PKEY_get_size(3)>.
2040
2041 =item *
2042
2043 RSA_check_key(), RSA_check_key_ex()
2044
2045 See L</Deprecated low-level validation functions>
2046
2047 =item *
2048
2049 RSA_clear_flags(), RSA_flags(), RSA_set_flags(), RSA_test_flags(),
2050 RSA_setup_blinding(), RSA_blinding_off(), RSA_blinding_on()
2051
2052 All of these RSA flags have been deprecated without replacement:
2053
2054 B<RSA_FLAG_BLINDING>, B<RSA_FLAG_CACHE_PRIVATE>, B<RSA_FLAG_CACHE_PUBLIC>,
2055 B<RSA_FLAG_EXT_PKEY>, B<RSA_FLAG_NO_BLINDING>, B<RSA_FLAG_THREAD_SAFE>
2056 B<RSA_METHOD_FLAG_NO_CHECK>
2057
2058 =item *
2059
2060 RSA_generate_key_ex(), RSA_generate_multi_prime_key()
2061
2062 See L</Deprecated low-level key generation functions>.
2063
2064 =item *
2065
2066 RSA_get0_engine()
2067
2068 See L</Providers are a replacement for engines and low-level method overrides>
2069
2070 =item *
2071
2072 RSA_get0_crt_params(), RSA_get0_d(), RSA_get0_dmp1(), RSA_get0_dmq1(),
2073 RSA_get0_e(), RSA_get0_factors(), RSA_get0_iqmp(), RSA_get0_key(),
2074 RSA_get0_multi_prime_crt_params(), RSA_get0_multi_prime_factors(), RSA_get0_n(),
2075 RSA_get0_p(), RSA_get0_pss_params(), RSA_get0_q(),
2076 RSA_get_multi_prime_extra_count()
2077
2078 See L</Deprecated low-level key parameter getters>
2079
2080 =item *
2081
2082 RSA_new(), RSA_free(), RSA_up_ref()
2083
2084 See L</Deprecated low-level object creation>.
2085
2086 =item *
2087
2088 RSA_get_default_method(), RSA_get_ex_data and RSA_get_method()
2089
2090 See L</Providers are a replacement for engines and low-level method overrides>.
2091
2092 =item *
2093
2094 RSA_get_version()
2095
2096 There is no replacement.
2097
2098 =item *
2099
2100 B<RSA_meth_*()>, RSA_new_method(), RSA_null_method and RSA_PKCS1_OpenSSL()
2101
2102 See L</Providers are a replacement for engines and low-level method overrides>.
2103
2104 =item *
2105
2106 B<RSA_padding_add_*()>, B<RSA_padding_check_*()>
2107
2108 See L</Deprecated low-level signing functions> and
2109 L</Deprecated low-level encryption functions>.
2110
2111 =item *
2112
2113 RSA_print(), RSA_print_fp()
2114
2115 See L</Deprecated low-level key printing functions>
2116
2117 =item *
2118
2119 RSA_public_encrypt(), RSA_private_decrypt()
2120
2121 See L</Deprecated low-level encryption functions>
2122
2123 =item *
2124
2125 RSA_private_encrypt(), RSA_public_decrypt()
2126
2127 This is equivalent to doing sign and verify recover operations (with a padding
2128 mode of none). See L</Deprecated low-level signing functions>.
2129
2130 =item *
2131
2132 RSAPrivateKey_dup(), RSAPublicKey_dup()
2133
2134 There is no direct replacement. Applications may use L<EVP_PKEY_dup(3)>.
2135
2136 =item *
2137
2138 RSAPublicKey_it(), RSAPrivateKey_it()
2139
2140 See L</Deprecated low-level key reading and writing functions>
2141
2142 =item *
2143
2144 RSA_set0_crt_params(), RSA_set0_factors(), RSA_set0_key(),
2145 RSA_set0_multi_prime_params()
2146
2147 See L</Deprecated low-level key parameter setters>.
2148
2149 =item *
2150
2151 RSA_set_default_method(), RSA_set_method(), RSA_set_ex_data()
2152
2153 See L</Providers are a replacement for engines and low-level method overrides>
2154
2155 =item *
2156
2157 RSA_sign(), RSA_sign_ASN1_OCTET_STRING(), RSA_verify(),
2158 RSA_verify_ASN1_OCTET_STRING(), RSA_verify_PKCS1_PSS(),
2159 RSA_verify_PKCS1_PSS_mgf1()
2160
2161 See L</Deprecated low-level signing functions>.
2162
2163 =item *
2164
2165 RSA_X931_derive_ex(), RSA_X931_generate_key_ex(), RSA_X931_hash_id()
2166
2167 There are no replacements for these functions.
2168 X931 padding can be set using L<EVP_SIGNATURE-RSA(7)/Signature Parameters>.
2169 See B<OSSL_SIGNATURE_PARAM_PAD_MODE>.
2170
2171 =item *
2172
2173 SEED_encrypt(), SEED_decrypt(), SEED_set_key(), SEED_cbc_encrypt(),
2174 SEED_cfb128_encrypt(), SEED_ecb_encrypt(), SEED_ofb128_encrypt()
2175
2176 See L</Deprecated low-level encryption functions>.
2177 The SEED algorithm has been moved to the L<Legacy Provider|/Legacy Algorithms>.
2178
2179 =item *
2180
2181 SHA1_Init(), SHA1_Update(), SHA1_Final(), SHA1_Transform(),
2182 SHA224_Init(), SHA224_Update(), SHA224_Final(),
2183 SHA256_Init(), SHA256_Update(), SHA256_Final(), SHA256_Transform(),
2184 SHA384_Init(), SHA384_Update(), SHA384_Final(),
2185 SHA512_Init(), SHA512_Update(), SHA512_Final(), SHA512_Transform()
2186
2187 See L</Deprecated low-level digest functions>.
2188
2189 =item *
2190
2191 SRP_Calc_A(), SRP_Calc_B(), SRP_Calc_client_key(), SRP_Calc_server_key(),
2192 SRP_Calc_u(), SRP_Calc_x(), SRP_check_known_gN_param(), SRP_create_verifier(),
2193 SRP_create_verifier_BN(), SRP_get_default_gN(), SRP_user_pwd_free(), SRP_user_pwd_new(),
2194 SRP_user_pwd_set0_sv(), SRP_user_pwd_set1_ids(), SRP_user_pwd_set_gN(),
2195 SRP_VBASE_add0_user(), SRP_VBASE_free(), SRP_VBASE_get1_by_user(), SRP_VBASE_init(),
2196 SRP_VBASE_new(), SRP_Verify_A_mod_N(), SRP_Verify_B_mod_N()
2197
2198 There are no replacements for the SRP functions.
2199
2200 =item *
2201
2202 SSL_CTX_set_tmp_dh_callback(), SSL_set_tmp_dh_callback(),
2203 SSL_CTX_set_tmp_dh(), SSL_set_tmp_dh()
2204
2205 These are used to set the Diffie-Hellman (DH) parameters that are to be used by
2206 servers requiring ephemeral DH keys. Instead applications should consider using
2207 the built-in DH parameters that are available by calling L<SSL_CTX_set_dh_auto(3)>
2208 or L<SSL_set_dh_auto(3)>. If custom parameters are necessary then applications can
2209 use the alternative functions L<SSL_CTX_set0_tmp_dh_pkey(3)> and
2210 L<SSL_set0_tmp_dh_pkey(3)>. There is no direct replacement for the "callback"
2211 functions. The callback was originally useful in order to have different
2212 parameters for export and non-export ciphersuites. Export ciphersuites are no
2213 longer supported by OpenSSL. Use of the callback functions should be replaced
2214 by one of the other methods described above.
2215
2216 =item *
2217
2218 SSL_CTX_set_tlsext_ticket_key_cb()
2219
2220 Use the new L<SSL_CTX_set_tlsext_ticket_key_evp_cb(3)> function instead.
2221
2222 =item *
2223
2224 WHIRLPOOL(), WHIRLPOOL_Init(), WHIRLPOOL_Update(), WHIRLPOOL_Final(),
2225 WHIRLPOOL_BitUpdate()
2226
2227 See L</Deprecated low-level digest functions>.
2228 The Whirlpool algorithm has been moved to the L<Legacy Provider|/Legacy Algorithms>.
2229
2230 =item *
2231
2232 X509_certificate_type()
2233
2234 This was an undocumented function. Applications can use L<X509_get0_pubkey(3)>
2235 and L<X509_get0_signature(3)> instead.
2236
2237 =item *
2238
2239 X509_http_nbio(), X509_CRL_http_nbio()
2240
2241 Use L<X509_load_http(3)> and L<X509_CRL_load_http(3)> instead.
2242
2243 =back
2244
2245 =head3 NID handling for provided keys and algorithms
2246
2247 The following functions for NID (numeric id) handling have changed semantics.
2248
2249 =over 4
2250
2251 =item *
2252
2253 EVP_PKEY_id(), EVP_PKEY_get_id()
2254
2255 This function was previously used to reliably return the NID of
2256 an EVP_PKEY object, e.g., to look up the name of the algorithm of
2257 such EVP_PKEY by calling L<OBJ_nid2sn(3)>. With the introduction
2258 of L<provider(7)>s EVP_PKEY_id() or its new equivalent
2259 L<EVP_PKEY_get_id(3)> might now also return the value -1
2260 (B<EVP_PKEY_KEYMGMT>) indicating the use of a provider to
2261 implement the EVP_PKEY object. Therefore, the use of
2262 L<EVP_PKEY_get0_type_name(3)> is recommended for retrieving
2263 the name of the EVP_PKEY algorithm.
2264
2265 =back
2266
2267 =head2 Using the FIPS Module in applications
2268
2269 See L<fips_module(7)> and L<OSSL_PROVIDER-FIPS(7)> for details.
2270
2271 =head2 OpenSSL command line application changes
2272
2273 =head3 New applications
2274
2275 L<B<openssl kdf>|openssl-kdf(1)> uses the new L<EVP_KDF(3)> API.
2276 L<B<openssl kdf>|openssl-mac(1)> uses the new L<EVP_MAC(3)> API.
2277
2278 =head3 Added options
2279
2280 B<-provider_path> and B<-provider> are available to all apps and can be used
2281 multiple times to load any providers, such as the 'legacy' provider or third
2282 party providers. If used then the 'default' provider would also need to be
2283 specified if required. The B<-provider_path> must be specified before the
2284 B<-provider> option.
2285
2286 The B<list> app has many new options. See L<openssl-list(1)> for more
2287 information.
2288
2289 B<-crl_lastupdate> and B<-crl_nextupdate> used by B<openssl ca> allows
2290 explicit setting of fields in the generated CRL.
2291
2292 =head3 Removed options
2293
2294 Interactive mode is not longer available.
2295
2296 The B<-crypt> option used by B<openssl passwd>.
2297 The B<-c> option used by B<openssl x509>, B<openssl dhparam>,
2298 B<openssl dsaparam>, and B<openssl ecparam>.
2299
2300 =head3 Other Changes
2301
2302 The output of Command line applications may have minor changes.
2303 These are primarily changes in capitalisation and white space. However, in some
2304 cases, there are additional differences.
2305 For example, the DH parameters output from B<openssl dhparam> now lists 'P',
2306 'Q', 'G' and 'pcounter' instead of 'prime', 'generator', 'subgroup order' and
2307 'counter' respectively.
2308
2309 The B<openssl> commands that read keys, certificates, and CRLs now
2310 automatically detect the PEM or DER format of the input files so it is not
2311 necessary to explicitly specify the input format anymore. However if the
2312 input format option is used the specified format will be required.
2313
2314 B<openssl speed> no longer uses low-level API calls.
2315 This implies some of the performance numbers might not be comparable with the
2316 previous releases due to higher overhead. This applies particularly to
2317 measuring performance on smaller data chunks.
2318
2319 b<openssl dhparam>, B<openssl dsa>, B<openssl gendsa>, B<openssl dsaparam>,
2320 B<openssl genrsa> and B<openssl rsa> have been modified to use PKEY APIs.
2321 B<openssl genrsa> and B<openssl rsa> now write PKCS #8 keys by default.
2322
2323 =head3 Default settings
2324
2325 "SHA256" is now the default digest for TS query used by B<openssl ts>.
2326
2327 =head3 Deprecated apps
2328
2329 B<openssl rsautl> is deprecated, use B<openssl pkeyutl> instead.
2330 B<openssl dhparam>, B<openssl dsa>, B<openssl gendsa>, B<openssl dsaparam>,
2331 B<openssl genrsa>, B<openssl rsa>, B<openssl genrsa> and B<openssl rsa> are
2332 now in maintenance mode and no new features will be added to them.
2333
2334 =head2 TLS Changes
2335
2336 =over 4
2337
2338 =item *
2339
2340 TLS 1.3 FFDHE key exchange support added
2341
2342 This uses DH safe prime named groups.
2343
2344 =item *
2345
2346 Support for fully "pluggable" TLSv1.3 groups.
2347
2348 This means that providers may supply their own group implementations (using
2349 either the "key exchange" or the "key encapsulation" methods) which will
2350 automatically be detected and used by libssl.
2351
2352 =item *
2353
2354 SSL and SSL_CTX options are now 64 bit instead of 32 bit.
2355
2356 The signatures of the functions to get and set options on SSL and
2357 SSL_CTX objects changed from "unsigned long" to "uint64_t" type.
2358
2359 This may require source code changes. For example it is no longer possible
2360 to use the B<SSL_OP_> macro values in preprocessor C<#if> conditions.
2361 However it is still possible to test whether these macros are defined or not.
2362
2363 See L<SSL_CTX_get_options(3)>, L<SSL_CTX_set_options(3)>,
2364 L<SSL_get_options(3)> and L<SSL_set_options(3)>.
2365
2366 =item *
2367
2368 SSL_set1_host() and SSL_add1_host() Changes
2369
2370 These functions now take IP literal addresses as well as actual hostnames.
2371
2372 =item *
2373
2374 Added SSL option SSL_OP_CLEANSE_PLAINTEXT
2375
2376 If the option is set, openssl cleanses (zeroizes) plaintext bytes from
2377 internal buffers after delivering them to the application. Note,
2378 the application is still responsible for cleansing other copies
2379 (e.g.: data received by L<SSL_read(3)>).
2380
2381 =item *
2382
2383 Client-initiated renegotiation is disabled by default.
2384
2385 To allow it, use the B<-client_renegotiation> option,
2386 the B<SSL_OP_ALLOW_CLIENT_RENEGOTIATION> flag, or the C<ClientRenegotiation>
2387 config parameter as appropriate.
2388
2389 =item *
2390
2391 Secure renegotiation is now required by default for TLS connections
2392
2393 Support for RFC 5746 secure renegotiation is now required by default for
2394 SSL or TLS connections to succeed. Applications that require the ability
2395 to connect to legacy peers will need to explicitly set
2396 SSL_OP_LEGACY_SERVER_CONNECT. Accordingly, SSL_OP_LEGACY_SERVER_CONNECT
2397 is no longer set as part of SSL_OP_ALL.
2398
2399 =item *
2400
2401 Combining the Configure options no-ec and no-dh no longer disables TLSv1.3
2402
2403 Typically if OpenSSL has no EC or DH algorithms then it cannot support
2404 connections with TLSv1.3. However OpenSSL now supports "pluggable" groups
2405 through providers. Therefore third party providers may supply group
2406 implementations even where there are no built-in ones. Attempting to create
2407 TLS connections in such a build without also disabling TLSv1.3 at run time or
2408 using third party provider groups may result in handshake failures. TLSv1.3
2409 can be disabled at compile time using the "no-tls1_3" Configure option.
2410
2411 =item *
2412
2413 SSL_CTX_set_ciphersuites() and SSL_set_ciphersuites() changes.
2414
2415 The methods now ignore unknown ciphers.
2416
2417 =item *
2418
2419 Security callback change.
2420
2421 The security callback, which can be customised by application code, supports
2422 the security operation SSL_SECOP_TMP_DH. This is defined to take an EVP_PKEY
2423 in the "other" parameter. In most places this is what is passed. All these
2424 places occur server side. However there was one client side call of this
2425 security operation and it passed a DH object instead. This is incorrect
2426 according to the definition of SSL_SECOP_TMP_DH, and is inconsistent with all
2427 of the other locations. Therefore this client side call has been changed to
2428 pass an EVP_PKEY instead.
2429
2430 =item *
2431
2432 New SSL option SSL_OP_IGNORE_UNEXPECTED_EOF
2433
2434 The SSL option SSL_OP_IGNORE_UNEXPECTED_EOF is introduced. If that option
2435 is set, an unexpected EOF is ignored, it pretends a close notify was received
2436 instead and so the returned error becomes SSL_ERROR_ZERO_RETURN.
2437
2438 =item *
2439
2440 The security strength of SHA1 and MD5 based signatures in TLS has been reduced.
2441
2442 This results in SSL 3, TLS 1.0, TLS 1.1 and DTLS 1.0 no longer
2443 working at the default security level of 1 and instead requires security
2444 level 0. The security level can be changed either using the cipher string
2445 with C<@SECLEVEL>, or calling L<SSL_CTX_set_security_level(3)>. This also means
2446 that where the signature algorithms extension is missing from a ClientHello
2447 then the handshake will fail in TLS 1.2 at security level 1. This is because,
2448 although this extension is optional, failing to provide one means that
2449 OpenSSL will fallback to a default set of signature algorithms. This default
2450 set requires the availability of SHA1.
2451
2452 =item *
2453
2454 X509 certificates signed using SHA1 are no longer allowed at security level 1 and above.
2455
2456 In TLS/SSL the default security level is 1. It can be set either using the cipher
2457 string with C<@SECLEVEL>, or calling L<SSL_CTX_set_security_level(3)>. If the
2458 leaf certificate is signed with SHA-1, a call to L<SSL_CTX_use_certificate(3)>
2459 will fail if the security level is not lowered first.
2460 Outside TLS/SSL, the default security level is -1 (effectively 0). It can
2461 be set using L<X509_VERIFY_PARAM_set_auth_level(3)> or using the B<-auth_level>
2462 options of the commands.
2463
2464 =back
2465
2466 =head1 SEE ALSO
2467
2468 L<fips_module(7)>
2469
2470 =head1 HISTORY
2471
2472 The migration guide was created for OpenSSL 3.0.
2473
2474 =head1 COPYRIGHT
2475
2476 Copyright 2021-2022 The OpenSSL Project Authors. All Rights Reserved.
2477
2478 Licensed under the Apache License 2.0 (the "License"). You may not use
2479 this file except in compliance with the License. You can obtain a copy
2480 in the file LICENSE in the source distribution or at
2481 L<https://www.openssl.org/source/license.html>.
2482
2483 =cut