selftest.cpp 12 KB

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  1. /*
  2. * ZeroTier One - Global Peer to Peer Ethernet
  3. * Copyright (C) 2012-2013 ZeroTier Networks LLC
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, either version 3 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. *
  18. * --
  19. *
  20. * ZeroTier may be used and distributed under the terms of the GPLv3, which
  21. * are available at: http://www.gnu.org/licenses/gpl-3.0.html
  22. *
  23. * If you would like to embed ZeroTier into a commercial application or
  24. * redistribute it in a modified binary form, please contact ZeroTier Networks
  25. * LLC. Start here: http://www.zerotier.com/
  26. */
  27. #include <stdio.h>
  28. #include <stdlib.h>
  29. #include <string.h>
  30. #include <time.h>
  31. #include <iostream>
  32. #include <string>
  33. #include <vector>
  34. #include "node/Constants.hpp"
  35. #include "node/InetAddress.hpp"
  36. #include "node/EllipticCurveKey.hpp"
  37. #include "node/EllipticCurveKeyPair.hpp"
  38. #include "node/Utils.hpp"
  39. #include "node/Identity.hpp"
  40. #include "node/Packet.hpp"
  41. #include "node/Salsa20.hpp"
  42. #include "node/HMAC.hpp"
  43. #include "node/MAC.hpp"
  44. #include "node/Peer.hpp"
  45. #include "node/Condition.hpp"
  46. #include "node/NodeConfig.hpp"
  47. #include "node/Dictionary.hpp"
  48. #include "node/RateLimiter.hpp"
  49. #include <openssl/rand.h>
  50. #ifdef __WINDOWS__
  51. #include <tchar.h>
  52. #endif
  53. using namespace ZeroTier;
  54. // ---------------------------------------------------------------------------
  55. // Override libcrypto default RAND_ with Utils::getSecureRandom(), which uses
  56. // a system strong random source. This is because OpenSSL libcrypto's default
  57. // RAND_ implementation uses uninitialized memory as one of its entropy
  58. // sources, which plays havoc with all kinds of debuggers and auditing tools.
  59. static void _zeroTier_rand_cleanup() {}
  60. static void _zeroTier_rand_add(const void *buf, int num, double add_entropy) {}
  61. static int _zeroTier_rand_status() { return 1; }
  62. static void _zeroTier_rand_seed(const void *buf, int num) {}
  63. static int _zeroTier_rand_bytes(unsigned char *buf, int num)
  64. {
  65. Utils::getSecureRandom(buf,num);
  66. return 1;
  67. }
  68. static RAND_METHOD _zeroTierRandMethod = {
  69. _zeroTier_rand_seed,
  70. _zeroTier_rand_bytes,
  71. _zeroTier_rand_cleanup,
  72. _zeroTier_rand_add,
  73. _zeroTier_rand_bytes,
  74. _zeroTier_rand_status
  75. };
  76. static void _initLibCrypto()
  77. {
  78. RAND_set_rand_method(&_zeroTierRandMethod);
  79. }
  80. // ---------------------------------------------------------------------------
  81. static unsigned char fuzzbuf[1048576];
  82. static const char *hmacShaTV0Key = "key";
  83. static const char *hmacShaTV0Msg = "The quick brown fox jumps over the lazy dog";
  84. static const unsigned char hmacShaTV0Mac[32] = { 0xf7,0xbc,0x83,0xf4,0x30,0x53,0x84,0x24,0xb1,0x32,0x98,0xe6,0xaa,0x6f,0xb1,0x43,0xef,0x4d,0x59,0xa1,0x49,0x46,0x17,0x59,0x97,0x47,0x9d,0xbc,0x2d,0x1a,0x3c,0xd8 };
  85. static const unsigned char s20TV0Key[32] = { 0x0f,0x62,0xb5,0x08,0x5b,0xae,0x01,0x54,0xa7,0xfa,0x4d,0xa0,0xf3,0x46,0x99,0xec,0x3f,0x92,0xe5,0x38,0x8b,0xde,0x31,0x84,0xd7,0x2a,0x7d,0xd0,0x23,0x76,0xc9,0x1c };
  86. static const unsigned char s20TV0Iv[8] = { 0x28,0x8f,0xf6,0x5d,0xc4,0x2b,0x92,0xf9 };
  87. static const unsigned char s20TV0Ks[64] = { 0x5e,0x5e,0x71,0xf9,0x01,0x99,0x34,0x03,0x04,0xab,0xb2,0x2a,0x37,0xb6,0x62,0x5b,0xf8,0x83,0xfb,0x89,0xce,0x3b,0x21,0xf5,0x4a,0x10,0xb8,0x10,0x66,0xef,0x87,0xda,0x30,0xb7,0x76,0x99,0xaa,0x73,0x79,0xda,0x59,0x5c,0x77,0xdd,0x59,0x54,0x2d,0xa2,0x08,0xe5,0x95,0x4f,0x89,0xe4,0x0e,0xb7,0xaa,0x80,0xa8,0x4a,0x61,0x76,0x66,0x3f };
  88. static int testCrypto()
  89. {
  90. unsigned char buf1[16384];
  91. unsigned char buf2[sizeof(buf1)],buf3[sizeof(buf1)];
  92. //Utils::getSecureRandom(buf1,1024);
  93. //std::cout << "[crypto] getSecureRandom() -> " << Utils::hex(buf1,1024) << std::endl;
  94. std::cout << "[crypto] Testing ECDSA... "; std::cout.flush();
  95. for(unsigned int k=0;k<64;++k) {
  96. EllipticCurveKeyPair kp;
  97. kp.generate();
  98. for(int i=0;i<32;++i)
  99. buf1[i] = (unsigned char)rand();
  100. std::string sig = kp.sign(buf1);
  101. if (!EllipticCurveKeyPair::verify(buf1,kp.pub(),sig.data(),sig.length())) {
  102. std::cout << "FAIL" << std::endl;
  103. return -1;
  104. }
  105. }
  106. std::cout << "PASS" << std::endl;
  107. std::cout << "[crypto] Testing HMAC-SHA256... "; std::cout.flush();
  108. memset(buf1,0,sizeof(buf1));
  109. HMAC::sha256(hmacShaTV0Key,strlen(hmacShaTV0Key),hmacShaTV0Msg,strlen(hmacShaTV0Msg),buf1);
  110. if (memcmp(buf1,hmacShaTV0Mac,32)) {
  111. std::cout << "FAIL (test vector 0) (" << Utils::hex(buf1,32) << ")" << std::endl;
  112. return -1;
  113. }
  114. std::cout << "PASS" << std::endl;
  115. std::cout << "[crypto] Testing Salsa20... "; std::cout.flush();
  116. for(unsigned int i=0;i<4;++i) {
  117. for(unsigned int k=0;k<sizeof(buf1);++k)
  118. buf1[k] = (unsigned char)rand();
  119. memset(buf2,0,sizeof(buf2));
  120. memset(buf3,0,sizeof(buf3));
  121. Salsa20 s20;
  122. s20.init("12345678123456781234567812345678",256,"12345678");
  123. s20.encrypt(buf1,buf2,sizeof(buf1));
  124. s20.init("12345678123456781234567812345678",256,"12345678");
  125. s20.decrypt(buf2,buf3,sizeof(buf2));
  126. if (memcmp(buf1,buf3,sizeof(buf1))) {
  127. std::cout << "FAIL (encrypt/decrypt test)" << std::endl;
  128. return -1;
  129. }
  130. }
  131. Salsa20 s20(s20TV0Key,256,s20TV0Iv);
  132. memset(buf1,0,sizeof(buf1));
  133. memset(buf2,0,sizeof(buf2));
  134. s20.encrypt(buf1,buf2,64);
  135. if (memcmp(buf2,s20TV0Ks,64)) {
  136. std::cout << "FAIL (test vector 0)" << std::endl;
  137. return -1;
  138. }
  139. std::cout << "PASS" << std::endl;
  140. return 0;
  141. }
  142. static int testIdentity()
  143. {
  144. Identity id;
  145. Buffer<512> buf;
  146. std::cout << "[identity] Generate identity... "; std::cout.flush();
  147. uint64_t genstart = Utils::now();
  148. id.generate();
  149. uint64_t genend = Utils::now();
  150. std::cout << "(took " << (genend - genstart) << "ms): " << id.toString(true) << std::endl;
  151. std::cout << "[identity] Locally validate identity: ";
  152. if (id.locallyValidate(false)) {
  153. std::cout << "PASS" << std::endl;
  154. } else {
  155. std::cout << "FAIL" << std::endl;
  156. return -1;
  157. }
  158. {
  159. Identity id2;
  160. buf.clear();
  161. id.serialize(buf,true);
  162. id2.deserialize(buf);
  163. std::cout << "[identity] Serialize and deserialize (w/private): ";
  164. if ((id == id2)&&(id2.locallyValidate(false))) {
  165. std::cout << "PASS" << std::endl;
  166. } else {
  167. std::cout << "FAIL" << std::endl;
  168. return -1;
  169. }
  170. }
  171. {
  172. Identity id2;
  173. buf.clear();
  174. id.serialize(buf,false);
  175. id2.deserialize(buf);
  176. std::cout << "[identity] Serialize and deserialize (no private): ";
  177. if ((id == id2)&&(id2.locallyValidate(false))) {
  178. std::cout << "PASS" << std::endl;
  179. } else {
  180. std::cout << "FAIL" << std::endl;
  181. return -1;
  182. }
  183. }
  184. {
  185. Identity id2;
  186. id2.fromString(id.toString(true).c_str());
  187. std::cout << "[identity] Serialize and deserialize (ASCII w/private): ";
  188. if ((id == id2)&&(id2.locallyValidate(false))) {
  189. std::cout << "PASS" << std::endl;
  190. } else {
  191. std::cout << "FAIL" << std::endl;
  192. return -1;
  193. }
  194. }
  195. {
  196. Identity id2;
  197. id2.fromString(id.toString(false).c_str());
  198. std::cout << "[identity] Serialize and deserialize (ASCII no private): ";
  199. if ((id == id2)&&(id2.locallyValidate(false))) {
  200. std::cout << "PASS" << std::endl;
  201. } else {
  202. std::cout << "FAIL" << std::endl;
  203. return -1;
  204. }
  205. }
  206. return 0;
  207. }
  208. static int testPacket()
  209. {
  210. unsigned char salsaKey[32],hmacKey[32];
  211. Packet a,b;
  212. a.zeroAll();
  213. b.zeroAll();
  214. for(unsigned int i=0;i<32;++i) {
  215. salsaKey[i] = (unsigned char)rand();
  216. hmacKey[i] = (unsigned char)rand();
  217. }
  218. std::cout << "[packet] Testing Packet encoder/decoder... ";
  219. a.reset(Address(),Address(),Packet::VERB_HELLO);
  220. for(int i=0;i<32;++i)
  221. a.append("supercalifragilisticexpealidocious",strlen("supercalifragilisticexpealidocious"));
  222. b = a;
  223. if (a != b) {
  224. std::cout << "FAIL (assign)" << std::endl;
  225. return -1;
  226. }
  227. a.compress();
  228. unsigned int complen = a.size();
  229. a.uncompress();
  230. std::cout << "(compressed: " << complen << ", decompressed: " << a.size() << ") ";
  231. if (a != b) {
  232. std::cout << "FAIL (compresssion)" << std::endl;
  233. return -1;
  234. }
  235. a.compress();
  236. a.encrypt(salsaKey);
  237. a.decrypt(salsaKey);
  238. a.uncompress();
  239. if (a != b) {
  240. std::cout << "FAIL (encrypt-decrypt)" << std::endl;
  241. return -1;
  242. }
  243. a.hmacSet(hmacKey);
  244. if (!a.hmacVerify(hmacKey)) {
  245. std::cout << "FAIL (hmacVerify)" << std::endl;
  246. return -1;
  247. }
  248. std::cout << "PASS" << std::endl;
  249. return 0;
  250. }
  251. static int testOther()
  252. {
  253. std::cout << "[other] Testing Base64 encode/decode... "; std::cout.flush();
  254. for(unsigned int k=0;k<1000;++k) {
  255. unsigned int flen = (rand() % 8194) + 1;
  256. for(unsigned int i=0;i<flen;++i)
  257. fuzzbuf[i] = (unsigned char)(rand() & 0xff);
  258. std::string dec = Utils::base64Decode(Utils::base64Encode(fuzzbuf,flen));
  259. if ((dec.length() != flen)||(memcmp(dec.data(),fuzzbuf,dec.length()))) {
  260. std::cout << "FAILED!" << std::endl;
  261. return -1;
  262. }
  263. }
  264. std::cout << "PASS" << std::endl;
  265. std::cout << "[other] Testing hex encode/decode... "; std::cout.flush();
  266. for(unsigned int k=0;k<1000;++k) {
  267. unsigned int flen = (rand() % 8194) + 1;
  268. for(unsigned int i=0;i<flen;++i)
  269. fuzzbuf[i] = (unsigned char)(rand() & 0xff);
  270. std::string dec = Utils::unhex(Utils::hex(fuzzbuf,flen).c_str());
  271. if ((dec.length() != flen)||(memcmp(dec.data(),fuzzbuf,dec.length()))) {
  272. std::cout << "FAILED!" << std::endl;
  273. std::cout << Utils::hex(fuzzbuf,flen) << std::endl;
  274. std::cout << Utils::hex(dec.data(),dec.length()) << std::endl;
  275. return -1;
  276. }
  277. }
  278. std::cout << "PASS" << std::endl;
  279. std::cout << "[other] Testing command bus encode/decode... "; std::cout.flush();
  280. try {
  281. static char key[32] = { 0 };
  282. for(unsigned int k=0;k<1000;++k) {
  283. std::vector<std::string> original;
  284. for(unsigned int i=0,j=rand() % 256,l=(rand() % 1024)+1;i<j;++i)
  285. original.push_back(std::string(l,'x'));
  286. std::vector< Buffer<ZT_NODECONFIG_MAX_PACKET_SIZE> > packets(NodeConfig::encodeControlMessage(key,1,original));
  287. //std::cout << packets.size() << ' '; std::cout.flush();
  288. std::vector<std::string> after;
  289. for(std::vector< Buffer<ZT_NODECONFIG_MAX_PACKET_SIZE> >::iterator i(packets.begin());i!=packets.end();++i) {
  290. unsigned long convId = 9999;
  291. if (!NodeConfig::decodeControlMessagePacket(key,i->data(),i->size(),convId,after)) {
  292. std::cout << "FAIL (decode)" << std::endl;
  293. return -1;
  294. }
  295. if (convId != 1) {
  296. std::cout << "FAIL (conversation ID)" << std::endl;
  297. return -1;
  298. }
  299. }
  300. if (after != original) {
  301. std::cout << "FAIL (compare)" << std::endl;
  302. return -1;
  303. }
  304. }
  305. } catch (std::exception &exc) {
  306. std::cout << "FAIL (" << exc.what() << ")" << std::endl;
  307. return -1;
  308. }
  309. std::cout << "PASS" << std::endl;
  310. std::cout << "[other] Testing Dictionary... "; std::cout.flush();
  311. for(int k=0;k<10000;++k) {
  312. Dictionary a,b;
  313. int nk = rand() % 32;
  314. for(int q=0;q<nk;++q) {
  315. std::string k,v;
  316. int kl = (rand() % 512);
  317. int vl = (rand() % 512);
  318. for(int i=0;i<kl;++i)
  319. k.push_back((char)rand());
  320. for(int i=0;i<vl;++i)
  321. v.push_back((char)rand());
  322. a[k] = v;
  323. }
  324. std::string aser = a.toString();
  325. b.fromString(aser);
  326. if (a != b) {
  327. std::cout << "FAIL!" << std::endl;
  328. return -1;
  329. }
  330. }
  331. std::cout << "PASS" << std::endl;
  332. return 0;
  333. }
  334. static int testRateLimiter()
  335. {
  336. RateLimiter limiter;
  337. RateLimiter::Limit limit;
  338. std::cout << "[ratelimiter] preload: 10000.0, rate: 1000.0/sec, max: 15000.0, min: -7500.0" << std::endl;
  339. limit.bytesPerSecond = 1000.0;
  340. limit.maxBalance = 15000.0;
  341. limit.minBalance = -7500.0;
  342. limiter.init(10000.0);
  343. for(int i=0;i<25;++i) {
  344. Thread::sleep(100);
  345. std::cout << "[ratelimiter] delayed 0.1s, gate(1000.0): " << (limiter.gate(limit,1000.0) ? "OK" : "BLOCK");
  346. std::cout << " (new balance afterwords: " << limiter.balance() << ")" << std::endl;
  347. }
  348. std::cout << "[ratelimiter] delaying 15s..." << std::endl;
  349. Thread::sleep(15000);
  350. for(int i=0;i<20;++i) {
  351. Thread::sleep(1000);
  352. std::cout << "[ratelimiter] delayed 1s, gate(2000.0): " << (limiter.gate(limit,2000.0) ? "OK" : "BLOCK");
  353. std::cout << " (new balance afterwords: " << limiter.balance() << ")" << std::endl;
  354. }
  355. return 0;
  356. }
  357. #ifdef __WINDOWS__
  358. int _tmain(int argc, _TCHAR* argv[])
  359. #else
  360. int main(int argc,char **argv)
  361. #endif
  362. {
  363. int r = 0;
  364. _initLibCrypto();
  365. srand((unsigned int)time(0));
  366. r |= testCrypto();
  367. r |= testPacket();
  368. r |= testOther();
  369. r |= testIdentity();
  370. r |= testRateLimiter();
  371. if (r)
  372. std::cout << std::endl << "SOMETHING FAILED!" << std::endl;
  373. return r;
  374. }