3 * RSAENH - RSA encryption for Wine
5 * Copyright 2002 TransGaming Technologies (David Hammerton)
6 * Copyright 2004 Mike McCormack for CodeWeavers
7 * Copyright 2004, 2005 Michael Jung
8 * Copyright 2007 Vijay Kiran Kamuju
10 * This library is free software; you can redistribute it and/or
11 * modify it under the terms of the GNU Lesser General Public
12 * License as published by the Free Software Foundation; either
13 * version 2.1 of the License, or (at your option) any later version.
15 * This library is distributed in the hope that it will be useful,
16 * but WITHOUT ANY WARRANTY; without even the implied warranty of
17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
18 * Lesser General Public License for more details.
20 * You should have received a copy of the GNU Lesser General Public
21 * License along with this library; if not, write to the Free Software
22 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301, USA
26 #include "wine/port.h"
27 #include "wine/library.h"
28 #include "wine/debug.h"
41 WINE_DEFAULT_DEBUG_CHANNEL(crypt
);
43 /******************************************************************************
44 * CRYPTHASH - hash objects
46 #define RSAENH_MAGIC_HASH 0x85938417u
47 #define RSAENH_MAX_HASH_SIZE 104
48 #define RSAENH_HASHSTATE_HASHING 1
49 #define RSAENH_HASHSTATE_FINISHED 2
50 typedef struct _RSAENH_TLS1PRF_PARAMS
52 CRYPT_DATA_BLOB blobLabel
;
53 CRYPT_DATA_BLOB blobSeed
;
54 } RSAENH_TLS1PRF_PARAMS
;
56 typedef struct tagCRYPTHASH
65 BYTE abHashValue
[RSAENH_MAX_HASH_SIZE
];
67 RSAENH_TLS1PRF_PARAMS tpPRFParams
;
70 /******************************************************************************
71 * CRYPTKEY - key objects
73 #define RSAENH_MAGIC_KEY 0x73620457u
74 #define RSAENH_MAX_KEY_SIZE 48
75 #define RSAENH_MAX_BLOCK_SIZE 24
76 #define RSAENH_KEYSTATE_IDLE 0
77 #define RSAENH_KEYSTATE_ENCRYPTING 1
78 #define RSAENH_KEYSTATE_MASTERKEY 2
79 typedef struct _RSAENH_SCHANNEL_INFO
81 SCHANNEL_ALG saEncAlg
;
82 SCHANNEL_ALG saMACAlg
;
83 CRYPT_DATA_BLOB blobClientRandom
;
84 CRYPT_DATA_BLOB blobServerRandom
;
85 } RSAENH_SCHANNEL_INFO
;
87 typedef struct tagCRYPTKEY
96 DWORD dwEffectiveKeyLen
;
101 BYTE abKeyValue
[RSAENH_MAX_KEY_SIZE
];
102 BYTE abInitVector
[RSAENH_MAX_BLOCK_SIZE
];
103 BYTE abChainVector
[RSAENH_MAX_BLOCK_SIZE
];
104 RSAENH_SCHANNEL_INFO siSChannelInfo
;
107 /******************************************************************************
108 * KEYCONTAINER - key containers
110 #define RSAENH_PERSONALITY_BASE 0u
111 #define RSAENH_PERSONALITY_STRONG 1u
112 #define RSAENH_PERSONALITY_ENHANCED 2u
113 #define RSAENH_PERSONALITY_SCHANNEL 3u
114 #define RSAENH_PERSONALITY_AES 4u
116 #define RSAENH_MAGIC_CONTAINER 0x26384993u
117 typedef struct tagKEYCONTAINER
123 DWORD dwEnumContainersCtr
;
124 CHAR szName
[MAX_PATH
];
125 CHAR szProvName
[MAX_PATH
];
126 HCRYPTKEY hKeyExchangeKeyPair
;
127 HCRYPTKEY hSignatureKeyPair
;
130 /******************************************************************************
131 * Some magic constants
133 #define RSAENH_ENCRYPT 1
134 #define RSAENH_DECRYPT 0
135 #define RSAENH_HMAC_DEF_IPAD_CHAR 0x36
136 #define RSAENH_HMAC_DEF_OPAD_CHAR 0x5c
137 #define RSAENH_HMAC_DEF_PAD_LEN 64
138 #define RSAENH_DES_EFFECTIVE_KEYLEN 56
139 #define RSAENH_DES_STORAGE_KEYLEN 64
140 #define RSAENH_3DES112_EFFECTIVE_KEYLEN 112
141 #define RSAENH_3DES112_STORAGE_KEYLEN 128
142 #define RSAENH_3DES_EFFECTIVE_KEYLEN 168
143 #define RSAENH_3DES_STORAGE_KEYLEN 192
144 #define RSAENH_MAGIC_RSA2 0x32415352
145 #define RSAENH_MAGIC_RSA1 0x31415352
146 #define RSAENH_PKC_BLOCKTYPE 0x02
147 #define RSAENH_SSL3_VERSION_MAJOR 3
148 #define RSAENH_SSL3_VERSION_MINOR 0
149 #define RSAENH_TLS1_VERSION_MAJOR 3
150 #define RSAENH_TLS1_VERSION_MINOR 1
151 #define RSAENH_REGKEY "Software\\Wine\\Crypto\\RSA\\%s"
153 #define RSAENH_MIN(a,b) ((a)<(b)?(a):(b))
154 /******************************************************************************
155 * aProvEnumAlgsEx - Defines the capabilities of the CSP personalities.
157 #define RSAENH_MAX_ENUMALGS 24
158 #define RSAENH_PCT1_SSL2_SSL3_TLS1 (CRYPT_FLAG_PCT1|CRYPT_FLAG_SSL2|CRYPT_FLAG_SSL3|CRYPT_FLAG_TLS1)
159 static const PROV_ENUMALGS_EX aProvEnumAlgsEx
[5][RSAENH_MAX_ENUMALGS
+1] =
162 {CALG_RC2
, 40, 40, 56,0, 4,"RC2", 24,"RSA Data Security's RC2"},
163 {CALG_RC4
, 40, 40, 56,0, 4,"RC4", 24,"RSA Data Security's RC4"},
164 {CALG_DES
, 56, 56, 56,0, 4,"DES", 31,"Data Encryption Standard (DES)"},
165 {CALG_SHA
, 160,160, 160,CRYPT_FLAG_SIGNING
, 6,"SHA-1", 30,"Secure Hash Algorithm (SHA-1)"},
166 {CALG_MD2
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD2", 23,"Message Digest 2 (MD2)"},
167 {CALG_MD4
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD4", 23,"Message Digest 4 (MD4)"},
168 {CALG_MD5
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD5", 23,"Message Digest 5 (MD5)"},
169 {CALG_SSL3_SHAMD5
,288,288,288,0, 12,"SSL3 SHAMD5",12,"SSL3 SHAMD5"},
170 {CALG_MAC
, 0, 0, 0,0, 4,"MAC", 28,"Message Authentication Code"},
171 {CALG_RSA_SIGN
, 512,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_SIGN",14,"RSA Signature"},
172 {CALG_RSA_KEYX
, 512,384, 1024,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_KEYX",17,"RSA Key Exchange"},
173 {CALG_HMAC
, 0, 0, 0,0, 5,"HMAC", 18,"Hugo's MAC (HMAC)"},
174 {0, 0, 0, 0,0, 1,"", 1,""}
177 {CALG_RC2
, 128, 40, 128,0, 4,"RC2", 24,"RSA Data Security's RC2"},
178 {CALG_RC4
, 128, 40, 128,0, 4,"RC4", 24,"RSA Data Security's RC4"},
179 {CALG_DES
, 56, 56, 56,0, 4,"DES", 31,"Data Encryption Standard (DES)"},
180 {CALG_3DES_112
, 112,112, 112,0, 13,"3DES TWO KEY",19,"Two Key Triple DES"},
181 {CALG_3DES
, 168,168, 168,0, 5,"3DES", 21,"Three Key Triple DES"},
182 {CALG_SHA
, 160,160, 160,CRYPT_FLAG_SIGNING
, 6,"SHA-1", 30,"Secure Hash Algorithm (SHA-1)"},
183 {CALG_MD2
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD2", 23,"Message Digest 2 (MD2)"},
184 {CALG_MD4
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD4", 23,"Message Digest 4 (MD4)"},
185 {CALG_MD5
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD5", 23,"Message Digest 5 (MD5)"},
186 {CALG_SSL3_SHAMD5
,288,288,288,0, 12,"SSL3 SHAMD5",12,"SSL3 SHAMD5"},
187 {CALG_MAC
, 0, 0, 0,0, 4,"MAC", 28,"Message Authentication Code"},
188 {CALG_RSA_SIGN
,1024,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_SIGN",14,"RSA Signature"},
189 {CALG_RSA_KEYX
,1024,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_KEYX",17,"RSA Key Exchange"},
190 {CALG_HMAC
, 0, 0, 0,0, 5,"HMAC", 18,"Hugo's MAC (HMAC)"},
191 {0, 0, 0, 0,0, 1,"", 1,""}
194 {CALG_RC2
, 128, 40, 128,0, 4,"RC2", 24,"RSA Data Security's RC2"},
195 {CALG_RC4
, 128, 40, 128,0, 4,"RC4", 24,"RSA Data Security's RC4"},
196 {CALG_DES
, 56, 56, 56,0, 4,"DES", 31,"Data Encryption Standard (DES)"},
197 {CALG_3DES_112
, 112,112, 112,0, 13,"3DES TWO KEY",19,"Two Key Triple DES"},
198 {CALG_3DES
, 168,168, 168,0, 5,"3DES", 21,"Three Key Triple DES"},
199 {CALG_SHA
, 160,160, 160,CRYPT_FLAG_SIGNING
, 6,"SHA-1", 30,"Secure Hash Algorithm (SHA-1)"},
200 {CALG_MD2
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD2", 23,"Message Digest 2 (MD2)"},
201 {CALG_MD4
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD4", 23,"Message Digest 4 (MD4)"},
202 {CALG_MD5
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD5", 23,"Message Digest 5 (MD5)"},
203 {CALG_SSL3_SHAMD5
,288,288,288,0, 12,"SSL3 SHAMD5",12,"SSL3 SHAMD5"},
204 {CALG_MAC
, 0, 0, 0,0, 4,"MAC", 28,"Message Authentication Code"},
205 {CALG_RSA_SIGN
,1024,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_SIGN",14,"RSA Signature"},
206 {CALG_RSA_KEYX
,1024,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_KEYX",17,"RSA Key Exchange"},
207 {CALG_HMAC
, 0, 0, 0,0, 5,"HMAC", 18,"Hugo's MAC (HMAC)"},
208 {0, 0, 0, 0,0, 1,"", 1,""}
211 {CALG_RC2
, 128, 40, 128,RSAENH_PCT1_SSL2_SSL3_TLS1
, 4,"RC2", 24,"RSA Data Security's RC2"},
212 {CALG_RC4
, 128, 40, 128,RSAENH_PCT1_SSL2_SSL3_TLS1
, 4,"RC4", 24,"RSA Data Security's RC4"},
213 {CALG_DES
, 56, 56, 56,RSAENH_PCT1_SSL2_SSL3_TLS1
, 4,"DES", 31,"Data Encryption Standard (DES)"},
214 {CALG_3DES_112
, 112,112, 112,RSAENH_PCT1_SSL2_SSL3_TLS1
,13,"3DES TWO KEY",19,"Two Key Triple DES"},
215 {CALG_3DES
, 168,168, 168,RSAENH_PCT1_SSL2_SSL3_TLS1
, 5,"3DES", 21,"Three Key Triple DES"},
216 {CALG_SHA
,160,160,160,CRYPT_FLAG_SIGNING
|RSAENH_PCT1_SSL2_SSL3_TLS1
,6,"SHA-1",30,"Secure Hash Algorithm (SHA-1)"},
217 {CALG_MD5
,128,128,128,CRYPT_FLAG_SIGNING
|RSAENH_PCT1_SSL2_SSL3_TLS1
,4,"MD5",23,"Message Digest 5 (MD5)"},
218 {CALG_SSL3_SHAMD5
,288,288,288,0, 12,"SSL3 SHAMD5",12,"SSL3 SHAMD5"},
219 {CALG_MAC
, 0, 0, 0,0, 4,"MAC", 28,"Message Authentication Code"},
220 {CALG_RSA_SIGN
,1024,384,16384,CRYPT_FLAG_SIGNING
|RSAENH_PCT1_SSL2_SSL3_TLS1
,9,"RSA_SIGN",14,"RSA Signature"},
221 {CALG_RSA_KEYX
,1024,384,16384,CRYPT_FLAG_SIGNING
|RSAENH_PCT1_SSL2_SSL3_TLS1
,9,"RSA_KEYX",17,"RSA Key Exchange"},
222 {CALG_HMAC
, 0, 0, 0,0, 5,"HMAC", 18,"Hugo's MAC (HMAC)"},
223 {CALG_PCT1_MASTER
,128,128,128,CRYPT_FLAG_PCT1
, 12,"PCT1 MASTER",12,"PCT1 Master"},
224 {CALG_SSL2_MASTER
,40,40, 192,CRYPT_FLAG_SSL2
, 12,"SSL2 MASTER",12,"SSL2 Master"},
225 {CALG_SSL3_MASTER
,384,384,384,CRYPT_FLAG_SSL3
, 12,"SSL3 MASTER",12,"SSL3 Master"},
226 {CALG_TLS1_MASTER
,384,384,384,CRYPT_FLAG_TLS1
, 12,"TLS1 MASTER",12,"TLS1 Master"},
227 {CALG_SCHANNEL_MASTER_HASH
,0,0,-1,0, 16,"SCH MASTER HASH",21,"SChannel Master Hash"},
228 {CALG_SCHANNEL_MAC_KEY
,0,0,-1,0, 12,"SCH MAC KEY",17,"SChannel MAC Key"},
229 {CALG_SCHANNEL_ENC_KEY
,0,0,-1,0, 12,"SCH ENC KEY",24,"SChannel Encryption Key"},
230 {CALG_TLS1PRF
, 0, 0, -1,0, 9,"TLS1 PRF", 28,"TLS1 Pseudo Random Function"},
231 {0, 0, 0, 0,0, 1,"", 1,""}
234 {CALG_RC2
, 128, 40, 128,0, 4,"RC2", 24,"RSA Data Security's RC2"},
235 {CALG_RC4
, 128, 40, 128,0, 4,"RC4", 24,"RSA Data Security's RC4"},
236 {CALG_DES
, 56, 56, 56,0, 4,"DES", 31,"Data Encryption Standard (DES)"},
237 {CALG_3DES_112
, 112,112, 112,0, 13,"3DES TWO KEY",19,"Two Key Triple DES"},
238 {CALG_3DES
, 168,168, 168,0, 5,"3DES", 21,"Three Key Triple DES"},
239 {CALG_AES
, 128,128, 128,0, 4,"AES", 35,"Advanced Encryption Standard (AES)"},
240 {CALG_AES_128
, 128,128, 128,0, 8,"AES-128", 39,"Advanced Encryption Standard (AES-128)"},
241 {CALG_AES_192
, 192,192, 192,0, 8,"AES-192", 39,"Advanced Encryption Standard (AES-192)"},
242 {CALG_AES_256
, 256,256, 256,0, 8,"AES-256", 39,"Advanced Encryption Standard (AES-256)"},
243 {CALG_SHA
, 160,160, 160,CRYPT_FLAG_SIGNING
, 6,"SHA-1", 30,"Secure Hash Algorithm (SHA-1)"},
244 {CALG_MD2
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD2", 23,"Message Digest 2 (MD2)"},
245 {CALG_MD4
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD4", 23,"Message Digest 4 (MD4)"},
246 {CALG_MD5
, 128,128, 128,CRYPT_FLAG_SIGNING
, 4,"MD5", 23,"Message Digest 5 (MD5)"},
247 {CALG_SSL3_SHAMD5
,288,288,288,0, 12,"SSL3 SHAMD5",12,"SSL3 SHAMD5"},
248 {CALG_MAC
, 0, 0, 0,0, 4,"MAC", 28,"Message Authentication Code"},
249 {CALG_RSA_SIGN
,1024,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_SIGN",14,"RSA Signature"},
250 {CALG_RSA_KEYX
,1024,384,16384,CRYPT_FLAG_SIGNING
|CRYPT_FLAG_IPSEC
,9,"RSA_KEYX",17,"RSA Key Exchange"},
251 {CALG_HMAC
, 0, 0, 0,0, 5,"HMAC", 18,"Hugo's MAC (HMAC)"},
252 {0, 0, 0, 0,0, 1,"", 1,""}
256 /******************************************************************************
257 * API forward declarations
260 RSAENH_CPGetKeyParam(
291 RSAENH_CPSetHashParam(
295 BYTE
*pbData
, DWORD dwFlags
299 RSAENH_CPGetHashParam(
309 RSAENH_CPDestroyHash(
314 static BOOL
crypt_export_key(
324 static BOOL
import_key(
343 /******************************************************************************
344 * CSP's handle table (used by all acquired key containers)
346 static struct handle_table handle_table
;
348 /******************************************************************************
351 * Initializes and destroys the handle table for the CSP's handles.
353 int WINAPI
DllMain(HINSTANCE hInstance
, DWORD fdwReason
, PVOID pvReserved
)
357 case DLL_PROCESS_ATTACH
:
358 DisableThreadLibraryCalls(hInstance
);
359 init_handle_table(&handle_table
);
362 case DLL_PROCESS_DETACH
:
363 destroy_handle_table(&handle_table
);
369 /******************************************************************************
370 * copy_param [Internal]
372 * Helper function that supports the standard WINAPI protocol for querying data
376 * pbBuffer [O] Buffer where the queried parameter is copied to, if it is large enough.
377 * May be NUL if the required buffer size is to be queried only.
378 * pdwBufferSize [I/O] In: Size of the buffer at pbBuffer
379 * Out: Size of parameter pbParam
380 * pbParam [I] Parameter value.
381 * dwParamSize [I] Size of pbParam
384 * Success: TRUE (pbParam was copied into pbBuffer or pbBuffer is NULL)
385 * Failure: FALSE (pbBuffer is not large enough to hold pbParam). Last error: ERROR_MORE_DATA
387 static inline BOOL
copy_param(
388 BYTE
*pbBuffer
, DWORD
*pdwBufferSize
, CONST BYTE
*pbParam
, DWORD dwParamSize
)
392 if (dwParamSize
> *pdwBufferSize
)
394 SetLastError(ERROR_MORE_DATA
);
395 *pdwBufferSize
= dwParamSize
;
398 memcpy(pbBuffer
, pbParam
, dwParamSize
);
400 *pdwBufferSize
= dwParamSize
;
404 /******************************************************************************
405 * get_algid_info [Internal]
407 * Query CSP capabilities for a given crypto algorithm.
410 * hProv [I] Handle to a key container of the CSP whose capabilities are to be queried.
411 * algid [I] Identifier of the crypto algorithm about which information is requested.
414 * Success: Pointer to a PROV_ENUMALGS_EX struct containing information about the crypto algorithm.
415 * Failure: NULL (algid not supported)
417 static inline const PROV_ENUMALGS_EX
* get_algid_info(HCRYPTPROV hProv
, ALG_ID algid
) {
418 const PROV_ENUMALGS_EX
*iterator
;
419 KEYCONTAINER
*pKeyContainer
;
421 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
, (OBJECTHDR
**)&pKeyContainer
)) {
422 SetLastError(NTE_BAD_UID
);
426 for (iterator
= aProvEnumAlgsEx
[pKeyContainer
->dwPersonality
]; iterator
->aiAlgid
; iterator
++) {
427 if (iterator
->aiAlgid
== algid
) return iterator
;
430 SetLastError(NTE_BAD_ALGID
);
434 /******************************************************************************
435 * copy_data_blob [Internal]
437 * deeply copies a DATA_BLOB
440 * dst [O] That's where the blob will be copied to
441 * src [I] Source blob
445 * Failure: FALSE (GetLastError() == NTE_NO_MEMORY
448 * Use free_data_blob to release resources occupied by copy_data_blob.
450 static inline BOOL
copy_data_blob(PCRYPT_DATA_BLOB dst
, CONST PCRYPT_DATA_BLOB src
) {
451 dst
->pbData
= HeapAlloc(GetProcessHeap(), 0, src
->cbData
);
453 SetLastError(NTE_NO_MEMORY
);
456 dst
->cbData
= src
->cbData
;
457 memcpy(dst
->pbData
, src
->pbData
, src
->cbData
);
461 /******************************************************************************
462 * concat_data_blobs [Internal]
464 * Concatenates two blobs
467 * dst [O] The new blob will be copied here
468 * src1 [I] Prefix blob
469 * src2 [I] Appendix blob
473 * Failure: FALSE (GetLastError() == NTE_NO_MEMORY)
476 * Release resources occupied by concat_data_blobs with free_data_blobs
478 static inline BOOL
concat_data_blobs(PCRYPT_DATA_BLOB dst
, CONST PCRYPT_DATA_BLOB src1
,
479 CONST PCRYPT_DATA_BLOB src2
)
481 dst
->cbData
= src1
->cbData
+ src2
->cbData
;
482 dst
->pbData
= HeapAlloc(GetProcessHeap(), 0, dst
->cbData
);
484 SetLastError(NTE_NO_MEMORY
);
487 memcpy(dst
->pbData
, src1
->pbData
, src1
->cbData
);
488 memcpy(dst
->pbData
+ src1
->cbData
, src2
->pbData
, src2
->cbData
);
492 /******************************************************************************
493 * free_data_blob [Internal]
495 * releases resource occupied by a dynamically allocated CRYPT_DATA_BLOB
498 * pBlob [I] Heap space occupied by pBlob->pbData is released
500 static inline void free_data_blob(PCRYPT_DATA_BLOB pBlob
) {
501 HeapFree(GetProcessHeap(), 0, pBlob
->pbData
);
504 /******************************************************************************
505 * init_data_blob [Internal]
507 static inline void init_data_blob(PCRYPT_DATA_BLOB pBlob
) {
508 pBlob
->pbData
= NULL
;
512 /******************************************************************************
513 * free_hmac_info [Internal]
515 * Deeply free an HMAC_INFO struct.
518 * hmac_info [I] Pointer to the HMAC_INFO struct to be freed.
521 * See Internet RFC 2104 for details on the HMAC algorithm.
523 static inline void free_hmac_info(PHMAC_INFO hmac_info
) {
524 if (!hmac_info
) return;
525 HeapFree(GetProcessHeap(), 0, hmac_info
->pbInnerString
);
526 HeapFree(GetProcessHeap(), 0, hmac_info
->pbOuterString
);
527 HeapFree(GetProcessHeap(), 0, hmac_info
);
530 /******************************************************************************
531 * copy_hmac_info [Internal]
533 * Deeply copy an HMAC_INFO struct
536 * dst [O] Pointer to a location where the pointer to the HMAC_INFO copy will be stored.
537 * src [I] Pointer to the HMAC_INFO struct to be copied.
544 * See Internet RFC 2104 for details on the HMAC algorithm.
546 static BOOL
copy_hmac_info(PHMAC_INFO
*dst
, const HMAC_INFO
*src
) {
547 if (!src
) return FALSE
;
548 *dst
= HeapAlloc(GetProcessHeap(), 0, sizeof(HMAC_INFO
));
549 if (!*dst
) return FALSE
;
551 (*dst
)->pbInnerString
= NULL
;
552 (*dst
)->pbOuterString
= NULL
;
553 if ((*dst
)->cbInnerString
== 0) (*dst
)->cbInnerString
= RSAENH_HMAC_DEF_PAD_LEN
;
554 (*dst
)->pbInnerString
= HeapAlloc(GetProcessHeap(), 0, (*dst
)->cbInnerString
);
555 if (!(*dst
)->pbInnerString
) {
556 free_hmac_info(*dst
);
559 if (src
->cbInnerString
)
560 memcpy((*dst
)->pbInnerString
, src
->pbInnerString
, src
->cbInnerString
);
562 memset((*dst
)->pbInnerString
, RSAENH_HMAC_DEF_IPAD_CHAR
, RSAENH_HMAC_DEF_PAD_LEN
);
563 if ((*dst
)->cbOuterString
== 0) (*dst
)->cbOuterString
= RSAENH_HMAC_DEF_PAD_LEN
;
564 (*dst
)->pbOuterString
= HeapAlloc(GetProcessHeap(), 0, (*dst
)->cbOuterString
);
565 if (!(*dst
)->pbOuterString
) {
566 free_hmac_info(*dst
);
569 if (src
->cbOuterString
)
570 memcpy((*dst
)->pbOuterString
, src
->pbOuterString
, src
->cbOuterString
);
572 memset((*dst
)->pbOuterString
, RSAENH_HMAC_DEF_OPAD_CHAR
, RSAENH_HMAC_DEF_PAD_LEN
);
576 /******************************************************************************
577 * destroy_hash [Internal]
579 * Destructor for hash objects
582 * pCryptHash [I] Pointer to the hash object to be destroyed.
583 * Will be invalid after function returns!
585 static void destroy_hash(OBJECTHDR
*pObject
)
587 CRYPTHASH
*pCryptHash
= (CRYPTHASH
*)pObject
;
589 free_hmac_info(pCryptHash
->pHMACInfo
);
590 free_data_blob(&pCryptHash
->tpPRFParams
.blobLabel
);
591 free_data_blob(&pCryptHash
->tpPRFParams
.blobSeed
);
592 HeapFree(GetProcessHeap(), 0, pCryptHash
);
595 /******************************************************************************
596 * init_hash [Internal]
598 * Initialize (or reset) a hash object
601 * pCryptHash [I] The hash object to be initialized.
603 static inline BOOL
init_hash(CRYPTHASH
*pCryptHash
) {
606 switch (pCryptHash
->aiAlgid
)
609 if (pCryptHash
->pHMACInfo
) {
610 const PROV_ENUMALGS_EX
*pAlgInfo
;
612 pAlgInfo
= get_algid_info(pCryptHash
->hProv
, pCryptHash
->pHMACInfo
->HashAlgid
);
613 if (!pAlgInfo
) return FALSE
;
614 pCryptHash
->dwHashSize
= pAlgInfo
->dwDefaultLen
>> 3;
615 init_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
);
616 update_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
,
617 pCryptHash
->pHMACInfo
->pbInnerString
,
618 pCryptHash
->pHMACInfo
->cbInnerString
);
623 dwLen
= sizeof(DWORD
);
624 RSAENH_CPGetKeyParam(pCryptHash
->hProv
, pCryptHash
->hKey
, KP_BLOCKLEN
,
625 (BYTE
*)&pCryptHash
->dwHashSize
, &dwLen
, 0);
626 pCryptHash
->dwHashSize
>>= 3;
630 return init_hash_impl(pCryptHash
->aiAlgid
, &pCryptHash
->context
);
634 /******************************************************************************
635 * update_hash [Internal]
637 * Hashes the given data and updates the hash object's state accordingly
640 * pCryptHash [I] Hash object to be updated.
641 * pbData [I] Pointer to data stream to be hashed.
642 * dwDataLen [I] Length of data stream.
644 static inline void update_hash(CRYPTHASH
*pCryptHash
, CONST BYTE
*pbData
, DWORD dwDataLen
) {
647 switch (pCryptHash
->aiAlgid
)
650 if (pCryptHash
->pHMACInfo
)
651 update_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
,
656 pbTemp
= HeapAlloc(GetProcessHeap(), 0, dwDataLen
);
658 memcpy(pbTemp
, pbData
, dwDataLen
);
659 RSAENH_CPEncrypt(pCryptHash
->hProv
, pCryptHash
->hKey
, 0, FALSE
, 0,
660 pbTemp
, &dwDataLen
, dwDataLen
);
661 HeapFree(GetProcessHeap(), 0, pbTemp
);
665 update_hash_impl(pCryptHash
->aiAlgid
, &pCryptHash
->context
, pbData
, dwDataLen
);
669 /******************************************************************************
670 * finalize_hash [Internal]
672 * Finalizes the hash, after all data has been hashed with update_hash.
673 * No additional data can be hashed afterwards until the hash gets initialized again.
676 * pCryptHash [I] Hash object to be finalized.
678 static inline void finalize_hash(CRYPTHASH
*pCryptHash
) {
681 switch (pCryptHash
->aiAlgid
)
684 if (pCryptHash
->pHMACInfo
) {
685 BYTE abHashValue
[RSAENH_MAX_HASH_SIZE
];
687 finalize_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
,
688 pCryptHash
->abHashValue
);
689 memcpy(abHashValue
, pCryptHash
->abHashValue
, pCryptHash
->dwHashSize
);
690 init_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
);
691 update_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
,
692 pCryptHash
->pHMACInfo
->pbOuterString
,
693 pCryptHash
->pHMACInfo
->cbOuterString
);
694 update_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
,
695 abHashValue
, pCryptHash
->dwHashSize
);
696 finalize_hash_impl(pCryptHash
->pHMACInfo
->HashAlgid
, &pCryptHash
->context
,
697 pCryptHash
->abHashValue
);
703 RSAENH_CPEncrypt(pCryptHash
->hProv
, pCryptHash
->hKey
, 0, TRUE
, 0,
704 pCryptHash
->abHashValue
, &dwDataLen
, pCryptHash
->dwHashSize
);
708 finalize_hash_impl(pCryptHash
->aiAlgid
, &pCryptHash
->context
, pCryptHash
->abHashValue
);
712 /******************************************************************************
713 * destroy_key [Internal]
715 * Destructor for key objects
718 * pCryptKey [I] Pointer to the key object to be destroyed.
719 * Will be invalid after function returns!
721 static void destroy_key(OBJECTHDR
*pObject
)
723 CRYPTKEY
*pCryptKey
= (CRYPTKEY
*)pObject
;
725 free_key_impl(pCryptKey
->aiAlgid
, &pCryptKey
->context
);
726 free_data_blob(&pCryptKey
->siSChannelInfo
.blobClientRandom
);
727 free_data_blob(&pCryptKey
->siSChannelInfo
.blobServerRandom
);
728 HeapFree(GetProcessHeap(), 0, pCryptKey
);
731 /******************************************************************************
732 * setup_key [Internal]
734 * Initialize (or reset) a key object
737 * pCryptKey [I] The key object to be initialized.
739 static inline void setup_key(CRYPTKEY
*pCryptKey
) {
740 pCryptKey
->dwState
= RSAENH_KEYSTATE_IDLE
;
741 memcpy(pCryptKey
->abChainVector
, pCryptKey
->abInitVector
, sizeof(pCryptKey
->abChainVector
));
742 setup_key_impl(pCryptKey
->aiAlgid
, &pCryptKey
->context
, pCryptKey
->dwKeyLen
,
743 pCryptKey
->dwEffectiveKeyLen
, pCryptKey
->dwSaltLen
,
744 pCryptKey
->abKeyValue
);
747 /******************************************************************************
750 * Creates a new key object without assigning the actual binary key value.
751 * This is done by CPDeriveKey, CPGenKey or CPImportKey, which call this function.
754 * hProv [I] Handle to the provider to which the created key will belong.
755 * aiAlgid [I] The new key shall use the crypto algorithm idenfied by aiAlgid.
756 * dwFlags [I] Upper 16 bits give the key length.
757 * Lower 16 bits: CRYPT_EXPORTABLE, CRYPT_CREATE_SALT,
759 * ppCryptKey [O] Pointer to the created key
762 * Success: Handle to the created key.
763 * Failure: INVALID_HANDLE_VALUE
765 static HCRYPTKEY
new_key(HCRYPTPROV hProv
, ALG_ID aiAlgid
, DWORD dwFlags
, CRYPTKEY
**ppCryptKey
)
769 DWORD dwKeyLen
= HIWORD(dwFlags
);
770 const PROV_ENUMALGS_EX
*peaAlgidInfo
;
775 * Retrieve the CSP's capabilities for the given ALG_ID value
777 peaAlgidInfo
= get_algid_info(hProv
, aiAlgid
);
778 if (!peaAlgidInfo
) return (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
780 TRACE("alg = %s, dwKeyLen = %d\n", debugstr_a(peaAlgidInfo
->szName
),
783 * Assume the default key length, if none is specified explicitly
785 if (dwKeyLen
== 0) dwKeyLen
= peaAlgidInfo
->dwDefaultLen
;
788 * Check if the requested key length is supported by the current CSP.
789 * Adjust key length's for DES algorithms.
793 if (dwKeyLen
== RSAENH_DES_EFFECTIVE_KEYLEN
) {
794 dwKeyLen
= RSAENH_DES_STORAGE_KEYLEN
;
796 if (dwKeyLen
!= RSAENH_DES_STORAGE_KEYLEN
) {
797 SetLastError(NTE_BAD_FLAGS
);
798 return (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
803 if (dwKeyLen
== RSAENH_3DES112_EFFECTIVE_KEYLEN
) {
804 dwKeyLen
= RSAENH_3DES112_STORAGE_KEYLEN
;
806 if (dwKeyLen
!= RSAENH_3DES112_STORAGE_KEYLEN
) {
807 SetLastError(NTE_BAD_FLAGS
);
808 return (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
813 if (dwKeyLen
== RSAENH_3DES_EFFECTIVE_KEYLEN
) {
814 dwKeyLen
= RSAENH_3DES_STORAGE_KEYLEN
;
816 if (dwKeyLen
!= RSAENH_3DES_STORAGE_KEYLEN
) {
817 SetLastError(NTE_BAD_FLAGS
);
818 return (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
824 dwKeyLen
> peaAlgidInfo
->dwMaxLen
||
825 dwKeyLen
< peaAlgidInfo
->dwMinLen
)
827 TRACE("key len %d out of bounds (%d, %d)\n", dwKeyLen
,
828 peaAlgidInfo
->dwMinLen
, peaAlgidInfo
->dwMaxLen
);
829 SetLastError(NTE_BAD_DATA
);
830 return (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
834 hCryptKey
= new_object(&handle_table
, sizeof(CRYPTKEY
), RSAENH_MAGIC_KEY
,
835 destroy_key
, (OBJECTHDR
**)&pCryptKey
);
836 if (hCryptKey
!= (HCRYPTKEY
)INVALID_HANDLE_VALUE
)
838 pCryptKey
->aiAlgid
= aiAlgid
;
839 pCryptKey
->hProv
= hProv
;
840 pCryptKey
->dwModeBits
= 0;
841 pCryptKey
->dwPermissions
= CRYPT_ENCRYPT
| CRYPT_DECRYPT
| CRYPT_READ
| CRYPT_WRITE
|
843 if (dwFlags
& CRYPT_EXPORTABLE
)
844 pCryptKey
->dwPermissions
|= CRYPT_EXPORT
;
845 pCryptKey
->dwKeyLen
= dwKeyLen
>> 3;
846 pCryptKey
->dwEffectiveKeyLen
= 0;
847 if ((dwFlags
& CRYPT_CREATE_SALT
) || (dwKeyLen
== 40 && !(dwFlags
& CRYPT_NO_SALT
)))
848 pCryptKey
->dwSaltLen
= 16 /*FIXME*/ - pCryptKey
->dwKeyLen
;
850 pCryptKey
->dwSaltLen
= 0;
851 memset(pCryptKey
->abKeyValue
, 0, sizeof(pCryptKey
->abKeyValue
));
852 memset(pCryptKey
->abInitVector
, 0, sizeof(pCryptKey
->abInitVector
));
853 init_data_blob(&pCryptKey
->siSChannelInfo
.blobClientRandom
);
854 init_data_blob(&pCryptKey
->siSChannelInfo
.blobServerRandom
);
858 case CALG_PCT1_MASTER
:
859 case CALG_SSL2_MASTER
:
860 case CALG_SSL3_MASTER
:
861 case CALG_TLS1_MASTER
:
863 pCryptKey
->dwBlockLen
= 0;
864 pCryptKey
->dwMode
= 0;
871 pCryptKey
->dwBlockLen
= 8;
872 pCryptKey
->dwMode
= CRYPT_MODE_CBC
;
879 pCryptKey
->dwBlockLen
= 16;
880 pCryptKey
->dwMode
= CRYPT_MODE_ECB
;
885 pCryptKey
->dwBlockLen
= dwKeyLen
>> 3;
886 pCryptKey
->dwMode
= 0;
890 *ppCryptKey
= pCryptKey
;
896 /******************************************************************************
897 * map_key_spec_to_key_pair_name [Internal]
899 * Returns the name of the registry value associated with a key spec.
902 * dwKeySpec [I] AT_KEYEXCHANGE or AT_SIGNATURE
905 * Success: Name of registry value.
908 static LPCSTR
map_key_spec_to_key_pair_name(DWORD dwKeySpec
)
915 szValueName
= "KeyExchangeKeyPair";
918 szValueName
= "SignatureKeyPair";
921 WARN("invalid key spec %d\n", dwKeySpec
);
927 /******************************************************************************
928 * store_key_pair [Internal]
930 * Stores a key pair to the registry
933 * hCryptKey [I] Handle to the key to be stored
934 * hKey [I] Registry key where the key pair is to be stored
935 * dwKeySpec [I] AT_KEYEXCHANGE or AT_SIGNATURE
936 * dwFlags [I] Flags for protecting the key
938 static void store_key_pair(HCRYPTKEY hCryptKey
, HKEY hKey
, DWORD dwKeySpec
, DWORD dwFlags
)
941 DATA_BLOB blobIn
, blobOut
;
946 if (!(szValueName
= map_key_spec_to_key_pair_name(dwKeySpec
)))
948 if (lookup_handle(&handle_table
, hCryptKey
, RSAENH_MAGIC_KEY
,
951 if (crypt_export_key(pKey
, 0, PRIVATEKEYBLOB
, 0, TRUE
, 0, &dwLen
))
953 pbKey
= HeapAlloc(GetProcessHeap(), 0, dwLen
);
956 if (crypt_export_key(pKey
, 0, PRIVATEKEYBLOB
, 0, TRUE
, pbKey
,
959 blobIn
.pbData
= pbKey
;
960 blobIn
.cbData
= dwLen
;
962 if (CryptProtectData(&blobIn
, NULL
, NULL
, NULL
, NULL
,
965 RegSetValueExA(hKey
, szValueName
, 0, REG_BINARY
,
966 blobOut
.pbData
, blobOut
.cbData
);
967 LocalFree(blobOut
.pbData
);
970 HeapFree(GetProcessHeap(), 0, pbKey
);
976 /******************************************************************************
977 * map_key_spec_to_permissions_name [Internal]
979 * Returns the name of the registry value associated with the permissions for
983 * dwKeySpec [I] AT_KEYEXCHANGE or AT_SIGNATURE
986 * Success: Name of registry value.
989 static LPCSTR
map_key_spec_to_permissions_name(DWORD dwKeySpec
)
996 szValueName
= "KeyExchangePermissions";
999 szValueName
= "SignaturePermissions";
1002 WARN("invalid key spec %d\n", dwKeySpec
);
1008 /******************************************************************************
1009 * store_key_permissions [Internal]
1011 * Stores a key's permissions to the registry
1014 * hCryptKey [I] Handle to the key whose permissions are to be stored
1015 * hKey [I] Registry key where the key permissions are to be stored
1016 * dwKeySpec [I] AT_KEYEXCHANGE or AT_SIGNATURE
1018 static void store_key_permissions(HCRYPTKEY hCryptKey
, HKEY hKey
, DWORD dwKeySpec
)
1023 if (!(szValueName
= map_key_spec_to_permissions_name(dwKeySpec
)))
1025 if (lookup_handle(&handle_table
, hCryptKey
, RSAENH_MAGIC_KEY
,
1026 (OBJECTHDR
**)&pKey
))
1027 RegSetValueExA(hKey
, szValueName
, 0, REG_DWORD
,
1028 (BYTE
*)&pKey
->dwPermissions
,
1029 sizeof(pKey
->dwPermissions
));
1032 /******************************************************************************
1033 * create_container_key [Internal]
1035 * Creates the registry key for a key container's persistent storage.
1038 * pKeyContainer [I] Pointer to the key container
1039 * sam [I] Desired registry access
1040 * phKey [O] Returned key
1042 static BOOL
create_container_key(KEYCONTAINER
*pKeyContainer
, REGSAM sam
, HKEY
*phKey
)
1044 CHAR szRSABase
[MAX_PATH
];
1047 sprintf(szRSABase
, RSAENH_REGKEY
, pKeyContainer
->szName
);
1049 if (pKeyContainer
->dwFlags
& CRYPT_MACHINE_KEYSET
)
1050 hRootKey
= HKEY_LOCAL_MACHINE
;
1052 hRootKey
= HKEY_CURRENT_USER
;
1054 /* @@ Wine registry key: HKLM\Software\Wine\Crypto\RSA */
1055 /* @@ Wine registry key: HKCU\Software\Wine\Crypto\RSA */
1056 return RegCreateKeyExA(hRootKey
, szRSABase
, 0, NULL
,
1057 REG_OPTION_NON_VOLATILE
, sam
, NULL
, phKey
, NULL
)
1061 /******************************************************************************
1062 * open_container_key [Internal]
1064 * Opens a key container's persistent storage for reading.
1067 * pszContainerName [I] Name of the container to be opened. May be the empty
1068 * string if the parent key of all containers is to be
1070 * dwFlags [I] Flags indicating which keyset to be opened.
1071 * phKey [O] Returned key
1073 static BOOL
open_container_key(LPCSTR pszContainerName
, DWORD dwFlags
, HKEY
*phKey
)
1075 CHAR szRSABase
[MAX_PATH
];
1078 sprintf(szRSABase
, RSAENH_REGKEY
, pszContainerName
);
1080 if (dwFlags
& CRYPT_MACHINE_KEYSET
)
1081 hRootKey
= HKEY_LOCAL_MACHINE
;
1083 hRootKey
= HKEY_CURRENT_USER
;
1085 /* @@ Wine registry key: HKLM\Software\Wine\Crypto\RSA */
1086 /* @@ Wine registry key: HKCU\Software\Wine\Crypto\RSA */
1087 return RegOpenKeyExA(hRootKey
, szRSABase
, 0, KEY_READ
, phKey
) ==
1091 /******************************************************************************
1092 * delete_container_key [Internal]
1094 * Deletes a key container's persistent storage.
1097 * pszContainerName [I] Name of the container to be opened.
1098 * dwFlags [I] Flags indicating which keyset to be opened.
1100 static BOOL
delete_container_key(LPCSTR pszContainerName
, DWORD dwFlags
)
1102 CHAR szRegKey
[MAX_PATH
];
1104 if (snprintf(szRegKey
, MAX_PATH
, RSAENH_REGKEY
, pszContainerName
) >= MAX_PATH
) {
1105 SetLastError(NTE_BAD_KEYSET_PARAM
);
1109 if (dwFlags
& CRYPT_MACHINE_KEYSET
)
1110 hRootKey
= HKEY_LOCAL_MACHINE
;
1112 hRootKey
= HKEY_CURRENT_USER
;
1113 if (!RegDeleteKeyA(hRootKey
, szRegKey
)) {
1114 SetLastError(ERROR_SUCCESS
);
1117 SetLastError(NTE_BAD_KEYSET
);
1123 /******************************************************************************
1124 * store_key_container_keys [Internal]
1126 * Stores key container's keys in a persistent location.
1129 * pKeyContainer [I] Pointer to the key container whose keys are to be saved
1131 static void store_key_container_keys(KEYCONTAINER
*pKeyContainer
)
1136 /* On WinXP, persistent keys are stored in a file located at:
1137 * $AppData$\\Microsoft\\Crypto\\RSA\\$SID$\\some_hex_string
1140 if (pKeyContainer
->dwFlags
& CRYPT_MACHINE_KEYSET
)
1141 dwFlags
= CRYPTPROTECT_LOCAL_MACHINE
;
1145 if (create_container_key(pKeyContainer
, KEY_WRITE
, &hKey
))
1147 store_key_pair(pKeyContainer
->hKeyExchangeKeyPair
, hKey
,
1148 AT_KEYEXCHANGE
, dwFlags
);
1149 store_key_pair(pKeyContainer
->hSignatureKeyPair
, hKey
,
1150 AT_SIGNATURE
, dwFlags
);
1155 /******************************************************************************
1156 * store_key_container_permissions [Internal]
1158 * Stores key container's key permissions in a persistent location.
1161 * pKeyContainer [I] Pointer to the key container whose key permissions are to
1164 static void store_key_container_permissions(KEYCONTAINER
*pKeyContainer
)
1169 /* On WinXP, persistent keys are stored in a file located at:
1170 * $AppData$\\Microsoft\\Crypto\\RSA\\$SID$\\some_hex_string
1173 if (pKeyContainer
->dwFlags
& CRYPT_MACHINE_KEYSET
)
1174 dwFlags
= CRYPTPROTECT_LOCAL_MACHINE
;
1178 if (create_container_key(pKeyContainer
, KEY_WRITE
, &hKey
))
1180 store_key_permissions(pKeyContainer
->hKeyExchangeKeyPair
, hKey
,
1182 store_key_permissions(pKeyContainer
->hSignatureKeyPair
, hKey
,
1188 /******************************************************************************
1189 * release_key_container_keys [Internal]
1191 * Releases key container's keys.
1194 * pKeyContainer [I] Pointer to the key container whose keys are to be released.
1196 static void release_key_container_keys(KEYCONTAINER
*pKeyContainer
)
1198 release_handle(&handle_table
, pKeyContainer
->hKeyExchangeKeyPair
,
1200 release_handle(&handle_table
, pKeyContainer
->hSignatureKeyPair
,
1204 /******************************************************************************
1205 * destroy_key_container [Internal]
1207 * Destructor for key containers.
1210 * pObjectHdr [I] Pointer to the key container to be destroyed.
1212 static void destroy_key_container(OBJECTHDR
*pObjectHdr
)
1214 KEYCONTAINER
*pKeyContainer
= (KEYCONTAINER
*)pObjectHdr
;
1216 if (!(pKeyContainer
->dwFlags
& CRYPT_VERIFYCONTEXT
))
1218 store_key_container_keys(pKeyContainer
);
1219 store_key_container_permissions(pKeyContainer
);
1220 release_key_container_keys(pKeyContainer
);
1222 HeapFree( GetProcessHeap(), 0, pKeyContainer
);
1225 /******************************************************************************
1226 * new_key_container [Internal]
1228 * Create a new key container. The personality (RSA Base, Strong or Enhanced CP)
1229 * of the CSP is determined via the pVTable->pszProvName string.
1232 * pszContainerName [I] Name of the key container.
1233 * pVTable [I] Callback functions and context info provided by the OS
1236 * Success: Handle to the new key container.
1237 * Failure: INVALID_HANDLE_VALUE
1239 static HCRYPTPROV
new_key_container(PCCH pszContainerName
, DWORD dwFlags
, const VTableProvStruc
*pVTable
)
1241 KEYCONTAINER
*pKeyContainer
;
1242 HCRYPTPROV hKeyContainer
;
1244 hKeyContainer
= new_object(&handle_table
, sizeof(KEYCONTAINER
), RSAENH_MAGIC_CONTAINER
,
1245 destroy_key_container
, (OBJECTHDR
**)&pKeyContainer
);
1246 if (hKeyContainer
!= (HCRYPTPROV
)INVALID_HANDLE_VALUE
)
1248 lstrcpynA(pKeyContainer
->szName
, pszContainerName
, MAX_PATH
);
1249 pKeyContainer
->dwFlags
= dwFlags
;
1250 pKeyContainer
->dwEnumAlgsCtr
= 0;
1251 pKeyContainer
->hKeyExchangeKeyPair
= (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
1252 pKeyContainer
->hSignatureKeyPair
= (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
1253 if (pVTable
&& pVTable
->pszProvName
) {
1254 lstrcpynA(pKeyContainer
->szProvName
, pVTable
->pszProvName
, MAX_PATH
);
1255 if (!strcmp(pVTable
->pszProvName
, MS_DEF_PROV_A
)) {
1256 pKeyContainer
->dwPersonality
= RSAENH_PERSONALITY_BASE
;
1257 } else if (!strcmp(pVTable
->pszProvName
, MS_ENHANCED_PROV_A
)) {
1258 pKeyContainer
->dwPersonality
= RSAENH_PERSONALITY_ENHANCED
;
1259 } else if (!strcmp(pVTable
->pszProvName
, MS_DEF_RSA_SCHANNEL_PROV_A
)) {
1260 pKeyContainer
->dwPersonality
= RSAENH_PERSONALITY_SCHANNEL
;
1261 } else if (!strcmp(pVTable
->pszProvName
, MS_ENH_RSA_AES_PROV_A
)) {
1262 pKeyContainer
->dwPersonality
= RSAENH_PERSONALITY_AES
;
1264 pKeyContainer
->dwPersonality
= RSAENH_PERSONALITY_STRONG
;
1268 /* The new key container has to be inserted into the CSP immediately
1269 * after creation to be available for CPGetProvParam's PP_ENUMCONTAINERS. */
1270 if (!(dwFlags
& CRYPT_VERIFYCONTEXT
)) {
1273 if (create_container_key(pKeyContainer
, KEY_WRITE
, &hKey
))
1278 return hKeyContainer
;
1281 /******************************************************************************
1282 * read_key_value [Internal]
1284 * Reads a key pair value from the registry
1287 * hKeyContainer [I] Crypt provider to use to import the key
1288 * hKey [I] Registry key from which to read the key pair
1289 * dwKeySpec [I] AT_KEYEXCHANGE or AT_SIGNATURE
1290 * dwFlags [I] Flags for unprotecting the key
1291 * phCryptKey [O] Returned key
1293 static BOOL
read_key_value(HCRYPTPROV hKeyContainer
, HKEY hKey
, DWORD dwKeySpec
, DWORD dwFlags
, HCRYPTKEY
*phCryptKey
)
1296 DWORD dwValueType
, dwLen
;
1298 DATA_BLOB blobIn
, blobOut
;
1301 if (!(szValueName
= map_key_spec_to_key_pair_name(dwKeySpec
)))
1303 if (RegQueryValueExA(hKey
, szValueName
, 0, &dwValueType
, NULL
, &dwLen
) ==
1306 pbKey
= HeapAlloc(GetProcessHeap(), 0, dwLen
);
1309 if (RegQueryValueExA(hKey
, szValueName
, 0, &dwValueType
, pbKey
, &dwLen
) ==
1312 blobIn
.pbData
= pbKey
;
1313 blobIn
.cbData
= dwLen
;
1315 if (CryptUnprotectData(&blobIn
, NULL
, NULL
, NULL
, NULL
,
1318 ret
= import_key(hKeyContainer
, blobOut
.pbData
, blobOut
.cbData
, 0, 0,
1320 LocalFree(blobOut
.pbData
);
1323 HeapFree(GetProcessHeap(), 0, pbKey
);
1330 if (lookup_handle(&handle_table
, *phCryptKey
, RSAENH_MAGIC_KEY
,
1331 (OBJECTHDR
**)&pKey
))
1333 if ((szValueName
= map_key_spec_to_permissions_name(dwKeySpec
)))
1335 dwLen
= sizeof(pKey
->dwPermissions
);
1336 RegQueryValueExA(hKey
, szValueName
, 0, NULL
,
1337 (BYTE
*)&pKey
->dwPermissions
, &dwLen
);
1344 /******************************************************************************
1345 * read_key_container [Internal]
1347 * Tries to read the persistent state of the key container (mainly the signature
1348 * and key exchange private keys) given by pszContainerName.
1351 * pszContainerName [I] Name of the key container to read from the registry
1352 * pVTable [I] Pointer to context data provided by the operating system
1355 * Success: Handle to the key container read from the registry
1356 * Failure: INVALID_HANDLE_VALUE
1358 static HCRYPTPROV
read_key_container(PCHAR pszContainerName
, DWORD dwFlags
, const VTableProvStruc
*pVTable
)
1361 KEYCONTAINER
*pKeyContainer
;
1362 HCRYPTPROV hKeyContainer
;
1363 HCRYPTKEY hCryptKey
;
1365 if (!open_container_key(pszContainerName
, dwFlags
, &hKey
))
1367 SetLastError(NTE_BAD_KEYSET
);
1368 return (HCRYPTPROV
)INVALID_HANDLE_VALUE
;
1371 hKeyContainer
= new_key_container(pszContainerName
, dwFlags
, pVTable
);
1372 if (hKeyContainer
!= (HCRYPTPROV
)INVALID_HANDLE_VALUE
)
1374 DWORD dwProtectFlags
= (dwFlags
& CRYPT_MACHINE_KEYSET
) ?
1375 CRYPTPROTECT_LOCAL_MACHINE
: 0;
1377 if (!lookup_handle(&handle_table
, hKeyContainer
, RSAENH_MAGIC_CONTAINER
,
1378 (OBJECTHDR
**)&pKeyContainer
))
1379 return (HCRYPTPROV
)INVALID_HANDLE_VALUE
;
1381 if (read_key_value(hKeyContainer
, hKey
, AT_KEYEXCHANGE
,
1382 dwProtectFlags
, &hCryptKey
))
1383 pKeyContainer
->hKeyExchangeKeyPair
= hCryptKey
;
1384 if (read_key_value(hKeyContainer
, hKey
, AT_SIGNATURE
,
1385 dwProtectFlags
, &hCryptKey
))
1386 pKeyContainer
->hSignatureKeyPair
= hCryptKey
;
1389 return hKeyContainer
;
1392 /******************************************************************************
1393 * build_hash_signature [Internal]
1395 * Builds a padded version of a hash to match the length of the RSA key modulus.
1398 * pbSignature [O] The padded hash object is stored here.
1399 * dwLen [I] Length of the pbSignature buffer.
1400 * aiAlgid [I] Algorithm identifier of the hash to be padded.
1401 * abHashValue [I] The value of the hash object.
1402 * dwHashLen [I] Length of the hash value.
1403 * dwFlags [I] Selection of padding algorithm.
1407 * Failure: FALSE (NTE_BAD_ALGID)
1409 static BOOL
build_hash_signature(BYTE
*pbSignature
, DWORD dwLen
, ALG_ID aiAlgid
,
1410 CONST BYTE
*abHashValue
, DWORD dwHashLen
, DWORD dwFlags
)
1412 /* These prefixes are meant to be concatenated with hash values of the
1413 * respective kind to form a PKCS #7 DigestInfo. */
1414 static const struct tagOIDDescriptor
{
1417 CONST BYTE abOID
[18];
1418 } aOIDDescriptor
[5] = {
1419 { CALG_MD2
, 18, { 0x30, 0x20, 0x30, 0x0c, 0x06, 0x08, 0x2a, 0x86, 0x48,
1420 0x86, 0xf7, 0x0d, 0x02, 0x02, 0x05, 0x00, 0x04, 0x10 } },
1421 { CALG_MD4
, 18, { 0x30, 0x20, 0x30, 0x0c, 0x06, 0x08, 0x2a, 0x86, 0x48,
1422 0x86, 0xf7, 0x0d, 0x02, 0x04, 0x05, 0x00, 0x04, 0x10 } },
1423 { CALG_MD5
, 18, { 0x30, 0x20, 0x30, 0x0c, 0x06, 0x08, 0x2a, 0x86, 0x48,
1424 0x86, 0xf7, 0x0d, 0x02, 0x05, 0x05, 0x00, 0x04, 0x10 } },
1425 { CALG_SHA
, 15, { 0x30, 0x21, 0x30, 0x09, 0x06, 0x05, 0x2b, 0x0e, 0x03,
1426 0x02, 0x1a, 0x05, 0x00, 0x04, 0x14 } },
1429 DWORD dwIdxOID
, i
, j
;
1431 for (dwIdxOID
= 0; aOIDDescriptor
[dwIdxOID
].aiAlgid
; dwIdxOID
++) {
1432 if (aOIDDescriptor
[dwIdxOID
].aiAlgid
== aiAlgid
) break;
1435 if (!aOIDDescriptor
[dwIdxOID
].aiAlgid
) {
1436 SetLastError(NTE_BAD_ALGID
);
1440 /* Build the padded signature */
1441 if (dwFlags
& CRYPT_X931_FORMAT
) {
1442 pbSignature
[0] = 0x6b;
1443 for (i
=1; i
< dwLen
- dwHashLen
- 3; i
++) {
1444 pbSignature
[i
] = 0xbb;
1446 pbSignature
[i
++] = 0xba;
1447 for (j
=0; j
< dwHashLen
; j
++, i
++) {
1448 pbSignature
[i
] = abHashValue
[j
];
1450 pbSignature
[i
++] = 0x33;
1451 pbSignature
[i
++] = 0xcc;
1453 pbSignature
[0] = 0x00;
1454 pbSignature
[1] = 0x01;
1455 if (dwFlags
& CRYPT_NOHASHOID
) {
1456 for (i
=2; i
< dwLen
- 1 - dwHashLen
; i
++) {
1457 pbSignature
[i
] = 0xff;
1459 pbSignature
[i
++] = 0x00;
1461 for (i
=2; i
< dwLen
- 1 - aOIDDescriptor
[dwIdxOID
].dwLen
- dwHashLen
; i
++) {
1462 pbSignature
[i
] = 0xff;
1464 pbSignature
[i
++] = 0x00;
1465 for (j
=0; j
< aOIDDescriptor
[dwIdxOID
].dwLen
; j
++) {
1466 pbSignature
[i
++] = aOIDDescriptor
[dwIdxOID
].abOID
[j
];
1469 for (j
=0; j
< dwHashLen
; j
++) {
1470 pbSignature
[i
++] = abHashValue
[j
];
1477 /******************************************************************************
1480 * This is an implementation of the 'P_hash' helper function for TLS1's PRF.
1481 * It is used exclusively by tls1_prf. For details see RFC 2246, chapter 5.
1482 * The pseudo random stream generated by this function is exclusive or'ed with
1483 * the data in pbBuffer.
1486 * hHMAC [I] HMAC object, which will be used in pseudo random generation
1487 * pblobSeed [I] Seed value
1488 * pbBuffer [I/O] Pseudo random stream will be xor'ed to the provided data
1489 * dwBufferLen [I] Number of pseudo random bytes desired
1495 static BOOL
tls1_p(HCRYPTHASH hHMAC
, CONST PCRYPT_DATA_BLOB pblobSeed
, PBYTE pbBuffer
, DWORD dwBufferLen
)
1498 BYTE abAi
[RSAENH_MAX_HASH_SIZE
];
1501 if (!lookup_handle(&handle_table
, hHMAC
, RSAENH_MAGIC_HASH
, (OBJECTHDR
**)&pHMAC
)) {
1502 SetLastError(NTE_BAD_HASH
);
1506 /* compute A_1 = HMAC(seed) */
1508 update_hash(pHMAC
, pblobSeed
->pbData
, pblobSeed
->cbData
);
1509 finalize_hash(pHMAC
);
1510 memcpy(abAi
, pHMAC
->abHashValue
, pHMAC
->dwHashSize
);
1513 /* compute HMAC(A_i + seed) */
1515 update_hash(pHMAC
, abAi
, pHMAC
->dwHashSize
);
1516 update_hash(pHMAC
, pblobSeed
->pbData
, pblobSeed
->cbData
);
1517 finalize_hash(pHMAC
);
1519 /* pseudo random stream := CONCAT_{i=1..n} ( HMAC(A_i + seed) ) */
1521 if (i
>= dwBufferLen
) break;
1522 pbBuffer
[i
] ^= pHMAC
->abHashValue
[i
% pHMAC
->dwHashSize
];
1524 } while (i
% pHMAC
->dwHashSize
);
1526 /* compute A_{i+1} = HMAC(A_i) */
1528 update_hash(pHMAC
, abAi
, pHMAC
->dwHashSize
);
1529 finalize_hash(pHMAC
);
1530 memcpy(abAi
, pHMAC
->abHashValue
, pHMAC
->dwHashSize
);
1531 } while (i
< dwBufferLen
);
1536 /******************************************************************************
1537 * tls1_prf [Internal]
1539 * TLS1 pseudo random function as specified in RFC 2246, chapter 5
1542 * hProv [I] Key container used to compute the pseudo random stream
1543 * hSecret [I] Key that holds the (pre-)master secret
1544 * pblobLabel [I] Descriptive label
1545 * pblobSeed [I] Seed value
1546 * pbBuffer [O] Pseudo random numbers will be stored here
1547 * dwBufferLen [I] Number of pseudo random bytes desired
1553 static BOOL
tls1_prf(HCRYPTPROV hProv
, HCRYPTPROV hSecret
, CONST PCRYPT_DATA_BLOB pblobLabel
,
1554 CONST PCRYPT_DATA_BLOB pblobSeed
, PBYTE pbBuffer
, DWORD dwBufferLen
)
1556 HMAC_INFO hmacInfo
= { 0, NULL
, 0, NULL
, 0 };
1557 HCRYPTHASH hHMAC
= (HCRYPTHASH
)INVALID_HANDLE_VALUE
;
1558 HCRYPTKEY hHalfSecret
= (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
1559 CRYPTKEY
*pHalfSecret
, *pSecret
;
1560 DWORD dwHalfSecretLen
;
1561 BOOL result
= FALSE
;
1562 CRYPT_DATA_BLOB blobLabelSeed
;
1564 TRACE("(hProv=%08lx, hSecret=%08lx, pblobLabel=%p, pblobSeed=%p, pbBuffer=%p, dwBufferLen=%d)\n",
1565 hProv
, hSecret
, pblobLabel
, pblobSeed
, pbBuffer
, dwBufferLen
);
1567 if (!lookup_handle(&handle_table
, hSecret
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pSecret
)) {
1568 SetLastError(NTE_FAIL
);
1572 dwHalfSecretLen
= (pSecret
->dwKeyLen
+1)/2;
1574 /* concatenation of the label and the seed */
1575 if (!concat_data_blobs(&blobLabelSeed
, pblobLabel
, pblobSeed
)) goto exit
;
1577 /* zero out the buffer, since two random streams will be xor'ed into it. */
1578 memset(pbBuffer
, 0, dwBufferLen
);
1580 /* build a 'fake' key, to hold the secret. CALG_SSL2_MASTER is used since it provides
1581 * the biggest range of valid key lengths. */
1582 hHalfSecret
= new_key(hProv
, CALG_SSL2_MASTER
, MAKELONG(0,dwHalfSecretLen
*8), &pHalfSecret
);
1583 if (hHalfSecret
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
) goto exit
;
1585 /* Derive an HMAC_MD5 hash and call the helper function. */
1586 memcpy(pHalfSecret
->abKeyValue
, pSecret
->abKeyValue
, dwHalfSecretLen
);
1587 if (!RSAENH_CPCreateHash(hProv
, CALG_HMAC
, hHalfSecret
, 0, &hHMAC
)) goto exit
;
1588 hmacInfo
.HashAlgid
= CALG_MD5
;
1589 if (!RSAENH_CPSetHashParam(hProv
, hHMAC
, HP_HMAC_INFO
, (BYTE
*)&hmacInfo
, 0)) goto exit
;
1590 if (!tls1_p(hHMAC
, &blobLabelSeed
, pbBuffer
, dwBufferLen
)) goto exit
;
1592 /* Reconfigure to HMAC_SHA hash and call helper function again. */
1593 memcpy(pHalfSecret
->abKeyValue
, pSecret
->abKeyValue
+ (pSecret
->dwKeyLen
/2), dwHalfSecretLen
);
1594 hmacInfo
.HashAlgid
= CALG_SHA
;
1595 if (!RSAENH_CPSetHashParam(hProv
, hHMAC
, HP_HMAC_INFO
, (BYTE
*)&hmacInfo
, 0)) goto exit
;
1596 if (!tls1_p(hHMAC
, &blobLabelSeed
, pbBuffer
, dwBufferLen
)) goto exit
;
1600 release_handle(&handle_table
, hHalfSecret
, RSAENH_MAGIC_KEY
);
1601 if (hHMAC
!= (HCRYPTHASH
)INVALID_HANDLE_VALUE
) RSAENH_CPDestroyHash(hProv
, hHMAC
);
1602 free_data_blob(&blobLabelSeed
);
1606 /******************************************************************************
1607 * pad_data [Internal]
1609 * Helper function for data padding according to PKCS1 #2
1612 * abData [I] The data to be padded
1613 * dwDataLen [I] Length of the data
1614 * abBuffer [O] Padded data will be stored here
1615 * dwBufferLen [I] Length of the buffer (also length of padded data)
1616 * dwFlags [I] Padding format (CRYPT_SSL2_FALLBACK)
1620 * Failure: FALSE (NTE_BAD_LEN, too much data to pad)
1622 static BOOL
pad_data(CONST BYTE
*abData
, DWORD dwDataLen
, BYTE
*abBuffer
, DWORD dwBufferLen
,
1627 /* Ensure there is enough space for PKCS1 #2 padding */
1628 if (dwDataLen
> dwBufferLen
-11) {
1629 SetLastError(NTE_BAD_LEN
);
1633 memmove(abBuffer
+ dwBufferLen
- dwDataLen
, abData
, dwDataLen
);
1636 abBuffer
[1] = RSAENH_PKC_BLOCKTYPE
;
1637 for (i
=2; i
< dwBufferLen
- dwDataLen
- 1; i
++)
1638 do gen_rand_impl(&abBuffer
[i
], 1); while (!abBuffer
[i
]);
1639 if (dwFlags
& CRYPT_SSL2_FALLBACK
)
1640 for (i
-=8; i
< dwBufferLen
- dwDataLen
- 1; i
++)
1647 /******************************************************************************
1648 * unpad_data [Internal]
1650 * Remove the PKCS1 padding from RSA decrypted data
1653 * abData [I] The padded data
1654 * dwDataLen [I] Length of the padded data
1655 * abBuffer [O] Data without padding will be stored here
1656 * dwBufferLen [I/O] I: Length of the buffer, O: Length of unpadded data
1657 * dwFlags [I] Currently none defined
1661 * Failure: FALSE, (NTE_BAD_DATA, no valid PKCS1 padding or buffer too small)
1663 static BOOL
unpad_data(CONST BYTE
*abData
, DWORD dwDataLen
, BYTE
*abBuffer
, DWORD
*dwBufferLen
,
1668 for (i
=2; i
<dwDataLen
; i
++)
1672 if ((i
== dwDataLen
) || (*dwBufferLen
< dwDataLen
- i
- 1) ||
1673 (abData
[0] != 0x00) || (abData
[1] != RSAENH_PKC_BLOCKTYPE
))
1675 SetLastError(NTE_BAD_DATA
);
1679 *dwBufferLen
= dwDataLen
- i
- 1;
1680 memmove(abBuffer
, abData
+ i
+ 1, *dwBufferLen
);
1684 /******************************************************************************
1685 * CPAcquireContext (RSAENH.@)
1687 * Acquire a handle to the key container specified by pszContainer
1690 * phProv [O] Pointer to the location the acquired handle will be written to.
1691 * pszContainer [I] Name of the desired key container. See Notes
1692 * dwFlags [I] Flags. See Notes.
1693 * pVTable [I] Pointer to a PVTableProvStruct containing callbacks.
1700 * If pszContainer is NULL or points to a zero length string the user's login
1701 * name will be used as the key container name.
1703 * If the CRYPT_NEW_KEYSET flag is set in dwFlags a new keyset will be created.
1704 * If a keyset with the given name already exists, the function fails and sets
1705 * last error to NTE_EXISTS. If CRYPT_NEW_KEYSET is not set and the specified
1706 * key container does not exist, function fails and sets last error to
1709 BOOL WINAPI
RSAENH_CPAcquireContext(HCRYPTPROV
*phProv
, LPSTR pszContainer
,
1710 DWORD dwFlags
, PVTableProvStruc pVTable
)
1712 CHAR szKeyContainerName
[MAX_PATH
];
1714 TRACE("(phProv=%p, pszContainer=%s, dwFlags=%08x, pVTable=%p)\n", phProv
,
1715 debugstr_a(pszContainer
), dwFlags
, pVTable
);
1717 if (pszContainer
&& *pszContainer
)
1719 lstrcpynA(szKeyContainerName
, pszContainer
, MAX_PATH
);
1723 DWORD dwLen
= sizeof(szKeyContainerName
);
1724 if (!GetUserNameA(szKeyContainerName
, &dwLen
)) return FALSE
;
1727 switch (dwFlags
& (CRYPT_NEWKEYSET
|CRYPT_VERIFYCONTEXT
|CRYPT_DELETEKEYSET
))
1730 *phProv
= read_key_container(szKeyContainerName
, dwFlags
, pVTable
);
1733 case CRYPT_DELETEKEYSET
:
1734 return delete_container_key(szKeyContainerName
, dwFlags
);
1736 case CRYPT_NEWKEYSET
:
1737 *phProv
= read_key_container(szKeyContainerName
, dwFlags
, pVTable
);
1738 if (*phProv
!= (HCRYPTPROV
)INVALID_HANDLE_VALUE
)
1740 release_handle(&handle_table
, *phProv
, RSAENH_MAGIC_CONTAINER
);
1741 TRACE("Can't create new keyset, already exists\n");
1742 SetLastError(NTE_EXISTS
);
1745 *phProv
= new_key_container(szKeyContainerName
, dwFlags
, pVTable
);
1748 case CRYPT_VERIFYCONTEXT
|CRYPT_NEWKEYSET
:
1749 case CRYPT_VERIFYCONTEXT
:
1750 if (pszContainer
&& *pszContainer
) {
1751 TRACE("pszContainer should be empty\n");
1752 SetLastError(NTE_BAD_FLAGS
);
1755 *phProv
= new_key_container("", dwFlags
, pVTable
);
1759 *phProv
= (HCRYPTPROV
)INVALID_HANDLE_VALUE
;
1760 SetLastError(NTE_BAD_FLAGS
);
1764 if (*phProv
!= (HCRYPTPROV
)INVALID_HANDLE_VALUE
) {
1765 SetLastError(ERROR_SUCCESS
);
1772 /******************************************************************************
1773 * CPCreateHash (RSAENH.@)
1775 * CPCreateHash creates and initalizes a new hash object.
1778 * hProv [I] Handle to the key container to which the new hash will belong.
1779 * Algid [I] Identifies the hash algorithm, which will be used for the hash.
1780 * hKey [I] Handle to a session key applied for keyed hashes.
1781 * dwFlags [I] Currently no flags defined. Must be zero.
1782 * phHash [O] Points to the location where a handle to the new hash will be stored.
1789 * hKey is a handle to a session key applied in keyed hashes like MAC and HMAC.
1790 * If a normal hash object is to be created (like e.g. MD2 or SHA1) hKey must be zero.
1792 BOOL WINAPI
RSAENH_CPCreateHash(HCRYPTPROV hProv
, ALG_ID Algid
, HCRYPTKEY hKey
, DWORD dwFlags
,
1795 CRYPTKEY
*pCryptKey
;
1796 CRYPTHASH
*pCryptHash
;
1797 const PROV_ENUMALGS_EX
*peaAlgidInfo
;
1799 TRACE("(hProv=%08lx, Algid=%08x, hKey=%08lx, dwFlags=%08x, phHash=%p)\n", hProv
, Algid
, hKey
,
1802 peaAlgidInfo
= get_algid_info(hProv
, Algid
);
1803 if (!peaAlgidInfo
) return FALSE
;
1807 SetLastError(NTE_BAD_FLAGS
);
1811 if (Algid
== CALG_MAC
|| Algid
== CALG_HMAC
|| Algid
== CALG_SCHANNEL_MASTER_HASH
||
1812 Algid
== CALG_TLS1PRF
)
1814 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pCryptKey
)) {
1815 SetLastError(NTE_BAD_KEY
);
1819 if ((Algid
== CALG_MAC
) && (GET_ALG_TYPE(pCryptKey
->aiAlgid
) != ALG_TYPE_BLOCK
)) {
1820 SetLastError(NTE_BAD_KEY
);
1824 if ((Algid
== CALG_SCHANNEL_MASTER_HASH
|| Algid
== CALG_TLS1PRF
) &&
1825 (pCryptKey
->aiAlgid
!= CALG_TLS1_MASTER
))
1827 SetLastError(NTE_BAD_KEY
);
1831 if ((Algid
== CALG_TLS1PRF
) && (pCryptKey
->dwState
!= RSAENH_KEYSTATE_MASTERKEY
)) {
1832 SetLastError(NTE_BAD_KEY_STATE
);
1837 *phHash
= new_object(&handle_table
, sizeof(CRYPTHASH
), RSAENH_MAGIC_HASH
,
1838 destroy_hash
, (OBJECTHDR
**)&pCryptHash
);
1839 if (!pCryptHash
) return FALSE
;
1841 pCryptHash
->aiAlgid
= Algid
;
1842 pCryptHash
->hKey
= hKey
;
1843 pCryptHash
->hProv
= hProv
;
1844 pCryptHash
->dwState
= RSAENH_HASHSTATE_HASHING
;
1845 pCryptHash
->pHMACInfo
= NULL
;
1846 pCryptHash
->dwHashSize
= peaAlgidInfo
->dwDefaultLen
>> 3;
1847 init_data_blob(&pCryptHash
->tpPRFParams
.blobLabel
);
1848 init_data_blob(&pCryptHash
->tpPRFParams
.blobSeed
);
1850 if (Algid
== CALG_SCHANNEL_MASTER_HASH
) {
1851 static const char keyex
[] = "key expansion";
1852 BYTE key_expansion
[sizeof keyex
];
1853 CRYPT_DATA_BLOB blobRandom
, blobKeyExpansion
= { 13, key_expansion
};
1855 memcpy( key_expansion
, keyex
, sizeof keyex
);
1857 if (pCryptKey
->dwState
!= RSAENH_KEYSTATE_MASTERKEY
) {
1858 static const char msec
[] = "master secret";
1859 BYTE master_secret
[sizeof msec
];
1860 CRYPT_DATA_BLOB blobLabel
= { 13, master_secret
};
1861 BYTE abKeyValue
[48];
1863 memcpy( master_secret
, msec
, sizeof msec
);
1865 /* See RFC 2246, chapter 8.1 */
1866 if (!concat_data_blobs(&blobRandom
,
1867 &pCryptKey
->siSChannelInfo
.blobClientRandom
,
1868 &pCryptKey
->siSChannelInfo
.blobServerRandom
))
1872 tls1_prf(hProv
, hKey
, &blobLabel
, &blobRandom
, abKeyValue
, 48);
1873 pCryptKey
->dwState
= RSAENH_KEYSTATE_MASTERKEY
;
1874 memcpy(pCryptKey
->abKeyValue
, abKeyValue
, 48);
1875 free_data_blob(&blobRandom
);
1878 /* See RFC 2246, chapter 6.3 */
1879 if (!concat_data_blobs(&blobRandom
,
1880 &pCryptKey
->siSChannelInfo
.blobServerRandom
,
1881 &pCryptKey
->siSChannelInfo
.blobClientRandom
))
1885 tls1_prf(hProv
, hKey
, &blobKeyExpansion
, &blobRandom
, pCryptHash
->abHashValue
,
1886 RSAENH_MAX_HASH_SIZE
);
1887 free_data_blob(&blobRandom
);
1890 return init_hash(pCryptHash
);
1893 /******************************************************************************
1894 * CPDestroyHash (RSAENH.@)
1896 * Releases the handle to a hash object. The object is destroyed if it's reference
1897 * count reaches zero.
1900 * hProv [I] Handle to the key container to which the hash object belongs.
1901 * hHash [I] Handle to the hash object to be released.
1907 BOOL WINAPI
RSAENH_CPDestroyHash(HCRYPTPROV hProv
, HCRYPTHASH hHash
)
1909 TRACE("(hProv=%08lx, hHash=%08lx)\n", hProv
, hHash
);
1911 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
1913 SetLastError(NTE_BAD_UID
);
1917 if (!release_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
))
1919 SetLastError(NTE_BAD_HASH
);
1926 /******************************************************************************
1927 * CPDestroyKey (RSAENH.@)
1929 * Releases the handle to a key object. The object is destroyed if it's reference
1930 * count reaches zero.
1933 * hProv [I] Handle to the key container to which the key object belongs.
1934 * hKey [I] Handle to the key object to be released.
1940 BOOL WINAPI
RSAENH_CPDestroyKey(HCRYPTPROV hProv
, HCRYPTKEY hKey
)
1942 TRACE("(hProv=%08lx, hKey=%08lx)\n", hProv
, hKey
);
1944 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
1946 SetLastError(NTE_BAD_UID
);
1950 if (!release_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
))
1952 SetLastError(NTE_BAD_KEY
);
1959 /******************************************************************************
1960 * CPDuplicateHash (RSAENH.@)
1962 * Clones a hash object including it's current state.
1965 * hUID [I] Handle to the key container the hash belongs to.
1966 * hHash [I] Handle to the hash object to be cloned.
1967 * pdwReserved [I] Reserved. Must be NULL.
1968 * dwFlags [I] No flags are currently defined. Must be 0.
1969 * phHash [O] Handle to the cloned hash object.
1975 BOOL WINAPI
RSAENH_CPDuplicateHash(HCRYPTPROV hUID
, HCRYPTHASH hHash
, DWORD
*pdwReserved
,
1976 DWORD dwFlags
, HCRYPTHASH
*phHash
)
1978 CRYPTHASH
*pSrcHash
, *pDestHash
;
1980 TRACE("(hUID=%08lx, hHash=%08lx, pdwReserved=%p, dwFlags=%08x, phHash=%p)\n", hUID
, hHash
,
1981 pdwReserved
, dwFlags
, phHash
);
1983 if (!is_valid_handle(&handle_table
, hUID
, RSAENH_MAGIC_CONTAINER
))
1985 SetLastError(NTE_BAD_UID
);
1989 if (!lookup_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
, (OBJECTHDR
**)&pSrcHash
))
1991 SetLastError(NTE_BAD_HASH
);
1995 if (!phHash
|| pdwReserved
|| dwFlags
)
1997 SetLastError(ERROR_INVALID_PARAMETER
);
2001 *phHash
= new_object(&handle_table
, sizeof(CRYPTHASH
), RSAENH_MAGIC_HASH
,
2002 destroy_hash
, (OBJECTHDR
**)&pDestHash
);
2003 if (*phHash
!= (HCRYPTHASH
)INVALID_HANDLE_VALUE
)
2005 *pDestHash
= *pSrcHash
;
2006 duplicate_hash_impl(pSrcHash
->aiAlgid
, &pSrcHash
->context
, &pDestHash
->context
);
2007 copy_hmac_info(&pDestHash
->pHMACInfo
, pSrcHash
->pHMACInfo
);
2008 copy_data_blob(&pDestHash
->tpPRFParams
.blobLabel
, &pSrcHash
->tpPRFParams
.blobLabel
);
2009 copy_data_blob(&pDestHash
->tpPRFParams
.blobSeed
, &pSrcHash
->tpPRFParams
.blobSeed
);
2012 return *phHash
!= (HCRYPTHASH
)INVALID_HANDLE_VALUE
;
2015 /******************************************************************************
2016 * CPDuplicateKey (RSAENH.@)
2018 * Clones a key object including it's current state.
2021 * hUID [I] Handle to the key container the hash belongs to.
2022 * hKey [I] Handle to the key object to be cloned.
2023 * pdwReserved [I] Reserved. Must be NULL.
2024 * dwFlags [I] No flags are currently defined. Must be 0.
2025 * phHash [O] Handle to the cloned key object.
2031 BOOL WINAPI
RSAENH_CPDuplicateKey(HCRYPTPROV hUID
, HCRYPTKEY hKey
, DWORD
*pdwReserved
,
2032 DWORD dwFlags
, HCRYPTKEY
*phKey
)
2034 CRYPTKEY
*pSrcKey
, *pDestKey
;
2036 TRACE("(hUID=%08lx, hKey=%08lx, pdwReserved=%p, dwFlags=%08x, phKey=%p)\n", hUID
, hKey
,
2037 pdwReserved
, dwFlags
, phKey
);
2039 if (!is_valid_handle(&handle_table
, hUID
, RSAENH_MAGIC_CONTAINER
))
2041 SetLastError(NTE_BAD_UID
);
2045 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pSrcKey
))
2047 SetLastError(NTE_BAD_KEY
);
2051 if (!phKey
|| pdwReserved
|| dwFlags
)
2053 SetLastError(ERROR_INVALID_PARAMETER
);
2057 *phKey
= new_object(&handle_table
, sizeof(CRYPTKEY
), RSAENH_MAGIC_KEY
, destroy_key
,
2058 (OBJECTHDR
**)&pDestKey
);
2059 if (*phKey
!= (HCRYPTKEY
)INVALID_HANDLE_VALUE
)
2061 *pDestKey
= *pSrcKey
;
2062 copy_data_blob(&pDestKey
->siSChannelInfo
.blobServerRandom
,
2063 &pSrcKey
->siSChannelInfo
.blobServerRandom
);
2064 copy_data_blob(&pDestKey
->siSChannelInfo
.blobClientRandom
,
2065 &pSrcKey
->siSChannelInfo
.blobClientRandom
);
2066 duplicate_key_impl(pSrcKey
->aiAlgid
, &pSrcKey
->context
, &pDestKey
->context
);
2075 /******************************************************************************
2076 * CPEncrypt (RSAENH.@)
2081 * hProv [I] The key container hKey and hHash belong to.
2082 * hKey [I] The key used to encrypt the data.
2083 * hHash [I] An optional hash object for parallel hashing. See notes.
2084 * Final [I] Indicates if this is the last block of data to encrypt.
2085 * dwFlags [I] Currently no flags defined. Must be zero.
2086 * pbData [I/O] Pointer to the data to encrypt. Encrypted data will also be stored there.
2087 * pdwDataLen [I/O] I: Length of data to encrypt, O: Length of encrypted data.
2088 * dwBufLen [I] Size of the buffer at pbData.
2095 * If a hash object handle is provided in hHash, it will be updated with the plaintext.
2096 * This is useful for message signatures.
2098 * This function uses the standard WINAPI protocol for querying data of dynamic length.
2100 BOOL WINAPI
RSAENH_CPEncrypt(HCRYPTPROV hProv
, HCRYPTKEY hKey
, HCRYPTHASH hHash
, BOOL Final
,
2101 DWORD dwFlags
, BYTE
*pbData
, DWORD
*pdwDataLen
, DWORD dwBufLen
)
2103 CRYPTKEY
*pCryptKey
;
2104 BYTE
*in
, out
[RSAENH_MAX_BLOCK_SIZE
], o
[RSAENH_MAX_BLOCK_SIZE
];
2105 DWORD dwEncryptedLen
, i
, j
, k
;
2107 TRACE("(hProv=%08lx, hKey=%08lx, hHash=%08lx, Final=%d, dwFlags=%08x, pbData=%p, "
2108 "pdwDataLen=%p, dwBufLen=%d)\n", hProv
, hKey
, hHash
, Final
, dwFlags
, pbData
, pdwDataLen
,
2111 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
2113 SetLastError(NTE_BAD_UID
);
2119 SetLastError(NTE_BAD_FLAGS
);
2123 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pCryptKey
))
2125 SetLastError(NTE_BAD_KEY
);
2129 if (pCryptKey
->dwState
== RSAENH_KEYSTATE_IDLE
)
2130 pCryptKey
->dwState
= RSAENH_KEYSTATE_ENCRYPTING
;
2132 if (pCryptKey
->dwState
!= RSAENH_KEYSTATE_ENCRYPTING
)
2134 SetLastError(NTE_BAD_DATA
);
2138 if (is_valid_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
)) {
2139 if (!RSAENH_CPHashData(hProv
, hHash
, pbData
, *pdwDataLen
, 0)) return FALSE
;
2142 if (GET_ALG_TYPE(pCryptKey
->aiAlgid
) == ALG_TYPE_BLOCK
) {
2143 if (!Final
&& (*pdwDataLen
% pCryptKey
->dwBlockLen
)) {
2144 SetLastError(NTE_BAD_DATA
);
2148 dwEncryptedLen
= (*pdwDataLen
/pCryptKey
->dwBlockLen
+(Final
?1:0))*pCryptKey
->dwBlockLen
;
2150 if (pbData
== NULL
) {
2151 *pdwDataLen
= dwEncryptedLen
;
2154 else if (dwEncryptedLen
> dwBufLen
) {
2155 *pdwDataLen
= dwEncryptedLen
;
2156 SetLastError(ERROR_MORE_DATA
);
2160 /* Pad final block with length bytes */
2161 for (i
=*pdwDataLen
; i
<dwEncryptedLen
; i
++) pbData
[i
] = dwEncryptedLen
- *pdwDataLen
;
2162 *pdwDataLen
= dwEncryptedLen
;
2164 for (i
=0, in
=pbData
; i
<*pdwDataLen
; i
+=pCryptKey
->dwBlockLen
, in
+=pCryptKey
->dwBlockLen
) {
2165 switch (pCryptKey
->dwMode
) {
2166 case CRYPT_MODE_ECB
:
2167 encrypt_block_impl(pCryptKey
->aiAlgid
, 0, &pCryptKey
->context
, in
, out
,
2171 case CRYPT_MODE_CBC
:
2172 for (j
=0; j
<pCryptKey
->dwBlockLen
; j
++) in
[j
] ^= pCryptKey
->abChainVector
[j
];
2173 encrypt_block_impl(pCryptKey
->aiAlgid
, 0, &pCryptKey
->context
, in
, out
,
2175 memcpy(pCryptKey
->abChainVector
, out
, pCryptKey
->dwBlockLen
);
2178 case CRYPT_MODE_CFB
:
2179 for (j
=0; j
<pCryptKey
->dwBlockLen
; j
++) {
2180 encrypt_block_impl(pCryptKey
->aiAlgid
, 0, &pCryptKey
->context
,
2181 pCryptKey
->abChainVector
, o
, RSAENH_ENCRYPT
);
2182 out
[j
] = in
[j
] ^ o
[0];
2183 for (k
=0; k
<pCryptKey
->dwBlockLen
-1; k
++)
2184 pCryptKey
->abChainVector
[k
] = pCryptKey
->abChainVector
[k
+1];
2185 pCryptKey
->abChainVector
[k
] = out
[j
];
2190 SetLastError(NTE_BAD_ALGID
);
2193 memcpy(in
, out
, pCryptKey
->dwBlockLen
);
2195 } else if (GET_ALG_TYPE(pCryptKey
->aiAlgid
) == ALG_TYPE_STREAM
) {
2196 if (pbData
== NULL
) {
2197 *pdwDataLen
= dwBufLen
;
2200 encrypt_stream_impl(pCryptKey
->aiAlgid
, &pCryptKey
->context
, pbData
, *pdwDataLen
);
2201 } else if (GET_ALG_TYPE(pCryptKey
->aiAlgid
) == ALG_TYPE_RSA
) {
2202 if (pCryptKey
->aiAlgid
== CALG_RSA_SIGN
) {
2203 SetLastError(NTE_BAD_KEY
);
2207 *pdwDataLen
= pCryptKey
->dwBlockLen
;
2210 if (dwBufLen
< pCryptKey
->dwBlockLen
) {
2211 SetLastError(ERROR_MORE_DATA
);
2214 if (!pad_data(pbData
, *pdwDataLen
, pbData
, pCryptKey
->dwBlockLen
, dwFlags
)) return FALSE
;
2215 encrypt_block_impl(pCryptKey
->aiAlgid
, PK_PUBLIC
, &pCryptKey
->context
, pbData
, pbData
, RSAENH_ENCRYPT
);
2216 *pdwDataLen
= pCryptKey
->dwBlockLen
;
2219 SetLastError(NTE_BAD_TYPE
);
2223 if (Final
) setup_key(pCryptKey
);
2228 /******************************************************************************
2229 * CPDecrypt (RSAENH.@)
2234 * hProv [I] The key container hKey and hHash belong to.
2235 * hKey [I] The key used to decrypt the data.
2236 * hHash [I] An optional hash object for parallel hashing. See notes.
2237 * Final [I] Indicates if this is the last block of data to decrypt.
2238 * dwFlags [I] Currently no flags defined. Must be zero.
2239 * pbData [I/O] Pointer to the data to decrypt. Plaintext will also be stored there.
2240 * pdwDataLen [I/O] I: Length of ciphertext, O: Length of plaintext.
2247 * If a hash object handle is provided in hHash, it will be updated with the plaintext.
2248 * This is useful for message signatures.
2250 * This function uses the standard WINAPI protocol for querying data of dynamic length.
2252 BOOL WINAPI
RSAENH_CPDecrypt(HCRYPTPROV hProv
, HCRYPTKEY hKey
, HCRYPTHASH hHash
, BOOL Final
,
2253 DWORD dwFlags
, BYTE
*pbData
, DWORD
*pdwDataLen
)
2255 CRYPTKEY
*pCryptKey
;
2256 BYTE
*in
, out
[RSAENH_MAX_BLOCK_SIZE
], o
[RSAENH_MAX_BLOCK_SIZE
];
2260 TRACE("(hProv=%08lx, hKey=%08lx, hHash=%08lx, Final=%d, dwFlags=%08x, pbData=%p, "
2261 "pdwDataLen=%p)\n", hProv
, hKey
, hHash
, Final
, dwFlags
, pbData
, pdwDataLen
);
2263 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
2265 SetLastError(NTE_BAD_UID
);
2271 SetLastError(NTE_BAD_FLAGS
);
2275 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pCryptKey
))
2277 SetLastError(NTE_BAD_KEY
);
2281 if (pCryptKey
->dwState
== RSAENH_KEYSTATE_IDLE
)
2282 pCryptKey
->dwState
= RSAENH_KEYSTATE_ENCRYPTING
;
2284 if (pCryptKey
->dwState
!= RSAENH_KEYSTATE_ENCRYPTING
)
2286 SetLastError(NTE_BAD_DATA
);
2292 if (GET_ALG_TYPE(pCryptKey
->aiAlgid
) == ALG_TYPE_BLOCK
) {
2293 for (i
=0, in
=pbData
; i
<*pdwDataLen
; i
+=pCryptKey
->dwBlockLen
, in
+=pCryptKey
->dwBlockLen
) {
2294 switch (pCryptKey
->dwMode
) {
2295 case CRYPT_MODE_ECB
:
2296 encrypt_block_impl(pCryptKey
->aiAlgid
, 0, &pCryptKey
->context
, in
, out
,
2300 case CRYPT_MODE_CBC
:
2301 encrypt_block_impl(pCryptKey
->aiAlgid
, 0, &pCryptKey
->context
, in
, out
,
2303 for (j
=0; j
<pCryptKey
->dwBlockLen
; j
++) out
[j
] ^= pCryptKey
->abChainVector
[j
];
2304 memcpy(pCryptKey
->abChainVector
, in
, pCryptKey
->dwBlockLen
);
2307 case CRYPT_MODE_CFB
:
2308 for (j
=0; j
<pCryptKey
->dwBlockLen
; j
++) {
2309 encrypt_block_impl(pCryptKey
->aiAlgid
, 0, &pCryptKey
->context
,
2310 pCryptKey
->abChainVector
, o
, RSAENH_ENCRYPT
);
2311 out
[j
] = in
[j
] ^ o
[0];
2312 for (k
=0; k
<pCryptKey
->dwBlockLen
-1; k
++)
2313 pCryptKey
->abChainVector
[k
] = pCryptKey
->abChainVector
[k
+1];
2314 pCryptKey
->abChainVector
[k
] = in
[j
];
2319 SetLastError(NTE_BAD_ALGID
);
2322 memcpy(in
, out
, pCryptKey
->dwBlockLen
);
2325 if (pbData
[*pdwDataLen
-1] &&
2326 pbData
[*pdwDataLen
-1] <= pCryptKey
->dwBlockLen
&&
2327 pbData
[*pdwDataLen
-1] < *pdwDataLen
) {
2328 BOOL padOkay
= TRUE
;
2330 /* check that every bad byte has the same value */
2331 for (i
= 1; padOkay
&& i
< pbData
[*pdwDataLen
-1]; i
++)
2332 if (pbData
[*pdwDataLen
- i
- 1] != pbData
[*pdwDataLen
- 1])
2335 *pdwDataLen
-= pbData
[*pdwDataLen
-1];
2337 SetLastError(NTE_BAD_DATA
);
2342 SetLastError(NTE_BAD_DATA
);
2347 } else if (GET_ALG_TYPE(pCryptKey
->aiAlgid
) == ALG_TYPE_STREAM
) {
2348 encrypt_stream_impl(pCryptKey
->aiAlgid
, &pCryptKey
->context
, pbData
, *pdwDataLen
);
2349 } else if (GET_ALG_TYPE(pCryptKey
->aiAlgid
) == ALG_TYPE_RSA
) {
2350 if (pCryptKey
->aiAlgid
== CALG_RSA_SIGN
) {
2351 SetLastError(NTE_BAD_KEY
);
2354 encrypt_block_impl(pCryptKey
->aiAlgid
, PK_PRIVATE
, &pCryptKey
->context
, pbData
, pbData
, RSAENH_DECRYPT
);
2355 if (!unpad_data(pbData
, pCryptKey
->dwBlockLen
, pbData
, pdwDataLen
, dwFlags
)) return FALSE
;
2358 SetLastError(NTE_BAD_TYPE
);
2362 if (Final
) setup_key(pCryptKey
);
2364 if (is_valid_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
)) {
2365 if (*pdwDataLen
>dwMax
||
2366 !RSAENH_CPHashData(hProv
, hHash
, pbData
, *pdwDataLen
, 0)) return FALSE
;
2372 static BOOL
crypt_export_simple(CRYPTKEY
*pCryptKey
, CRYPTKEY
*pPubKey
,
2373 DWORD dwFlags
, BYTE
*pbData
, DWORD
*pdwDataLen
)
2375 BLOBHEADER
*pBlobHeader
= (BLOBHEADER
*)pbData
;
2376 ALG_ID
*pAlgid
= (ALG_ID
*)(pBlobHeader
+1);
2379 if (!(GET_ALG_CLASS(pCryptKey
->aiAlgid
)&(ALG_CLASS_DATA_ENCRYPT
|ALG_CLASS_MSG_ENCRYPT
))) {
2380 SetLastError(NTE_BAD_KEY
); /* FIXME: error code? */
2384 dwDataLen
= sizeof(BLOBHEADER
) + sizeof(ALG_ID
) + pPubKey
->dwBlockLen
;
2386 if (*pdwDataLen
< dwDataLen
) {
2387 SetLastError(ERROR_MORE_DATA
);
2388 *pdwDataLen
= dwDataLen
;
2392 pBlobHeader
->bType
= SIMPLEBLOB
;
2393 pBlobHeader
->bVersion
= CUR_BLOB_VERSION
;
2394 pBlobHeader
->reserved
= 0;
2395 pBlobHeader
->aiKeyAlg
= pCryptKey
->aiAlgid
;
2397 *pAlgid
= pPubKey
->aiAlgid
;
2399 if (!pad_data(pCryptKey
->abKeyValue
, pCryptKey
->dwKeyLen
, (BYTE
*)(pAlgid
+1),
2400 pPubKey
->dwBlockLen
, dwFlags
))
2405 encrypt_block_impl(pPubKey
->aiAlgid
, PK_PUBLIC
, &pPubKey
->context
, (BYTE
*)(pAlgid
+1),
2406 (BYTE
*)(pAlgid
+1), RSAENH_ENCRYPT
);
2408 *pdwDataLen
= dwDataLen
;
2412 static BOOL
crypt_export_public_key(CRYPTKEY
*pCryptKey
, BYTE
*pbData
,
2415 BLOBHEADER
*pBlobHeader
= (BLOBHEADER
*)pbData
;
2416 RSAPUBKEY
*pRSAPubKey
= (RSAPUBKEY
*)(pBlobHeader
+1);
2419 if ((pCryptKey
->aiAlgid
!= CALG_RSA_KEYX
) && (pCryptKey
->aiAlgid
!= CALG_RSA_SIGN
)) {
2420 SetLastError(NTE_BAD_KEY
);
2424 dwDataLen
= sizeof(BLOBHEADER
) + sizeof(RSAPUBKEY
) + pCryptKey
->dwKeyLen
;
2426 if (*pdwDataLen
< dwDataLen
) {
2427 SetLastError(ERROR_MORE_DATA
);
2428 *pdwDataLen
= dwDataLen
;
2432 pBlobHeader
->bType
= PUBLICKEYBLOB
;
2433 pBlobHeader
->bVersion
= CUR_BLOB_VERSION
;
2434 pBlobHeader
->reserved
= 0;
2435 pBlobHeader
->aiKeyAlg
= pCryptKey
->aiAlgid
;
2437 pRSAPubKey
->magic
= RSAENH_MAGIC_RSA1
;
2438 pRSAPubKey
->bitlen
= pCryptKey
->dwKeyLen
<< 3;
2440 export_public_key_impl((BYTE
*)(pRSAPubKey
+1), &pCryptKey
->context
,
2441 pCryptKey
->dwKeyLen
, &pRSAPubKey
->pubexp
);
2443 *pdwDataLen
= dwDataLen
;
2447 static BOOL
crypt_export_private_key(CRYPTKEY
*pCryptKey
, BOOL force
,
2448 BYTE
*pbData
, DWORD
*pdwDataLen
)
2450 BLOBHEADER
*pBlobHeader
= (BLOBHEADER
*)pbData
;
2451 RSAPUBKEY
*pRSAPubKey
= (RSAPUBKEY
*)(pBlobHeader
+1);
2454 if ((pCryptKey
->aiAlgid
!= CALG_RSA_KEYX
) && (pCryptKey
->aiAlgid
!= CALG_RSA_SIGN
)) {
2455 SetLastError(NTE_BAD_KEY
);
2458 if (!force
&& !(pCryptKey
->dwPermissions
& CRYPT_EXPORT
))
2460 SetLastError(NTE_BAD_KEY_STATE
);
2464 dwDataLen
= sizeof(BLOBHEADER
) + sizeof(RSAPUBKEY
) +
2465 2 * pCryptKey
->dwKeyLen
+ 5 * ((pCryptKey
->dwKeyLen
+ 1) >> 1);
2467 if (*pdwDataLen
< dwDataLen
) {
2468 SetLastError(ERROR_MORE_DATA
);
2469 *pdwDataLen
= dwDataLen
;
2473 pBlobHeader
->bType
= PRIVATEKEYBLOB
;
2474 pBlobHeader
->bVersion
= CUR_BLOB_VERSION
;
2475 pBlobHeader
->reserved
= 0;
2476 pBlobHeader
->aiKeyAlg
= pCryptKey
->aiAlgid
;
2478 pRSAPubKey
->magic
= RSAENH_MAGIC_RSA2
;
2479 pRSAPubKey
->bitlen
= pCryptKey
->dwKeyLen
<< 3;
2481 export_private_key_impl((BYTE
*)(pRSAPubKey
+1), &pCryptKey
->context
,
2482 pCryptKey
->dwKeyLen
, &pRSAPubKey
->pubexp
);
2484 *pdwDataLen
= dwDataLen
;
2488 static BOOL
crypt_export_plaintext_key(CRYPTKEY
*pCryptKey
, BYTE
*pbData
,
2491 BLOBHEADER
*pBlobHeader
= (BLOBHEADER
*)pbData
;
2492 DWORD
*pKeyLen
= (DWORD
*)(pBlobHeader
+1);
2493 BYTE
*pbKey
= (BYTE
*)(pKeyLen
+1);
2496 dwDataLen
= sizeof(BLOBHEADER
) + sizeof(DWORD
) + pCryptKey
->dwKeyLen
;
2498 if (*pdwDataLen
< dwDataLen
) {
2499 SetLastError(ERROR_MORE_DATA
);
2500 *pdwDataLen
= dwDataLen
;
2504 pBlobHeader
->bType
= PLAINTEXTKEYBLOB
;
2505 pBlobHeader
->bVersion
= CUR_BLOB_VERSION
;
2506 pBlobHeader
->reserved
= 0;
2507 pBlobHeader
->aiKeyAlg
= pCryptKey
->aiAlgid
;
2509 *pKeyLen
= pCryptKey
->dwKeyLen
;
2510 memcpy(pbKey
, &pCryptKey
->abKeyValue
, pCryptKey
->dwKeyLen
);
2512 *pdwDataLen
= dwDataLen
;
2515 /******************************************************************************
2516 * crypt_export_key [Internal]
2518 * Export a key into a binary large object (BLOB). Called by CPExportKey and
2519 * by store_key_pair.
2522 * pCryptKey [I] Key to be exported.
2523 * hPubKey [I] Key used to encrypt sensitive BLOB data.
2524 * dwBlobType [I] SIMPLEBLOB, PUBLICKEYBLOB or PRIVATEKEYBLOB.
2525 * dwFlags [I] Currently none defined.
2526 * force [I] If TRUE, the key is written no matter what the key's
2527 * permissions are. Otherwise the key's permissions are
2528 * checked before exporting.
2529 * pbData [O] Pointer to a buffer where the BLOB will be written to.
2530 * pdwDataLen [I/O] I: Size of buffer at pbData, O: Size of BLOB
2536 static BOOL
crypt_export_key(CRYPTKEY
*pCryptKey
, HCRYPTKEY hPubKey
,
2537 DWORD dwBlobType
, DWORD dwFlags
, BOOL force
,
2538 BYTE
*pbData
, DWORD
*pdwDataLen
)
2542 if (dwFlags
& CRYPT_SSL2_FALLBACK
) {
2543 if (pCryptKey
->aiAlgid
!= CALG_SSL2_MASTER
) {
2544 SetLastError(NTE_BAD_KEY
);
2549 switch ((BYTE
)dwBlobType
)
2552 if (!lookup_handle(&handle_table
, hPubKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pPubKey
)){
2553 SetLastError(NTE_BAD_PUBLIC_KEY
); /* FIXME: error_code? */
2556 return crypt_export_simple(pCryptKey
, pPubKey
, dwFlags
, pbData
,
2560 if (is_valid_handle(&handle_table
, hPubKey
, RSAENH_MAGIC_KEY
)) {
2561 SetLastError(NTE_BAD_KEY
); /* FIXME: error code? */
2565 return crypt_export_public_key(pCryptKey
, pbData
, pdwDataLen
);
2567 case PRIVATEKEYBLOB
:
2568 return crypt_export_private_key(pCryptKey
, force
, pbData
, pdwDataLen
);
2570 case PLAINTEXTKEYBLOB
:
2571 return crypt_export_plaintext_key(pCryptKey
, pbData
, pdwDataLen
);
2574 SetLastError(NTE_BAD_TYPE
); /* FIXME: error code? */
2579 /******************************************************************************
2580 * CPExportKey (RSAENH.@)
2582 * Export a key into a binary large object (BLOB).
2585 * hProv [I] Key container from which a key is to be exported.
2586 * hKey [I] Key to be exported.
2587 * hPubKey [I] Key used to encrypt sensitive BLOB data.
2588 * dwBlobType [I] SIMPLEBLOB, PUBLICKEYBLOB or PRIVATEKEYBLOB.
2589 * dwFlags [I] Currently none defined.
2590 * pbData [O] Pointer to a buffer where the BLOB will be written to.
2591 * pdwDataLen [I/O] I: Size of buffer at pbData, O: Size of BLOB
2597 BOOL WINAPI
RSAENH_CPExportKey(HCRYPTPROV hProv
, HCRYPTKEY hKey
, HCRYPTKEY hPubKey
,
2598 DWORD dwBlobType
, DWORD dwFlags
, BYTE
*pbData
, DWORD
*pdwDataLen
)
2600 CRYPTKEY
*pCryptKey
;
2602 TRACE("(hProv=%08lx, hKey=%08lx, hPubKey=%08lx, dwBlobType=%08x, dwFlags=%08x, pbData=%p,"
2603 "pdwDataLen=%p)\n", hProv
, hKey
, hPubKey
, dwBlobType
, dwFlags
, pbData
, pdwDataLen
);
2605 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
2607 SetLastError(NTE_BAD_UID
);
2611 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pCryptKey
))
2613 SetLastError(NTE_BAD_KEY
);
2617 return crypt_export_key(pCryptKey
, hPubKey
, dwBlobType
, dwFlags
, FALSE
,
2618 pbData
, pdwDataLen
);
2621 /******************************************************************************
2622 * release_and_install_key [Internal]
2624 * Release an existing key, if present, and replaces it with a new one.
2627 * hProv [I] Key container into which the key is to be imported.
2628 * src [I] Key which will replace *dest
2629 * dest [I] Points to key to be released and replaced with src
2630 * fStoreKey [I] If TRUE, the newly installed key is stored to the registry.
2632 static void release_and_install_key(HCRYPTPROV hProv
, HCRYPTKEY src
,
2633 HCRYPTKEY
*dest
, DWORD fStoreKey
)
2635 RSAENH_CPDestroyKey(hProv
, *dest
);
2636 copy_handle(&handle_table
, src
, RSAENH_MAGIC_KEY
, dest
);
2639 KEYCONTAINER
*pKeyContainer
;
2641 if (lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
2642 (OBJECTHDR
**)&pKeyContainer
))
2644 store_key_container_keys(pKeyContainer
);
2645 store_key_container_permissions(pKeyContainer
);
2650 /******************************************************************************
2651 * import_private_key [Internal]
2653 * Import a BLOB'ed private key into a key container.
2656 * hProv [I] Key container into which the private key is to be imported.
2657 * pbData [I] Pointer to a buffer which holds the private key BLOB.
2658 * dwDataLen [I] Length of data in buffer at pbData.
2659 * dwFlags [I] One of:
2660 * CRYPT_EXPORTABLE: the imported key is marked exportable
2661 * fStoreKey [I] If TRUE, the imported key is stored to the registry.
2662 * phKey [O] Handle to the imported key.
2666 * Assumes the caller has already checked the BLOBHEADER at pbData to ensure
2667 * it's a PRIVATEKEYBLOB.
2673 static BOOL
import_private_key(HCRYPTPROV hProv
, CONST BYTE
*pbData
, DWORD dwDataLen
,
2674 DWORD dwFlags
, BOOL fStoreKey
, HCRYPTKEY
*phKey
)
2676 KEYCONTAINER
*pKeyContainer
;
2677 CRYPTKEY
*pCryptKey
;
2678 CONST BLOBHEADER
*pBlobHeader
= (CONST BLOBHEADER
*)pbData
;
2679 CONST RSAPUBKEY
*pRSAPubKey
= (CONST RSAPUBKEY
*)(pBlobHeader
+1);
2682 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
2683 (OBJECTHDR
**)&pKeyContainer
))
2685 SetLastError(NTE_BAD_UID
);
2689 if ((dwDataLen
< sizeof(BLOBHEADER
) + sizeof(RSAPUBKEY
)) ||
2690 (pRSAPubKey
->magic
!= RSAENH_MAGIC_RSA2
) ||
2691 (dwDataLen
< sizeof(BLOBHEADER
) + sizeof(RSAPUBKEY
) +
2692 (2 * pRSAPubKey
->bitlen
>> 3) + (5 * ((pRSAPubKey
->bitlen
+8)>>4))))
2694 SetLastError(NTE_BAD_DATA
);
2698 *phKey
= new_key(hProv
, pBlobHeader
->aiKeyAlg
, MAKELONG(0,pRSAPubKey
->bitlen
), &pCryptKey
);
2699 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
) return FALSE
;
2700 setup_key(pCryptKey
);
2701 ret
= import_private_key_impl((CONST BYTE
*)(pRSAPubKey
+1), &pCryptKey
->context
,
2702 pRSAPubKey
->bitlen
/8, pRSAPubKey
->pubexp
);
2704 if (dwFlags
& CRYPT_EXPORTABLE
)
2705 pCryptKey
->dwPermissions
|= CRYPT_EXPORT
;
2706 switch (pBlobHeader
->aiKeyAlg
)
2710 TRACE("installing signing key\n");
2711 release_and_install_key(hProv
, *phKey
, &pKeyContainer
->hSignatureKeyPair
,
2714 case AT_KEYEXCHANGE
:
2716 TRACE("installing key exchange key\n");
2717 release_and_install_key(hProv
, *phKey
, &pKeyContainer
->hKeyExchangeKeyPair
,
2725 /******************************************************************************
2726 * import_public_key [Internal]
2728 * Import a BLOB'ed public key into a key container.
2731 * hProv [I] Key container into which the public key is to be imported.
2732 * pbData [I] Pointer to a buffer which holds the public key BLOB.
2733 * dwDataLen [I] Length of data in buffer at pbData.
2734 * dwFlags [I] One of:
2735 * CRYPT_EXPORTABLE: the imported key is marked exportable
2736 * fStoreKey [I] If TRUE, the imported key is stored to the registry.
2737 * phKey [O] Handle to the imported key.
2741 * Assumes the caller has already checked the BLOBHEADER at pbData to ensure
2742 * it's a PUBLICKEYBLOB.
2748 static BOOL
import_public_key(HCRYPTPROV hProv
, CONST BYTE
*pbData
, DWORD dwDataLen
,
2749 DWORD dwFlags
, BOOL fStoreKey
, HCRYPTKEY
*phKey
)
2751 KEYCONTAINER
*pKeyContainer
;
2752 CRYPTKEY
*pCryptKey
;
2753 CONST BLOBHEADER
*pBlobHeader
= (CONST BLOBHEADER
*)pbData
;
2754 CONST RSAPUBKEY
*pRSAPubKey
= (CONST RSAPUBKEY
*)(pBlobHeader
+1);
2758 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
2759 (OBJECTHDR
**)&pKeyContainer
))
2761 SetLastError(NTE_BAD_UID
);
2765 if ((dwDataLen
< sizeof(BLOBHEADER
) + sizeof(RSAPUBKEY
)) ||
2766 (pRSAPubKey
->magic
!= RSAENH_MAGIC_RSA1
) ||
2767 (dwDataLen
< sizeof(BLOBHEADER
) + sizeof(RSAPUBKEY
) + (pRSAPubKey
->bitlen
>> 3)))
2769 SetLastError(NTE_BAD_DATA
);
2773 /* Since this is a public key blob, only the public key is
2774 * available, so only signature verification is possible.
2776 algID
= pBlobHeader
->aiKeyAlg
;
2777 *phKey
= new_key(hProv
, algID
, MAKELONG(0,pRSAPubKey
->bitlen
), &pCryptKey
);
2778 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
) return FALSE
;
2779 setup_key(pCryptKey
);
2780 ret
= import_public_key_impl((CONST BYTE
*)(pRSAPubKey
+1), &pCryptKey
->context
,
2781 pRSAPubKey
->bitlen
>> 3, pRSAPubKey
->pubexp
);
2783 if (dwFlags
& CRYPT_EXPORTABLE
)
2784 pCryptKey
->dwPermissions
|= CRYPT_EXPORT
;
2785 switch (pBlobHeader
->aiKeyAlg
)
2787 case AT_KEYEXCHANGE
:
2789 TRACE("installing public key\n");
2790 release_and_install_key(hProv
, *phKey
, &pKeyContainer
->hKeyExchangeKeyPair
,
2798 /******************************************************************************
2799 * import_symmetric_key [Internal]
2801 * Import a BLOB'ed symmetric key into a key container.
2804 * hProv [I] Key container into which the symmetric key is to be imported.
2805 * pbData [I] Pointer to a buffer which holds the symmetric key BLOB.
2806 * dwDataLen [I] Length of data in buffer at pbData.
2807 * hPubKey [I] Key used to decrypt sensitive BLOB data.
2808 * dwFlags [I] One of:
2809 * CRYPT_EXPORTABLE: the imported key is marked exportable
2810 * phKey [O] Handle to the imported key.
2814 * Assumes the caller has already checked the BLOBHEADER at pbData to ensure
2815 * it's a SIMPLEBLOB.
2821 static BOOL
import_symmetric_key(HCRYPTPROV hProv
, CONST BYTE
*pbData
,
2822 DWORD dwDataLen
, HCRYPTKEY hPubKey
,
2823 DWORD dwFlags
, HCRYPTKEY
*phKey
)
2825 CRYPTKEY
*pCryptKey
, *pPubKey
;
2826 CONST BLOBHEADER
*pBlobHeader
= (CONST BLOBHEADER
*)pbData
;
2827 CONST ALG_ID
*pAlgid
= (CONST ALG_ID
*)(pBlobHeader
+1);
2828 CONST BYTE
*pbKeyStream
= (CONST BYTE
*)(pAlgid
+ 1);
2832 if (!lookup_handle(&handle_table
, hPubKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pPubKey
) ||
2833 pPubKey
->aiAlgid
!= CALG_RSA_KEYX
)
2835 SetLastError(NTE_BAD_PUBLIC_KEY
); /* FIXME: error code? */
2839 if (dwDataLen
< sizeof(BLOBHEADER
)+sizeof(ALG_ID
)+pPubKey
->dwBlockLen
)
2841 SetLastError(NTE_BAD_DATA
); /* FIXME: error code */
2845 pbDecrypted
= HeapAlloc(GetProcessHeap(), 0, pPubKey
->dwBlockLen
);
2846 if (!pbDecrypted
) return FALSE
;
2847 encrypt_block_impl(pPubKey
->aiAlgid
, PK_PRIVATE
, &pPubKey
->context
, pbKeyStream
, pbDecrypted
,
2850 dwKeyLen
= RSAENH_MAX_KEY_SIZE
;
2851 if (!unpad_data(pbDecrypted
, pPubKey
->dwBlockLen
, pbDecrypted
, &dwKeyLen
, dwFlags
)) {
2852 HeapFree(GetProcessHeap(), 0, pbDecrypted
);
2856 *phKey
= new_key(hProv
, pBlobHeader
->aiKeyAlg
, dwKeyLen
<<19, &pCryptKey
);
2857 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
)
2859 HeapFree(GetProcessHeap(), 0, pbDecrypted
);
2862 memcpy(pCryptKey
->abKeyValue
, pbDecrypted
, dwKeyLen
);
2863 HeapFree(GetProcessHeap(), 0, pbDecrypted
);
2864 setup_key(pCryptKey
);
2865 if (dwFlags
& CRYPT_EXPORTABLE
)
2866 pCryptKey
->dwPermissions
|= CRYPT_EXPORT
;
2870 /******************************************************************************
2871 * import_plaintext_key [Internal]
2873 * Import a plaintext key into a key container.
2876 * hProv [I] Key container into which the symmetric key is to be imported.
2877 * pbData [I] Pointer to a buffer which holds the plaintext key BLOB.
2878 * dwDataLen [I] Length of data in buffer at pbData.
2879 * dwFlags [I] One of:
2880 * CRYPT_EXPORTABLE: the imported key is marked exportable
2881 * phKey [O] Handle to the imported key.
2885 * Assumes the caller has already checked the BLOBHEADER at pbData to ensure
2886 * it's a PLAINTEXTKEYBLOB.
2892 static BOOL
import_plaintext_key(HCRYPTPROV hProv
, CONST BYTE
*pbData
,
2893 DWORD dwDataLen
, DWORD dwFlags
,
2896 CRYPTKEY
*pCryptKey
;
2897 CONST BLOBHEADER
*pBlobHeader
= (CONST BLOBHEADER
*)pbData
;
2898 CONST DWORD
*pKeyLen
= (CONST DWORD
*)(pBlobHeader
+ 1);
2899 CONST BYTE
*pbKeyStream
= (CONST BYTE
*)(pKeyLen
+ 1);
2901 if (dwDataLen
< sizeof(BLOBHEADER
)+sizeof(DWORD
)+*pKeyLen
)
2903 SetLastError(NTE_BAD_DATA
); /* FIXME: error code */
2907 *phKey
= new_key(hProv
, pBlobHeader
->aiKeyAlg
, *pKeyLen
<<19, &pCryptKey
);
2908 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
)
2910 memcpy(pCryptKey
->abKeyValue
, pbKeyStream
, *pKeyLen
);
2911 setup_key(pCryptKey
);
2912 if (dwFlags
& CRYPT_EXPORTABLE
)
2913 pCryptKey
->dwPermissions
|= CRYPT_EXPORT
;
2917 /******************************************************************************
2918 * import_key [Internal]
2920 * Import a BLOB'ed key into a key container, optionally storing the key's
2921 * value to the registry.
2924 * hProv [I] Key container into which the key is to be imported.
2925 * pbData [I] Pointer to a buffer which holds the BLOB.
2926 * dwDataLen [I] Length of data in buffer at pbData.
2927 * hPubKey [I] Key used to decrypt sensitive BLOB data.
2928 * dwFlags [I] One of:
2929 * CRYPT_EXPORTABLE: the imported key is marked exportable
2930 * fStoreKey [I] If TRUE, the imported key is stored to the registry.
2931 * phKey [O] Handle to the imported key.
2937 static BOOL
import_key(HCRYPTPROV hProv
, CONST BYTE
*pbData
, DWORD dwDataLen
,
2938 HCRYPTKEY hPubKey
, DWORD dwFlags
, BOOL fStoreKey
,
2941 KEYCONTAINER
*pKeyContainer
;
2942 CONST BLOBHEADER
*pBlobHeader
= (CONST BLOBHEADER
*)pbData
;
2944 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
2945 (OBJECTHDR
**)&pKeyContainer
))
2947 SetLastError(NTE_BAD_UID
);
2951 if (dwDataLen
< sizeof(BLOBHEADER
) ||
2952 pBlobHeader
->bVersion
!= CUR_BLOB_VERSION
||
2953 pBlobHeader
->reserved
!= 0)
2955 TRACE("bVersion = %d, reserved = %d\n", pBlobHeader
->bVersion
,
2956 pBlobHeader
->reserved
);
2957 SetLastError(NTE_BAD_DATA
);
2961 /* If this is a verify-only context, the key is not persisted regardless of
2962 * fStoreKey's original value.
2964 fStoreKey
= fStoreKey
&& !(dwFlags
& CRYPT_VERIFYCONTEXT
);
2965 TRACE("blob type: %x\n", pBlobHeader
->bType
);
2966 switch (pBlobHeader
->bType
)
2968 case PRIVATEKEYBLOB
:
2969 return import_private_key(hProv
, pbData
, dwDataLen
, dwFlags
,
2973 return import_public_key(hProv
, pbData
, dwDataLen
, dwFlags
,
2977 return import_symmetric_key(hProv
, pbData
, dwDataLen
, hPubKey
,
2980 case PLAINTEXTKEYBLOB
:
2981 return import_plaintext_key(hProv
, pbData
, dwDataLen
, dwFlags
,
2985 SetLastError(NTE_BAD_TYPE
); /* FIXME: error code? */
2990 /******************************************************************************
2991 * CPImportKey (RSAENH.@)
2993 * Import a BLOB'ed key into a key container.
2996 * hProv [I] Key container into which the key is to be imported.
2997 * pbData [I] Pointer to a buffer which holds the BLOB.
2998 * dwDataLen [I] Length of data in buffer at pbData.
2999 * hPubKey [I] Key used to decrypt sensitive BLOB data.
3000 * dwFlags [I] One of:
3001 * CRYPT_EXPORTABLE: the imported key is marked exportable
3002 * phKey [O] Handle to the imported key.
3008 BOOL WINAPI
RSAENH_CPImportKey(HCRYPTPROV hProv
, CONST BYTE
*pbData
, DWORD dwDataLen
,
3009 HCRYPTKEY hPubKey
, DWORD dwFlags
, HCRYPTKEY
*phKey
)
3011 TRACE("(hProv=%08lx, pbData=%p, dwDataLen=%d, hPubKey=%08lx, dwFlags=%08x, phKey=%p)\n",
3012 hProv
, pbData
, dwDataLen
, hPubKey
, dwFlags
, phKey
);
3014 if (dwFlags
& CRYPT_IPSEC_HMAC_KEY
)
3016 FIXME("unimplemented for CRYPT_IPSEC_HMAC_KEY\n");
3017 SetLastError(NTE_BAD_FLAGS
);
3020 return import_key(hProv
, pbData
, dwDataLen
, hPubKey
, dwFlags
, TRUE
, phKey
);
3023 /******************************************************************************
3024 * CPGenKey (RSAENH.@)
3026 * Generate a key in the key container
3029 * hProv [I] Key container for which a key is to be generated.
3030 * Algid [I] Crypto algorithm identifier for the key to be generated.
3031 * dwFlags [I] Upper 16 bits: Binary length of key. Lower 16 bits: Flags. See Notes
3032 * phKey [O] Handle to the generated key.
3039 * Flags currently not considered.
3042 * Private key-exchange- and signature-keys can be generated with Algid AT_KEYEXCHANGE
3043 * and AT_SIGNATURE values.
3045 BOOL WINAPI
RSAENH_CPGenKey(HCRYPTPROV hProv
, ALG_ID Algid
, DWORD dwFlags
, HCRYPTKEY
*phKey
)
3047 KEYCONTAINER
*pKeyContainer
;
3048 CRYPTKEY
*pCryptKey
;
3050 TRACE("(hProv=%08lx, aiAlgid=%d, dwFlags=%08x, phKey=%p)\n", hProv
, Algid
, dwFlags
, phKey
);
3052 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
3053 (OBJECTHDR
**)&pKeyContainer
))
3055 /* MSDN: hProv not containing valid context handle */
3056 SetLastError(NTE_BAD_UID
);
3064 *phKey
= new_key(hProv
, CALG_RSA_SIGN
, dwFlags
, &pCryptKey
);
3066 new_key_impl(pCryptKey
->aiAlgid
, &pCryptKey
->context
, pCryptKey
->dwKeyLen
);
3067 setup_key(pCryptKey
);
3068 RSAENH_CPDestroyKey(hProv
, pKeyContainer
->hSignatureKeyPair
);
3069 copy_handle(&handle_table
, *phKey
, RSAENH_MAGIC_KEY
,
3070 &pKeyContainer
->hSignatureKeyPair
);
3074 case AT_KEYEXCHANGE
:
3076 *phKey
= new_key(hProv
, CALG_RSA_KEYX
, dwFlags
, &pCryptKey
);
3078 new_key_impl(pCryptKey
->aiAlgid
, &pCryptKey
->context
, pCryptKey
->dwKeyLen
);
3079 setup_key(pCryptKey
);
3080 RSAENH_CPDestroyKey(hProv
, pKeyContainer
->hKeyExchangeKeyPair
);
3081 copy_handle(&handle_table
, *phKey
, RSAENH_MAGIC_KEY
,
3082 &pKeyContainer
->hKeyExchangeKeyPair
);
3095 case CALG_PCT1_MASTER
:
3096 case CALG_SSL2_MASTER
:
3097 case CALG_SSL3_MASTER
:
3098 case CALG_TLS1_MASTER
:
3099 *phKey
= new_key(hProv
, Algid
, dwFlags
, &pCryptKey
);
3101 gen_rand_impl(pCryptKey
->abKeyValue
, RSAENH_MAX_KEY_SIZE
);
3103 case CALG_SSL3_MASTER
:
3104 pCryptKey
->abKeyValue
[0] = RSAENH_SSL3_VERSION_MAJOR
;
3105 pCryptKey
->abKeyValue
[1] = RSAENH_SSL3_VERSION_MINOR
;
3108 case CALG_TLS1_MASTER
:
3109 pCryptKey
->abKeyValue
[0] = RSAENH_TLS1_VERSION_MAJOR
;
3110 pCryptKey
->abKeyValue
[1] = RSAENH_TLS1_VERSION_MINOR
;
3113 setup_key(pCryptKey
);
3118 /* MSDN: Algorithm not supported specified by Algid */
3119 SetLastError(NTE_BAD_ALGID
);
3123 return *phKey
!= (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
3126 /******************************************************************************
3127 * CPGenRandom (RSAENH.@)
3129 * Generate a random byte stream.
3132 * hProv [I] Key container that is used to generate random bytes.
3133 * dwLen [I] Specifies the number of requested random data bytes.
3134 * pbBuffer [O] Random bytes will be stored here.
3140 BOOL WINAPI
RSAENH_CPGenRandom(HCRYPTPROV hProv
, DWORD dwLen
, BYTE
*pbBuffer
)
3142 TRACE("(hProv=%08lx, dwLen=%d, pbBuffer=%p)\n", hProv
, dwLen
, pbBuffer
);
3144 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
3146 /* MSDN: hProv not containing valid context handle */
3147 SetLastError(NTE_BAD_UID
);
3151 return gen_rand_impl(pbBuffer
, dwLen
);
3154 /******************************************************************************
3155 * CPGetHashParam (RSAENH.@)
3157 * Query parameters of an hash object.
3160 * hProv [I] The kea container, which the hash belongs to.
3161 * hHash [I] The hash object that is to be queried.
3162 * dwParam [I] Specifies the parameter that is to be queried.
3163 * pbData [I] Pointer to the buffer where the parameter value will be stored.
3164 * pdwDataLen [I/O] I: Buffer length at pbData, O: Length of the parameter value.
3165 * dwFlags [I] None currently defined.
3172 * Valid dwParams are: HP_ALGID, HP_HASHSIZE, HP_HASHVALUE. The hash will be
3173 * finalized if HP_HASHVALUE is queried.
3175 BOOL WINAPI
RSAENH_CPGetHashParam(HCRYPTPROV hProv
, HCRYPTHASH hHash
, DWORD dwParam
, BYTE
*pbData
,
3176 DWORD
*pdwDataLen
, DWORD dwFlags
)
3178 CRYPTHASH
*pCryptHash
;
3180 TRACE("(hProv=%08lx, hHash=%08lx, dwParam=%08x, pbData=%p, pdwDataLen=%p, dwFlags=%08x)\n",
3181 hProv
, hHash
, dwParam
, pbData
, pdwDataLen
, dwFlags
);
3183 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
3185 SetLastError(NTE_BAD_UID
);
3191 SetLastError(NTE_BAD_FLAGS
);
3195 if (!lookup_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
,
3196 (OBJECTHDR
**)&pCryptHash
))
3198 SetLastError(NTE_BAD_HASH
);
3204 SetLastError(ERROR_INVALID_PARAMETER
);
3211 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&pCryptHash
->aiAlgid
,
3215 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&pCryptHash
->dwHashSize
,
3219 if (pCryptHash
->aiAlgid
== CALG_TLS1PRF
) {
3220 return tls1_prf(hProv
, pCryptHash
->hKey
, &pCryptHash
->tpPRFParams
.blobLabel
,
3221 &pCryptHash
->tpPRFParams
.blobSeed
, pbData
, *pdwDataLen
);
3224 if ( pbData
== NULL
) {
3225 *pdwDataLen
= pCryptHash
->dwHashSize
;
3229 if (pbData
&& (pCryptHash
->dwState
!= RSAENH_HASHSTATE_FINISHED
))
3231 finalize_hash(pCryptHash
);
3232 pCryptHash
->dwState
= RSAENH_HASHSTATE_FINISHED
;
3235 return copy_param(pbData
, pdwDataLen
, pCryptHash
->abHashValue
,
3236 pCryptHash
->dwHashSize
);
3239 SetLastError(NTE_BAD_TYPE
);
3244 /******************************************************************************
3245 * CPSetKeyParam (RSAENH.@)
3247 * Set a parameter of a key object
3250 * hProv [I] The key container to which the key belongs.
3251 * hKey [I] The key for which a parameter is to be set.
3252 * dwParam [I] Parameter type. See Notes.
3253 * pbData [I] Pointer to the parameter value.
3254 * dwFlags [I] Currently none defined.
3261 * Defined dwParam types are:
3262 * - KP_MODE: Values MODE_CBC, MODE_ECB, MODE_CFB.
3263 * - KP_MODE_BITS: Shift width for cipher feedback mode. (Currently ignored by MS CSP's)
3264 * - KP_PERMISSIONS: Or'ed combination of CRYPT_ENCRYPT, CRYPT_DECRYPT,
3265 * CRYPT_EXPORT, CRYPT_READ, CRYPT_WRITE, CRYPT_MAC
3266 * - KP_IV: Initialization vector
3268 BOOL WINAPI
RSAENH_CPSetKeyParam(HCRYPTPROV hProv
, HCRYPTKEY hKey
, DWORD dwParam
, BYTE
*pbData
,
3271 CRYPTKEY
*pCryptKey
;
3273 TRACE("(hProv=%08lx, hKey=%08lx, dwParam=%08x, pbData=%p, dwFlags=%08x)\n", hProv
, hKey
,
3274 dwParam
, pbData
, dwFlags
);
3276 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
3278 SetLastError(NTE_BAD_UID
);
3283 SetLastError(NTE_BAD_FLAGS
);
3287 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pCryptKey
))
3289 SetLastError(NTE_BAD_KEY
);
3295 /* The MS providers only support PKCS5_PADDING */
3296 if (*(DWORD
*)pbData
!= PKCS5_PADDING
) {
3297 SetLastError(NTE_BAD_DATA
);
3303 pCryptKey
->dwMode
= *(DWORD
*)pbData
;
3307 pCryptKey
->dwModeBits
= *(DWORD
*)pbData
;
3310 case KP_PERMISSIONS
:
3312 DWORD perms
= *(DWORD
*)pbData
;
3314 if ((perms
& CRYPT_EXPORT
) &&
3315 !(pCryptKey
->dwPermissions
& CRYPT_EXPORT
))
3317 SetLastError(NTE_BAD_DATA
);
3320 else if (!(perms
& CRYPT_EXPORT
) &&
3321 (pCryptKey
->dwPermissions
& CRYPT_EXPORT
))
3323 /* Clearing the export permission appears to be ignored,
3326 perms
|= CRYPT_EXPORT
;
3328 pCryptKey
->dwPermissions
= perms
;
3333 memcpy(pCryptKey
->abInitVector
, pbData
, pCryptKey
->dwBlockLen
);
3334 setup_key(pCryptKey
);
3339 CRYPT_INTEGER_BLOB
*blob
= (CRYPT_INTEGER_BLOB
*)pbData
;
3341 /* salt length can't be greater than 184 bits = 24 bytes */
3342 if (blob
->cbData
> 24)
3344 SetLastError(NTE_BAD_DATA
);
3347 memcpy(pCryptKey
->abKeyValue
+ pCryptKey
->dwKeyLen
, blob
->pbData
,
3349 pCryptKey
->dwSaltLen
= blob
->cbData
;
3350 setup_key(pCryptKey
);
3354 case KP_EFFECTIVE_KEYLEN
:
3355 switch (pCryptKey
->aiAlgid
) {
3359 SetLastError(ERROR_INVALID_PARAMETER
);
3362 else if (!*(DWORD
*)pbData
|| *(DWORD
*)pbData
> 1024)
3364 SetLastError(NTE_BAD_DATA
);
3369 pCryptKey
->dwEffectiveKeyLen
= *(DWORD
*)pbData
;
3370 setup_key(pCryptKey
);
3374 SetLastError(NTE_BAD_TYPE
);
3379 case KP_SCHANNEL_ALG
:
3380 switch (((PSCHANNEL_ALG
)pbData
)->dwUse
) {
3381 case SCHANNEL_ENC_KEY
:
3382 memcpy(&pCryptKey
->siSChannelInfo
.saEncAlg
, pbData
, sizeof(SCHANNEL_ALG
));
3385 case SCHANNEL_MAC_KEY
:
3386 memcpy(&pCryptKey
->siSChannelInfo
.saMACAlg
, pbData
, sizeof(SCHANNEL_ALG
));
3390 SetLastError(NTE_FAIL
); /* FIXME: error code */
3395 case KP_CLIENT_RANDOM
:
3396 return copy_data_blob(&pCryptKey
->siSChannelInfo
.blobClientRandom
, (PCRYPT_DATA_BLOB
)pbData
);
3398 case KP_SERVER_RANDOM
:
3399 return copy_data_blob(&pCryptKey
->siSChannelInfo
.blobServerRandom
, (PCRYPT_DATA_BLOB
)pbData
);
3402 SetLastError(NTE_BAD_TYPE
);
3407 /******************************************************************************
3408 * CPGetKeyParam (RSAENH.@)
3410 * Query a key parameter.
3413 * hProv [I] The key container, which the key belongs to.
3414 * hHash [I] The key object that is to be queried.
3415 * dwParam [I] Specifies the parameter that is to be queried.
3416 * pbData [I] Pointer to the buffer where the parameter value will be stored.
3417 * pdwDataLen [I/O] I: Buffer length at pbData, O: Length of the parameter value.
3418 * dwFlags [I] None currently defined.
3425 * Defined dwParam types are:
3426 * - KP_MODE: Values MODE_CBC, MODE_ECB, MODE_CFB.
3427 * - KP_MODE_BITS: Shift width for cipher feedback mode.
3428 * (Currently ignored by MS CSP's - always eight)
3429 * - KP_PERMISSIONS: Or'ed combination of CRYPT_ENCRYPT, CRYPT_DECRYPT,
3430 * CRYPT_EXPORT, CRYPT_READ, CRYPT_WRITE, CRYPT_MAC
3431 * - KP_IV: Initialization vector.
3432 * - KP_KEYLEN: Bitwidth of the key.
3433 * - KP_BLOCKLEN: Size of a block cipher block.
3434 * - KP_SALT: Salt value.
3436 BOOL WINAPI
RSAENH_CPGetKeyParam(HCRYPTPROV hProv
, HCRYPTKEY hKey
, DWORD dwParam
, BYTE
*pbData
,
3437 DWORD
*pdwDataLen
, DWORD dwFlags
)
3439 CRYPTKEY
*pCryptKey
;
3442 TRACE("(hProv=%08lx, hKey=%08lx, dwParam=%08x, pbData=%p, pdwDataLen=%p dwFlags=%08x)\n",
3443 hProv
, hKey
, dwParam
, pbData
, pdwDataLen
, dwFlags
);
3445 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
3447 SetLastError(NTE_BAD_UID
);
3452 SetLastError(NTE_BAD_FLAGS
);
3456 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pCryptKey
))
3458 SetLastError(NTE_BAD_KEY
);
3465 return copy_param(pbData
, pdwDataLen
, pCryptKey
->abInitVector
,
3466 pCryptKey
->dwBlockLen
);
3469 return copy_param(pbData
, pdwDataLen
,
3470 &pCryptKey
->abKeyValue
[pCryptKey
->dwKeyLen
], pCryptKey
->dwSaltLen
);
3473 dwValue
= PKCS5_PADDING
;
3474 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwValue
, sizeof(DWORD
));
3477 dwValue
= pCryptKey
->dwKeyLen
<< 3;
3478 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwValue
, sizeof(DWORD
));
3480 case KP_EFFECTIVE_KEYLEN
:
3481 if (pCryptKey
->dwEffectiveKeyLen
)
3482 dwValue
= pCryptKey
->dwEffectiveKeyLen
;
3484 dwValue
= pCryptKey
->dwKeyLen
<< 3;
3485 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwValue
, sizeof(DWORD
));
3488 dwValue
= pCryptKey
->dwBlockLen
<< 3;
3489 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwValue
, sizeof(DWORD
));
3492 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&pCryptKey
->dwMode
, sizeof(DWORD
));
3495 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&pCryptKey
->dwModeBits
,
3498 case KP_PERMISSIONS
:
3499 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&pCryptKey
->dwPermissions
,
3503 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&pCryptKey
->aiAlgid
, sizeof(DWORD
));
3506 SetLastError(NTE_BAD_TYPE
);
3511 /******************************************************************************
3512 * CPGetProvParam (RSAENH.@)
3514 * Query a CSP parameter.
3517 * hProv [I] The key container that is to be queried.
3518 * dwParam [I] Specifies the parameter that is to be queried.
3519 * pbData [I] Pointer to the buffer where the parameter value will be stored.
3520 * pdwDataLen [I/O] I: Buffer length at pbData, O: Length of the parameter value.
3521 * dwFlags [I] CRYPT_FIRST: Start enumeration (for PP_ENUMALGS{_EX}).
3527 * Defined dwParam types:
3528 * - PP_CONTAINER: Name of the key container.
3529 * - PP_NAME: Name of the cryptographic service provider.
3530 * - PP_SIG_KEYSIZE_INC: RSA signature keywidth granularity in bits.
3531 * - PP_KEYX_KEYSIZE_INC: RSA key-exchange keywidth granularity in bits.
3532 * - PP_ENUMALGS{_EX}: Query provider capabilities.
3534 BOOL WINAPI
RSAENH_CPGetProvParam(HCRYPTPROV hProv
, DWORD dwParam
, BYTE
*pbData
,
3535 DWORD
*pdwDataLen
, DWORD dwFlags
)
3537 KEYCONTAINER
*pKeyContainer
;
3538 PROV_ENUMALGS provEnumalgs
;
3542 /* This is for dwParam PP_CRYPT_COUNT_KEY_USE.
3543 * IE6 SP1 asks for it in the 'About' dialog.
3544 * Returning this BLOB seems to satisfy IE. The marked 0x00 seem
3545 * to be 'don't care's. If you know anything more specific about
3546 * this provider parameter, please report to wine-devel@winehq.org */
3547 static CONST BYTE abWTF
[96] = {
3548 0xb0, 0x25, 0x63, 0x86, 0x9c, 0xab, 0xb6, 0x37,
3549 0xe8, 0x82, /**/0x00,/**/ 0x72, 0x06, 0xb2, /**/0x00,/**/ 0x3b,
3550 0x60, 0x35, /**/0x00,/**/ 0x3b, 0x88, 0xce, /**/0x00,/**/ 0x82,
3551 0xbc, 0x7a, /**/0x00,/**/ 0xb7, 0x4f, 0x7e, /**/0x00,/**/ 0xde,
3552 0x92, 0xf1, /**/0x00,/**/ 0x83, 0xea, 0x5e, /**/0x00,/**/ 0xc8,
3553 0x12, 0x1e, 0xd4, 0x06, 0xf7, 0x66, /**/0x00,/**/ 0x01,
3554 0x29, 0xa4, /**/0x00,/**/ 0xf8, 0x24, 0x0c, /**/0x00,/**/ 0x33,
3555 0x06, 0x80, /**/0x00,/**/ 0x02, 0x46, 0x0b, /**/0x00,/**/ 0x6d,
3556 0x5b, 0xca, /**/0x00,/**/ 0x9a, 0x10, 0xf0, /**/0x00,/**/ 0x05,
3557 0x19, 0xd0, /**/0x00,/**/ 0x2c, 0xf6, 0x27, /**/0x00,/**/ 0xaa,
3558 0x7c, 0x6f, /**/0x00,/**/ 0xb9, 0xd8, 0x72, /**/0x00,/**/ 0x03,
3559 0xf3, 0x81, /**/0x00,/**/ 0xfa, 0xe8, 0x26, /**/0x00,/**/ 0xca
3562 TRACE("(hProv=%08lx, dwParam=%08x, pbData=%p, pdwDataLen=%p, dwFlags=%08x)\n",
3563 hProv
, dwParam
, pbData
, pdwDataLen
, dwFlags
);
3566 SetLastError(ERROR_INVALID_PARAMETER
);
3570 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
3571 (OBJECTHDR
**)&pKeyContainer
))
3573 /* MSDN: hProv not containing valid context handle */
3574 SetLastError(NTE_BAD_UID
);
3581 case PP_UNIQUE_CONTAINER
:/* MSDN says we can return the same value as PP_CONTAINER */
3582 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)pKeyContainer
->szName
,
3583 strlen(pKeyContainer
->szName
)+1);
3586 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)pKeyContainer
->szProvName
,
3587 strlen(pKeyContainer
->szProvName
)+1);
3590 dwTemp
= PROV_RSA_FULL
;
3591 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3594 dwTemp
= AT_SIGNATURE
| AT_KEYEXCHANGE
;
3595 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3597 case PP_KEYSET_TYPE
:
3598 dwTemp
= pKeyContainer
->dwFlags
& CRYPT_MACHINE_KEYSET
;
3599 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3602 dwTemp
= CRYPT_SEC_DESCR
;
3603 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3605 case PP_SIG_KEYSIZE_INC
:
3606 case PP_KEYX_KEYSIZE_INC
:
3608 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3611 dwTemp
= CRYPT_IMPL_SOFTWARE
;
3612 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3615 dwTemp
= 0x00000200;
3616 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&dwTemp
, sizeof(dwTemp
));
3618 case PP_ENUMCONTAINERS
:
3619 if ((dwFlags
& CRYPT_FIRST
) == CRYPT_FIRST
) pKeyContainer
->dwEnumContainersCtr
= 0;
3622 *pdwDataLen
= (DWORD
)MAX_PATH
+ 1;
3626 if (!open_container_key("", dwFlags
, &hKey
))
3628 SetLastError(ERROR_NO_MORE_ITEMS
);
3632 dwTemp
= *pdwDataLen
;
3633 switch (RegEnumKeyExA(hKey
, pKeyContainer
->dwEnumContainersCtr
, (LPSTR
)pbData
, &dwTemp
,
3634 NULL
, NULL
, NULL
, NULL
))
3636 case ERROR_MORE_DATA
:
3637 *pdwDataLen
= (DWORD
)MAX_PATH
+ 1;
3640 pKeyContainer
->dwEnumContainersCtr
++;
3644 case ERROR_NO_MORE_ITEMS
:
3646 SetLastError(ERROR_NO_MORE_ITEMS
);
3652 case PP_ENUMALGS_EX
:
3653 if (((pKeyContainer
->dwEnumAlgsCtr
>= RSAENH_MAX_ENUMALGS
-1) ||
3654 (!aProvEnumAlgsEx
[pKeyContainer
->dwPersonality
]
3655 [pKeyContainer
->dwEnumAlgsCtr
+1].aiAlgid
)) &&
3656 ((dwFlags
& CRYPT_FIRST
) != CRYPT_FIRST
))
3658 SetLastError(ERROR_NO_MORE_ITEMS
);
3662 if (dwParam
== PP_ENUMALGS
) {
3663 if (pbData
&& (*pdwDataLen
>= sizeof(PROV_ENUMALGS
)))
3664 pKeyContainer
->dwEnumAlgsCtr
= ((dwFlags
& CRYPT_FIRST
) == CRYPT_FIRST
) ?
3665 0 : pKeyContainer
->dwEnumAlgsCtr
+1;
3667 provEnumalgs
.aiAlgid
= aProvEnumAlgsEx
3668 [pKeyContainer
->dwPersonality
][pKeyContainer
->dwEnumAlgsCtr
].aiAlgid
;
3669 provEnumalgs
.dwBitLen
= aProvEnumAlgsEx
3670 [pKeyContainer
->dwPersonality
][pKeyContainer
->dwEnumAlgsCtr
].dwDefaultLen
;
3671 provEnumalgs
.dwNameLen
= aProvEnumAlgsEx
3672 [pKeyContainer
->dwPersonality
][pKeyContainer
->dwEnumAlgsCtr
].dwNameLen
;
3673 memcpy(provEnumalgs
.szName
, aProvEnumAlgsEx
3674 [pKeyContainer
->dwPersonality
][pKeyContainer
->dwEnumAlgsCtr
].szName
,
3677 return copy_param(pbData
, pdwDataLen
, (CONST BYTE
*)&provEnumalgs
,
3678 sizeof(PROV_ENUMALGS
));
3680 if (pbData
&& (*pdwDataLen
>= sizeof(PROV_ENUMALGS_EX
)))
3681 pKeyContainer
->dwEnumAlgsCtr
= ((dwFlags
& CRYPT_FIRST
) == CRYPT_FIRST
) ?
3682 0 : pKeyContainer
->dwEnumAlgsCtr
+1;
3684 return copy_param(pbData
, pdwDataLen
,
3685 (CONST BYTE
*)&aProvEnumAlgsEx
3686 [pKeyContainer
->dwPersonality
][pKeyContainer
->dwEnumAlgsCtr
],
3687 sizeof(PROV_ENUMALGS_EX
));
3690 case PP_CRYPT_COUNT_KEY_USE
: /* Asked for by IE About dialog */
3691 return copy_param(pbData
, pdwDataLen
, abWTF
, sizeof(abWTF
));
3694 /* MSDN: Unknown parameter number in dwParam */
3695 SetLastError(NTE_BAD_TYPE
);
3700 /******************************************************************************
3701 * CPDeriveKey (RSAENH.@)
3703 * Derives a key from a hash value.
3706 * hProv [I] Key container for which a key is to be generated.
3707 * Algid [I] Crypto algorithm identifier for the key to be generated.
3708 * hBaseData [I] Hash from whose value the key will be derived.
3709 * dwFlags [I] See Notes.
3710 * phKey [O] The generated key.
3718 * - CRYPT_EXPORTABLE: Key can be exported.
3719 * - CRYPT_NO_SALT: No salt is used for 40 bit keys.
3720 * - CRYPT_CREATE_SALT: Use remaining bits as salt value.
3722 BOOL WINAPI
RSAENH_CPDeriveKey(HCRYPTPROV hProv
, ALG_ID Algid
, HCRYPTHASH hBaseData
,
3723 DWORD dwFlags
, HCRYPTKEY
*phKey
)
3725 CRYPTKEY
*pCryptKey
, *pMasterKey
;
3726 CRYPTHASH
*pCryptHash
;
3727 BYTE abHashValue
[RSAENH_MAX_HASH_SIZE
*2];
3730 TRACE("(hProv=%08lx, Algid=%d, hBaseData=%08lx, dwFlags=%08x phKey=%p)\n", hProv
, Algid
,
3731 hBaseData
, dwFlags
, phKey
);
3733 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
3735 SetLastError(NTE_BAD_UID
);
3739 if (!lookup_handle(&handle_table
, hBaseData
, RSAENH_MAGIC_HASH
,
3740 (OBJECTHDR
**)&pCryptHash
))
3742 SetLastError(NTE_BAD_HASH
);
3748 SetLastError(ERROR_INVALID_PARAMETER
);
3752 switch (GET_ALG_CLASS(Algid
))
3754 case ALG_CLASS_DATA_ENCRYPT
:
3755 *phKey
= new_key(hProv
, Algid
, dwFlags
, &pCryptKey
);
3756 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
) return FALSE
;
3759 * We derive the key material from the hash.
3760 * If the hash value is not large enough for the claimed key, we have to construct
3761 * a larger binary value based on the hash. This is documented in MSDN: CryptDeriveKey.
3763 dwLen
= RSAENH_MAX_HASH_SIZE
;
3764 RSAENH_CPGetHashParam(pCryptHash
->hProv
, hBaseData
, HP_HASHVAL
, abHashValue
, &dwLen
, 0);
3766 if (dwLen
< pCryptKey
->dwKeyLen
) {
3767 BYTE pad1
[RSAENH_HMAC_DEF_PAD_LEN
], pad2
[RSAENH_HMAC_DEF_PAD_LEN
];
3768 BYTE old_hashval
[RSAENH_MAX_HASH_SIZE
];
3771 memcpy(old_hashval
, pCryptHash
->abHashValue
, RSAENH_MAX_HASH_SIZE
);
3773 for (i
=0; i
<RSAENH_HMAC_DEF_PAD_LEN
; i
++) {
3774 pad1
[i
] = RSAENH_HMAC_DEF_IPAD_CHAR
^ (i
<dwLen
? abHashValue
[i
] : 0);
3775 pad2
[i
] = RSAENH_HMAC_DEF_OPAD_CHAR
^ (i
<dwLen
? abHashValue
[i
] : 0);
3778 init_hash(pCryptHash
);
3779 update_hash(pCryptHash
, pad1
, RSAENH_HMAC_DEF_PAD_LEN
);
3780 finalize_hash(pCryptHash
);
3781 memcpy(abHashValue
, pCryptHash
->abHashValue
, pCryptHash
->dwHashSize
);
3783 init_hash(pCryptHash
);
3784 update_hash(pCryptHash
, pad2
, RSAENH_HMAC_DEF_PAD_LEN
);
3785 finalize_hash(pCryptHash
);
3786 memcpy(abHashValue
+pCryptHash
->dwHashSize
, pCryptHash
->abHashValue
,
3787 pCryptHash
->dwHashSize
);
3789 memcpy(pCryptHash
->abHashValue
, old_hashval
, RSAENH_MAX_HASH_SIZE
);
3792 memcpy(pCryptKey
->abKeyValue
, abHashValue
,
3793 RSAENH_MIN(pCryptKey
->dwKeyLen
, sizeof(pCryptKey
->abKeyValue
)));
3796 case ALG_CLASS_MSG_ENCRYPT
:
3797 if (!lookup_handle(&handle_table
, pCryptHash
->hKey
, RSAENH_MAGIC_KEY
,
3798 (OBJECTHDR
**)&pMasterKey
))
3800 SetLastError(NTE_FAIL
); /* FIXME error code */
3806 /* See RFC 2246, chapter 6.3 Key calculation */
3807 case CALG_SCHANNEL_ENC_KEY
:
3808 *phKey
= new_key(hProv
, pMasterKey
->siSChannelInfo
.saEncAlg
.Algid
,
3809 MAKELONG(LOWORD(dwFlags
),pMasterKey
->siSChannelInfo
.saEncAlg
.cBits
),
3811 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
) return FALSE
;
3812 memcpy(pCryptKey
->abKeyValue
,
3813 pCryptHash
->abHashValue
+ (
3814 2 * (pMasterKey
->siSChannelInfo
.saMACAlg
.cBits
/ 8) +
3815 ((dwFlags
& CRYPT_SERVER
) ?
3816 (pMasterKey
->siSChannelInfo
.saEncAlg
.cBits
/ 8) : 0)),
3817 pMasterKey
->siSChannelInfo
.saEncAlg
.cBits
/ 8);
3818 memcpy(pCryptKey
->abInitVector
,
3819 pCryptHash
->abHashValue
+ (
3820 2 * (pMasterKey
->siSChannelInfo
.saMACAlg
.cBits
/ 8) +
3821 2 * (pMasterKey
->siSChannelInfo
.saEncAlg
.cBits
/ 8) +
3822 ((dwFlags
& CRYPT_SERVER
) ? pCryptKey
->dwBlockLen
: 0)),
3823 pCryptKey
->dwBlockLen
);
3826 case CALG_SCHANNEL_MAC_KEY
:
3827 *phKey
= new_key(hProv
, Algid
,
3828 MAKELONG(LOWORD(dwFlags
),pMasterKey
->siSChannelInfo
.saMACAlg
.cBits
),
3830 if (*phKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
) return FALSE
;
3831 memcpy(pCryptKey
->abKeyValue
,
3832 pCryptHash
->abHashValue
+ ((dwFlags
& CRYPT_SERVER
) ?
3833 pMasterKey
->siSChannelInfo
.saMACAlg
.cBits
/ 8 : 0),
3834 pMasterKey
->siSChannelInfo
.saMACAlg
.cBits
/ 8);
3838 SetLastError(NTE_BAD_ALGID
);
3844 SetLastError(NTE_BAD_ALGID
);
3848 setup_key(pCryptKey
);
3852 /******************************************************************************
3853 * CPGetUserKey (RSAENH.@)
3855 * Returns a handle to the user's private key-exchange- or signature-key.
3858 * hProv [I] The key container from which a user key is requested.
3859 * dwKeySpec [I] AT_KEYEXCHANGE or AT_SIGNATURE
3860 * phUserKey [O] Handle to the requested key or INVALID_HANDLE_VALUE in case of failure.
3867 * A newly created key container does not contain private user key. Create them with CPGenKey.
3869 BOOL WINAPI
RSAENH_CPGetUserKey(HCRYPTPROV hProv
, DWORD dwKeySpec
, HCRYPTKEY
*phUserKey
)
3871 KEYCONTAINER
*pKeyContainer
;
3873 TRACE("(hProv=%08lx, dwKeySpec=%08x, phUserKey=%p)\n", hProv
, dwKeySpec
, phUserKey
);
3875 if (!lookup_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
,
3876 (OBJECTHDR
**)&pKeyContainer
))
3878 /* MSDN: hProv not containing valid context handle */
3879 SetLastError(NTE_BAD_UID
);
3885 case AT_KEYEXCHANGE
:
3886 copy_handle(&handle_table
, pKeyContainer
->hKeyExchangeKeyPair
, RSAENH_MAGIC_KEY
,
3891 copy_handle(&handle_table
, pKeyContainer
->hSignatureKeyPair
, RSAENH_MAGIC_KEY
,
3896 *phUserKey
= (HCRYPTKEY
)INVALID_HANDLE_VALUE
;
3899 if (*phUserKey
== (HCRYPTKEY
)INVALID_HANDLE_VALUE
)
3901 /* MSDN: dwKeySpec parameter specifies nonexistent key */
3902 SetLastError(NTE_NO_KEY
);
3909 /******************************************************************************
3910 * CPHashData (RSAENH.@)
3912 * Updates a hash object with the given data.
3915 * hProv [I] Key container to which the hash object belongs.
3916 * hHash [I] Hash object which is to be updated.
3917 * pbData [I] Pointer to data with which the hash object is to be updated.
3918 * dwDataLen [I] Length of the data.
3919 * dwFlags [I] Currently none defined.
3926 * The actual hash value is queried with CPGetHashParam, which will finalize
3927 * the hash. Updating a finalized hash will fail with a last error NTE_BAD_HASH_STATE.
3929 BOOL WINAPI
RSAENH_CPHashData(HCRYPTPROV hProv
, HCRYPTHASH hHash
, CONST BYTE
*pbData
,
3930 DWORD dwDataLen
, DWORD dwFlags
)
3932 CRYPTHASH
*pCryptHash
;
3934 TRACE("(hProv=%08lx, hHash=%08lx, pbData=%p, dwDataLen=%d, dwFlags=%08x)\n",
3935 hProv
, hHash
, pbData
, dwDataLen
, dwFlags
);
3939 SetLastError(NTE_BAD_FLAGS
);
3943 if (!lookup_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
,
3944 (OBJECTHDR
**)&pCryptHash
))
3946 SetLastError(NTE_BAD_HASH
);
3950 if (!get_algid_info(hProv
, pCryptHash
->aiAlgid
) || pCryptHash
->aiAlgid
== CALG_SSL3_SHAMD5
)
3952 SetLastError(NTE_BAD_ALGID
);
3956 if (pCryptHash
->dwState
!= RSAENH_HASHSTATE_HASHING
)
3958 SetLastError(NTE_BAD_HASH_STATE
);
3962 update_hash(pCryptHash
, pbData
, dwDataLen
);
3966 /******************************************************************************
3967 * CPHashSessionKey (RSAENH.@)
3969 * Updates a hash object with the binary representation of a symmetric key.
3972 * hProv [I] Key container to which the hash object belongs.
3973 * hHash [I] Hash object which is to be updated.
3974 * hKey [I] The symmetric key, whose binary value will be added to the hash.
3975 * dwFlags [I] CRYPT_LITTLE_ENDIAN, if the binary key value shall be interpreted as little endian.
3981 BOOL WINAPI
RSAENH_CPHashSessionKey(HCRYPTPROV hProv
, HCRYPTHASH hHash
, HCRYPTKEY hKey
,
3984 BYTE abKeyValue
[RSAENH_MAX_KEY_SIZE
], bTemp
;
3988 TRACE("(hProv=%08lx, hHash=%08lx, hKey=%08lx, dwFlags=%08x)\n", hProv
, hHash
, hKey
, dwFlags
);
3990 if (!lookup_handle(&handle_table
, hKey
, RSAENH_MAGIC_KEY
, (OBJECTHDR
**)&pKey
) ||
3991 (GET_ALG_CLASS(pKey
->aiAlgid
) != ALG_CLASS_DATA_ENCRYPT
))
3993 SetLastError(NTE_BAD_KEY
);
3997 if (dwFlags
& ~CRYPT_LITTLE_ENDIAN
) {
3998 SetLastError(NTE_BAD_FLAGS
);
4002 memcpy(abKeyValue
, pKey
->abKeyValue
, pKey
->dwKeyLen
);
4003 if (!(dwFlags
& CRYPT_LITTLE_ENDIAN
)) {
4004 for (i
=0; i
<pKey
->dwKeyLen
/2; i
++) {
4005 bTemp
= abKeyValue
[i
];
4006 abKeyValue
[i
] = abKeyValue
[pKey
->dwKeyLen
-i
-1];
4007 abKeyValue
[pKey
->dwKeyLen
-i
-1] = bTemp
;
4011 return RSAENH_CPHashData(hProv
, hHash
, abKeyValue
, pKey
->dwKeyLen
, 0);
4014 /******************************************************************************
4015 * CPReleaseContext (RSAENH.@)
4017 * Release a key container.
4020 * hProv [I] Key container to be released.
4021 * dwFlags [I] Currently none defined.
4027 BOOL WINAPI
RSAENH_CPReleaseContext(HCRYPTPROV hProv
, DWORD dwFlags
)
4029 TRACE("(hProv=%08lx, dwFlags=%08x)\n", hProv
, dwFlags
);
4031 if (!release_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
4033 /* MSDN: hProv not containing valid context handle */
4034 SetLastError(NTE_BAD_UID
);
4039 SetLastError(NTE_BAD_FLAGS
);
4046 /******************************************************************************
4047 * CPSetHashParam (RSAENH.@)
4049 * Set a parameter of a hash object
4052 * hProv [I] The key container to which the key belongs.
4053 * hHash [I] The hash object for which a parameter is to be set.
4054 * dwParam [I] Parameter type. See Notes.
4055 * pbData [I] Pointer to the parameter value.
4056 * dwFlags [I] Currently none defined.
4063 * Currently only the HP_HMAC_INFO dwParam type is defined.
4064 * The HMAC_INFO struct will be deep copied into the hash object.
4065 * See Internet RFC 2104 for details on the HMAC algorithm.
4067 BOOL WINAPI
RSAENH_CPSetHashParam(HCRYPTPROV hProv
, HCRYPTHASH hHash
, DWORD dwParam
,
4068 BYTE
*pbData
, DWORD dwFlags
)
4070 CRYPTHASH
*pCryptHash
;
4071 CRYPTKEY
*pCryptKey
;
4074 TRACE("(hProv=%08lx, hHash=%08lx, dwParam=%08x, pbData=%p, dwFlags=%08x)\n",
4075 hProv
, hHash
, dwParam
, pbData
, dwFlags
);
4077 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
4079 SetLastError(NTE_BAD_UID
);
4084 SetLastError(NTE_BAD_FLAGS
);
4088 if (!lookup_handle(&handle_table
, hHash
, RSAENH_MAGIC_HASH
,
4089 (OBJECTHDR
**)&pCryptHash
))
4091 SetLastError(NTE_BAD_HASH
);
4097 free_hmac_info(pCryptHash
->pHMACInfo
);
4098 if (!copy_hmac_info(&pCryptHash
->pHMACInfo
, (PHMAC_INFO
)pbData
)) return FALSE
;
4100 if (!lookup_handle(&handle_table
, pCryptHash
->hKey
, RSAENH_MAGIC_KEY
,
4101 (OBJECTHDR
**)&pCryptKey
))
4103 SetLastError(NTE_FAIL
); /* FIXME: correct error code? */
4107 for (i
=0; i
<RSAENH_MIN(pCryptKey
->dwKeyLen
,pCryptHash
->pHMACInfo
->cbInnerString
); i
++) {
4108 pCryptHash
->pHMACInfo
->pbInnerString
[i
] ^= pCryptKey
->abKeyValue
[i
];
4110 for (i
=0; i
<RSAENH_MIN(pCryptKey
->dwKeyLen
,pCryptHash
->pHMACInfo
->cbOuterString
); i
++) {
4111 pCryptHash
->pHMACInfo
->pbOuterString
[i
] ^= pCryptKey
->abKeyValue
[i
];
4114 init_hash(pCryptHash
);
4118 memcpy(pCryptHash
->abHashValue
, pbData
, pCryptHash
->dwHashSize
);
4119 pCryptHash
->dwState
= RSAENH_HASHSTATE_FINISHED
;
4122 case HP_TLS1PRF_SEED
:
4123 return copy_data_blob(&pCryptHash
->tpPRFParams
.blobSeed
, (PCRYPT_DATA_BLOB
)pbData
);
4125 case HP_TLS1PRF_LABEL
:
4126 return copy_data_blob(&pCryptHash
->tpPRFParams
.blobLabel
, (PCRYPT_DATA_BLOB
)pbData
);
4129 SetLastError(NTE_BAD_TYPE
);
4134 /******************************************************************************
4135 * CPSetProvParam (RSAENH.@)
4137 BOOL WINAPI
RSAENH_CPSetProvParam(HCRYPTPROV hProv
, DWORD dwParam
, BYTE
*pbData
, DWORD dwFlags
)
4143 /******************************************************************************
4144 * CPSignHash (RSAENH.@)
4146 * Sign a hash object
4149 * hProv [I] The key container, to which the hash object belongs.
4150 * hHash [I] The hash object to be signed.
4151 * dwKeySpec [I] AT_SIGNATURE or AT_KEYEXCHANGE: Key used to generate the signature.
4152 * sDescription [I] Should be NULL for security reasons.
4153 * dwFlags [I] 0, CRYPT_NOHASHOID or CRYPT_X931_FORMAT: Format of the signature.
4154 * pbSignature [O] Buffer, to which the signature will be stored. May be NULL to query SigLen.
4155 * pdwSigLen [I/O] Size of the buffer (in), Length of the signature (out)
4161 BOOL WINAPI
RSAENH_CPSignHash(HCRYPTPROV hProv
, HCRYPTHASH hHash
, DWORD dwKeySpec
,
4162 LPCWSTR sDescription
, DWORD dwFlags
, BYTE
*pbSignature
,
4165 HCRYPTKEY hCryptKey
;
4166 CRYPTKEY
*pCryptKey
;
4168 BYTE abHashValue
[RSAENH_MAX_HASH_SIZE
];
4171 TRACE("(hProv=%08lx, hHash=%08lx, dwKeySpec=%08x, sDescription=%s, dwFlags=%08x, "
4172 "pbSignature=%p, pdwSigLen=%p)\n", hProv
, hHash
, dwKeySpec
, debugstr_w(sDescription
),
4173 dwFlags
, pbSignature
, pdwSigLen
);
4175 if (dwFlags
& ~(CRYPT_NOHASHOID
|CRYPT_X931_FORMAT
)) {
4176 SetLastError(NTE_BAD_FLAGS
);
4180 if (!RSAENH_CPGetUserKey(hProv
, dwKeySpec
, &hCryptKey
)) return FALSE
;
4182 if (!lookup_handle(&handle_table
, hCryptKey
, RSAENH_MAGIC_KEY
,
4183 (OBJECTHDR
**)&pCryptKey
))
4185 SetLastError(NTE_NO_KEY
);
4190 *pdwSigLen
= pCryptKey
->dwKeyLen
;
4193 if (pCryptKey
->dwKeyLen
> *pdwSigLen
)
4195 SetLastError(ERROR_MORE_DATA
);
4196 *pdwSigLen
= pCryptKey
->dwKeyLen
;
4199 *pdwSigLen
= pCryptKey
->dwKeyLen
;
4202 if (!RSAENH_CPHashData(hProv
, hHash
, (CONST BYTE
*)sDescription
,
4203 (DWORD
)lstrlenW(sDescription
)*sizeof(WCHAR
), 0))
4209 dwHashLen
= sizeof(DWORD
);
4210 if (!RSAENH_CPGetHashParam(hProv
, hHash
, HP_ALGID
, (BYTE
*)&aiAlgid
, &dwHashLen
, 0)) return FALSE
;
4212 dwHashLen
= RSAENH_MAX_HASH_SIZE
;
4213 if (!RSAENH_CPGetHashParam(hProv
, hHash
, HP_HASHVAL
, abHashValue
, &dwHashLen
, 0)) return FALSE
;
4216 if (!build_hash_signature(pbSignature
, *pdwSigLen
, aiAlgid
, abHashValue
, dwHashLen
, dwFlags
)) {
4220 return encrypt_block_impl(pCryptKey
->aiAlgid
, PK_PRIVATE
, &pCryptKey
->context
, pbSignature
, pbSignature
, RSAENH_ENCRYPT
);
4223 /******************************************************************************
4224 * CPVerifySignature (RSAENH.@)
4226 * Verify the signature of a hash object.
4229 * hProv [I] The key container, to which the hash belongs.
4230 * hHash [I] The hash for which the signature is verified.
4231 * pbSignature [I] The binary signature.
4232 * dwSigLen [I] Length of the signature BLOB.
4233 * hPubKey [I] Public key used to verify the signature.
4234 * sDescription [I] Should be NULL for security reasons.
4235 * dwFlags [I] 0, CRYPT_NOHASHOID or CRYPT_X931_FORMAT: Format of the signature.
4238 * Success: TRUE (Signature is valid)
4239 * Failure: FALSE (GetLastError() == NTE_BAD_SIGNATURE, if signature is invalid)
4241 BOOL WINAPI
RSAENH_CPVerifySignature(HCRYPTPROV hProv
, HCRYPTHASH hHash
, CONST BYTE
*pbSignature
,
4242 DWORD dwSigLen
, HCRYPTKEY hPubKey
, LPCWSTR sDescription
,
4245 BYTE
*pbConstructed
= NULL
, *pbDecrypted
= NULL
;
4246 CRYPTKEY
*pCryptKey
;
4249 BYTE abHashValue
[RSAENH_MAX_HASH_SIZE
];
4252 TRACE("(hProv=%08lx, hHash=%08lx, pbSignature=%p, dwSigLen=%d, hPubKey=%08lx, sDescription=%s, "
4253 "dwFlags=%08x)\n", hProv
, hHash
, pbSignature
, dwSigLen
, hPubKey
, debugstr_w(sDescription
),
4256 if (dwFlags
& ~(CRYPT_NOHASHOID
|CRYPT_X931_FORMAT
)) {
4257 SetLastError(NTE_BAD_FLAGS
);
4261 if (!is_valid_handle(&handle_table
, hProv
, RSAENH_MAGIC_CONTAINER
))
4263 SetLastError(NTE_BAD_UID
);
4267 if (!lookup_handle(&handle_table
, hPubKey
, RSAENH_MAGIC_KEY
,
4268 (OBJECTHDR
**)&pCryptKey
))
4270 SetLastError(NTE_BAD_KEY
);
4274 /* in Microsoft implementation, the signature length is checked before
4275 * the signature pointer.
4277 if (dwSigLen
!= pCryptKey
->dwKeyLen
)
4279 SetLastError(NTE_BAD_SIGNATURE
);
4283 if (!hHash
|| !pbSignature
)
4285 SetLastError(ERROR_INVALID_PARAMETER
);
4290 if (!RSAENH_CPHashData(hProv
, hHash
, (CONST BYTE
*)sDescription
,
4291 (DWORD
)lstrlenW(sDescription
)*sizeof(WCHAR
), 0))
4297 dwHashLen
= sizeof(DWORD
);
4298 if (!RSAENH_CPGetHashParam(hProv
, hHash
, HP_ALGID
, (BYTE
*)&aiAlgid
, &dwHashLen
, 0)) return FALSE
;
4300 dwHashLen
= RSAENH_MAX_HASH_SIZE
;
4301 if (!RSAENH_CPGetHashParam(hProv
, hHash
, HP_HASHVAL
, abHashValue
, &dwHashLen
, 0)) return FALSE
;
4303 pbConstructed
= HeapAlloc(GetProcessHeap(), 0, dwSigLen
);
4304 if (!pbConstructed
) {
4305 SetLastError(NTE_NO_MEMORY
);
4309 pbDecrypted
= HeapAlloc(GetProcessHeap(), 0, dwSigLen
);
4311 SetLastError(NTE_NO_MEMORY
);
4315 if (!encrypt_block_impl(pCryptKey
->aiAlgid
, PK_PUBLIC
, &pCryptKey
->context
, pbSignature
, pbDecrypted
,
4321 if (!build_hash_signature(pbConstructed
, dwSigLen
, aiAlgid
, abHashValue
, dwHashLen
, dwFlags
)) {
4325 if (memcmp(pbDecrypted
, pbConstructed
, dwSigLen
)) {
4326 SetLastError(NTE_BAD_SIGNATURE
);
4332 HeapFree(GetProcessHeap(), 0, pbConstructed
);
4333 HeapFree(GetProcessHeap(), 0, pbDecrypted
);
4337 static const WCHAR szProviderKeys
[6][116] = {
4338 { 'S','o','f','t','w','a','r','e','\\',
4339 'M','i','c','r','o','s','o','f','t','\\','C','r','y','p','t','o','g','r',
4340 'a','p','h','y','\\','D','e','f','a','u','l','t','s','\\','P','r','o','v',
4341 'i','d','e','r','\\','M','i','c','r','o','s','o','f','t',' ','B','a','s',
4342 'e',' ','C','r','y','p','t','o','g','r','a','p','h','i','c',' ','P','r',
4343 'o','v','i','d','e','r',' ','v','1','.','0',0 },
4344 { 'S','o','f','t','w','a','r','e','\\',
4345 'M','i','c','r','o','s','o','f','t','\\','C','r','y','p','t','o','g','r',
4346 'a','p','h','y','\\','D','e','f','a','u','l','t','s','\\','P','r','o','v',
4347 'i','d','e','r','\\','M','i','c','r','o','s','o','f','t',' ',
4348 'E','n','h','a','n','c','e','d',
4349 ' ','C','r','y','p','t','o','g','r','a','p','h','i','c',' ','P','r',
4350 'o','v','i','d','e','r',' ','v','1','.','0',0 },
4351 { 'S','o','f','t','w','a','r','e','\\',
4352 'M','i','c','r','o','s','o','f','t','\\','C','r','y','p','t','o','g','r',
4353 'a','p','h','y','\\','D','e','f','a','u','l','t','s','\\','P','r','o','v',
4354 'i','d','e','r','\\','M','i','c','r','o','s','o','f','t',' ','S','t','r','o','n','g',
4355 ' ','C','r','y','p','t','o','g','r','a','p','h','i','c',' ','P','r',
4356 'o','v','i','d','e','r',0 },
4357 { 'S','o','f','t','w','a','r','e','\\','M','i','c','r','o','s','o','f','t','\\',
4358 'C','r','y','p','t','o','g','r','a','p','h','y','\\','D','e','f','a','u','l','t','s','\\',
4359 'P','r','o','v','i','d','e','r','\\','M','i','c','r','o','s','o','f','t',' ',
4360 'R','S','A',' ','S','C','h','a','n','n','e','l',' ',
4361 'C','r','y','p','t','o','g','r','a','p','h','i','c',' ','P','r','o','v','i','d','e','r',0 },
4362 { 'S','o','f','t','w','a','r','e','\\','M','i','c','r','o','s','o','f','t','\\',
4363 'C','r','y','p','t','o','g','r','a','p','h','y','\\','D','e','f','a','u','l','t','s','\\',
4364 'P','r','o','v','i','d','e','r','\\','M','i','c','r','o','s','o','f','t',' ',
4365 'E','n','h','a','n','c','e','d',' ','R','S','A',' ','a','n','d',' ','A','E','S',' ',
4366 'C','r','y','p','t','o','g','r','a','p','h','i','c',' ','P','r','o','v','i','d','e','r',0 },
4367 { 'S','o','f','t','w','a','r','e','\\','M','i','c','r','o','s','o','f','t','\\',
4368 'C','r','y','p','t','o','g','r','a','p','h','y','\\','D','e','f','a','u','l','t','s','\\',
4369 'P','r','o','v','i','d','e','r','\\','M','i','c','r','o','s','o','f','t',' ',
4370 'E','n','h','a','n','c','e','d',' ','R','S','A',' ','a','n','d',' ','A','E','S',' ',
4371 'C','r','y','p','t','o','g','r','a','p','h','i','c',' ','P','r','o','v','i','d','e','r',
4372 ' ','(','P','r','o','t','o','t','y','p','e',')',0 }
4374 static const WCHAR szDefaultKeys
[3][65] = {
4375 { 'S','o','f','t','w','a','r','e','\\',
4376 'M','i','c','r','o','s','o','f','t','\\','C','r','y','p','t','o','g','r',
4377 'a','p','h','y','\\','D','e','f','a','u','l','t','s','\\','P','r','o','v',
4378 'i','d','e','r',' ','T','y','p','e','s','\\','T','y','p','e',' ','0','0','1',0 },
4379 { 'S','o','f','t','w','a','r','e','\\',
4380 'M','i','c','r','o','s','o','f','t','\\','C','r','y','p','t','o','g','r',
4381 'a','p','h','y','\\','D','e','f','a','u','l','t','s','\\','P','r','o','v',
4382 'i','d','e','r',' ','T','y','p','e','s','\\','T','y','p','e',' ','0','1','2',0 },
4383 { 'S','o','f','t','w','a','r','e','\\',
4384 'M','i','c','r','o','s','o','f','t','\\','C','r','y','p','t','o','g','r',
4385 'a','p','h','y','\\','D','e','f','a','u','l','t','s','\\','P','r','o','v',
4386 'i','d','e','r',' ','T','y','p','e','s','\\','T','y','p','e',' ','0','2','4',0 }
4390 /******************************************************************************
4391 * DllRegisterServer (RSAENH.@)
4393 * Dll self registration.
4402 * Registers the following keys:
4403 * - HKLM\Software\Microsoft\Cryptography\Defaults\Provider\
4404 * Microsoft Base Cryptographic Provider v1.0
4405 * - HKLM\Software\Microsoft\Cryptography\Defaults\Provider\
4406 * Microsoft Enhanced Cryptographic Provider
4407 * - HKLM\Software\Microsoft\Cryptography\Defaults\Provider\
4408 * Microsoft Strong Cryptographpic Provider
4409 * - HKLM\Software\Microsoft\Cryptography\Defaults\Provider Types\Type 001
4411 HRESULT WINAPI
DllRegisterServer(void)
4418 for (i
=0; i
<6; i
++) {
4419 apiRet
= RegCreateKeyExW(HKEY_LOCAL_MACHINE
, szProviderKeys
[i
], 0, NULL
,
4420 REG_OPTION_NON_VOLATILE
, KEY_ALL_ACCESS
, NULL
, &key
, &dp
);
4422 if (apiRet
== ERROR_SUCCESS
)
4424 if (dp
== REG_CREATED_NEW_KEY
)
4426 static const WCHAR szImagePath
[] = { 'I','m','a','g','e',' ','P','a','t','h',0 };
4427 static const WCHAR szRSABase
[] = { 'r','s','a','e','n','h','.','d','l','l',0 };
4428 static const WCHAR szType
[] = { 'T','y','p','e',0 };
4429 static const WCHAR szSignature
[] = { 'S','i','g','n','a','t','u','r','e',0 };
4435 type
=PROV_RSA_SCHANNEL
;
4446 RegSetValueExW(key
, szImagePath
, 0, REG_SZ
, (const BYTE
*)szRSABase
,
4447 (lstrlenW(szRSABase
) + 1) * sizeof(WCHAR
));
4448 RegSetValueExW(key
, szType
, 0, REG_DWORD
, (LPBYTE
)&type
, sizeof(type
));
4449 RegSetValueExW(key
, szSignature
, 0, REG_BINARY
, (LPBYTE
)&sign
, sizeof(sign
));
4455 for (i
=0; i
<3; i
++) {
4456 apiRet
= RegCreateKeyExW(HKEY_LOCAL_MACHINE
, szDefaultKeys
[i
], 0, NULL
,
4457 REG_OPTION_NON_VOLATILE
, KEY_ALL_ACCESS
, NULL
, &key
, &dp
);
4458 if (apiRet
== ERROR_SUCCESS
)
4460 if (dp
== REG_CREATED_NEW_KEY
)
4462 static const WCHAR szName
[] = { 'N','a','m','e',0 };
4463 static const WCHAR szRSAName
[3][54] = {
4464 { 'M','i','c','r','o','s','o','f','t',' ',
4465 'E','n','h','a','n','c','e','d',' ',
4466 'C','r','y','p','t','o','g','r','a','p','h','i','c',' ',
4467 'P','r','o','v','i','d','e','r',' ','v','1','.','0',0 },
4468 { 'M','i','c','r','o','s','o','f','t',' ','R','S','A',' ',
4469 'S','C','h','a','n','n','e','l',' ',
4470 'C','r','y','p','t','o','g','r','a','p','h','i','c',' ',
4471 'P','r','o','v','i','d','e','r',0 },
4472 { 'M','i','c','r','o','s','o','f','t',' ','E','n','h','a','n','c','e','d',' ',
4473 'R','S','A',' ','a','n','d',' ','A','E','S',' ',
4474 'C','r','y','p','t','o','g','r','a','p','h','i','c',' ',
4475 'P','r','o','v','i','d','e','r',0 } };
4476 static const WCHAR szTypeName
[] = { 'T','y','p','e','N','a','m','e',0 };
4477 static const WCHAR szRSATypeName
[3][38] = {
4478 { 'R','S','A',' ','F','u','l','l',' ',
4479 '(','S','i','g','n','a','t','u','r','e',' ','a','n','d',' ',
4480 'K','e','y',' ','E','x','c','h','a','n','g','e',')',0 },
4481 { 'R','S','A',' ','S','C','h','a','n','n','e','l',0 },
4482 { 'R','S','A',' ','F','u','l','l',' ','a','n','d',' ','A','E','S',0 } };
4484 RegSetValueExW(key
, szName
, 0, REG_SZ
,
4485 (const BYTE
*)szRSAName
[i
], lstrlenW(szRSAName
[i
])*sizeof(WCHAR
)+sizeof(WCHAR
));
4486 RegSetValueExW(key
, szTypeName
, 0, REG_SZ
,
4487 (const BYTE
*)szRSATypeName
[i
], lstrlenW(szRSATypeName
[i
])*sizeof(WCHAR
)+sizeof(WCHAR
));
4493 return HRESULT_FROM_WIN32(apiRet
);
4496 /******************************************************************************
4497 * DllUnregisterServer (RSAENH.@)
4499 * Dll self unregistration.
4507 * For the relevant keys see DllRegisterServer.
4509 HRESULT WINAPI
DllUnregisterServer(void)
4511 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szProviderKeys
[0]);
4512 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szProviderKeys
[1]);
4513 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szProviderKeys
[2]);
4514 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szProviderKeys
[3]);
4515 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szProviderKeys
[4]);
4516 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szProviderKeys
[5]);
4517 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szDefaultKeys
[0]);
4518 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szDefaultKeys
[1]);
4519 RegDeleteKeyW(HKEY_LOCAL_MACHINE
, szDefaultKeys
[2]);