NCEndToEndEncryption.m 33 KB

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  1. //
  2. // NCEndToEndEncryption.m
  3. // Nextcloud
  4. //
  5. // Created by Marino Faggiana on 19/09/17.
  6. // Copyright © 2017 Marino Faggiana. All rights reserved.
  7. //
  8. // Author Marino Faggiana <marino.faggiana@nextcloud.com>
  9. //
  10. // This program is free software: you can redistribute it and/or modify
  11. // it under the terms of the GNU General Public License as published by
  12. // the Free Software Foundation, either version 3 of the License, or
  13. // (at your option) any later version.
  14. //
  15. // This program 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
  18. // GNU General Public License for more details.
  19. //
  20. // You should have received a copy of the GNU General Public License
  21. // along with this program. If not, see <http://www.gnu.org/licenses/>.
  22. //
  23. #import "NCEndToEndEncryption.h"
  24. #import "NCBridgeSwift.h"
  25. #import "CCUtility.h"
  26. #import <CommonCrypto/CommonDigest.h>
  27. #import <CommonCrypto/CommonKeyDerivation.h>
  28. #import <OpenSSL/OpenSSL.h>
  29. #define addName(field, value) X509_NAME_add_entry_by_txt(name, field, MBSTRING_ASC, (unsigned char *)value, -1, -1, 0); NSLog(@"%s: %s", field, value);
  30. #define IV_DELIMITER_ENCODED @"fA==" // "|" base64 encoded
  31. #define PBKDF2_INTERACTION_COUNT 1024
  32. #define PBKDF2_KEY_LENGTH 256
  33. //#define PBKDF2_SALT @"$4$YmBjm3hk$Qb74D5IUYwghUmzsMqeNFx5z0/8$"
  34. #define ASYMMETRIC_STRING_TEST @"Nextcloud a safe home for all your data"
  35. #define fileNameCertificate @"cert.pem"
  36. #define fileNameCSR @"csr.pem"
  37. #define fileNamePrivateKey @"privateKey.pem"
  38. #define fileNamePubliceKey @"publicKey.pem"
  39. #define AES_KEY_128_LENGTH 16
  40. #define AES_KEY_256_LENGTH 32
  41. #define AES_IVEC_LENGTH 16
  42. #define AES_GCM_TAG_LENGTH 16
  43. #define AES_SALT_LENGTH 40
  44. @interface NCEndToEndEncryption ()
  45. {
  46. NSData *_privateKeyData;
  47. NSData *_publicKeyData;
  48. NSData *_csrData;
  49. }
  50. @end
  51. @implementation NCEndToEndEncryption
  52. //Singleton
  53. + (instancetype)sharedManager {
  54. static NCEndToEndEncryption *NCEndToEndEncryption = nil;
  55. static dispatch_once_t onceToken;
  56. dispatch_once(&onceToken, ^{
  57. NCEndToEndEncryption = [self new];
  58. });
  59. return NCEndToEndEncryption;
  60. }
  61. #
  62. #pragma mark - Generate Certificate X509 - CSR - Private Key
  63. #
  64. - (BOOL)generateCertificateX509WithUserID:(NSString *)userID directory:(NSString *)directory
  65. {
  66. OPENSSL_init();
  67. EVP_PKEY * pkey;
  68. pkey = EVP_PKEY_new();
  69. RSA * rsa;
  70. rsa = RSA_generate_key(
  71. 2048, /* number of bits for the key - 2048 is a sensible value */
  72. RSA_F4, /* exponent - RSA_F4 is defined as 0x10001L */
  73. NULL, /* callback - can be NULL if we aren't displaying progress */
  74. NULL /* callback argument - not needed in this case */
  75. );
  76. EVP_PKEY_assign_RSA(pkey, rsa);
  77. X509 * x509;
  78. x509 = X509_new();
  79. ASN1_INTEGER_set(X509_get_serialNumber(x509), 1);
  80. long notBefore = [[NSDate date] timeIntervalSinceDate:[NSDate date]];
  81. long notAfter = [[[NSDate date] dateByAddingTimeInterval:60*60*24*365*10] timeIntervalSinceDate:[NSDate date]]; // 10 year
  82. X509_gmtime_adj(X509_get_notBefore(x509), notBefore);
  83. X509_gmtime_adj(X509_get_notAfter(x509), notAfter);
  84. X509_set_pubkey(x509, pkey);
  85. X509_NAME * name;
  86. name = X509_get_subject_name(x509);
  87. // Now to add the subject name fields to the certificate
  88. // I use a macro here to make it cleaner.
  89. const unsigned char *cUserID = (const unsigned char *) [userID cStringUsingEncoding:NSUTF8StringEncoding];
  90. // Common Name = UserID.
  91. addName("CN", cUserID);
  92. // The organizational unit for the cert. Usually this is a department.
  93. addName("OU", "Certificate Authority");
  94. // The organization of the cert.
  95. addName("O", "Nextcloud");
  96. // The city of the organization.
  97. addName("L", "Vicenza");
  98. // The state/province of the organization.
  99. addName("S", "Italy");
  100. // The country (ISO 3166) of the organization
  101. addName("C", "IT");
  102. X509_set_issuer_name(x509, name);
  103. /*
  104. for (SANObject * san in self.options.sans) {
  105. if (!san.value || san.value.length <= 0) {
  106. continue;
  107. }
  108. NSString * prefix = san.type == SANObjectTypeIP ? @"IP:" : @"DNS:";
  109. NSString * value = [NSString stringWithFormat:@"%@%@", prefix, san.value];
  110. NSLog(@"Add subjectAltName %@", value);
  111. X509_EXTENSION * extension = NULL;
  112. ASN1_STRING * asnValue = ASN1_STRING_new();
  113. ASN1_STRING_set(asnValue, (const unsigned char *)[value UTF8String], (int)value.length);
  114. X509_EXTENSION_create_by_NID(&extension, NID_subject_alt_name, 0, asnValue);
  115. X509_add_ext(x509, extension, -1);
  116. }
  117. */
  118. // Specify the encryption algorithm of the signature.
  119. // SHA256 should suit your needs.
  120. if (X509_sign(x509, pkey, EVP_sha256()) < 0) {
  121. return NO;
  122. }
  123. X509_print_fp(stdout, x509);
  124. // Extract CSR, publicKey, privateKey
  125. int len;
  126. char *keyBytes;
  127. // CSR
  128. BIO *csrBIO = BIO_new(BIO_s_mem());
  129. X509_REQ *certReq = X509_to_X509_REQ(x509, pkey, EVP_sha256());
  130. PEM_write_bio_X509_REQ(csrBIO, certReq);
  131. len = BIO_pending(csrBIO);
  132. keyBytes = malloc(len);
  133. BIO_read(csrBIO, keyBytes, len);
  134. _csrData = [NSData dataWithBytes:keyBytes length:len];
  135. NSLog(@"[LOG] \n%@", [[NSString alloc] initWithData:_csrData encoding:NSUTF8StringEncoding]);
  136. // PublicKey
  137. BIO *publicKeyBIO = BIO_new(BIO_s_mem());
  138. PEM_write_bio_PUBKEY(publicKeyBIO, pkey);
  139. len = BIO_pending(publicKeyBIO);
  140. keyBytes = malloc(len);
  141. BIO_read(publicKeyBIO, keyBytes, len);
  142. _publicKeyData = [NSData dataWithBytes:keyBytes length:len];
  143. NSLog(@"[LOG] \n%@", [[NSString alloc] initWithData:_publicKeyData encoding:NSUTF8StringEncoding]);
  144. // PrivateKey
  145. BIO *privateKeyBIO = BIO_new(BIO_s_mem());
  146. PEM_write_bio_PKCS8PrivateKey(privateKeyBIO, pkey, NULL, NULL, 0, NULL, NULL);
  147. len = BIO_pending(privateKeyBIO);
  148. keyBytes = malloc(len);
  149. BIO_read(privateKeyBIO, keyBytes, len);
  150. _privateKeyData = [NSData dataWithBytes:keyBytes length:len];
  151. NSLog(@"[LOG] \n%@", [[NSString alloc] initWithData:_privateKeyData encoding:NSUTF8StringEncoding]);
  152. if(keyBytes)
  153. free(keyBytes);
  154. #ifdef DEBUG
  155. // Save to disk [DEBUG MODE]
  156. [self saveToDiskPEMWithCert:x509 key:pkey directory:directory];
  157. #endif
  158. return YES;
  159. }
  160. - (BOOL)saveToDiskPEMWithCert:(X509 *)x509 key:(EVP_PKEY *)pkey directory:(NSString *)directory
  161. {
  162. FILE *f;
  163. // Certificate
  164. NSString *certificatePath = [NSString stringWithFormat:@"%@/%@", directory, fileNameCertificate];
  165. f = fopen([certificatePath fileSystemRepresentation], "wb");
  166. if (PEM_write_X509(f, x509) < 0) {
  167. // Error writing to disk.
  168. fclose(f);
  169. return NO;
  170. }
  171. NSLog(@"[LOG] Saved cert to %@", certificatePath);
  172. fclose(f);
  173. // PublicKey
  174. NSString *publicKeyPath = [NSString stringWithFormat:@"%@/%@", directory, fileNamePubliceKey];
  175. f = fopen([publicKeyPath fileSystemRepresentation], "wb");
  176. if (PEM_write_PUBKEY(f, pkey) < 0) {
  177. // Error
  178. fclose(f);
  179. return NO;
  180. }
  181. NSLog(@"[LOG] Saved publicKey to %@", publicKeyPath);
  182. fclose(f);
  183. // Here you write the private key (pkey) to disk. OpenSSL will encrypt the
  184. // file using the password and cipher you provide.
  185. //if (PEM_write_PrivateKey(f, pkey, EVP_des_ede3_cbc(), (unsigned char *)[password UTF8String], (int)password.length, NULL, NULL) < 0) {
  186. // PrivateKey
  187. NSString *privatekeyPath = [NSString stringWithFormat:@"%@/%@", directory, fileNamePrivateKey];
  188. f = fopen([privatekeyPath fileSystemRepresentation], "wb");
  189. if (PEM_write_PrivateKey(f, pkey, NULL, NULL, 0, NULL, NULL) < 0) {
  190. // Error
  191. fclose(f);
  192. return NO;
  193. }
  194. NSLog(@"[LOG] Saved privatekey to %@", privatekeyPath);
  195. fclose(f);
  196. // CSR Request sha256
  197. NSString *csrPath = [NSString stringWithFormat:@"%@/%@", directory, fileNameCSR];
  198. f = fopen([csrPath fileSystemRepresentation], "wb");
  199. X509_REQ *certreq = X509_to_X509_REQ(x509, pkey, EVP_sha256());
  200. if (PEM_write_X509_REQ(f, certreq) < 0) {
  201. // Error
  202. fclose(f);
  203. return NO;
  204. }
  205. NSLog(@"[LOG] Saved csr to %@", csrPath);
  206. fclose(f);
  207. return YES;
  208. }
  209. - (BOOL)saveP12WithCert:(X509 *)x509 key:(EVP_PKEY *)pkey directory:(NSString *)directory finished:(void (^)(NSError *))finished
  210. {
  211. //PKCS12 * p12 = PKCS12_create([password UTF8String], NULL, pkey, x509, NULL, 0, 0, PKCS12_DEFAULT_ITER, 1, NID_key_usage);
  212. PKCS12 *p12 = PKCS12_create(NULL, NULL, pkey, x509, NULL, 0, 0, PKCS12_DEFAULT_ITER, 1, NID_key_usage);
  213. NSString *path = [NSString stringWithFormat:@"%@/certificate.p12", directory];
  214. FILE *f = fopen([path fileSystemRepresentation], "wb");
  215. if (i2d_PKCS12_fp(f, p12) != 1) {
  216. fclose(f);
  217. return NO;
  218. }
  219. NSLog(@"[LOG] Saved p12 to %@", path);
  220. fclose(f);
  221. return YES;
  222. }
  223. #
  224. #pragma mark - Create CSR & Encrypt/Decrypt Private Key
  225. #
  226. - (NSString *)createCSR:(NSString *)userID directory:(NSString *)directory
  227. {
  228. // Create Certificate, if do not exists
  229. if (!_csrData) {
  230. if (![self generateCertificateX509WithUserID:userID directory:directory])
  231. return nil;
  232. }
  233. NSString *csr = [[NSString alloc] initWithData:_csrData encoding:NSUTF8StringEncoding];
  234. return csr;
  235. }
  236. - (NSString *)encryptPrivateKey:(NSString *)userID directory:(NSString *)directory passphrase:(NSString *)passphrase privateKey:(NSString **)privateKey
  237. {
  238. NSMutableData *privateKeyCipherData = [NSMutableData new];
  239. if (!_privateKeyData) {
  240. if (![self generateCertificateX509WithUserID:userID directory:directory])
  241. return nil;
  242. }
  243. NSMutableData *keyData = [NSMutableData dataWithLength:PBKDF2_KEY_LENGTH/8];
  244. NSData *saltData = [self generateSalt:AES_SALT_LENGTH];
  245. // Remove all whitespaces from passphrase
  246. passphrase = [passphrase stringByReplacingOccurrencesOfString:@" " withString:@""];
  247. CCKeyDerivationPBKDF(kCCPBKDF2, passphrase.UTF8String, passphrase.length, saltData.bytes, saltData.length, kCCPRFHmacAlgSHA1, PBKDF2_INTERACTION_COUNT, keyData.mutableBytes, keyData.length);
  248. NSData *ivData = [self generateIV:AES_IVEC_LENGTH];
  249. NSData *tagData = [NSData new];
  250. /* ENCODE 64 privateKey JAVA compatibility */
  251. NSString *privateKeyBase64 = [_privateKeyData base64EncodedStringWithOptions:0];
  252. NSData *privateKeyBase64Data = [privateKeyBase64 dataUsingEncoding:NSUTF8StringEncoding];
  253. /* --------------------------------------- */
  254. BOOL result = [self encryptData:privateKeyBase64Data cipherData:&privateKeyCipherData keyData:keyData keyLen:AES_KEY_256_LENGTH ivData:ivData tagData:&tagData];
  255. if (result && privateKeyCipherData) {
  256. NSString *privateKeyCipherBase64 = [privateKeyCipherData base64EncodedStringWithOptions:0];
  257. NSString *initVectorBase64 = [ivData base64EncodedStringWithOptions:0];
  258. NSString *saltBase64 = [saltData base64EncodedStringWithOptions:0];
  259. NSString *privateKeyCipherWithInitVectorBase64 = [NSString stringWithFormat:@"%@%@%@%@%@", privateKeyCipherBase64, IV_DELIMITER_ENCODED, initVectorBase64, IV_DELIMITER_ENCODED, saltBase64];
  260. *privateKey = [[NSString alloc] initWithData:_privateKeyData encoding:NSUTF8StringEncoding];
  261. return privateKeyCipherWithInitVectorBase64;
  262. } else {
  263. return nil;
  264. }
  265. }
  266. - (NSString *)decryptPrivateKey:(NSString *)privateKeyCipher passphrase:(NSString *)passphrase publicKey:(NSString *)publicKey
  267. {
  268. NSMutableData *privateKeyData = [NSMutableData new];
  269. NSString *privateKey;
  270. // Key (data)
  271. NSMutableData *keyData = [NSMutableData dataWithLength:PBKDF2_KEY_LENGTH/8];
  272. // Split
  273. NSArray *privateKeyCipherArray = [privateKeyCipher componentsSeparatedByString:IV_DELIMITER_ENCODED];
  274. NSData *privateKeyCipherData = [[NSData alloc] initWithBase64EncodedString:privateKeyCipherArray[0] options:0];
  275. NSString *tagBase64 = [privateKeyCipher substringWithRange:NSMakeRange([(NSString *)privateKeyCipherArray[0] length] - AES_GCM_TAG_LENGTH, AES_GCM_TAG_LENGTH)];
  276. NSData *tagData = [[NSData alloc] initWithBase64EncodedString:tagBase64 options:0];
  277. NSData *ivData = [[NSData alloc] initWithBase64EncodedString:privateKeyCipherArray[1] options:0];
  278. NSData *saltData = [[NSData alloc] initWithBase64EncodedString:privateKeyCipherArray[2] options:0];
  279. // Remove all whitespaces from passphrase
  280. passphrase = [passphrase stringByReplacingOccurrencesOfString:@" " withString:@""];
  281. CCKeyDerivationPBKDF(kCCPBKDF2, passphrase.UTF8String, passphrase.length, saltData.bytes, saltData.length, kCCPRFHmacAlgSHA1, PBKDF2_INTERACTION_COUNT, keyData.mutableBytes, keyData.length);
  282. BOOL result = [self decryptData:privateKeyCipherData plainData:&privateKeyData keyData:keyData keyLen:AES_KEY_256_LENGTH ivData:ivData tagData:tagData];
  283. if (result && privateKeyData)
  284. /* DENCODE 64 privateKey JAVA compatibility */
  285. privateKey = [self base64DecodeData:privateKeyData];
  286. /* ---------------------------------------- */
  287. if (privateKey) {
  288. NSData *encryptData = [self encryptAsymmetricString:ASYMMETRIC_STRING_TEST publicKey:publicKey privateKey:nil];
  289. if (!encryptData)
  290. return nil;
  291. NSString *decryptString = [self decryptAsymmetricData:encryptData privateKey:privateKey];
  292. if (decryptString && [decryptString isEqualToString:ASYMMETRIC_STRING_TEST])
  293. return privateKey;
  294. else
  295. return nil;
  296. return privateKey;
  297. } else {
  298. return nil;
  299. }
  300. }
  301. #
  302. #pragma mark - Encrypt / Decrypt Encrypted Json
  303. #
  304. - (NSString *)encryptEncryptedJson:(NSString *)encrypted key:(NSString *)key
  305. {
  306. NSMutableData *cipherData;
  307. NSData *tagData = [NSData new];
  308. // ENCODE 64 encrypted JAVA compatibility */
  309. NSData *encryptedData = [encrypted dataUsingEncoding:NSUTF8StringEncoding];
  310. NSString *encryptedDataBase64 = [encryptedData base64EncodedStringWithOptions:0];
  311. NSData *encryptedData64Data = [encryptedDataBase64 dataUsingEncoding:NSUTF8StringEncoding];
  312. /* --------------------------------------- */
  313. // Key
  314. NSData *keyData = [[NSData alloc] initWithBase64EncodedString:key options:0];
  315. // IV
  316. NSData *ivData = [self generateIV:AES_IVEC_LENGTH];
  317. BOOL result = [self encryptData:encryptedData64Data cipherData:&cipherData keyData:keyData keyLen:AES_KEY_128_LENGTH ivData:ivData tagData:&tagData];
  318. if (cipherData != nil && result) {
  319. NSString *cipherBase64 = [cipherData base64EncodedStringWithOptions:0];
  320. NSString *ivBase64 = [ivData base64EncodedStringWithOptions:0];
  321. NSString *encryptedJson = [NSString stringWithFormat:@"%@%@%@", cipherBase64, IV_DELIMITER_ENCODED, ivBase64];
  322. return encryptedJson;
  323. }
  324. return nil;
  325. }
  326. - (NSString *)decryptEncryptedJson:(NSString *)encrypted key:(NSString *)key
  327. {
  328. NSMutableData *plainData;
  329. NSRange range = [encrypted rangeOfString:IV_DELIMITER_ENCODED];
  330. // Cipher
  331. NSString *cipher = [encrypted substringToIndex:(range.location)];
  332. NSData *cipherData = [[NSData alloc] initWithBase64EncodedString:cipher options:0];
  333. // Key
  334. NSData *keyData = [[NSData alloc] initWithBase64EncodedString:key options:0];
  335. // IV
  336. NSString *iv = [encrypted substringWithRange:NSMakeRange(range.location + range.length, encrypted.length - (range.location + range.length))];
  337. NSData *ivData = [[NSData alloc] initWithBase64EncodedString:iv options:0];
  338. // TAG
  339. NSString *tag = [cipher substringWithRange:NSMakeRange(cipher.length - AES_GCM_TAG_LENGTH, AES_GCM_TAG_LENGTH)];
  340. NSData *tagData = [[NSData alloc] initWithBase64EncodedString:tag options:0];
  341. BOOL result = [self decryptData:cipherData plainData:&plainData keyData:keyData keyLen:AES_KEY_128_LENGTH ivData:ivData tagData:tagData];
  342. if (plainData != nil && result) {
  343. /* DENCODE 64 JAVA compatibility */
  344. NSString *plain = [self base64DecodeData:plainData];
  345. /* ---------------------------------------- */
  346. return plain;
  347. }
  348. return nil;
  349. }
  350. #
  351. #pragma mark - Encrypt / Decrypt file
  352. #
  353. - (BOOL)encryptFileName:(NSString *)fileName fileNameIdentifier:(NSString *)fileNameIdentifier directory:(NSString *)directory key:(NSString **)key initializationVector:(NSString **)initializationVector authenticationTag:(NSString **)authenticationTag
  354. {
  355. NSMutableData *cipherData;
  356. NSData *tagData;
  357. NSData *plainData = [[NSFileManager defaultManager] contentsAtPath:[NSString stringWithFormat:@"%@/%@", directory, fileName]];
  358. if (plainData == nil)
  359. return false;
  360. NSData *keyData = [self generateKey:AES_KEY_128_LENGTH];
  361. NSData *ivData = [self generateIV:AES_IVEC_LENGTH];
  362. BOOL result = [self encryptData:plainData cipherData:&cipherData keyData:keyData keyLen:AES_KEY_128_LENGTH ivData:ivData tagData:&tagData];
  363. if (cipherData != nil && result) {
  364. [cipherData writeToFile:[NSString stringWithFormat:@"%@/%@", directory, fileNameIdentifier] atomically:YES];
  365. *key = [keyData base64EncodedStringWithOptions:0];
  366. *initializationVector = [ivData base64EncodedStringWithOptions:0];
  367. *authenticationTag = [tagData base64EncodedStringWithOptions:0];
  368. return true;
  369. }
  370. return false;
  371. }
  372. - (BOOL)decryptFileName:(NSString *)fileName fileNameView:(NSString *)fileNameView ocId:(NSString *)ocId key:(NSString *)key initializationVector:(NSString *)initializationVector authenticationTag:(NSString *)authenticationTag
  373. {
  374. NSMutableData *plainData;
  375. NSData *cipherData = [[NSFileManager defaultManager] contentsAtPath:[CCUtility getDirectoryProviderStorageOcId:ocId fileNameView:fileName]];
  376. if (cipherData == nil)
  377. return false;
  378. NSData *keyData = [[NSData alloc] initWithBase64EncodedString:key options:0];
  379. NSData *ivData = [[NSData alloc] initWithBase64EncodedString:initializationVector options:0];
  380. NSData *tagData = [[NSData alloc] initWithBase64EncodedString:authenticationTag options:0];
  381. BOOL result = [self decryptData:cipherData plainData:&plainData keyData:keyData keyLen:AES_KEY_128_LENGTH ivData:ivData tagData:tagData];
  382. if (plainData != nil && result) {
  383. [plainData writeToFile:[CCUtility getDirectoryProviderStorageOcId:ocId fileNameView:fileNameView] atomically:YES];
  384. return true;
  385. }
  386. return false;
  387. }
  388. // -----------------------------------------------------------------------------------------------------------------------------------------------------------------------
  389. // -----------------------------------------------------------------------------------------------------------------------------------------------------------------------
  390. #
  391. #pragma mark - OPENSSL ENCRYPT/DECRYPT
  392. #
  393. #
  394. #pragma mark - Asymmetric Encrypt/Decrypt String
  395. #
  396. - (NSData *)encryptAsymmetricString:(NSString *)plain publicKey:(NSString *)publicKey privateKey:(NSString *)privateKey
  397. {
  398. ENGINE *eng = ENGINE_get_default_RSA();
  399. EVP_PKEY *key = NULL;
  400. int status = 0;
  401. if (publicKey != nil) {
  402. unsigned char *pKey = (unsigned char *)[publicKey UTF8String];
  403. // Extract real publicKey
  404. BIO *bio = BIO_new_mem_buf(pKey, -1);
  405. if (!bio)
  406. return nil;
  407. X509 *x509 = PEM_read_bio_X509(bio, NULL, 0, NULL);
  408. if (!x509)
  409. return nil;
  410. key = X509_get_pubkey(x509);
  411. if (!key)
  412. return nil;
  413. }
  414. if (privateKey != nil) {
  415. unsigned char *pKey = (unsigned char *)[privateKey UTF8String];
  416. BIO *bio = BIO_new_mem_buf(pKey, -1);
  417. if (!bio)
  418. return nil;
  419. key = PEM_read_bio_PrivateKey(bio, NULL, NULL, NULL);
  420. if (!key)
  421. return nil;
  422. }
  423. EVP_PKEY_CTX *ctx = EVP_PKEY_CTX_new(key, eng);
  424. if (!ctx)
  425. return nil;
  426. status = EVP_PKEY_encrypt_init(ctx);
  427. if (status <= 0)
  428. return nil;
  429. status = EVP_PKEY_CTX_set_rsa_padding(ctx, RSA_PKCS1_OAEP_PADDING);
  430. if (status <= 0)
  431. return nil;
  432. status = EVP_PKEY_CTX_set_rsa_oaep_md(ctx, EVP_sha256());
  433. if (status <= 0)
  434. return nil;
  435. status = EVP_PKEY_CTX_set_rsa_mgf1_md(ctx, EVP_sha256());
  436. if (status <= 0)
  437. return nil;
  438. unsigned long outLen = 0;
  439. NSData *plainData = [plain dataUsingEncoding:NSUTF8StringEncoding];
  440. status = EVP_PKEY_encrypt(ctx, NULL, &outLen, [plainData bytes], (int)[plainData length]);
  441. if (status <= 0 || outLen == 0)
  442. return nil;
  443. unsigned char *out = (unsigned char *) malloc(outLen);
  444. status = EVP_PKEY_encrypt(ctx, out, &outLen, [plainData bytes], (int)[plainData length]);
  445. if (status <= 0)
  446. return nil;
  447. NSData *outData = [[NSData alloc] initWithBytes:out length:outLen];
  448. if (out)
  449. free(out);
  450. return outData;
  451. }
  452. - (NSString *)decryptAsymmetricData:(NSData *)cipherData privateKey:(NSString *)privateKey
  453. {
  454. unsigned char *pKey = (unsigned char *)[privateKey UTF8String];
  455. ENGINE *eng = ENGINE_get_default_RSA();
  456. int status = 0;
  457. BIO *bio = BIO_new_mem_buf(pKey, -1);
  458. if (!bio)
  459. return nil;
  460. EVP_PKEY *key = PEM_read_bio_PrivateKey(bio, NULL, NULL, NULL);
  461. if (!key)
  462. return nil;
  463. EVP_PKEY_CTX *ctx = EVP_PKEY_CTX_new(key, eng);
  464. if (!ctx)
  465. return nil;
  466. status = EVP_PKEY_decrypt_init(ctx);
  467. if (status <= 0)
  468. return nil;
  469. status = EVP_PKEY_CTX_set_rsa_padding(ctx, RSA_PKCS1_OAEP_PADDING);
  470. if (status <= 0)
  471. return nil;
  472. status = EVP_PKEY_CTX_set_rsa_oaep_md(ctx, EVP_sha256());
  473. if (status <= 0)
  474. return nil;
  475. status = EVP_PKEY_CTX_set_rsa_mgf1_md(ctx, EVP_sha256());
  476. if (status <= 0)
  477. return nil;
  478. unsigned long outLen = 0;
  479. status = EVP_PKEY_decrypt(ctx, NULL, &outLen, [cipherData bytes], (int)[cipherData length]);
  480. if (status <= 0 || outLen == 0)
  481. return nil;
  482. unsigned char *out = (unsigned char *) malloc(outLen);
  483. status = EVP_PKEY_decrypt(ctx, out, &outLen, [cipherData bytes], (int)[cipherData length]);
  484. if (status <= 0)
  485. return nil;
  486. NSString *outString = [[NSString alloc] initWithBytes:out length:outLen encoding:NSUTF8StringEncoding];
  487. if (out)
  488. free(out);
  489. return outString;
  490. }
  491. #
  492. #pragma mark - AES/GCM/NoPadding
  493. #
  494. // Encryption using GCM mode
  495. - (BOOL)encryptData:(NSData *)plainData cipherData:(NSMutableData **)cipherData keyData:(NSData *)keyData keyLen:(int)keyLen ivData:(NSData *)ivData tagData:(NSData **)tagData
  496. {
  497. int status = 0;
  498. int len = 0;
  499. // set up key
  500. len = keyLen;
  501. unsigned char cKey[len];
  502. bzero(cKey, sizeof(cKey));
  503. [keyData getBytes:cKey length:len];
  504. // set up ivec
  505. len = AES_IVEC_LENGTH;
  506. unsigned char cIV[len];
  507. bzero(cIV, sizeof(cIV));
  508. [ivData getBytes:cIV length:len];
  509. // set up tag
  510. len = AES_GCM_TAG_LENGTH;
  511. unsigned char cTag[len];
  512. bzero(cTag, sizeof(cTag));
  513. // Create and initialise the context
  514. EVP_CIPHER_CTX *ctx = EVP_CIPHER_CTX_new();
  515. if (!ctx)
  516. return NO;
  517. // Initialise the encryption operation
  518. if (keyLen == AES_KEY_128_LENGTH)
  519. status = EVP_EncryptInit_ex(ctx, EVP_aes_128_gcm(), NULL, NULL, NULL);
  520. else if (keyLen == AES_KEY_256_LENGTH)
  521. status = EVP_EncryptInit_ex(ctx, EVP_aes_256_gcm(), NULL, NULL, NULL);
  522. if (status <= 0)
  523. return NO;
  524. // Set IV length. Not necessary if this is 12 bytes (96 bits)
  525. status = EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_GCM_SET_IVLEN, (int)sizeof(cIV), NULL);
  526. if (status <= 0)
  527. return NO;
  528. // Initialise key and IV
  529. status = EVP_EncryptInit_ex (ctx, NULL, NULL, cKey, cIV);
  530. if (status <= 0)
  531. return NO;
  532. // Provide the message to be encrypted, and obtain the encrypted output
  533. *cipherData = [NSMutableData dataWithLength:[plainData length]];
  534. unsigned char * cCipher = [*cipherData mutableBytes];
  535. int cCipherLen = 0;
  536. status = EVP_EncryptUpdate(ctx, cCipher, &cCipherLen, [plainData bytes], (int)[plainData length]);
  537. if (status <= 0)
  538. return NO;
  539. // Finalise the encryption
  540. len = cCipherLen;
  541. status = EVP_EncryptFinal_ex(ctx, cCipher+cCipherLen, &len);
  542. if (status <= 0)
  543. return NO;
  544. // Get the tag
  545. status = EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_GCM_GET_TAG, (int)sizeof(cTag), cTag);
  546. *tagData = [NSData dataWithBytes:cTag length:sizeof(cTag)];
  547. // Add TAG JAVA compatibility
  548. [*cipherData appendData:*tagData];
  549. // --------------------------
  550. // Free
  551. EVP_CIPHER_CTX_free(ctx);
  552. return status; // OpenSSL uses 1 for success
  553. }
  554. // Decryption using GCM mode
  555. - (BOOL)decryptData:(NSData *)cipherData plainData:(NSMutableData **)plainData keyData:(NSData *)keyData keyLen:(int)keyLen ivData:(NSData *)ivData tagData:(NSData *)tagData
  556. {
  557. int status = 0;
  558. int len = 0;
  559. // set up key
  560. len = keyLen;
  561. unsigned char cKey[len];
  562. bzero(cKey, sizeof(cKey));
  563. [keyData getBytes:cKey length:len];
  564. // set up ivec
  565. len = (int)[ivData length];
  566. unsigned char cIV[len];
  567. bzero(cIV, sizeof(cIV));
  568. [ivData getBytes:cIV length:len];
  569. // set up tag
  570. len = (int)[tagData length];;
  571. unsigned char cTag[len];
  572. bzero(cTag, sizeof(cTag));
  573. [tagData getBytes:cTag length:len];
  574. // Create and initialise the context
  575. EVP_CIPHER_CTX *ctx = EVP_CIPHER_CTX_new();
  576. if (!ctx)
  577. return NO;
  578. // Initialise the decryption operation
  579. if (keyLen == AES_KEY_128_LENGTH)
  580. status = EVP_DecryptInit_ex(ctx, EVP_aes_128_gcm(), NULL, NULL, NULL);
  581. else if (keyLen == AES_KEY_256_LENGTH)
  582. status = EVP_DecryptInit_ex(ctx, EVP_aes_256_gcm(), NULL, NULL, NULL);
  583. if (status <= 0)
  584. return NO;
  585. // Set IV length. Not necessary if this is 12 bytes (96 bits)
  586. status = EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_GCM_SET_IVLEN, (int)sizeof(cIV), NULL);
  587. if (status <= 0)
  588. return NO;
  589. // Initialise key and IV
  590. status = EVP_DecryptInit_ex(ctx, NULL, NULL, cKey, cIV);
  591. if (status <= 0)
  592. return NO;
  593. // Remove TAG JAVA compatibility
  594. cipherData = [cipherData subdataWithRange:NSMakeRange(0, cipherData.length - AES_GCM_TAG_LENGTH)];
  595. // -----------------------------
  596. // Provide the message to be decrypted, and obtain the plaintext output
  597. *plainData = [NSMutableData dataWithLength:([cipherData length])];
  598. int cPlainLen = 0;
  599. unsigned char * cPlain = [*plainData mutableBytes];
  600. status = EVP_DecryptUpdate(ctx, cPlain, &cPlainLen, [cipherData bytes], (int)([cipherData length]));
  601. if (status <= 0)
  602. return NO;
  603. // Tag is the last 16 bytes
  604. status = EVP_CIPHER_CTX_ctrl(ctx, EVP_CTRL_GCM_SET_TAG, (int)sizeof(cTag), cTag);
  605. if (status <= 0)
  606. return NO;
  607. // Finalise the encryption
  608. EVP_DecryptFinal_ex(ctx,NULL, &cPlainLen);
  609. // Free
  610. EVP_CIPHER_CTX_free(ctx);
  611. return status; // OpenSSL uses 1 for success
  612. }
  613. #
  614. #pragma mark - Utility
  615. #
  616. - (NSString *)createSHA512:(NSString *)string
  617. {
  618. const char *cstr = [string cStringUsingEncoding:NSUTF8StringEncoding];
  619. NSData *data = [NSData dataWithBytes:cstr length:string.length];
  620. uint8_t digest[CC_SHA512_DIGEST_LENGTH];
  621. CC_SHA512(data.bytes, (unsigned int)data.length, digest);
  622. NSMutableString* output = [NSMutableString stringWithCapacity:CC_SHA512_DIGEST_LENGTH * 2];
  623. for(int i = 0; i < CC_SHA512_DIGEST_LENGTH; i++)
  624. [output appendFormat:@"%02x", digest[i]];
  625. return output;
  626. }
  627. - (NSData *)generateIV:(int)length
  628. {
  629. NSMutableData *ivData = [NSMutableData dataWithLength:length];
  630. (void)SecRandomCopyBytes(kSecRandomDefault, length, ivData.mutableBytes);
  631. return ivData;
  632. }
  633. - (NSData *)generateSalt:(int)length
  634. {
  635. NSMutableData *saltData = [NSMutableData dataWithLength:length];
  636. (void)SecRandomCopyBytes(kSecRandomDefault, length, saltData.mutableBytes);
  637. return saltData;
  638. }
  639. - (NSData *)generateKey:(int)length
  640. {
  641. NSMutableData *keyData = [NSMutableData dataWithLength:length];
  642. unsigned char *pKeyData = [keyData mutableBytes];
  643. RAND_bytes(pKeyData, length);
  644. return keyData;
  645. }
  646. - (NSString *)getMD5:(NSString *)input
  647. {
  648. // Create pointer to the string as UTF8
  649. const char *ptr = [input cStringUsingEncoding:NSUTF8StringEncoding];
  650. // Create byte array of unsigned chars
  651. unsigned char md5Buffer[CC_MD5_DIGEST_LENGTH];
  652. // Create 16 byte MD5 hash value, store in buffer
  653. CC_MD5(ptr, (unsigned int)strlen(ptr), md5Buffer);
  654. // Convert MD5 value in the buffer to NSString of hex values
  655. NSMutableString *output = [NSMutableString stringWithCapacity:CC_MD5_DIGEST_LENGTH * 2];
  656. for(int i = 0; i < CC_MD5_DIGEST_LENGTH; i++)
  657. [output appendFormat:@"%02x",md5Buffer[i]];
  658. return output;
  659. }
  660. - (NSString *)getSHA1:(NSString *)input
  661. {
  662. const char *cstr = [input cStringUsingEncoding:NSUTF8StringEncoding];
  663. NSData *data = [NSData dataWithBytes:cstr length:input.length];
  664. uint8_t digest[CC_SHA1_DIGEST_LENGTH];
  665. CC_SHA1(data.bytes, (unsigned int)data.length, digest);
  666. NSMutableString* output = [NSMutableString stringWithCapacity:CC_SHA1_DIGEST_LENGTH * 2];
  667. for(int i = 0; i < CC_SHA1_DIGEST_LENGTH; i++)
  668. [output appendFormat:@"%02x", digest[i]];
  669. return output;
  670. }
  671. - (NSData *)hashValueMD5OfData:(NSData *)data
  672. {
  673. MD5_CTX md5Ctx;
  674. unsigned char hashValue[MD5_DIGEST_LENGTH];
  675. if(!MD5_Init(&md5Ctx)) {
  676. return nil;
  677. }
  678. if (!MD5_Update(&md5Ctx, data.bytes, data.length)) {
  679. return nil;
  680. }
  681. if (!MD5_Final(hashValue, &md5Ctx)) {
  682. return nil;
  683. }
  684. return [NSData dataWithBytes:hashValue length:MD5_DIGEST_LENGTH];
  685. }
  686. - (NSString *)hexadecimalString:(NSData *)input
  687. {
  688. const unsigned char *dataBuffer = (const unsigned char *) [input bytes];
  689. if (!dataBuffer) {
  690. return [NSString string];
  691. }
  692. NSUInteger dataLength = [input length];
  693. NSMutableString *hexString = [NSMutableString stringWithCapacity:(dataLength * 2)];
  694. for (int i = 0; i < dataLength; ++i) {
  695. [hexString appendString:[NSString stringWithFormat:@"%02lx", (unsigned long) dataBuffer[i]]];
  696. }
  697. return [NSString stringWithString:hexString];
  698. }
  699. /*
  700. - (NSData *)base64Encode:(NSData *)input
  701. {
  702. void *bytes;
  703. BIO *buffer = BIO_new(BIO_s_mem());
  704. BIO *base64 = BIO_new(BIO_f_base64());
  705. buffer = BIO_push(base64, buffer);
  706. BIO_write(buffer, [input bytes], (int)[input length]);
  707. NSUInteger length = BIO_get_mem_data(buffer, &bytes);
  708. NSString *string = [[NSString alloc] initWithBytes:bytes length:length encoding:NSUTF8StringEncoding];
  709. BIO_free_all(buffer);
  710. return [string dataUsingEncoding:NSUTF8StringEncoding];
  711. }
  712. */
  713. - (NSString *)base64DecodeData:(NSData *)input
  714. {
  715. NSMutableData *data = [NSMutableData data];
  716. BIO *buffer = BIO_new_mem_buf((void *)[input bytes], (int)[input length]);
  717. BIO *base64 = BIO_new(BIO_f_base64());
  718. buffer = BIO_push(base64, buffer);
  719. BIO_set_flags(base64, BIO_FLAGS_BASE64_NO_NL);
  720. char chars[input.length];
  721. int length = BIO_read(buffer, chars, (int)sizeof(chars));
  722. while (length > 0) {
  723. [data appendBytes:chars length:length];
  724. length = BIO_read(buffer, chars, (int)sizeof(chars));
  725. }
  726. BIO_free_all(buffer);
  727. return [[NSString alloc] initWithData:data encoding:NSUTF8StringEncoding];
  728. }
  729. - (NSData *)base64DecodeString:(NSString *)input
  730. {
  731. NSMutableData *data = [NSMutableData data];
  732. NSData *inputData = [input dataUsingEncoding:NSUTF8StringEncoding];
  733. BIO *buffer = BIO_new_mem_buf((void *)[inputData bytes], (int)[inputData length]);
  734. BIO *base64 = BIO_new(BIO_f_base64());
  735. buffer = BIO_push(base64, buffer);
  736. BIO_set_flags(base64, BIO_FLAGS_BASE64_NO_NL);
  737. char chars[input.length];
  738. int length = BIO_read(buffer, chars, (int)sizeof(chars));
  739. while (length > 0) {
  740. [data appendBytes:chars length:length];
  741. length = BIO_read(buffer, chars, (int)sizeof(chars));
  742. }
  743. BIO_free_all(buffer);
  744. return data;
  745. }
  746. - (NSString *)derToPemPrivateKey:(NSString *)input
  747. {
  748. NSInteger substringLength = 65;
  749. NSMutableString *result = [NSMutableString stringWithString: input];
  750. for(long i=substringLength;i<=input.length;i++) {
  751. [result insertString: @"\n" atIndex: i];
  752. i+=substringLength;
  753. }
  754. [result insertString: @"-----BEGIN PRIVATE KEY-----\n" atIndex: 0];
  755. [result appendString:@"\n-----END PRIVATE KEY-----\n"];
  756. return result;
  757. }
  758. @end