1=pod 2 3=head1 NAME 4 5EVP_CIPHER_fetch, 6EVP_CIPHER_up_ref, 7EVP_CIPHER_free, 8EVP_CIPHER_CTX_new, 9EVP_CIPHER_CTX_reset, 10EVP_CIPHER_CTX_free, 11EVP_CIPHER_CTX_dup, 12EVP_CIPHER_CTX_copy, 13EVP_EncryptInit_ex, 14EVP_EncryptInit_ex2, 15EVP_EncryptUpdate, 16EVP_EncryptFinal_ex, 17EVP_DecryptInit_ex, 18EVP_DecryptInit_ex2, 19EVP_DecryptUpdate, 20EVP_DecryptFinal_ex, 21EVP_CipherInit_ex, 22EVP_CipherInit_ex2, 23EVP_CipherInit_SKEY, 24EVP_CipherUpdate, 25EVP_CipherFinal_ex, 26EVP_CIPHER_CTX_set_key_length, 27EVP_CIPHER_CTX_ctrl, 28EVP_EncryptInit, 29EVP_EncryptFinal, 30EVP_DecryptInit, 31EVP_DecryptFinal, 32EVP_CipherInit, 33EVP_CipherFinal, 34EVP_Cipher, 35EVP_CIPHER_can_pipeline, 36EVP_CipherPipelineEncryptInit, 37EVP_CipherPipelineDecryptInit, 38EVP_CipherPipelineUpdate, 39EVP_CipherPipelineFinal, 40EVP_get_cipherbyname, 41EVP_get_cipherbynid, 42EVP_get_cipherbyobj, 43EVP_CIPHER_is_a, 44EVP_CIPHER_get0_name, 45EVP_CIPHER_get0_description, 46EVP_CIPHER_names_do_all, 47EVP_CIPHER_get0_provider, 48EVP_CIPHER_get_nid, 49EVP_CIPHER_get_params, 50EVP_CIPHER_gettable_params, 51EVP_CIPHER_get_block_size, 52EVP_CIPHER_get_key_length, 53EVP_CIPHER_get_iv_length, 54EVP_CIPHER_get_flags, 55EVP_CIPHER_get_mode, 56EVP_CIPHER_get_type, 57EVP_CIPHER_CTX_cipher, 58EVP_CIPHER_CTX_get0_cipher, 59EVP_CIPHER_CTX_get1_cipher, 60EVP_CIPHER_CTX_get0_name, 61EVP_CIPHER_CTX_get_nid, 62EVP_CIPHER_CTX_get_params, 63EVP_CIPHER_gettable_ctx_params, 64EVP_CIPHER_CTX_gettable_params, 65EVP_CIPHER_CTX_set_params, 66EVP_CIPHER_settable_ctx_params, 67EVP_CIPHER_CTX_settable_params, 68EVP_CIPHER_CTX_get_block_size, 69EVP_CIPHER_CTX_get_key_length, 70EVP_CIPHER_CTX_get_iv_length, 71EVP_CIPHER_CTX_get_tag_length, 72EVP_CIPHER_CTX_flags, 73EVP_CIPHER_CTX_set_flags, 74EVP_CIPHER_CTX_clear_flags, 75EVP_CIPHER_CTX_test_flags, 76EVP_CIPHER_CTX_get_type, 77EVP_CIPHER_CTX_get_mode, 78EVP_CIPHER_CTX_get_num, 79EVP_CIPHER_CTX_set_num, 80EVP_CIPHER_CTX_is_encrypting, 81EVP_CIPHER_param_to_asn1, 82EVP_CIPHER_asn1_to_param, 83EVP_CIPHER_CTX_set_padding, 84EVP_enc_null, 85EVP_CIPHER_do_all_provided, 86EVP_CIPHER_nid, 87EVP_CIPHER_name, 88EVP_CIPHER_block_size, 89EVP_CIPHER_key_length, 90EVP_CIPHER_iv_length, 91EVP_CIPHER_flags, 92EVP_CIPHER_mode, 93EVP_CIPHER_type, 94EVP_CIPHER_CTX_encrypting, 95EVP_CIPHER_CTX_nid, 96EVP_CIPHER_CTX_block_size, 97EVP_CIPHER_CTX_key_length, 98EVP_CIPHER_CTX_iv_length, 99EVP_CIPHER_CTX_tag_length, 100EVP_CIPHER_CTX_num, 101EVP_CIPHER_CTX_type, 102EVP_CIPHER_CTX_mode 103- EVP cipher routines 104 105=head1 SYNOPSIS 106 107=for openssl generic 108 109 #include <openssl/evp.h> 110 111 EVP_CIPHER *EVP_CIPHER_fetch(OSSL_LIB_CTX *ctx, const char *algorithm, 112 const char *properties); 113 int EVP_CIPHER_up_ref(EVP_CIPHER *cipher); 114 void EVP_CIPHER_free(EVP_CIPHER *cipher); 115 EVP_CIPHER_CTX *EVP_CIPHER_CTX_new(void); 116 int EVP_CIPHER_CTX_reset(EVP_CIPHER_CTX *ctx); 117 void EVP_CIPHER_CTX_free(EVP_CIPHER_CTX *ctx); 118 EVP_CIPHER_CTX *EVP_CIPHER_CTX_dup(const EVP_CIPHER_CTX *in); 119 int EVP_CIPHER_CTX_copy(EVP_CIPHER_CTX *out, const EVP_CIPHER_CTX *in); 120 121 int EVP_EncryptInit_ex(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 122 ENGINE *impl, const unsigned char *key, const unsigned char *iv); 123 int EVP_EncryptInit_ex2(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 124 const unsigned char *key, const unsigned char *iv, 125 const OSSL_PARAM params[]); 126 int EVP_EncryptUpdate(EVP_CIPHER_CTX *ctx, unsigned char *out, 127 int *outl, const unsigned char *in, int inl); 128 int EVP_EncryptFinal_ex(EVP_CIPHER_CTX *ctx, unsigned char *out, int *outl); 129 130 int EVP_DecryptInit_ex(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 131 ENGINE *impl, const unsigned char *key, const unsigned char *iv); 132 int EVP_DecryptInit_ex2(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 133 const unsigned char *key, const unsigned char *iv, 134 const OSSL_PARAM params[]); 135 int EVP_DecryptUpdate(EVP_CIPHER_CTX *ctx, unsigned char *out, 136 int *outl, const unsigned char *in, int inl); 137 int EVP_DecryptFinal_ex(EVP_CIPHER_CTX *ctx, unsigned char *outm, int *outl); 138 139 int EVP_CipherInit_ex(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 140 ENGINE *impl, const unsigned char *key, const unsigned char *iv, int enc); 141 int EVP_CipherInit_ex2(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 142 const unsigned char *key, const unsigned char *iv, 143 int enc, const OSSL_PARAM params[]); 144 int EVP_CipherInit_SKEY(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *cipher, 145 EVP_SKEY *skey, const unsigned char *iv, size_t iv_len, 146 int enc, const OSSL_PARAM params[]); 147 int EVP_CipherUpdate(EVP_CIPHER_CTX *ctx, unsigned char *out, 148 int *outl, const unsigned char *in, int inl); 149 int EVP_CipherFinal_ex(EVP_CIPHER_CTX *ctx, unsigned char *outm, int *outl); 150 151 int EVP_EncryptInit(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 152 const unsigned char *key, const unsigned char *iv); 153 int EVP_EncryptFinal(EVP_CIPHER_CTX *ctx, unsigned char *out, int *outl); 154 155 int EVP_DecryptInit(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 156 const unsigned char *key, const unsigned char *iv); 157 int EVP_DecryptFinal(EVP_CIPHER_CTX *ctx, unsigned char *outm, int *outl); 158 159 int EVP_CipherInit(EVP_CIPHER_CTX *ctx, const EVP_CIPHER *type, 160 const unsigned char *key, const unsigned char *iv, int enc); 161 int EVP_CipherFinal(EVP_CIPHER_CTX *ctx, unsigned char *outm, int *outl); 162 163 int EVP_Cipher(EVP_CIPHER_CTX *ctx, unsigned char *out, 164 const unsigned char *in, unsigned int inl); 165 166 int EVP_CIPHER_can_pipeline(const EVP_CIPHER *cipher, int enc); 167 int EVP_CipherPipelineEncryptInit(EVP_CIPHER_CTX *ctx, 168 const EVP_CIPHER *cipher, 169 const unsigned char *key, size_t keylen, 170 size_t numpipes, 171 const unsigned char **iv, size_t ivlen); 172 int EVP_CipherPipelineDecryptInit(EVP_CIPHER_CTX *ctx, 173 const EVP_CIPHER *cipher, 174 const unsigned char *key, size_t keylen, 175 size_t numpipes, 176 const unsigned char **iv, size_t ivlen); 177 int EVP_CipherPipelineUpdate(EVP_CIPHER_CTX *ctx, 178 unsigned char **out, size_t *outl, 179 const size_t *outsize, 180 const unsigned char **in, const size_t *inl); 181 int EVP_CipherPipelineFinal(EVP_CIPHER_CTX *ctx, 182 unsigned char **outm, size_t *outl, 183 const size_t *outsize); 184 185 int EVP_CIPHER_CTX_set_padding(EVP_CIPHER_CTX *x, int padding); 186 int EVP_CIPHER_CTX_set_key_length(EVP_CIPHER_CTX *x, int keylen); 187 int EVP_CIPHER_CTX_ctrl(EVP_CIPHER_CTX *ctx, int cmd, int p1, void *p2); 188 int EVP_CIPHER_CTX_rand_key(EVP_CIPHER_CTX *ctx, unsigned char *key); 189 void EVP_CIPHER_CTX_set_flags(EVP_CIPHER_CTX *ctx, int flags); 190 void EVP_CIPHER_CTX_clear_flags(EVP_CIPHER_CTX *ctx, int flags); 191 int EVP_CIPHER_CTX_test_flags(const EVP_CIPHER_CTX *ctx, int flags); 192 193 const EVP_CIPHER *EVP_get_cipherbyname(const char *name); 194 const EVP_CIPHER *EVP_get_cipherbynid(int nid); 195 const EVP_CIPHER *EVP_get_cipherbyobj(const ASN1_OBJECT *a); 196 197 int EVP_CIPHER_get_nid(const EVP_CIPHER *e); 198 int EVP_CIPHER_is_a(const EVP_CIPHER *cipher, const char *name); 199 int EVP_CIPHER_names_do_all(const EVP_CIPHER *cipher, 200 void (*fn)(const char *name, void *data), 201 void *data); 202 const char *EVP_CIPHER_get0_name(const EVP_CIPHER *cipher); 203 const char *EVP_CIPHER_get0_description(const EVP_CIPHER *cipher); 204 const OSSL_PROVIDER *EVP_CIPHER_get0_provider(const EVP_CIPHER *cipher); 205 int EVP_CIPHER_get_block_size(const EVP_CIPHER *e); 206 int EVP_CIPHER_get_key_length(const EVP_CIPHER *e); 207 int EVP_CIPHER_get_iv_length(const EVP_CIPHER *e); 208 unsigned long EVP_CIPHER_get_flags(const EVP_CIPHER *e); 209 unsigned long EVP_CIPHER_get_mode(const EVP_CIPHER *e); 210 int EVP_CIPHER_get_type(const EVP_CIPHER *cipher); 211 212 const EVP_CIPHER *EVP_CIPHER_CTX_get0_cipher(const EVP_CIPHER_CTX *ctx); 213 EVP_CIPHER *EVP_CIPHER_CTX_get1_cipher(const EVP_CIPHER_CTX *ctx); 214 int EVP_CIPHER_CTX_get_nid(const EVP_CIPHER_CTX *ctx); 215 const char *EVP_CIPHER_CTX_get0_name(const EVP_CIPHER_CTX *ctx); 216 217 int EVP_CIPHER_get_params(EVP_CIPHER *cipher, OSSL_PARAM params[]); 218 int EVP_CIPHER_CTX_set_params(EVP_CIPHER_CTX *ctx, const OSSL_PARAM params[]); 219 int EVP_CIPHER_CTX_get_params(EVP_CIPHER_CTX *ctx, OSSL_PARAM params[]); 220 const OSSL_PARAM *EVP_CIPHER_gettable_params(const EVP_CIPHER *cipher); 221 const OSSL_PARAM *EVP_CIPHER_settable_ctx_params(const EVP_CIPHER *cipher); 222 const OSSL_PARAM *EVP_CIPHER_gettable_ctx_params(const EVP_CIPHER *cipher); 223 const OSSL_PARAM *EVP_CIPHER_CTX_settable_params(EVP_CIPHER_CTX *ctx); 224 const OSSL_PARAM *EVP_CIPHER_CTX_gettable_params(EVP_CIPHER_CTX *ctx); 225 int EVP_CIPHER_CTX_get_block_size(const EVP_CIPHER_CTX *ctx); 226 int EVP_CIPHER_CTX_get_key_length(const EVP_CIPHER_CTX *ctx); 227 int EVP_CIPHER_CTX_get_iv_length(const EVP_CIPHER_CTX *ctx); 228 int EVP_CIPHER_CTX_get_tag_length(const EVP_CIPHER_CTX *ctx); 229 int EVP_CIPHER_CTX_get_type(const EVP_CIPHER_CTX *ctx); 230 int EVP_CIPHER_CTX_get_mode(const EVP_CIPHER_CTX *ctx); 231 int EVP_CIPHER_CTX_get_num(const EVP_CIPHER_CTX *ctx); 232 int EVP_CIPHER_CTX_set_num(EVP_CIPHER_CTX *ctx, int num); 233 int EVP_CIPHER_CTX_is_encrypting(const EVP_CIPHER_CTX *ctx); 234 235 int EVP_CIPHER_param_to_asn1(EVP_CIPHER_CTX *c, ASN1_TYPE *type); 236 int EVP_CIPHER_asn1_to_param(EVP_CIPHER_CTX *c, ASN1_TYPE *type); 237 238 void EVP_CIPHER_do_all_provided(OSSL_LIB_CTX *libctx, 239 void (*fn)(EVP_CIPHER *cipher, void *arg), 240 void *arg); 241 242 #define EVP_CIPHER_nid EVP_CIPHER_get_nid 243 #define EVP_CIPHER_name EVP_CIPHER_get0_name 244 #define EVP_CIPHER_block_size EVP_CIPHER_get_block_size 245 #define EVP_CIPHER_key_length EVP_CIPHER_get_key_length 246 #define EVP_CIPHER_iv_length EVP_CIPHER_get_iv_length 247 #define EVP_CIPHER_flags EVP_CIPHER_get_flags 248 #define EVP_CIPHER_mode EVP_CIPHER_get_mode 249 #define EVP_CIPHER_type EVP_CIPHER_get_type 250 #define EVP_CIPHER_CTX_encrypting EVP_CIPHER_CTX_is_encrypting 251 #define EVP_CIPHER_CTX_nid EVP_CIPHER_CTX_get_nid 252 #define EVP_CIPHER_CTX_block_size EVP_CIPHER_CTX_get_block_size 253 #define EVP_CIPHER_CTX_key_length EVP_CIPHER_CTX_get_key_length 254 #define EVP_CIPHER_CTX_iv_length EVP_CIPHER_CTX_get_iv_length 255 #define EVP_CIPHER_CTX_tag_length EVP_CIPHER_CTX_get_tag_length 256 #define EVP_CIPHER_CTX_num EVP_CIPHER_CTX_get_num 257 #define EVP_CIPHER_CTX_type EVP_CIPHER_CTX_get_type 258 #define EVP_CIPHER_CTX_mode EVP_CIPHER_CTX_get_mode 259 260The following function has been deprecated since OpenSSL 3.0, and can be 261hidden entirely by defining B<OPENSSL_API_COMPAT> with a suitable version value, 262see L<openssl_user_macros(7)>: 263 264 const EVP_CIPHER *EVP_CIPHER_CTX_cipher(const EVP_CIPHER_CTX *ctx); 265 266The following function has been deprecated since OpenSSL 1.1.0, and can be 267hidden entirely by defining B<OPENSSL_API_COMPAT> with a suitable version value, 268see L<openssl_user_macros(7)>: 269 270 int EVP_CIPHER_CTX_flags(const EVP_CIPHER_CTX *ctx); 271 272=head1 DESCRIPTION 273 274The EVP cipher routines are a high-level interface to certain 275symmetric ciphers. 276 277The B<EVP_CIPHER> type is a structure for cipher method implementation. 278 279=over 4 280 281=item EVP_CIPHER_fetch() 282 283Fetches the cipher implementation for the given I<algorithm> from any provider 284offering it, within the criteria given by the I<properties>. 285See L<crypto(7)/ALGORITHM FETCHING> for further information. 286 287The returned value must eventually be freed with EVP_CIPHER_free(). 288 289Fetched B<EVP_CIPHER> structures are reference counted. 290 291=item EVP_CIPHER_up_ref() 292 293Increments the reference count for an B<EVP_CIPHER> structure. 294 295=item EVP_CIPHER_free() 296 297Decrements the reference count for the fetched B<EVP_CIPHER> structure. 298If the reference count drops to 0 then the structure is freed. 299If the argument is NULL, nothing is done. 300 301=item EVP_CIPHER_CTX_new() 302 303Allocates and returns a cipher context. 304 305=item EVP_CIPHER_CTX_free() 306 307Clears all information from a cipher context and frees any allocated memory 308associated with it, including I<ctx> itself. This function should be called 309after all operations using a cipher are complete so sensitive information does 310not remain in memory. If the argument is NULL, nothing is done. 311 312=item EVP_CIPHER_CTX_dup() 313 314Can be used to duplicate the cipher state from I<in>. This is useful 315to avoid multiple EVP_CIPHER_fetch() calls or if large amounts of data are to be 316fed which only differ in the last few bytes. 317 318=item EVP_CIPHER_CTX_copy() 319 320Can be used to copy the cipher state from I<in> to I<out>. 321 322=item EVP_CIPHER_CTX_ctrl() 323 324I<This is a legacy method.> EVP_CIPHER_CTX_set_params() and 325EVP_CIPHER_CTX_get_params() is the mechanism that should be used to set and get 326parameters that are used by providers. 327 328Performs cipher-specific control actions on context I<ctx>. The control command 329is indicated in I<cmd> and any additional arguments in I<p1> and I<p2>. 330EVP_CIPHER_CTX_ctrl() must be called after EVP_CipherInit_ex2(). Other restrictions 331may apply depending on the control type and cipher implementation. 332 333If this function happens to be used with a fetched B<EVP_CIPHER>, it will 334translate the controls that are known to OpenSSL into L<OSSL_PARAM(3)> 335parameters with keys defined by OpenSSL and call EVP_CIPHER_CTX_get_params() or 336EVP_CIPHER_CTX_set_params() as is appropriate for each control command. 337 338See L</CONTROLS> below for more information, including what translations are 339being done. 340 341=item EVP_CIPHER_get_params() 342 343Retrieves the requested list of algorithm I<params> from a CIPHER I<cipher>. 344See L</PARAMETERS> below for more information. 345 346=item EVP_CIPHER_CTX_get_params() 347 348Retrieves the requested list of I<params> from CIPHER context I<ctx>. 349See L</PARAMETERS> below for more information. 350 351=item EVP_CIPHER_CTX_set_params() 352 353Sets the list of I<params> into a CIPHER context I<ctx>. 354See L</PARAMETERS> below for more information. 355 356=item EVP_CIPHER_gettable_params() 357 358Get a constant L<OSSL_PARAM(3)> array that describes the retrievable parameters 359that can be used with EVP_CIPHER_get_params(). 360 361=item EVP_CIPHER_gettable_ctx_params() and EVP_CIPHER_CTX_gettable_params() 362 363Get a constant L<OSSL_PARAM(3)> array that describes the retrievable parameters 364that can be used with EVP_CIPHER_CTX_get_params(). 365EVP_CIPHER_gettable_ctx_params() returns the parameters that can be retrieved 366from the algorithm, whereas EVP_CIPHER_CTX_gettable_params() returns the 367parameters that can be retrieved in the context's current state. 368 369=item EVP_CIPHER_settable_ctx_params() and EVP_CIPHER_CTX_settable_params() 370 371Get a constant L<OSSL_PARAM(3)> array that describes the settable parameters 372that can be used with EVP_CIPHER_CTX_set_params(). 373EVP_CIPHER_settable_ctx_params() returns the parameters that can be set from the 374algorithm, whereas EVP_CIPHER_CTX_settable_params() returns the parameters that 375can be set in the context's current state. 376 377=item EVP_EncryptInit_ex2() 378 379Sets up cipher context I<ctx> for encryption with cipher I<type>. I<ctx> B<MUST NOT> be NULL. 380I<type> is typically supplied by calling EVP_CIPHER_fetch(). I<type> may also be set 381using legacy functions such as EVP_aes_256_cbc(), but this is not recommended 382for new applications. I<key> is the symmetric key to use and I<iv> is the IV to 383use (if necessary), the actual number of bytes used for the key and IV depends 384on the cipher. The parameters I<params> will be set on the context after 385initialisation. It is possible to set all parameters to NULL except I<type> in 386an initial call and supply the remaining parameters in subsequent calls, all of 387which have I<type> set to NULL. This is done when the default cipher parameters 388are not appropriate. 389For B<EVP_CIPH_GCM_MODE> the IV will be generated internally if it is not 390specified. 391 392=item EVP_EncryptInit_ex() 393 394This legacy function is similar to EVP_EncryptInit_ex2() when I<impl> is NULL. 395The implementation of the I<type> from the I<impl> engine will be used if it 396exists. 397 398=item EVP_EncryptUpdate() 399 400Encrypts I<inl> bytes from the buffer I<in> and writes the encrypted version to 401I<out>. The pointers I<out> and I<in> may point to the same location, in which 402case the encryption will be done in-place. However, in-place encryption is 403guaranteed to work only if the encryption context (I<ctx>) has processed data in 404multiples of the block size. If the context contains an incomplete data block 405from previous operations, in-place encryption will fail. I<ctx> B<MUST NOT> be NULL. 406 407If I<out> and I<in> point to different locations, the two buffers must be 408disjoint, otherwise the operation might fail or the outcome might be undefined. 409 410This function can be called multiple times to encrypt successive blocks 411of data. The amount of data written depends on the block alignment of the 412encrypted data. 413For most ciphers and modes, the amount of data written can be anything 414from zero bytes to (inl + cipher_block_size - 1) bytes. 415For wrap cipher modes, the amount of data written can be anything 416from zero bytes to (inl rounded up to cipher_block_size + cipher_block_size) 417bytes. 418For stream ciphers, the amount of data written can be anything from zero 419bytes to inl bytes. 420Thus, the buffer pointed to by I<out> must contain sufficient room for the 421operation being performed. 422The actual number of bytes written is placed in I<outl>. 423 424If padding is enabled (the default) then EVP_EncryptFinal_ex() encrypts 425the "final" data, that is any data that remains in a partial block. 426It uses standard block padding (aka PKCS padding) as described in 427the NOTES section, below. The encrypted 428final data is written to I<out> which should have sufficient space for 429one cipher block. The number of bytes written is placed in I<outl>. After 430this function is called the encryption operation is finished and no further 431calls to EVP_EncryptUpdate() should be made. 432 433If padding is disabled then EVP_EncryptFinal_ex() will not encrypt any more 434data and it will return an error if any data remains in a partial block: 435that is if the total data length is not a multiple of the block size. 436 437=item EVP_DecryptInit_ex2(), EVP_DecryptInit_ex(), EVP_DecryptUpdate() 438and EVP_DecryptFinal_ex() 439 440These functions are the corresponding decryption operations. 441EVP_DecryptFinal() will return an error code if padding is enabled and the 442final block is not correctly formatted. The parameters and restrictions are 443identical to the encryption operations. I<ctx> B<MUST NOT> be NULL. 444 445=item EVP_CipherInit_ex2(), EVP_CipherInit_ex(), EVP_CipherUpdate() and 446EVP_CipherFinal_ex() 447 448These functions can be used for decryption or encryption. The operation 449performed depends on the value of the I<enc> parameter. It should be set to 1 450for encryption, 0 for decryption and -1 to leave the value unchanged 451(the actual value of 'enc' being supplied in a previous call). 452 453=item EVP_CipherInit_SKEY() 454 455This function is similar to EVP_CipherInit_ex2() but accepts a 456symmetric key object of type I<EVP_SKEY> as a key. 457 458=item EVP_CIPHER_CTX_reset() 459 460Clears all information from a cipher context and free up any allocated memory 461associated with it, except the I<ctx> itself. This function should be called 462anytime I<ctx> is reused by another 463EVP_CipherInit() / EVP_CipherUpdate() / EVP_CipherFinal() series of calls. 464 465=item EVP_EncryptInit(), EVP_DecryptInit() and EVP_CipherInit() 466 467Behave in a similar way to EVP_EncryptInit_ex(), EVP_DecryptInit_ex() and 468EVP_CipherInit_ex() except if the I<type> is not a fetched cipher they use the 469default implementation of the I<type>. 470 471=item EVP_EncryptFinal(), EVP_DecryptFinal() and EVP_CipherFinal() 472 473Identical to EVP_EncryptFinal_ex(), EVP_DecryptFinal_ex() and 474EVP_CipherFinal_ex(). In previous releases they also cleaned up 475the I<ctx>, but this is no longer done and EVP_CIPHER_CTX_cleanup() 476must be called to free any context resources. 477 478=item EVP_Cipher() 479 480Encrypts or decrypts a maximum I<inl> amount of bytes from I<in> and leaves the 481result in I<out>. 482 483For legacy ciphers - If the cipher doesn't have the flag 484B<EVP_CIPH_FLAG_CUSTOM_CIPHER> set, then I<inl> must be a multiple of 485EVP_CIPHER_get_block_size(). If it isn't, the result is undefined. If the cipher 486has that flag set, then I<inl> can be any size. 487 488Due to the constraints of the API contract of this function it shouldn't be used 489in applications, please consider using EVP_CipherUpdate() and 490EVP_CipherFinal_ex() instead. 491 492=item EVP_CIPHER_can_pipeline() 493 494This function checks if a B<EVP_CIPHER> fetched using EVP_CIPHER_fetch() supports 495cipher pipelining. If the cipher supports pipelining, it returns 1, otherwise 0. 496This function will return 0 for non-fetched ciphers such as EVP_aes_128_gcm(). 497There are currently no built-in ciphers that support pipelining. 498 499Cipher pipelining support allows an application to submit multiple chunks of 500data in one set of EVP_CipherUpdate()/EVP_CipherFinal calls, thereby allowing 501the provided implementation to take advantage of parallel computing. This is 502beneficial for hardware accelerators as pipeline amortizes the latency over 503multiple chunks. 504 505For non-fetched ciphers, EVP_CipherPipelineEncryptInit() or 506EVP_CipherPipelineDecryptInit() may be directly called, which will perform a 507fetch and return an error if a pipeline supported implementation is not found. 508 509=item EVP_CipherPipelineEncryptInit(), EVP_CipherPipelineDecryptInit(), EVP_CipherPipelineUpdate() and EVP_CipherPipelineFinal() 510 511These functions can be used to perform multiple encryption or decryption 512operations in parallel. EVP_CIPHER_can_pipeline() may be called to check if the 513cipher supports pipelining. These functions are analogous to 514EVP_EncryptInit_ex2(), EVP_DecryptInit_ex2(), EVP_CipherUpdate() and 515EVP_CipherFinal() but take an array of pointers for iv, input and output buffers. 516 517The I<key>, of length I<keylen>, is the symmetric key to use. The I<numpipes> 518parameter specifies the number of parallel operations to perform. The 519I<numpipes> cannot exceed B<EVP_MAX_PIPES>. The I<iv> parameter is an array of 520buffer pointers, containing IVs. The array size must be equal to I<numpipes>. 521The size of each IV buffer must be equal to I<ivlen>. When IV is not provided, 522I<iv> must be NULL, rather than an array of NULL pointers. The I<in> 523parameters takes an array of buffer pointers, each pointing to a buffer 524containing the input data. The buffers can be of different sizes. The I<inl> 525parameter is an array of size_t, each specifying the size of the corresponding 526input buffer. The I<out> and I<outm> parameters are arrays of buffer pointers, 527each pointing to a buffer where the output data will be written. The I<outsize> 528parameter is an array of size_t, each specifying the size of the corresponding 529output buffer. The I<outl> parameter is an array of size_t which will be updated 530with the size of the output data written to the corresponding output buffer. 531For size requirement of the output buffers, see the description of EVP_CipherUpdate(). 532 533The EVP_CipherPipelineUpdate() function can be called multiple times to encrypt 534successive blocks of data. For AAD data, the I<out>, and I<outsize> parameter 535should be NULL, rather than an array of NULL pointers. 536 537=item EVP_get_cipherbyname(), EVP_get_cipherbynid() and EVP_get_cipherbyobj() 538 539Returns an B<EVP_CIPHER> structure when passed a cipher name, a cipher B<NID> or 540an B<ASN1_OBJECT> structure respectively. 541 542EVP_get_cipherbyname() will return NULL for algorithms such as "AES-128-SIV", 543"AES-128-CBC-CTS" and "CAMELLIA-128-CBC-CTS" which were previously only 544accessible via low level interfaces. 545 546The EVP_get_cipherbyname() function is present for backwards compatibility with 547OpenSSL prior to version 3 and is different to the EVP_CIPHER_fetch() function 548since it does not attempt to "fetch" an implementation of the cipher. 549Additionally, it only knows about ciphers that are built-in to OpenSSL and have 550an associated NID. Similarly EVP_get_cipherbynid() and EVP_get_cipherbyobj() 551also return objects without an associated implementation. 552 553When the cipher objects returned by these functions are used (such as in a call 554to EVP_EncryptInit_ex()) an implementation of the cipher will be implicitly 555fetched from the loaded providers. This fetch could fail if no suitable 556implementation is available. Use EVP_CIPHER_fetch() instead to explicitly fetch 557the algorithm and an associated implementation from a provider. 558 559See L<crypto(7)/ALGORITHM FETCHING> for more information about fetching. 560 561The cipher objects returned from these functions do not need to be freed with 562EVP_CIPHER_free(). 563 564=item EVP_CIPHER_get_nid() and EVP_CIPHER_CTX_get_nid() 565 566Return the NID of a cipher when passed an B<EVP_CIPHER> or B<EVP_CIPHER_CTX> 567structure. The actual NID value is an internal value which may not have a 568corresponding OBJECT IDENTIFIER. NID_undef is returned in the event that the 569nid is unknown or if the cipher has not been properly initialized via a call to 570B<EVP_CipherInit>. 571 572=item EVP_CIPHER_CTX_set_flags(), EVP_CIPHER_CTX_clear_flags() and EVP_CIPHER_CTX_test_flags() 573 574Sets, clears and tests I<ctx> flags. See L</FLAGS> below for more information. 575 576For provided ciphers EVP_CIPHER_CTX_set_flags() should be called only after the 577fetched cipher has been assigned to the I<ctx>. It is recommended to use 578L</PARAMETERS> instead. 579 580=item EVP_CIPHER_CTX_set_padding() 581 582Enables or disables padding. This function should be called after the context 583is set up for encryption or decryption with EVP_EncryptInit_ex2(), 584EVP_DecryptInit_ex2(), EVP_CipherInit_ex2(), or EVP_CipherInit_SKEY(). By 585default encryption operations are padded using standard block padding and the 586padding is checked and removed when decrypting. If the I<pad> parameter is zero 587then no padding is performed, the total amount of data encrypted or decrypted 588must then be a multiple of the block size or an error will occur. I<x> B<MUST 589NOT> be NULL. 590 591=item EVP_CIPHER_get_key_length() and EVP_CIPHER_CTX_get_key_length() 592 593Return the key length of a cipher when passed an B<EVP_CIPHER> or 594B<EVP_CIPHER_CTX> structure. The constant B<EVP_MAX_KEY_LENGTH> is the maximum 595key length for all ciphers. Note: although EVP_CIPHER_get_key_length() is fixed for 596a given cipher, the value of EVP_CIPHER_CTX_get_key_length() may be different for 597variable key length ciphers. 598 599=item EVP_CIPHER_CTX_set_key_length() 600 601Sets the key length of the cipher context. 602If the cipher is a fixed length cipher then attempting to set the key 603length to any value other than the fixed value is an error. 604 605=item EVP_CIPHER_get_iv_length() and EVP_CIPHER_CTX_get_iv_length() 606 607Return the IV length of a cipher when passed an B<EVP_CIPHER> or 608B<EVP_CIPHER_CTX>. It will return zero if the cipher does not use an IV, if 609the cipher has not yet been initialized within the B<EVP_CIPHER_CTX>, or if the 610passed cipher is NULL. The constant B<EVP_MAX_IV_LENGTH> is the maximum IV 611length for all ciphers. 612 613=item EVP_CIPHER_CTX_get_tag_length() 614 615Returns the tag length of an AEAD cipher when passed a B<EVP_CIPHER_CTX>. It will 616return zero if the cipher does not support a tag. It returns a default value if 617the tag length has not been set. 618 619=item EVP_CIPHER_get_block_size() and EVP_CIPHER_CTX_get_block_size() 620 621Return the block size of a cipher when passed an B<EVP_CIPHER> or 622B<EVP_CIPHER_CTX> structure. The constant B<EVP_MAX_BLOCK_LENGTH> is also the 623maximum block length for all ciphers. 624A value of 0 is returned if, with B<EVP_CIPHER_get_block_size()>, the cipher 625I<e> is NULL, or, with B<EVP_CIPHER_CTX_get_block_size()>, the context 626I<ctx> is NULL or has not been properly initialized with a call to 627B<EVP_CipherInit>. 628 629=item EVP_CIPHER_get_type() and EVP_CIPHER_CTX_get_type() 630 631Return the type of the passed cipher or context. This "type" is the actual NID 632of the cipher OBJECT IDENTIFIER and as such it ignores the cipher parameters 633(40 bit RC2 and 128 bit RC2 have the same NID). If the cipher does not have an 634object identifier or does not have ASN1 support this function will return 635B<NID_undef>. 636 637=item EVP_CIPHER_is_a() 638 639Returns 1 if I<cipher> is an implementation of an algorithm that's identifiable 640with I<name>, otherwise 0. If I<cipher> is a legacy cipher (it's the return 641value from the likes of EVP_aes128() rather than the result of an 642EVP_CIPHER_fetch()), only cipher names registered with the default library 643context (see L<OSSL_LIB_CTX(3)>) will be considered. 644 645=item EVP_CIPHER_get0_name() and EVP_CIPHER_CTX_get0_name() 646 647Return the name of the passed cipher or context. For fetched ciphers with 648multiple names, only one of them is returned. See also EVP_CIPHER_names_do_all(). 649I<cipher> B<MUST NOT> be NULL. 650 651=item EVP_CIPHER_names_do_all() 652 653Traverses all names for the I<cipher>, and calls I<fn> with each name and 654I<data>. This is only useful with fetched B<EVP_CIPHER>s. 655 656=item EVP_CIPHER_get0_description() 657 658Returns a description of the cipher, meant for display and human consumption. 659The description is at the discretion of the cipher implementation. 660 661=item EVP_CIPHER_get0_provider() 662 663Returns an B<OSSL_PROVIDER> pointer to the provider that implements the given 664B<EVP_CIPHER>. 665 666=item EVP_CIPHER_CTX_get0_cipher() 667 668Returns the B<EVP_CIPHER> structure when passed an B<EVP_CIPHER_CTX> structure. 669EVP_CIPHER_CTX_get1_cipher() is the same except the ownership is passed to 670the caller. Both functions return NULL on error. 671 672=item EVP_CIPHER_get_mode() and EVP_CIPHER_CTX_get_mode() 673 674Return the block cipher mode: 675EVP_CIPH_ECB_MODE, EVP_CIPH_CBC_MODE, EVP_CIPH_CFB_MODE, EVP_CIPH_OFB_MODE, 676EVP_CIPH_CTR_MODE, EVP_CIPH_GCM_MODE, EVP_CIPH_CCM_MODE, EVP_CIPH_XTS_MODE, 677EVP_CIPH_WRAP_MODE, EVP_CIPH_OCB_MODE or EVP_CIPH_SIV_MODE. 678If the cipher is a stream cipher then EVP_CIPH_STREAM_CIPHER is returned. 679 680=item EVP_CIPHER_get_flags() 681 682Returns any flags associated with the cipher. See L</FLAGS> 683for a list of currently defined flags. 684 685=item EVP_CIPHER_CTX_get_num() and EVP_CIPHER_CTX_set_num() 686 687Gets or sets the cipher specific "num" parameter for the associated I<ctx>. 688Built-in ciphers typically use this to track how much of the current underlying block 689has been "used" already. 690 691=item EVP_CIPHER_CTX_is_encrypting() 692 693Reports whether the I<ctx> is being used for encryption or decryption. 694 695=item EVP_CIPHER_CTX_flags() 696 697A deprecated macro calling C<EVP_CIPHER_get_flags(EVP_CIPHER_CTX_get0_cipher(ctx))>. 698Do not use. 699 700=item EVP_CIPHER_param_to_asn1() 701 702Sets the AlgorithmIdentifier "parameter" based on the passed cipher. This will 703typically include any parameters and an IV. The cipher IV (if any) must be set 704when this call is made. This call should be made before the cipher is actually 705"used" (before any EVP_EncryptUpdate(), EVP_DecryptUpdate() calls for example). 706This function may fail if the cipher does not have any ASN1 support, or if an 707uninitialized cipher is passed to it. 708 709=item EVP_CIPHER_asn1_to_param() 710 711Sets the cipher parameters based on an ASN1 AlgorithmIdentifier "parameter". 712The precise effect depends on the cipher. In the case of B<RC2>, for example, 713it will set the IV and effective key length. 714This function should be called after the base cipher type is set but before 715the key is set. For example EVP_CipherInit() will be called with the IV and 716key set to NULL, EVP_CIPHER_asn1_to_param() will be called and finally 717EVP_CipherInit() again with all parameters except the key set to NULL. It is 718possible for this function to fail if the cipher does not have any ASN1 support 719or the parameters cannot be set (for example the RC2 effective key length 720is not supported. 721 722=item EVP_CIPHER_CTX_rand_key() 723 724Generates a random key of the appropriate length based on the cipher context. 725The B<EVP_CIPHER> can provide its own random key generation routine to support 726keys of a specific form. I<key> must point to a buffer at least as big as the 727value returned by EVP_CIPHER_CTX_get_key_length(). 728 729=item EVP_CIPHER_do_all_provided() 730 731Traverses all ciphers implemented by all activated providers in the given 732library context I<libctx>, and for each of the implementations, calls the given 733function I<fn> with the implementation method and the given I<arg> as argument. 734 735=back 736 737=head1 PARAMETERS 738 739See L<OSSL_PARAM(3)> for information about passing parameters. 740 741=head2 Gettable EVP_CIPHER parameters 742 743When EVP_CIPHER_fetch() is called it internally calls EVP_CIPHER_get_params() 744and caches the results. 745 746EVP_CIPHER_get_params() can be used with the following L<OSSL_PARAM(3)> keys: 747 748=over 4 749 750=item "mode" (B<OSSL_CIPHER_PARAM_MODE>) <unsigned integer> 751 752Gets the mode for the associated cipher algorithm I<cipher>. 753See L</EVP_CIPHER_get_mode() and EVP_CIPHER_CTX_get_mode()> for a list of valid modes. 754Use EVP_CIPHER_get_mode() to retrieve the cached value. 755 756=item "keylen" (B<OSSL_CIPHER_PARAM_KEYLEN>) <unsigned integer> 757 758Gets the key length for the associated cipher algorithm I<cipher>. 759Use EVP_CIPHER_get_key_length() to retrieve the cached value. 760 761=item "ivlen" (B<OSSL_CIPHER_PARAM_IVLEN>) <unsigned integer> 762 763Gets the IV length for the associated cipher algorithm I<cipher>. 764Use EVP_CIPHER_get_iv_length() to retrieve the cached value. 765 766=item "blocksize" (B<OSSL_CIPHER_PARAM_BLOCK_SIZE>) <unsigned integer> 767 768Gets the block size for the associated cipher algorithm I<cipher>. 769The block size should be 1 for stream ciphers. 770Note that the block size for a cipher may be different to the block size for 771the underlying encryption/decryption primitive. 772For example AES in CTR mode has a block size of 1 (because it operates like a 773stream cipher), even though AES has a block size of 16. 774Use EVP_CIPHER_get_block_size() to retrieve the cached value. 775 776=item "aead" (B<OSSL_CIPHER_PARAM_AEAD>) <integer> 777 778Gets 1 if this is an AEAD cipher algorithm, otherwise it gets 0. 779Use (EVP_CIPHER_get_flags(cipher) & EVP_CIPH_FLAG_AEAD_CIPHER) to retrieve the 780cached value. 781 782=item "custom-iv" (B<OSSL_CIPHER_PARAM_CUSTOM_IV>) <integer> 783 784Gets 1 if the cipher algorithm I<cipher> has a custom IV, otherwise it gets 0. 785Storing and initializing the IV is left entirely to the implementation, if a 786custom IV is used. 787Use (EVP_CIPHER_get_flags(cipher) & EVP_CIPH_CUSTOM_IV) to retrieve the 788cached value. 789 790=item "cts" (B<OSSL_CIPHER_PARAM_CTS>) <integer> 791 792Gets 1 if the cipher algorithm I<cipher> uses ciphertext stealing, 793otherwise it gets 0. 794This is currently used to indicate that the cipher is a one shot that only 795allows a single call to EVP_CipherUpdate(). 796Use (EVP_CIPHER_get_flags(cipher) & EVP_CIPH_FLAG_CTS) to retrieve the 797cached value. 798 799=item "tls-multi" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK>) <integer> 800 801Gets 1 if the cipher algorithm I<cipher> supports interleaving of crypto blocks, 802otherwise it gets 0. The interleaving is an optimization only applicable to certain 803TLS ciphers. 804Use (EVP_CIPHER_get_flags(cipher) & EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK) to retrieve the 805cached value. 806 807=item "has-randkey" (B<OSSL_CIPHER_PARAM_HAS_RANDKEY>) <integer> 808 809Gets 1 if the cipher algorithm I<cipher> supports the gettable EVP_CIPHER_CTX 810parameter B<OSSL_CIPHER_PARAM_RANDOM_KEY>. Only DES and 3DES set this to 1, 811all other OpenSSL ciphers return 0. 812 813=item "decrypt-only" (B<OSSL_CIPHER_PARAM_DECRYPT_ONLY) <integer> 814 815Gets 1 if the cipher algorithm I<cipher> implementation supports only 816the decryption operation such as the 3DES ciphers in the fips provider. 817Otherwise gets 0 or the parameter might not be present at all. 818 819=back 820 821=head2 Gettable and Settable EVP_CIPHER_CTX parameters 822 823The following L<OSSL_PARAM(3)> keys can be used with both EVP_CIPHER_CTX_get_params() 824and EVP_CIPHER_CTX_set_params(). 825 826=over 4 827 828=item "padding" (B<OSSL_CIPHER_PARAM_PADDING>) <unsigned integer> 829 830Gets or sets the padding mode for the cipher context I<ctx>. 831Padding is enabled if the value is 1, and disabled if the value is 0. 832See also EVP_CIPHER_CTX_set_padding(). 833 834=item "num" (B<OSSL_CIPHER_PARAM_NUM>) <unsigned integer> 835 836Gets or sets the cipher specific "num" parameter for the cipher context I<ctx>. 837Built-in ciphers typically use this to track how much of the current underlying 838block has been "used" already. 839See also EVP_CIPHER_CTX_get_num() and EVP_CIPHER_CTX_set_num(). 840 841=item "keylen" (B<OSSL_CIPHER_PARAM_KEYLEN>) <unsigned integer> 842 843Gets or sets the key length for the cipher context I<ctx>. 844The length of the "keylen" parameter should not exceed that of a B<size_t>. 845See also EVP_CIPHER_CTX_get_key_length() and EVP_CIPHER_CTX_set_key_length(). 846 847=item "tag" (B<OSSL_CIPHER_PARAM_AEAD_TAG>) <octet string> 848 849Gets or sets the AEAD tag for the associated cipher context I<ctx>. 850See L<EVP_EncryptInit(3)/AEAD INTERFACE>. 851 852=item "pipeline-tag" (B<OSSL_CIPHER_PARAM_PIPELINE_AEAD_TAG>) <octet ptr> 853 854Gets or sets the AEAD tag when using cipher pipelining. The pointer must 855point to an array of buffers, where the aead tag will be read from or written to. 856The array size must be equal to I<numpipes> used in 857EVP_CipherPipelineEncryptInit() or EVP_CipherPipelineDecryptInit(). 858 859=item "keybits" (B<OSSL_CIPHER_PARAM_RC2_KEYBITS>) <unsigned integer> 860 861Gets or sets the effective keybits used for a RC2 cipher. 862The length of the "keybits" parameter should not exceed that of a B<size_t>. 863 864=item "rounds" (B<OSSL_CIPHER_PARAM_ROUNDS>) <unsigned integer> 865 866Gets or sets the number of rounds to be used for a cipher. 867This is used by the RC5 cipher. 868 869=item "algorithm-id" (B<OSSL_CIPHER_PARAM_ALGORITHM_ID>) <octet string> 870 871Used to get the DER encoded AlgorithmIdentifier from the cipher 872implementation. Functions like L<EVP_PKEY_CTX_get_algor(3)> use this 873parameter. 874 875=item "algorithm-id-params" (B<OSSL_CIPHER_PARAM_ALGORITHM_ID_PARAMS>) <octet string> 876 877Used to pass the DER encoded AlgorithmIdentifier parameter to or from 878the cipher implementation. 879Functions like L<EVP_CIPHER_CTX_set_algor_params(3)> and 880L<EVP_CIPHER_CTX_get_algor_params(3)> use this parameter. 881 882=item "alg_id_params" (B<OSSL_CIPHER_PARAM_ALGORITHM_ID_PARAMS_OLD>) <octet string> 883 884An deprecated alias for "algorithm-id-params", only used by 885L<EVP_CIPHER_param_to_asn1(3)> and L<EVP_CIPHER_asn1_to_param(3)>. 886 887=item "cts_mode" (B<OSSL_CIPHER_PARAM_CTS_MODE>) <UTF8 string> 888 889Gets or sets the cipher text stealing mode. For all modes the output size is the 890same as the input size. The input length must be greater than or equal to the 891block size. (The block size for AES and CAMELLIA is 16 bytes). 892 893Valid values for the mode are: 894 895=over 4 896 897=item "CS1" 898 899The NIST variant of cipher text stealing. 900For input lengths that are multiples of the block size it is equivalent to 901using a "AES-XXX-CBC" or "CAMELLIA-XXX-CBC" cipher otherwise the second last 902cipher text block is a partial block. 903 904=item "CS2" 905 906For input lengths that are multiples of the block size it is equivalent to 907using a "AES-XXX-CBC" or "CAMELLIA-XXX-CBC" cipher, otherwise it is the same as 908"CS3" mode. 909 910=item "CS3" 911 912The Kerberos5 variant of cipher text stealing which always swaps the last 913cipher text block with the previous block (which may be a partial or full block 914depending on the input length). If the input length is exactly one full block 915then this is equivalent to using a "AES-XXX-CBC" or "CAMELLIA-XXX-CBC" cipher. 916 917=back 918 919The default is "CS1". 920This is only supported for "AES-128-CBC-CTS", "AES-192-CBC-CTS", "AES-256-CBC-CTS", 921"CAMELLIA-128-CBC-CTS", "CAMELLIA-192-CBC-CTS" and "CAMELLIA-256-CBC-CTS". 922 923=item "tls1multi_interleave" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_INTERLEAVE>) <unsigned integer> 924 925Sets or gets the number of records being sent in one go for a tls1 multiblock 926cipher operation (either 4 or 8 records). 927 928=back 929 930=head2 Gettable EVP_CIPHER_CTX parameters 931 932The following L<OSSL_PARAM(3)> keys can be used with EVP_CIPHER_CTX_get_params(): 933 934=over 4 935 936=item "ivlen" (B<OSSL_CIPHER_PARAM_IVLEN> and <B<OSSL_CIPHER_PARAM_AEAD_IVLEN>) <unsigned integer> 937 938Gets the IV length for the cipher context I<ctx>. 939The length of the "ivlen" parameter should not exceed that of a B<size_t>. 940See also EVP_CIPHER_CTX_get_iv_length(). 941 942=item "iv" (B<OSSL_CIPHER_PARAM_IV>) <octet string OR octet ptr> 943 944Gets the IV used to initialize the associated cipher context I<ctx>. 945See also EVP_CIPHER_CTX_get_original_iv(). 946 947=item "updated-iv" (B<OSSL_CIPHER_PARAM_UPDATED_IV>) <octet string OR octet ptr> 948 949Gets the updated pseudo-IV state for the associated cipher context, e.g., 950the previous ciphertext block for CBC mode or the iteratively encrypted IV 951value for OFB mode. Note that octet pointer access is deprecated and is 952provided only for backwards compatibility with historical libcrypto APIs. 953See also EVP_CIPHER_CTX_get_updated_iv(). 954 955=item "randkey" (B<OSSL_CIPHER_PARAM_RANDOM_KEY>) <octet string> 956 957Gets an implementation specific randomly generated key for the associated 958cipher context I<ctx>. This is currently only supported by DES and 3DES (which set 959the key to odd parity). 960 961=item "taglen" (B<OSSL_CIPHER_PARAM_AEAD_TAGLEN>) <unsigned integer> 962 963Gets the tag length to be used for an AEAD cipher for the associated cipher 964context I<ctx>. It gets a default value if it has not been set. 965The length of the "taglen" parameter should not exceed that of a B<size_t>. 966See also EVP_CIPHER_CTX_get_tag_length(). 967 968=item "tlsaadpad" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_AAD_PAD>) <unsigned integer> 969 970Gets the length of the tag that will be added to a TLS record for the AEAD 971tag for the associated cipher context I<ctx>. 972The length of the "tlsaadpad" parameter should not exceed that of a B<size_t>. 973 974=item "tlsivgen" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_GET_IV_GEN>) <octet string> 975 976Gets the invocation field generated for encryption. 977Can only be called after "tlsivfixed" is set. 978This is only used for GCM mode. 979 980=item "tls1multi_enclen" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_ENC_LEN>) <unsigned integer> 981 982Get the total length of the record returned from the "tls1multi_enc" operation. 983 984=item "tls1multi_maxbufsz" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_MAX_BUFSIZE>) <unsigned integer> 985 986Gets the maximum record length for a TLS1 multiblock cipher operation. 987The length of the "tls1multi_maxbufsz" parameter should not exceed that of a B<size_t>. 988 989=item "tls1multi_aadpacklen" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_AAD_PACKLEN>) <unsigned integer> 990 991Gets the result of running the "tls1multi_aad" operation. 992 993=item "tls-mac" (B<OSSL_CIPHER_PARAM_TLS_MAC>) <octet ptr> 994 995Used to pass the TLS MAC data. 996 997=item "fips-indicator" (B<OSSL_CIPHER_PARAM_FIPS_APPROVED_INDICATOR>) <integer> 998 999This option is used by the OpenSSL FIPS provider. 1000 1001A getter that returns 1 if the operation is FIPS approved, or 0 otherwise. 1002This may be used after calling a cipher final operation such as 1003EVP_EncryptFinal_ex(). It may return 0 if the "encrypt-check" option is set to 0. 1004 1005=item "iv-generated" (B<OSSL_CIPHER_PARAM_AEAD_IV_GENERATED>) <unsigned integer> 1006 1007An indicator that returns 1 if an IV was generated internally during encryption, 1008or O otherwise. 1009This may be used by GCM ciphers after calling a cipher final operation such 1010as EVP_EncryptFinal_ex(). 1011GCM should generate an IV internally if the IV is not specified during a 1012cipher initialisation call such as EVP_CipherInit_ex(). 1013See FIPS 140-3 IG C.H for information related to IV requirements. 1014 1015=back 1016 1017=head2 Settable EVP_CIPHER_CTX parameters 1018 1019The following L<OSSL_PARAM(3)> keys can be used with EVP_CIPHER_CTX_set_params(): 1020 1021=over 4 1022 1023=item "mackey" (B<OSSL_CIPHER_PARAM_AEAD_MAC_KEY>) <octet string> 1024 1025Sets the MAC key used by composite AEAD ciphers such as AES-CBC-HMAC-SHA256. 1026 1027=item "speed" (B<OSSL_CIPHER_PARAM_SPEED>) <unsigned integer> 1028 1029Sets the speed option for the associated cipher context. This is only supported 1030by AES SIV ciphers which disallow multiple operations by default. 1031Setting "speed" to 1 allows another encrypt or decrypt operation to be 1032performed. This is used for performance testing. 1033 1034=item "use-bits" (B<OSSL_CIPHER_PARAM_USE_BITS>) <unsigned integer> 1035 1036Determines if the input length I<inl> passed to EVP_EncryptUpdate(), 1037EVP_DecryptUpdate() and EVP_CipherUpdate() is the number of bits or number of bytes. 1038Setting "use-bits" to 1 uses bits. The default is in bytes. 1039This is only used for B<CFB1> ciphers. 1040 1041This can be set using EVP_CIPHER_CTX_set_flags(ctx, EVP_CIPH_FLAG_LENGTH_BITS). 1042 1043=item "tls-version" (B<OSSL_CIPHER_PARAM_TLS_VERSION>) <integer> 1044 1045Sets the TLS version. 1046 1047=item "tls-mac-size" (B<OSSL_CIPHER_PARAM_TLS_MAC_SIZE>) <unsigned integer> 1048 1049Set the TLS MAC size. 1050 1051=item "tlsaad" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_AAD>) <octet string> 1052 1053Sets TLSv1.2 AAD information for the associated cipher context I<ctx>. 1054TLSv1.2 AAD information is always 13 bytes in length and is as defined for the 1055"additional_data" field described in section 6.2.3.3 of RFC5246. 1056 1057=item "tlsivfixed" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_IV_FIXED>) <octet string> 1058 1059Sets the fixed portion of an IV for an AEAD cipher used in a TLS record 1060encryption/ decryption for the associated cipher context. 1061TLS record encryption/decryption always occurs "in place" so that the input and 1062output buffers are always the same memory location. 1063AEAD IVs in TLSv1.2 consist of an implicit "fixed" part and an explicit part 1064that varies with every record. 1065Setting a TLS fixed IV changes a cipher to encrypt/decrypt TLS records. 1066TLS records are encrypted/decrypted using a single OSSL_FUNC_cipher_cipher call per 1067record. 1068For a record decryption the first bytes of the input buffer will be the explicit 1069part of the IV and the final bytes of the input buffer will be the AEAD tag. 1070The length of the explicit part of the IV and the tag length will depend on the 1071cipher in use and will be defined in the RFC for the relevant ciphersuite. 1072In order to allow for "in place" decryption the plaintext output should be 1073written to the same location in the output buffer that the ciphertext payload 1074was read from, i.e. immediately after the explicit IV. 1075 1076When encrypting a record the first bytes of the input buffer should be empty to 1077allow space for the explicit IV, as will the final bytes where the tag will 1078be written. 1079The length of the input buffer will include the length of the explicit IV, the 1080payload, and the tag bytes. 1081The cipher implementation should generate the explicit IV and write it to the 1082beginning of the output buffer, do "in place" encryption of the payload and 1083write that to the output buffer, and finally add the tag onto the end of the 1084output buffer. 1085 1086Whether encrypting or decrypting the value written to I<*outl> in the 1087OSSL_FUNC_cipher_cipher call should be the length of the payload excluding the explicit 1088IV length and the tag length. 1089 1090=item "tlsivinv" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_SET_IV_INV>) <octet string> 1091 1092Sets the invocation field used for decryption. 1093Can only be called after "tlsivfixed" is set. 1094This is only used for GCM mode. 1095 1096=item "tls1multi_enc" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_ENC>) <octet string> 1097 1098Triggers a multiblock TLS1 encrypt operation for a TLS1 aware cipher that 1099supports sending 4 or 8 records in one go. 1100The cipher performs both the MAC and encrypt stages and constructs the record 1101headers itself. 1102"tls1multi_enc" supplies the output buffer for the encrypt operation, 1103"tls1multi_encin" & "tls1multi_interleave" must also be set in order to supply 1104values to the encrypt operation. 1105 1106=item "tls1multi_encin" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_ENC_IN>) <octet string> 1107 1108Supplies the data to encrypt for a TLS1 multiblock cipher operation. 1109 1110=item "tls1multi_maxsndfrag" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_MAX_SEND_FRAGMENT>) <unsigned integer> 1111 1112Sets the maximum send fragment size for a TLS1 multiblock cipher operation. 1113It must be set before using "tls1multi_maxbufsz". 1114The length of the "tls1multi_maxsndfrag" parameter should not exceed that of a B<size_t>. 1115 1116=item "tls1multi_aad" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_AAD>) <octet string> 1117 1118Sets the authenticated additional data used by a TLS1 multiblock cipher operation. 1119The supplied data consists of 13 bytes of record data containing: 1120Bytes 0-7: The sequence number of the first record 1121Byte 8: The record type 1122Byte 9-10: The protocol version 1123Byte 11-12: Input length (Always 0) 1124 1125"tls1multi_interleave" must also be set for this operation. 1126 1127=item "xts_standard" (B<OSSL_CIPHER_PARAM_XTS_STANDARD>) <UTF8 string> 1128 1129Sets the XTS standard to use with SM4-XTS algorithm. XTS mode has two 1130implementations, one is standardized in IEEE Std. 1619-2007 and has 1131been widely used (e.g., XTS AES), the other is proposed recently 1132(GB/T 17964-2021 implemented in May 2022) and is currently only used 1133in SM4. 1134 1135The main difference between them is the multiplication by the 1136primitive element E<alpha> to calculate the tweak values. The IEEE 1137Std 1619-2007 noted that the multiplication "is a left shift of each 1138byte by one bit with carry propagating from one byte to the next 1139one", which means that in each byte, the leftmost bit is the most 1140significant bit. But in GB/T 17964-2021, the rightmost bit is the 1141most significant bit, thus the multiplication becomes a right shift 1142of each byte by one bit with carry propagating from one byte to the 1143next one. 1144 1145Valid values for the mode are: 1146 1147=over 4 1148 1149=item "GB" 1150 1151The GB/T 17964-2021 variant of SM4-XTS algorithm. 1152 1153=item "IEEE" 1154 1155The IEEE Std. 1619-2007 variant of SM4-XTS algorithm. 1156 1157=back 1158 1159The default value is "GB". 1160 1161=item "encrypt-check" (B<OSSL_CIPHER_PARAM_FIPS_ENCRYPT_CHECK>) <integer> 1162 1163This option is used by the OpenSSL FIPS provider. 1164 1165If required this parameter should be set early via an cipher encrypt init 1166function such as EVP_EncryptInit_ex2(). 1167The default value of 1 causes an error when an encryption operation is triggered. 1168Setting this to 0 will ignore the error and set the approved "fips-indicator" to 11690. 1170This option breaks FIPS compliance if it causes the approved "fips-indicator" 1171to return 0. 1172 1173=back 1174 1175=head1 CONTROLS 1176 1177The Mappings from EVP_CIPHER_CTX_ctrl() identifiers to PARAMETERS are listed 1178in the following section. See the L</PARAMETERS> section for more details. 1179 1180EVP_CIPHER_CTX_ctrl() can be used to send the following standard controls: 1181 1182=over 4 1183 1184=item EVP_CTRL_AEAD_SET_IVLEN and EVP_CTRL_GET_IVLEN 1185 1186When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() and 1187EVP_CIPHER_CTX_get_params() get called with an L<OSSL_PARAM(3)> item with the 1188key "ivlen" (B<OSSL_CIPHER_PARAM_IVLEN>). 1189 1190=item EVP_CTRL_AEAD_SET_IV_FIXED 1191 1192When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1193with an L<OSSL_PARAM(3)> item with the key "tlsivfixed" 1194(B<OSSL_CIPHER_PARAM_AEAD_TLS1_IV_FIXED>). 1195 1196=item EVP_CTRL_AEAD_SET_MAC_KEY 1197 1198When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1199with an L<OSSL_PARAM(3)> item with the key "mackey" 1200(B<OSSL_CIPHER_PARAM_AEAD_MAC_KEY>). 1201 1202=item EVP_CTRL_AEAD_SET_TAG and EVP_CTRL_AEAD_GET_TAG 1203 1204When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() and 1205EVP_CIPHER_CTX_get_params() get called with an L<OSSL_PARAM(3)> item with the 1206key "tag" (B<OSSL_CIPHER_PARAM_AEAD_TAG>). 1207 1208=item EVP_CTRL_CCM_SET_L 1209 1210When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1211with an L<OSSL_PARAM(3)> item with the key "ivlen" (B<OSSL_CIPHER_PARAM_IVLEN>) 1212with a value of (15 - L) 1213 1214=item EVP_CTRL_COPY 1215 1216There is no OSSL_PARAM mapping for this. Use EVP_CIPHER_CTX_copy() instead. 1217 1218=item EVP_CTRL_GCM_SET_IV_INV 1219 1220When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1221with an L<OSSL_PARAM(3)> item with the key "tlsivinv" 1222(B<OSSL_CIPHER_PARAM_AEAD_TLS1_SET_IV_INV>). 1223 1224=item EVP_CTRL_RAND_KEY 1225 1226When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1227with an L<OSSL_PARAM(3)> item with the key "randkey" 1228(B<OSSL_CIPHER_PARAM_RANDOM_KEY>). 1229 1230=item EVP_CTRL_SET_KEY_LENGTH 1231 1232When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1233with an L<OSSL_PARAM(3)> item with the key "keylen" (B<OSSL_CIPHER_PARAM_KEYLEN>). 1234 1235=item EVP_CTRL_SET_RC2_KEY_BITS and EVP_CTRL_GET_RC2_KEY_BITS 1236 1237When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() and 1238EVP_CIPHER_CTX_get_params() get called with an L<OSSL_PARAM(3)> item with the 1239key "keybits" (B<OSSL_CIPHER_PARAM_RC2_KEYBITS>). 1240 1241=item EVP_CTRL_SET_RC5_ROUNDS and EVP_CTRL_GET_RC5_ROUNDS 1242 1243When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() and 1244EVP_CIPHER_CTX_get_params() get called with an L<OSSL_PARAM(3)> item with the 1245key "rounds" (B<OSSL_CIPHER_PARAM_ROUNDS>). 1246 1247=item EVP_CTRL_SET_SPEED 1248 1249When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1250with an L<OSSL_PARAM(3)> item with the key "speed" (B<OSSL_CIPHER_PARAM_SPEED>). 1251 1252=item EVP_CTRL_GCM_IV_GEN 1253 1254When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_get_params() gets called 1255with an L<OSSL_PARAM(3)> item with the key 1256"tlsivgen" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_GET_IV_GEN>). 1257 1258=item EVP_CTRL_AEAD_TLS1_AAD 1259 1260When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() get called 1261with an L<OSSL_PARAM(3)> item with the key 1262"tlsaad" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_AAD>) 1263followed by EVP_CIPHER_CTX_get_params() with a key of 1264"tlsaadpad" (B<OSSL_CIPHER_PARAM_AEAD_TLS1_AAD_PAD>). 1265 1266=item EVP_CTRL_TLS1_1_MULTIBLOCK_MAX_BUFSIZE 1267 1268When used with a fetched B<EVP_CIPHER>, 1269EVP_CIPHER_CTX_set_params() gets called with an L<OSSL_PARAM(3)> item with the 1270key OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_MAX_SEND_FRAGMENT 1271followed by EVP_CIPHER_CTX_get_params() with a key of 1272"tls1multi_maxbufsz" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_MAX_BUFSIZE>). 1273 1274=item EVP_CTRL_TLS1_1_MULTIBLOCK_AAD 1275 1276When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1277with L<OSSL_PARAM(3)> items with the keys 1278"tls1multi_aad" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_AAD>) and 1279"tls1multi_interleave" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_INTERLEAVE>) 1280followed by EVP_CIPHER_CTX_get_params() with keys of 1281"tls1multi_aadpacklen" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_AAD_PACKLEN>) and 1282"tls1multi_interleave" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_INTERLEAVE>). 1283 1284=item EVP_CTRL_TLS1_1_MULTIBLOCK_ENCRYPT 1285 1286When used with a fetched B<EVP_CIPHER>, EVP_CIPHER_CTX_set_params() gets called 1287with L<OSSL_PARAM(3)> items with the keys 1288"tls1multi_enc" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_ENC>), 1289"tls1multi_encin" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_ENC_IN>) and 1290"tls1multi_interleave" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_INTERLEAVE>), 1291followed by EVP_CIPHER_CTX_get_params() with a key of 1292"tls1multi_enclen" (B<OSSL_CIPHER_PARAM_TLS1_MULTIBLOCK_ENC_LEN>). 1293 1294=back 1295 1296=head1 FLAGS 1297 1298EVP_CIPHER_CTX_set_flags(), EVP_CIPHER_CTX_clear_flags() and EVP_CIPHER_CTX_test_flags(). 1299can be used to manipulate and test these B<EVP_CIPHER_CTX> flags: 1300 1301=over 4 1302 1303=item EVP_CIPH_NO_PADDING 1304 1305Used by EVP_CIPHER_CTX_set_padding(). 1306 1307See also L</Gettable and Settable EVP_CIPHER_CTX parameters> "padding" 1308 1309=item EVP_CIPH_FLAG_LENGTH_BITS 1310 1311See L</Settable EVP_CIPHER_CTX parameters> "use-bits". 1312 1313=item EVP_CIPHER_CTX_FLAG_WRAP_ALLOW 1314 1315Used for Legacy purposes only. This flag needed to be set to indicate the 1316cipher handled wrapping. 1317 1318=back 1319 1320EVP_CIPHER_flags() uses the following flags that 1321have mappings to L</Gettable EVP_CIPHER parameters>: 1322 1323=over 4 1324 1325=item EVP_CIPH_FLAG_AEAD_CIPHER 1326 1327See L</Gettable EVP_CIPHER parameters> "aead". 1328 1329=item EVP_CIPH_CUSTOM_IV 1330 1331See L</Gettable EVP_CIPHER parameters> "custom-iv". 1332 1333=item EVP_CIPH_FLAG_CTS 1334 1335See L</Gettable EVP_CIPHER parameters> "cts". 1336 1337=item EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK; 1338 1339See L</Gettable EVP_CIPHER parameters> "tls-multi". 1340 1341=item EVP_CIPH_RAND_KEY 1342 1343See L</Gettable EVP_CIPHER parameters> "has-randkey". 1344 1345=back 1346 1347EVP_CIPHER_flags() uses the following flags for legacy purposes only: 1348 1349=over 4 1350 1351=item EVP_CIPH_VARIABLE_LENGTH 1352 1353=item EVP_CIPH_FLAG_CUSTOM_CIPHER 1354 1355=item EVP_CIPH_ALWAYS_CALL_INIT 1356 1357=item EVP_CIPH_CTRL_INIT 1358 1359=item EVP_CIPH_CUSTOM_KEY_LENGTH 1360 1361=item EVP_CIPH_CUSTOM_COPY 1362 1363=item EVP_CIPH_FLAG_DEFAULT_ASN1 1364 1365See L<EVP_CIPHER_meth_set_flags(3)> for further information related to the above 1366flags. 1367 1368=back 1369 1370=head1 RETURN VALUES 1371 1372EVP_CIPHER_fetch() returns a pointer to a B<EVP_CIPHER> for success 1373and NULL for failure. 1374 1375EVP_CIPHER_up_ref() returns 1 for success or 0 otherwise. 1376 1377EVP_CIPHER_CTX_new() returns a pointer to a newly created 1378B<EVP_CIPHER_CTX> for success and NULL for failure. 1379 1380EVP_CIPHER_CTX_dup() returns a new EVP_CIPHER_CTX if successful or NULL on failure. 1381 1382EVP_CIPHER_CTX_copy() returns 1 if successful or 0 for failure. 1383 1384EVP_EncryptInit_ex2(), EVP_EncryptUpdate() and EVP_EncryptFinal_ex() 1385return 1 for success and 0 for failure. 1386 1387EVP_DecryptInit_ex2() and EVP_DecryptUpdate() return 1 for success and 0 for failure. 1388EVP_DecryptFinal_ex() returns 0 if the decrypt failed or 1 for success. 1389 1390EVP_CipherInit_ex2(), EVP_CipherInit_SKEY() and EVP_CipherUpdate() return 1 for 1391success and 0 for failure. 1392EVP_CipherFinal_ex() returns 0 for an encryption/decryption failure or 1 for 1393success. 1394 1395EVP_Cipher() returns 1 on success and <= 0 on failure, if the flag 1396B<EVP_CIPH_FLAG_CUSTOM_CIPHER> is not set for the cipher, or if the cipher has 1397not been initialized via a call to B<EVP_CipherInit_ex2>. 1398EVP_Cipher() returns the number of bytes written to I<out> for 1399encryption/decryption, or the number of bytes authenticated in a call specifying 1400AAD for an AEAD cipher, if the flag B<EVP_CIPH_FLAG_CUSTOM_CIPHER> is set for 1401the cipher. 1402 1403EVP_CIPHER_can_pipeline() returns 1 if the cipher can be used in a pipeline, 0 otherwise. 1404 1405EVP_CipherPipelineEncryptInit() and EVP_CipherPipelineDecryptInit() 1406return 1 for success and 0 for failure. 1407 1408EVP_CipherPipelineUpdate() and EVP_CipherPipelineFinal() 1409return 1 for success and 0 for failure. 1410 1411EVP_CIPHER_CTX_reset() returns 1 for success and 0 for failure. 1412 1413EVP_get_cipherbyname(), EVP_get_cipherbynid() and EVP_get_cipherbyobj() 1414return an B<EVP_CIPHER> structure or NULL on error. 1415 1416EVP_CIPHER_get_nid() and EVP_CIPHER_CTX_get_nid() return a NID. 1417 1418EVP_CIPHER_get_block_size() and EVP_CIPHER_CTX_get_block_size() return the 1419block size, or 0 on error. 1420 1421EVP_CIPHER_get_key_length() and EVP_CIPHER_CTX_get_key_length() return the key 1422length. 1423 1424EVP_CIPHER_CTX_set_padding() always returns 1. 1425 1426EVP_CIPHER_get_iv_length() and EVP_CIPHER_CTX_get_iv_length() return the IV 1427length, zero if the cipher does not use an IV and a negative value on error. 1428 1429EVP_CIPHER_CTX_get_tag_length() return the tag length or zero if the cipher 1430does not use a tag. 1431 1432EVP_CIPHER_get_type() and EVP_CIPHER_CTX_get_type() return the NID of the 1433cipher's OBJECT IDENTIFIER or NID_undef if it has no defined 1434OBJECT IDENTIFIER. 1435 1436EVP_CIPHER_CTX_cipher() returns an B<EVP_CIPHER> structure. 1437 1438EVP_CIPHER_CTX_get_num() returns a nonnegative num value or 1439B<EVP_CTRL_RET_UNSUPPORTED> if the implementation does not support the call 1440or on any other error. 1441 1442EVP_CIPHER_CTX_set_num() returns 1 on success and 0 if the implementation 1443does not support the call or on any other error. 1444 1445EVP_CIPHER_CTX_is_encrypting() returns 1 if the I<ctx> is set up for encryption 14460 otherwise. 1447 1448EVP_CIPHER_param_to_asn1() and EVP_CIPHER_asn1_to_param() return greater 1449than zero for success and zero or a negative number on failure. 1450 1451EVP_CIPHER_CTX_rand_key() returns 1 for success and zero or a negative number 1452for failure. 1453 1454EVP_CIPHER_names_do_all() returns 1 if the callback was called for all names. 1455A return value of 0 means that the callback was not called for any names. 1456 1457EVP_CIPHER_get_params(), EVP_CIPHER_CTX_get_params() and 1458EVP_CIPHER_CTX_set_params() return 1 for success and 0 for failure. 1459 1460=head1 CIPHER LISTING 1461 1462All algorithms have a fixed key length unless otherwise stated. 1463 1464Refer to L</SEE ALSO> for the full list of ciphers available through the EVP 1465interface. 1466 1467=over 4 1468 1469=item EVP_enc_null() 1470 1471Null cipher: does nothing. 1472 1473=back 1474 1475=head1 AEAD INTERFACE 1476 1477The EVP interface for Authenticated Encryption with Associated Data (AEAD) 1478modes are subtly altered and several additional I<ctrl> operations are supported 1479depending on the mode specified. 1480 1481To specify additional authenticated data (AAD), a call to EVP_CipherUpdate(), 1482EVP_EncryptUpdate() or EVP_DecryptUpdate() should be made with the output 1483parameter I<out> set to NULL. In this case, on success, the parameter 1484I<outl> is set to the number of AAD bytes processed in that call 1485(that is, the value of I<inl>), and does not include any plaintext 1486or ciphertext bytes processed by other calls. 1487 1488If no AAD is used, this call can be omitted. See the mode-specific notes 1489below for any exceptions. 1490 1491When decrypting, the return value of EVP_DecryptFinal() or EVP_CipherFinal() 1492indicates whether the operation was successful. If it does not indicate success, 1493the authentication operation has failed and any output data B<MUST NOT> be used 1494as it is corrupted. 1495 1496Please note that the number of authenticated bytes returned by 1497EVP_CipherUpdate() depends on the cipher used. Stream ciphers, such as ChaCha20 1498or ciphers in GCM mode, can handle 1 byte at a time, resulting in an effective 1499"block" size of 1. Conversely, ciphers in OCB mode must process data one block 1500at a time, and the block size is returned. 1501 1502Regardless of the returned size, it is safe to pass unpadded data to an 1503EVP_CipherUpdate() call in a single operation. 1504 1505=head2 GCM and OCB Modes 1506 1507The following I<ctrl>s are supported in GCM and OCB modes. 1508 1509=over 4 1510 1511=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_IVLEN, ivlen, NULL) 1512 1513Sets the IV length. This call can only be made before specifying an IV. If 1514not called a default IV length is used. 1515 1516For GCM AES and OCB AES the default is 12 (i.e. 96 bits). For OCB mode the 1517maximum is 15. 1518 1519=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_GET_TAG, taglen, tag) 1520 1521Writes C<taglen> bytes of the tag value to the buffer indicated by C<tag>. 1522This call can only be made when encrypting data and B<after> all data has been 1523processed (e.g. after an EVP_EncryptFinal() call). 1524 1525For OCB, C<taglen> must either be 16 or the value previously set via 1526B<EVP_CTRL_AEAD_SET_TAG>. 1527 1528=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_TAG, taglen, tag) 1529 1530When decrypting, this call sets the expected tag to C<taglen> bytes from C<tag>. 1531C<taglen> must be between 1 and 16 inclusive. 1532The tag must be set prior to any call to EVP_DecryptFinal() or 1533EVP_DecryptFinal_ex(). 1534 1535For GCM, this call is only valid when decrypting data. 1536 1537For OCB, this call is valid when decrypting data to set the expected tag, 1538and when encrypting to set the desired tag length. 1539 1540In OCB mode, calling this with C<tag> set to C<NULL> sets the tag length. 1541The tag length can only be set before specifying an IV. If this is not called 1542prior to setting the IV, then a default tag length is used. 1543 1544For OCB AES, the default tag length is 16 (i.e. 128 bits). It is also the 1545maximum tag length for OCB. 1546 1547=back 1548 1549=head2 CCM Mode 1550 1551The EVP interface for CCM mode is similar to that of the GCM mode but with a 1552few additional requirements and different I<ctrl> values. 1553 1554For CCM mode, the total plaintext or ciphertext length B<MUST> be passed to 1555EVP_CipherUpdate(), EVP_EncryptUpdate() or EVP_DecryptUpdate() with the output 1556and input parameters (I<in> and I<out>) set to NULL and the length passed in 1557the I<inl> parameter. 1558 1559The following I<ctrl>s are supported in CCM mode. 1560 1561=over 4 1562 1563=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_TAG, taglen, tag) 1564 1565This call is made to set the expected B<CCM> tag value when decrypting or 1566the length of the tag (with the C<tag> parameter set to NULL) when encrypting. 1567The tag length is often referred to as B<M>. If not set a default value is 1568used (12 for AES). When decrypting, the tag needs to be set before passing 1569in data to be decrypted, but as in GCM and OCB mode, it can be set after 1570passing additional authenticated data (see L</AEAD INTERFACE>). 1571 1572=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_CCM_SET_L, ivlen, NULL) 1573 1574Sets the CCM B<L> value. If not set a default is used (8 for AES). 1575 1576=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_IVLEN, ivlen, NULL) 1577 1578Sets the CCM nonce (IV) length. This call can only be made before specifying a 1579nonce value. The nonce length is given by B<15 - L> so it is 7 by default for 1580AES. 1581 1582=back 1583 1584=head2 SIV Mode 1585 1586Both the AES-SIV and AES-GCM-SIV ciphers fall under this mode. 1587 1588For SIV mode ciphers the behaviour of the EVP interface is subtly 1589altered and several additional ctrl operations are supported. 1590 1591To specify any additional authenticated data (AAD) and/or a Nonce, a call to 1592EVP_CipherUpdate(), EVP_EncryptUpdate() or EVP_DecryptUpdate() should be made 1593with the output parameter I<out> set to NULL. 1594 1595RFC5297 states that the Nonce is the last piece of AAD before the actual 1596encrypt/decrypt takes place. The API does not differentiate the Nonce from 1597other AAD. 1598 1599When decrypting the return value of EVP_DecryptFinal() or EVP_CipherFinal() 1600indicates if the operation was successful. If it does not indicate success 1601the authentication operation has failed and any output data B<MUST NOT> 1602be used as it is corrupted. 1603 1604The API does not store the SIV (Synthetic Initialization Vector) in 1605the cipher text. Instead, it is stored as the tag within the EVP_CIPHER_CTX. 1606The SIV must be retrieved from the context after encryption, and set into 1607the context before decryption. 1608 1609This differs from RFC5297 in that the cipher output from encryption, and 1610the cipher input to decryption, does not contain the SIV. This also means 1611that the plain text and cipher text lengths are identical. 1612 1613The following ctrls are supported in SIV mode, and are used to get and set 1614the Synthetic Initialization Vector: 1615 1616=over 4 1617 1618=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_GET_TAG, taglen, tag); 1619 1620Writes I<taglen> bytes of the tag value (the Synthetic Initialization Vector) 1621to the buffer indicated by I<tag>. This call can only be made when encrypting 1622data and B<after> all data has been processed (e.g. after an EVP_EncryptFinal() 1623call). For SIV mode the taglen must be 16. 1624 1625=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_TAG, taglen, tag); 1626 1627Sets the expected tag (the Synthetic Initialization Vector) to I<taglen> 1628bytes from I<tag>. This call is only legal when decrypting data and must be 1629made B<before> any data is processed (e.g. before any EVP_DecryptUpdate() 1630calls). For SIV mode the taglen must be 16. 1631 1632=back 1633 1634SIV mode makes two passes over the input data, thus, only one call to 1635EVP_CipherUpdate(), EVP_EncryptUpdate() or EVP_DecryptUpdate() should be made 1636with I<out> set to a non-NULL value. A call to EVP_DecryptFinal() or 1637EVP_CipherFinal() is not required, but will indicate if the update 1638operation succeeded. 1639 1640=head2 ChaCha20-Poly1305 1641 1642The following I<ctrl>s are supported for the ChaCha20-Poly1305 AEAD algorithm. 1643 1644=over 4 1645 1646=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_IVLEN, ivlen, NULL) 1647 1648Sets the nonce length. This call is now redundant since the only valid value 1649is the default length of 12 (i.e. 96 bits). 1650Prior to OpenSSL 3.0 a nonce of less than 12 bytes could be used to automatically 1651pad the iv with leading 0 bytes to make it 12 bytes in length. 1652 1653=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_GET_TAG, taglen, tag) 1654 1655Writes C<taglen> bytes of the tag value to the buffer indicated by C<tag>. 1656This call can only be made when encrypting data and B<after> all data has been 1657processed (e.g. after an EVP_EncryptFinal() call). 1658 1659C<taglen> specified here must be 16 (B<POLY1305_BLOCK_SIZE>, i.e. 128-bits) or 1660less. 1661 1662=item EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_AEAD_SET_TAG, taglen, tag) 1663 1664Sets the expected tag to C<taglen> bytes from C<tag>. 1665The tag length can only be set before specifying an IV. 1666C<taglen> must be between 1 and 16 (B<POLY1305_BLOCK_SIZE>) inclusive. 1667This call is only valid when decrypting data. 1668 1669=back 1670 1671=head1 NOTES 1672 1673Where possible the B<EVP> interface to symmetric ciphers should be used in 1674preference to the low-level interfaces. This is because the code then becomes 1675transparent to the cipher used and much more flexible. Additionally, the 1676B<EVP> interface will ensure the use of platform specific cryptographic 1677acceleration such as AES-NI (the low-level interfaces do not provide the 1678guarantee). 1679 1680PKCS padding works by adding B<n> padding bytes of value B<n> to make the total 1681length of the encrypted data a multiple of the block size. Padding is always 1682added so if the data is already a multiple of the block size B<n> will equal 1683the block size. For example if the block size is 8 and 11 bytes are to be 1684encrypted then 5 padding bytes of value 5 will be added. 1685 1686When decrypting the final block is checked to see if it has the correct form. 1687 1688Although the decryption operation can produce an error if padding is enabled, 1689it is not a strong test that the input data or key is correct. A random block 1690has better than 1 in 256 chance of being of the correct format and problems with 1691the input data earlier on will not produce a final decrypt error. 1692 1693If padding is disabled then the decryption operation will always succeed if 1694the total amount of data decrypted is a multiple of the block size. 1695 1696The functions EVP_EncryptInit(), EVP_EncryptInit_ex(), 1697EVP_EncryptFinal(), EVP_DecryptInit(), EVP_DecryptInit_ex(), 1698EVP_CipherInit(), EVP_CipherInit_ex() and EVP_CipherFinal() are obsolete 1699but are retained for compatibility with existing code. New code should 1700use EVP_EncryptInit_ex2(), EVP_EncryptFinal_ex(), EVP_DecryptInit_ex2(), 1701EVP_DecryptFinal_ex(), EVP_CipherInit_ex2() and EVP_CipherFinal_ex() 1702because they can reuse an existing context without allocating and freeing 1703it up on each call. 1704 1705There are some differences between functions EVP_CipherInit() and 1706EVP_CipherInit_ex(), significant in some circumstances. EVP_CipherInit() fills 1707the passed context object with zeros. As a consequence, EVP_CipherInit() does 1708not allow step-by-step initialization of the ctx when the I<key> and I<iv> are 1709passed in separate calls. It also means that the flags set for the CTX are 1710removed, and it is especially important for the 1711B<EVP_CIPHER_CTX_FLAG_WRAP_ALLOW> flag treated specially in 1712EVP_CipherInit_ex(). 1713 1714Ignoring failure returns of the B<EVP_CIPHER_CTX> initialization functions can 1715lead to subsequent undefined behavior when calling the functions that update or 1716finalize the context. The only valid calls on the B<EVP_CIPHER_CTX> when 1717initialization fails are calls that attempt another initialization of the 1718context or release the context. 1719 1720EVP_get_cipherbynid(), and EVP_get_cipherbyobj() are implemented as macros. 1721 1722=head1 BUGS 1723 1724B<EVP_MAX_KEY_LENGTH> and B<EVP_MAX_IV_LENGTH> only refer to the internal 1725ciphers with default key lengths. If custom ciphers exceed these values the 1726results are unpredictable. This is because it has become standard practice to 1727define a generic key as a fixed unsigned char array containing 1728B<EVP_MAX_KEY_LENGTH> bytes. 1729 1730The ASN1 code is incomplete (and sometimes inaccurate) it has only been tested 1731for certain common S/MIME ciphers (RC2, DES, triple DES) in CBC mode. 1732 1733=head1 EXAMPLES 1734 1735Encrypt a string using IDEA: 1736 1737 int do_crypt(char *outfile) 1738 { 1739 unsigned char outbuf[1024]; 1740 int outlen, tmplen; 1741 /* 1742 * Bogus key and IV: we'd normally set these from 1743 * another source. 1744 */ 1745 unsigned char key[] = {0,1,2,3,4,5,6,7,8,9,10,11,12,13,14,15}; 1746 unsigned char iv[] = {1,2,3,4,5,6,7,8}; 1747 char intext[] = "Some Crypto Text"; 1748 EVP_CIPHER_CTX *ctx; 1749 FILE *out; 1750 1751 ctx = EVP_CIPHER_CTX_new(); 1752 if (!EVP_EncryptInit_ex2(ctx, EVP_idea_cbc(), key, iv, NULL)) { 1753 /* Error */ 1754 EVP_CIPHER_CTX_free(ctx); 1755 return 0; 1756 } 1757 1758 if (!EVP_EncryptUpdate(ctx, outbuf, &outlen, intext, strlen(intext))) { 1759 /* Error */ 1760 EVP_CIPHER_CTX_free(ctx); 1761 return 0; 1762 } 1763 /* 1764 * Buffer passed to EVP_EncryptFinal() must be after data just 1765 * encrypted to avoid overwriting it. 1766 */ 1767 if (!EVP_EncryptFinal_ex(ctx, outbuf + outlen, &tmplen)) { 1768 /* Error */ 1769 EVP_CIPHER_CTX_free(ctx); 1770 return 0; 1771 } 1772 outlen += tmplen; 1773 EVP_CIPHER_CTX_free(ctx); 1774 /* 1775 * Need binary mode for fopen because encrypted data is 1776 * binary data. Also cannot use strlen() on it because 1777 * it won't be NUL terminated and may contain embedded 1778 * NULs. 1779 */ 1780 out = fopen(outfile, "wb"); 1781 if (out == NULL) { 1782 /* Error */ 1783 return 0; 1784 } 1785 fwrite(outbuf, 1, outlen, out); 1786 fclose(out); 1787 return 1; 1788 } 1789 1790The ciphertext from the above example can be decrypted using the B<openssl> 1791utility with the command line (shown on two lines for clarity): 1792 1793 openssl idea -d \ 1794 -K 000102030405060708090A0B0C0D0E0F -iv 0102030405060708 <filename 1795 1796General encryption and decryption function example using FILE I/O and AES128 1797with a 128-bit key: 1798 1799 int do_crypt(FILE *in, FILE *out, int do_encrypt) 1800 { 1801 /* Allow enough space in output buffer for additional block */ 1802 unsigned char inbuf[1024], outbuf[1024 + EVP_MAX_BLOCK_LENGTH]; 1803 int inlen, outlen; 1804 EVP_CIPHER_CTX *ctx; 1805 /* 1806 * Bogus key and IV: we'd normally set these from 1807 * another source. 1808 */ 1809 unsigned char key[] = "0123456789abcdeF"; 1810 unsigned char iv[] = "1234567887654321"; 1811 1812 /* Don't set key or IV right away; we want to check lengths */ 1813 ctx = EVP_CIPHER_CTX_new(); 1814 if (!EVP_CipherInit_ex2(ctx, EVP_aes_128_cbc(), NULL, NULL, 1815 do_encrypt, NULL)) { 1816 /* Error */ 1817 EVP_CIPHER_CTX_free(ctx); 1818 return 0; 1819 } 1820 OPENSSL_assert(EVP_CIPHER_CTX_get_key_length(ctx) == 16); 1821 OPENSSL_assert(EVP_CIPHER_CTX_get_iv_length(ctx) == 16); 1822 1823 /* Now we can set key and IV */ 1824 if (!EVP_CipherInit_ex2(ctx, NULL, key, iv, do_encrypt, NULL)) { 1825 /* Error */ 1826 EVP_CIPHER_CTX_free(ctx); 1827 return 0; 1828 } 1829 1830 for (;;) { 1831 inlen = fread(inbuf, 1, 1024, in); 1832 if (inlen <= 0) 1833 break; 1834 if (!EVP_CipherUpdate(ctx, outbuf, &outlen, inbuf, inlen)) { 1835 /* Error */ 1836 EVP_CIPHER_CTX_free(ctx); 1837 return 0; 1838 } 1839 fwrite(outbuf, 1, outlen, out); 1840 } 1841 if (!EVP_CipherFinal_ex(ctx, outbuf, &outlen)) { 1842 /* Error */ 1843 EVP_CIPHER_CTX_free(ctx); 1844 return 0; 1845 } 1846 fwrite(outbuf, 1, outlen, out); 1847 1848 EVP_CIPHER_CTX_free(ctx); 1849 return 1; 1850 } 1851 1852Encryption using AES-CBC with a 256-bit key with "CS1" ciphertext stealing. 1853 1854 int encrypt(const unsigned char *key, const unsigned char *iv, 1855 const unsigned char *msg, size_t msg_len, unsigned char *out) 1856 { 1857 /* 1858 * This assumes that key size is 32 bytes and the iv is 16 bytes. 1859 * For ciphertext stealing mode the length of the ciphertext "out" will be 1860 * the same size as the plaintext size "msg_len". 1861 * The "msg_len" can be any size >= 16. 1862 */ 1863 int ret = 0, encrypt = 1, outlen, len; 1864 EVP_CIPHER_CTX *ctx = NULL; 1865 EVP_CIPHER *cipher = NULL; 1866 OSSL_PARAM params[2]; 1867 1868 ctx = EVP_CIPHER_CTX_new(); 1869 cipher = EVP_CIPHER_fetch(NULL, "AES-256-CBC-CTS", NULL); 1870 if (ctx == NULL || cipher == NULL) 1871 goto err; 1872 1873 /* 1874 * The default is "CS1" so this is not really needed, 1875 * but would be needed to set either "CS2" or "CS3". 1876 */ 1877 params[0] = OSSL_PARAM_construct_utf8_string(OSSL_CIPHER_PARAM_CTS_MODE, 1878 "CS1", 0); 1879 params[1] = OSSL_PARAM_construct_end(); 1880 1881 if (!EVP_CipherInit_ex2(ctx, cipher, key, iv, encrypt, params)) 1882 goto err; 1883 1884 /* NOTE: CTS mode does not support multiple calls to EVP_CipherUpdate() */ 1885 if (!EVP_CipherUpdate(ctx, out, &outlen, msg, msg_len)) 1886 goto err; 1887 if (!EVP_CipherFinal_ex(ctx, out + outlen, &len)) 1888 goto err; 1889 ret = 1; 1890 err: 1891 EVP_CIPHER_free(cipher); 1892 EVP_CIPHER_CTX_free(ctx); 1893 return ret; 1894 } 1895 1896=head1 SEE ALSO 1897 1898L<evp(7)>, 1899L<property(7)>, 1900L<crypto(7)/ALGORITHM FETCHING>, 1901L<provider-cipher(7)>, 1902L<life_cycle-cipher(7)> 1903 1904Supported ciphers are listed in: 1905 1906L<EVP_aes_128_gcm(3)>, 1907L<EVP_aria_128_gcm(3)>, 1908L<EVP_bf_cbc(3)>, 1909L<EVP_camellia_128_ecb(3)>, 1910L<EVP_cast5_cbc(3)>, 1911L<EVP_chacha20(3)>, 1912L<EVP_des_cbc(3)>, 1913L<EVP_desx_cbc(3)>, 1914L<EVP_idea_cbc(3)>, 1915L<EVP_rc2_cbc(3)>, 1916L<EVP_rc4(3)>, 1917L<EVP_rc5_32_12_16_cbc(3)>, 1918L<EVP_seed_cbc(3)>, 1919L<EVP_sm4_cbc(3)>, 1920 1921=head1 HISTORY 1922 1923Support for OCB mode was added in OpenSSL 1.1.0. 1924 1925B<EVP_CIPHER_CTX> was made opaque in OpenSSL 1.1.0. As a result, 1926EVP_CIPHER_CTX_reset() appeared and EVP_CIPHER_CTX_cleanup() 1927disappeared. EVP_CIPHER_CTX_init() remains as an alias for 1928EVP_CIPHER_CTX_reset(). 1929 1930The EVP_CIPHER_CTX_cipher() function was deprecated in OpenSSL 3.0; use 1931EVP_CIPHER_CTX_get0_cipher() instead. 1932 1933The EVP_EncryptInit_ex2(), EVP_DecryptInit_ex2(), EVP_CipherInit_ex2(), 1934EVP_CIPHER_fetch(), EVP_CIPHER_free(), EVP_CIPHER_up_ref(), 1935EVP_CIPHER_CTX_get0_cipher(), EVP_CIPHER_CTX_get1_cipher(), 1936EVP_CIPHER_get_params(), EVP_CIPHER_CTX_set_params(), 1937EVP_CIPHER_CTX_get_params(), EVP_CIPHER_gettable_params(), 1938EVP_CIPHER_settable_ctx_params(), EVP_CIPHER_gettable_ctx_params(), 1939EVP_CIPHER_CTX_settable_params() and EVP_CIPHER_CTX_gettable_params() 1940functions were added in 3.0. 1941 1942The EVP_CIPHER_nid(), EVP_CIPHER_name(), EVP_CIPHER_block_size(), 1943EVP_CIPHER_key_length(), EVP_CIPHER_iv_length(), EVP_CIPHER_flags(), 1944EVP_CIPHER_mode(), EVP_CIPHER_type(), EVP_CIPHER_CTX_nid(), 1945EVP_CIPHER_CTX_block_size(), EVP_CIPHER_CTX_key_length(), 1946EVP_CIPHER_CTX_iv_length(), EVP_CIPHER_CTX_tag_length(), 1947EVP_CIPHER_CTX_num(), EVP_CIPHER_CTX_type(), and EVP_CIPHER_CTX_mode() 1948functions were renamed to include C<get> or C<get0> in their names in 1949OpenSSL 3.0, respectively. The old names are kept as non-deprecated 1950alias macros. 1951 1952The EVP_CIPHER_CTX_encrypting() function was renamed to 1953EVP_CIPHER_CTX_is_encrypting() in OpenSSL 3.0. The old name is kept as 1954non-deprecated alias macro. 1955 1956The EVP_CIPHER_CTX_flags() macro was deprecated in OpenSSL 1.1.0. 1957 1958EVP_CIPHER_CTX_dup() was added in OpenSSL 3.2. 1959 1960EVP_CipherInit_SKEY() was added in OpenSSL 3.5. 1961 1962Prior to OpenSSL 3.5, passing a NULL I<ctx> to 1963B<EVP_CIPHER_CTX_get_block_size()> would result in a NULL pointer dereference, 1964rather than a 0 return value indicating an error. 1965 1966=head1 COPYRIGHT 1967 1968Copyright 2000-2026 The OpenSSL Project Authors. All Rights Reserved. 1969 1970Licensed under the Apache License 2.0 (the "License"). You may not use 1971this file except in compliance with the License. You can obtain a copy 1972in the file LICENSE in the source distribution or at 1973L<https://www.openssl.org/source/license.html>. 1974 1975=cut 1976