luat_lib_gmssl.c 22 KB

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  1. /*
  2. @module gmssl
  3. @summary 国密算法
  4. @version 1.1
  5. @date 2023.03.02
  6. @author chenxudong1208
  7. @demo gmssl
  8. @tag LUAT_USE_GMSSL
  9. */
  10. #include "luat_base.h"
  11. #include "luat_malloc.h"
  12. #include "luat_str.h"
  13. #include <time.h>
  14. #include "luat_zbuff.h"
  15. #include "gmssl/sm2.h"
  16. #include "gmssl/sm3.h"
  17. #include "gmssl/sm4.h"
  18. // #include "mbedtls/hmac_drbg.h"
  19. #define LUAT_LOG_TAG "sm"
  20. #include "luat_log.h"
  21. #define SM3_DIGEST_LENGTH 32
  22. #define SM4_BLOCK_LEN 16
  23. #define SM2_STR_LEN 300
  24. #define HEX_CODE 16
  25. extern void luat_str_fromhex(const char* str, size_t len, char* buff);
  26. static void DeletePaddingBuf(luaL_Buffer *B, const char *pPadding, size_t nBufLen, uint8_t *pBuf, uint8_t pPaddLen)
  27. {
  28. uint8_t nPadLen;
  29. if((strcmp(pPadding, "PKCS5")==0) || (strcmp(pPadding, "PKCS7")==0))
  30. {
  31. nPadLen = *(pBuf+nBufLen-1);
  32. //printf("aes DeletePaddingBuf length=%d\n", nPadLen);
  33. if((pPaddLen-nPadLen) >= 0)
  34. {
  35. luaL_addlstring(B, (char*)pBuf, nBufLen-nPadLen);
  36. }
  37. }
  38. else if(strcmp(pPadding, "ZERO")==0)
  39. {
  40. uint8_t *pEnd = pBuf+nBufLen-1;
  41. nPadLen = 0;
  42. while(1)
  43. {
  44. if(*pEnd == 0)
  45. {
  46. nPadLen++;
  47. if(nPadLen == pPaddLen)
  48. {
  49. break;
  50. }
  51. pEnd--;
  52. }
  53. else
  54. {
  55. break;
  56. }
  57. }
  58. //printf("aes DeletePaddingBuf length=%d\n", nPadLen);
  59. if((pPaddLen-nPadLen) >= 0)
  60. {
  61. luaL_addlstring(B, (char*)pBuf, nBufLen-nPadLen);
  62. }
  63. }
  64. else
  65. {
  66. luaL_addlstring(B, (char*)pBuf, nBufLen);
  67. }
  68. }
  69. /*
  70. sm2算法加密
  71. @api sm.sm2encrypt(pkx,pky,data, mode, mode2)
  72. @string 公钥x,必选. HEX字符串
  73. @string 公钥y,必选. HEX字符串
  74. @string 待计算的数据,必选,最长32字节, 非HEX字符串
  75. @boolean 输出模式,默认false. false-GMSSL默认格式, true-网站兼容模式
  76. @boolean 标准版本,默认false. false-C1C3C2新国际, true-C1C2C3老国际
  77. @return string 加密后的字符串, 原样输出,未经HEX转换. 若加密失败会返回nil或空字符串
  78. @usage
  79. -- 提示 mode/mode2 参数是 2023.10.17 新增
  80. local originStr = "encryption standard"
  81. local pkx = "435B39CCA8F3B508C1488AFC67BE491A0F7BA07E581A0E4849A5CF70628A7E0A"
  82. local pky = "75DDBA78F15FEECB4C7895E2C1CDF5FE01DEBB2CDBADF45399CCF77BBA076A42"
  83. local private = "1649AB77A00637BD5E2EFE283FBF353534AA7F7CB89463F208DDBC2920BB0DA0"
  84. local encodeStr = gmssl.sm2encrypt(pkx,pky,originStr)
  85. print(originStr,"encrypt",string.toHex(encodeStr))
  86. log.info("testsm.sm2decrypt",gmssl.sm2decrypt(private,encodeStr))
  87. */
  88. static int l_sm2_encrypt(lua_State *L)
  89. {
  90. // size_t randLen = 0;
  91. size_t pkxLen = 0;
  92. size_t pkyLen = 0;
  93. size_t pBufLen = 0;
  94. const char *pkx = lua_tolstring(L, 1,&pkxLen);
  95. const char *pky = lua_tolstring(L, 2,&pkyLen);
  96. const char *pBuf = lua_tolstring(L, 3,&pBufLen);
  97. int ret = 0;
  98. //检查参数合法性
  99. if((pkxLen!=64))
  100. {
  101. LLOGE("invalid pkx password length=%d", pkxLen);
  102. return 0;
  103. }
  104. if((pkyLen!=64))
  105. {
  106. LLOGE("invalid pky password length=%d", pkyLen);
  107. return 0;
  108. }
  109. if (pBufLen > SM2_MAX_PLAINTEXT_SIZE) {
  110. LLOGD("data too large max %d but %d", SM2_MAX_PLAINTEXT_SIZE, pBufLen);
  111. return 0;
  112. }
  113. int mode = 0;
  114. if (lua_isboolean(L, 4)) {
  115. mode = lua_toboolean(L, 4);
  116. }
  117. int mode2 = 0;
  118. if (lua_isboolean(L, 5)) {
  119. mode2 = lua_toboolean(L, 5);
  120. }
  121. SM2_KEY sm2 = {0};
  122. SM2_POINT point = {0};
  123. luat_str_fromhex(pkx, 64, (char*)point.x);
  124. luat_str_fromhex(pky, 64, (char*)point.y);
  125. ret = sm2_key_set_public_key(&sm2, (const SM2_POINT*)&point);
  126. if (ret != 1) {
  127. LLOGD("sm2_key_set_public_key %d", ret);
  128. return 0;
  129. }
  130. uint8_t out[SM2_MAX_CIPHERTEXT_SIZE] = {0};
  131. size_t olen = 0;
  132. if (mode == 1) {
  133. SM2_CIPHERTEXT C = {0};
  134. ret = sm2_do_encrypt(&sm2, (const uint8_t *)pBuf, pBufLen, &C);
  135. if (ret == 1) {
  136. if (mode2 == 0) {
  137. memcpy(out, &C.point.x, 32);
  138. memcpy(out + 32, &C.point.y, 32);
  139. memcpy(out + 64, C.hash, 32);
  140. memcpy(out + 96, C.ciphertext, C.ciphertext_size);
  141. olen = 96 + C.ciphertext_size;
  142. }
  143. else {
  144. out[0] = 0x04;
  145. memcpy(out + 1, &C.point.x, 32);
  146. memcpy(out + 32 + 1, &C.point.y, 32);
  147. memcpy(out + 64 + 1, C.ciphertext, C.ciphertext_size);
  148. memcpy(out + 64 + C.ciphertext_size + 1, C.hash, 32);
  149. olen = 96 + C.ciphertext_size + 1;
  150. }
  151. }
  152. }
  153. else {
  154. ret = sm2_encrypt(&sm2, (const uint8_t *)pBuf, pBufLen, out, &olen);
  155. }
  156. if (ret != 1) {
  157. LLOGD("sm2_encrypt ret %d", ret);
  158. return 0;
  159. }
  160. lua_pushlstring(L, (char*)out, olen);
  161. return 1;
  162. }
  163. /*
  164. sm2算法解密
  165. @api sm.sm2decrypt(private,data,mode,mode2)
  166. @string 私钥,必选,HEX字符串
  167. @string 待计算的数据,必选,原始数据,非HEX字符串
  168. @boolean 输出模式,默认false. false-GMSSL默认格式, true-网站兼容模式
  169. @boolean 标准版本,默认false. false-C1C3C2新国际, true-C1C2C3老国际
  170. @return string 解密后的字符串,未经HEX转换.若解密失败会返回nil或空字符串
  171. @usage
  172. -- 提示 mode/mode2 参数是 2023.10.17 新增
  173. local originStr = "encryption standard"
  174. local pkx = "435B39CCA8F3B508C1488AFC67BE491A0F7BA07E581A0E4849A5CF70628A7E0A"
  175. local pky = "75DDBA78F15FEECB4C7895E2C1CDF5FE01DEBB2CDBADF45399CCF77BBA076A42"
  176. local private = "1649AB77A00637BD5E2EFE283FBF353534AA7F7CB89463F208DDBC2920BB0DA0"
  177. local encodeStr = gmssl.sm2encrypt(pkx,pky,originStr)
  178. print(originStr,"encrypt",string.toHex(encodeStr))
  179. log.info("testsm.sm2decrypt",gmssl.sm2decrypt(private,encodeStr))
  180. */
  181. static int l_sm2_decrypt(lua_State *L)
  182. {
  183. size_t privateLen = 0;
  184. size_t pBufLen = 0;
  185. const char *private = lua_tolstring(L, 1,&privateLen);
  186. const char *pBuf = lua_tolstring(L, 2,&pBufLen);
  187. int ret = 0;
  188. int mode = 0;
  189. if (lua_isboolean(L, 3)) {
  190. mode = lua_toboolean(L, 3);
  191. }
  192. int mode2 = 0;
  193. if (lua_isboolean(L, 4)) {
  194. mode2 = lua_toboolean(L, 4);
  195. }
  196. //检查参数合法性
  197. if((privateLen!=64))
  198. {
  199. LLOGE("invalid private password length=%d", privateLen);
  200. return 0;
  201. }
  202. if (pBufLen < 97) {
  203. LLOGE("待数据太短,应该要97字节以上");
  204. return 0;
  205. }
  206. SM2_KEY sm2 = {0};
  207. char out[512] = {0};
  208. size_t olen = 0;
  209. luat_str_fromhex(private, 64, (char*)sm2.private_key);
  210. if (mode) {
  211. // LLOGD("网站兼容模式");
  212. SM2_CIPHERTEXT C = {0};
  213. if (mode2 == 0) {
  214. // LLOGD("C1C3C2");
  215. C.ciphertext_size = (uint8_t)(pBufLen - 96);
  216. // LLOGD("pBufLen %d ciphertext_size %d", pBufLen, C.ciphertext_size);
  217. memcpy(&C.point.x, pBuf, 32);
  218. memcpy(&C.point.y, pBuf + 32, 32);
  219. memcpy(C.hash, pBuf + 64, 32);
  220. memcpy(C.ciphertext, pBuf + 96, C.ciphertext_size);
  221. }
  222. else {
  223. // LLOGD("C1C2C3");
  224. pBuf ++;
  225. pBufLen --;
  226. C.ciphertext_size = (uint8_t)(pBufLen - 96);
  227. // LLOGD("pBufLen %d ciphertext_size %d", pBufLen, C.ciphertext_size);
  228. memcpy(&C.point.x, pBuf, 32);
  229. memcpy(&C.point.y, pBuf + 32, 32);
  230. memcpy(C.ciphertext, pBuf + 64, C.ciphertext_size);
  231. memcpy(C.hash, pBuf + 64 + C.ciphertext_size, 32);
  232. }
  233. ret = sm2_do_decrypt(&sm2, &C, (uint8_t *)out, &olen);
  234. }
  235. else {
  236. // LLOGD("GMSSL默认模式");
  237. ret = sm2_decrypt(&sm2, (uint8_t*)pBuf, pBufLen, (uint8_t*)out, &olen);
  238. }
  239. if (ret != 1) {
  240. LLOGD("sm2_decrypt ret %d", ret);
  241. return 0;
  242. }
  243. lua_pushlstring(L, (char*)out, olen);
  244. return 1;
  245. }
  246. /*
  247. sm3算法,算HASH值
  248. @api sm.sm3(data)
  249. @string 待计算的数据,必选
  250. @return string 对应的hash值
  251. @usage
  252. local encodeStr = gmssl.sm3("lqlq666lqlq946")
  253. log.info("testsm.sm3update",string.toHex(encodeStr))
  254. */
  255. static int l_sm3_update(lua_State *L)
  256. {
  257. size_t inputLen = 0;
  258. uint8_t dgst[SM3_DIGEST_LENGTH];
  259. const char *inputData = lua_tolstring(L,1,&inputLen);
  260. sm3_digest((uint8_t*)inputData, inputLen, dgst);
  261. lua_pushlstring(L, (char*)dgst, SM3_DIGEST_LENGTH);
  262. return 1;
  263. }
  264. /*
  265. sm3算法,算HASH值,但带HMAC
  266. @api sm.sm3hmac(data, key)
  267. @string 待计算的数据,必选
  268. @string 密钥
  269. @return string 对应的hash值
  270. @usage
  271. local encodeStr = gmssl.sm3hmac("lqlq666lqlq946", "123")
  272. log.info("testsm.sm3update",string.toHex(encodeStr))
  273. */
  274. static int l_sm3hmac_update(lua_State *L)
  275. {
  276. size_t inputLen = 0;
  277. size_t keyLen = 0;
  278. uint8_t dgst[SM3_DIGEST_LENGTH];
  279. const char *inputData = lua_tolstring(L, 1, &inputLen);
  280. const char *keyData = lua_tolstring(L, 2, &keyLen);
  281. sm3_hmac((uint8_t*)keyData, keyLen, (uint8_t*)inputData, inputLen, dgst);
  282. lua_pushlstring(L, (char*)dgst, SM3_DIGEST_LENGTH);
  283. return 1;
  284. }
  285. /*
  286. SM4加密算法
  287. @api gmssl.sm4encrypt(mode,padding,originStr,password)
  288. @string 加密模式, CBC或ECB
  289. @string 填充方式, NONE/ZERO/PKCS5/PKCS7
  290. @string 加密的字符串
  291. @string 密钥
  292. @return string 加密后的数据
  293. @usage
  294. local originStr = "SM4 ECB ZeroPadding test"
  295. --加密模式:ECB;填充方式:ZeroPadding;密钥:1234567890123456;密钥长度:128 bit
  296. local encodeStr = gmssl.sm4encrypt("ECB","ZERO",originStr,"1234567890123456")
  297. print(originStr,"encrypt",string.toHex(encodeStr))
  298. log.info("testsm.decrypt",gmssl.sm4decrypt("ECB","ZERO",encodeStr,"1234567890123456"))
  299. originStr = "SM4 ECB Pkcs5Padding test"
  300. --加密模式:ECB;填充方式:Pkcs5Padding;密钥:1234567890123456;密钥长度:128 bit
  301. encodeStr = gmssl.sm4encrypt("ECB","PKCS5",originStr,"1234567890123456")
  302. print(originStr,"encrypt",string.toHex(encodeStr))
  303. log.info("testsm.decrypt",gmssl.sm4decrypt("ECB","PKCS5",encodeStr,"1234567890123456"))
  304. originStr = "SM4 CBC Pkcs5Padding test"
  305. --加密模式:CBC;填充方式:Pkcs5Padding;密钥:1234567890123456;密钥长度:256 bit;偏移量:1234567890666666
  306. encodeStr = gmssl.sm4encrypt("CBC","PKCS5",originStr,"1234567890123456","1234567890666666")
  307. print(originStr,"encrypt",string.toHex(encodeStr))
  308. log.info("testsm.decrypt",gmssl.sm4decrypt("CBC","PKCS5",encodeStr,"1234567890123456","1234567890666666"))
  309. */
  310. static int l_sm4_encrypt(lua_State *L)
  311. {
  312. const char *pMode = luaL_checkstring(L, 1);
  313. const char *pPadding = luaL_checkstring(L, 2);
  314. size_t nBufLen = 0;
  315. const char *pBuf = lua_tolstring(L, 3, &nBufLen);
  316. size_t nPswdLen = 0;
  317. const char *pPassword = lua_tolstring(L, 4, &nPswdLen);
  318. size_t nIVLen = 0;
  319. const char *pIV = lua_tolstring(L, 5, &nIVLen);
  320. int nPadLen = SM4_BLOCK_LEN-(nBufLen%SM4_BLOCK_LEN);
  321. uint8_t pPadBuf[SM4_BLOCK_LEN] = {0};
  322. uint8_t *pInBuf = NULL;
  323. //检查参数合法性
  324. if((nPswdLen!=16))
  325. {
  326. return luaL_error(L, "invalid password length=%d, only support 128bit Password", nPswdLen);
  327. }
  328. if((strcmp(pMode, "ECB")!=0) && (strcmp(pMode, "CBC")!=0))
  329. {
  330. return luaL_error(L, "invalid mode=%s, only support ECB,CBC", pMode);
  331. }
  332. if((strcmp(pPadding, "NONE")!=0) && (strcmp(pPadding, "PKCS5")!=0) && (strcmp(pPadding, "PKCS7")!=0) && (strcmp((char*)pPadding, "ZERO")!=0))
  333. {
  334. return luaL_error(L, "invalid padding=%s, only support NONE,PKCS5,PKCS7,ZERO", pPadding);
  335. }
  336. if(((strcmp(pMode, "CBC")==0)) && (nIVLen!=16))
  337. {
  338. return luaL_error(L, "invalid iv length=%d, only support 128bit IV", nIVLen);
  339. }
  340. //构造填充数据
  341. if((strcmp(pPadding, "PKCS5")==0) || (strcmp(pPadding, "PKCS7")==0))
  342. {
  343. memset(pPadBuf, nPadLen, sizeof(pPadBuf));
  344. }
  345. else if(strcmp(pPadding, "ZERO")==0)
  346. {
  347. memset(pPadBuf, 0, sizeof(pPadBuf));
  348. }
  349. else if(strcmp(pPadding, "NONE")==0)
  350. {
  351. if((strcmp(pMode, "CBC")==0) || (strcmp(pMode, "ECB")==0)){
  352. if(nBufLen%SM4_BLOCK_LEN != 0)
  353. {
  354. return luaL_error(L, "buf len should be multiple of 16, len=%d", nBufLen);
  355. }
  356. }
  357. nPadLen = 0;
  358. }
  359. //加密
  360. {
  361. luaL_Buffer b;
  362. uint32_t nRmnLen;
  363. luaL_buffinit( L, &b );
  364. //原始数据和填充数据拼接在一起
  365. if (strcmp((char*)pPadding, "NONE")!=0)
  366. {
  367. pInBuf = luat_heap_malloc(nBufLen+nPadLen);
  368. if(pInBuf == NULL)
  369. {
  370. //LLOGD("aes_encrypt malloc error!!!\n");
  371. luaL_pushresult( &b );
  372. return 1;
  373. }
  374. memcpy(pInBuf, pBuf, nBufLen);
  375. memcpy(pInBuf+nBufLen, pPadBuf, nPadLen);
  376. nBufLen += nPadLen;
  377. nRmnLen = nBufLen;
  378. }
  379. else
  380. {
  381. pInBuf = luat_heap_malloc(nBufLen);
  382. nRmnLen = nBufLen;
  383. if(pInBuf == NULL)
  384. {
  385. //LLOGD("aes_encrypt malloc error!!!\n");
  386. luaL_pushresult( &b );
  387. return 1;
  388. }
  389. memcpy(pInBuf, pBuf, nBufLen);
  390. }
  391. SM4_KEY sm4_key;
  392. memset(&sm4_key,0,sizeof(SM4_KEY));
  393. sm4_set_encrypt_key(&sm4_key, (uint8_t*)pPassword);
  394. if(strcmp(pMode, "ECB") == 0)
  395. {
  396. //开始分组加密,每16字节一组
  397. char out[SM4_BLOCK_LEN];
  398. while(nRmnLen>0)
  399. {
  400. sm4_encrypt(&sm4_key, (uint8_t*)(pInBuf+nBufLen-nRmnLen), (uint8_t*)out);
  401. luaL_addlstring(&b, out, SM4_BLOCK_LEN);
  402. nRmnLen -= SM4_BLOCK_LEN;
  403. }
  404. }
  405. else if((strcmp(pMode, "CBC") == 0))
  406. {
  407. //待加密数据一次性传入
  408. // sm4_cbc_encrypt(pInBuf,pInBuf,nBufLen,&sm4_key,pIV,1);
  409. char *out = luat_heap_malloc(nBufLen);
  410. sm4_cbc_encrypt(&sm4_key, (uint8_t*)pIV, pInBuf, nBufLen / SM4_BLOCK_LEN, (uint8_t*)out);
  411. luaL_addlstring(&b, out, nBufLen);
  412. luat_heap_free(out);
  413. }
  414. if(pInBuf != NULL)
  415. {
  416. luat_heap_free(pInBuf);
  417. pInBuf = NULL;
  418. }
  419. luaL_pushresult( &b );
  420. return 1;
  421. }
  422. }
  423. /*
  424. SM4解密算法
  425. @api gmssl.sm4decrypt(mode,padding,encodeStr,password)
  426. @string 加密模式, CBC或ECB
  427. @string 填充方式, NONE/ZERO/PKCS5/PKCS7
  428. @string 已加密的字符串
  429. @string 密钥
  430. @return string 解密的字符串
  431. @usage
  432. -- 参考gmssl.sm4encrypt
  433. */
  434. static int l_sm4_decrypt(lua_State *L)
  435. {
  436. const char *pMode = luaL_checkstring(L, 1);
  437. const char *pPadding = luaL_checkstring(L, 2);
  438. size_t nBufLen = 0;
  439. const char *pBuf = lua_tolstring(L, 3, &nBufLen);
  440. size_t nPswdLen = 0;
  441. const char *pPassword = lua_tolstring(L, 4, &nPswdLen);
  442. size_t nIVLen = 0;
  443. const char *pIV = lua_tolstring(L, 5, &nIVLen);
  444. char out[SM4_BLOCK_LEN];
  445. //检查参数合法性
  446. int isCBC = strcmp((char*)pMode, "CBC") == 0;
  447. int isECB = strcmp((char*)pMode, "ECB") == 0;
  448. if(isCBC || isECB){
  449. if((nBufLen % 16) != 0){
  450. return luaL_error(L, "invalid BufLen length=%d, BufLen must be Integer multiples of 16", nBufLen);
  451. }
  452. }
  453. if((nPswdLen!=16))
  454. {
  455. return luaL_error(L, "invalid password length=%d, only support 128, 192, 256 bits", nPswdLen);
  456. }
  457. if(!isCBC && !isECB)
  458. {
  459. return luaL_error(L, "invalid mode=%s, only support ECB,CBC,CTR", pMode);
  460. }
  461. if((strcmp(pPadding, "NONE")!=0) && (strcmp(pPadding, "PKCS5")!=0) && (strcmp(pPadding, "PKCS7")!=0) && (strcmp((char*)pPadding, "ZERO")!=0))
  462. {
  463. return luaL_error(L, "invalid padding=%s, only support NONE,PKCS5,PKCS7,ZERO", pPadding);
  464. }
  465. if(isCBC && (nIVLen!=16))
  466. {
  467. return luaL_error(L, "invalid iv length=%d, only support 16", nIVLen);
  468. }
  469. //解密
  470. {
  471. luaL_Buffer b;
  472. uint32_t nRmnLen;
  473. luaL_buffinit( L, &b );
  474. nRmnLen = nBufLen;
  475. SM4_KEY sm4_key;
  476. memset(&sm4_key,0,sizeof(SM4_KEY));
  477. sm4_set_decrypt_key(&sm4_key,(uint8_t*)pPassword);
  478. if(isECB)
  479. {
  480. //开始分组解密,每16字节一组
  481. while(nRmnLen>0)
  482. {
  483. sm4_decrypt(&sm4_key,(uint8_t*)(pBuf+nBufLen-nRmnLen), (uint8_t*)out);
  484. //删除填充数据
  485. if(nRmnLen==SM4_BLOCK_LEN)
  486. {
  487. DeletePaddingBuf(&b, pPadding, SM4_BLOCK_LEN, (uint8_t*)out, SM4_BLOCK_LEN);
  488. }
  489. else
  490. {
  491. luaL_addlstring(&b, out, SM4_BLOCK_LEN);
  492. }
  493. nRmnLen -= SM4_BLOCK_LEN;
  494. }
  495. }
  496. else if (isCBC)
  497. {
  498. //待解密数据一次性传入
  499. if (nBufLen <= 1024) {
  500. char out[1024];
  501. sm4_cbc_decrypt(&sm4_key, (uint8_t*)pIV, (uint8_t*)pBuf, nBufLen/SM4_BLOCK_LEN, (uint8_t*)out);
  502. DeletePaddingBuf(&b, pPadding, nBufLen, (uint8_t*)out, SM4_BLOCK_LEN);
  503. }
  504. else {
  505. char *out = luat_heap_malloc(nBufLen);
  506. if (out == NULL) {
  507. LLOGE("out of memory when malloc SM4 decrypt buff");
  508. return 0;
  509. }
  510. sm4_cbc_decrypt(&sm4_key, (uint8_t*)pIV, (uint8_t*)pBuf, nBufLen/SM4_BLOCK_LEN, (uint8_t*)out);
  511. DeletePaddingBuf(&b, pPadding, nBufLen, (uint8_t*)out, SM4_BLOCK_LEN);
  512. luat_heap_free(out);
  513. }
  514. }
  515. luaL_pushresult( &b );
  516. return 1;
  517. }
  518. }
  519. /*
  520. sm2算法签名
  521. @api sm.sm2sign(private,data,id)
  522. @string 私钥,必选,HEX字符串
  523. @string 待计算的数据,必选,原始数据,非HEX字符串
  524. @string id值,非HEX字符串,可选,不填就是nil
  525. @return string 前面字符串,未经HEX转换.若签名失败会返回nil
  526. @usage
  527. -- 本API于 2023.10.19 新增
  528. -- 具体用法请查阅demo
  529. */
  530. static int l_sm2_sign(lua_State *L)
  531. {
  532. int ret = 0;
  533. size_t pkLen = 0;
  534. size_t pBufLen = 0;
  535. size_t idLen = 0;
  536. uint8_t sig[SM2_MAX_SIGNATURE_SIZE];
  537. size_t siglen = 0;
  538. const char *pk = luaL_checklstring(L, 1, &pkLen);
  539. const char *pBuf = luaL_checklstring(L, 2 ,&pBufLen);
  540. const char *id = luaL_optlstring(L, 3, "", &idLen);
  541. SM2_SIGN_CTX ctx = {0};
  542. SM2_KEY key = {0};
  543. uint8_t pkey[32] = {0};
  544. if (pkLen != 64) {
  545. LLOGW("private key len must be 64 byte HEX string");
  546. return 0;
  547. }
  548. if (pBufLen < 1) {
  549. LLOGW("待签名数据不能为空字符串");
  550. return 0;
  551. }
  552. luat_str_fromhex(pk, 64, (char*)pkey);
  553. sm2_key_set_private_key(&key, (const uint8_t*)pkey);
  554. ret = sm2_sign_init(&ctx, &key, idLen > 0 ? id : NULL, idLen);
  555. if (ret != 1) {
  556. LLOGW("sm2_sign_init %d", ret);
  557. return 0;
  558. }
  559. ret = sm2_sign_update(&ctx, (const uint8_t*)pBuf, pBufLen);
  560. if (ret != 1) {
  561. LLOGW("sm2_sign_update %d", ret);
  562. return 0;
  563. }
  564. ret = sm2_sign_finish(&ctx, (uint8_t*)sig, &siglen);
  565. if (ret != 1) {
  566. LLOGW("sm2_sign_finish %d", ret);
  567. return 0;
  568. }
  569. if (ret == 1) {
  570. lua_pushlstring(L, (const char*)sig, siglen);
  571. return 1;
  572. }
  573. return 0;
  574. }
  575. /*
  576. sm2算法验签
  577. @api sm.sm2verify(pkx, pky, data, id, sig)
  578. @string 公钥X,必选,HEX字符串
  579. @string 公钥Y,必选,HEX字符串
  580. @string 待计算的数据,必选,原始数据,非HEX字符串
  581. @string id值,非HEX字符串,可选,不填就是nil
  582. @string 签名数据,通常是72字节,非HEX字符串
  583. @return boolean 验证成功返回true,否则返回nil
  584. @usage
  585. -- 本API于 2023.10.19 新增
  586. -- 具体用法请查阅demo
  587. */
  588. static int l_sm2_verify(lua_State *L)
  589. {
  590. int ret = 0;
  591. size_t pkxLen = 0;
  592. size_t pkyLen = 0;
  593. size_t pBufLen = 0;
  594. size_t idLen = 0;
  595. size_t siglen = 0;
  596. const char *pkx = luaL_checklstring(L, 1, &pkxLen);
  597. const char *pky = luaL_checklstring(L, 2, &pkyLen);
  598. const char *pBuf = luaL_checklstring(L, 3, &pBufLen);
  599. const char *id = luaL_optlstring(L, 4, "", &idLen);
  600. const char *sig = luaL_checklstring(L, 5, &siglen);
  601. if (pkxLen != 64 || pkyLen != 64) {
  602. LLOGW("public key x/y len must be 64 byte HEX string");
  603. return 0;
  604. }
  605. if (pBufLen < 1) {
  606. LLOGW("待签名数据不能为空字符串");
  607. return 0;
  608. }
  609. if (siglen < SM2_signature_compact_size || siglen > SM2_signature_max_size) {
  610. LLOGW("sig数据长度应该在70到72之间,当前传入值的长度不合法");
  611. return 0;
  612. }
  613. SM2_SIGN_CTX ctx = {0};
  614. SM2_KEY key = {0};
  615. luat_str_fromhex(pkx, 64, (char*)key.public_key.x);
  616. luat_str_fromhex(pky, 64, (char*)key.public_key.y);
  617. ret = sm2_verify_init(&ctx, &key, idLen > 0 ? id : NULL, idLen);
  618. if (ret != 1) {
  619. LLOGW("sm2_verify_init %d", ret);
  620. return 0;
  621. }
  622. ret = sm2_verify_update(&ctx, (const uint8_t*)pBuf, pBufLen);
  623. if (ret != 1) {
  624. LLOGW("sm2_verify_update %d", ret);
  625. return 0;
  626. }
  627. ret = sm2_verify_finish(&ctx, (const uint8_t*)sig, siglen);
  628. if (ret != 1) {
  629. LLOGW("sm2_verify_finish %d", ret);
  630. return 0;
  631. }
  632. lua_pushboolean(L, 1);
  633. return 1;
  634. }
  635. #include "rotable2.h"
  636. static const rotable_Reg_t reg_gmssl[] =
  637. {
  638. { "sm2encrypt", ROREG_FUNC(l_sm2_encrypt)},
  639. { "sm2decrypt", ROREG_FUNC(l_sm2_decrypt)},
  640. { "sm3update", ROREG_FUNC(l_sm3_update)},
  641. { "sm3", ROREG_FUNC(l_sm3_update)},
  642. { "sm3hmac", ROREG_FUNC(l_sm3hmac_update)},
  643. { "sm4encrypt", ROREG_FUNC(l_sm4_encrypt)},
  644. { "sm4decrypt", ROREG_FUNC(l_sm4_decrypt)},
  645. { "sm2sign", ROREG_FUNC(l_sm2_sign)},
  646. { "sm2verify", ROREG_FUNC(l_sm2_verify)},
  647. { NULL, ROREG_INT(0) }
  648. };
  649. LUAMOD_API int luaopen_gmssl( lua_State *L ) {
  650. luat_newlib2(L, reg_gmssl);
  651. return 1;
  652. }