SSH.java 15 KB

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  1. package de.tudarmstadt.informatik.hostage.protocol;
  2. import java.math.BigInteger;
  3. import java.nio.ByteBuffer;
  4. import java.security.KeyFactory;
  5. import java.security.KeyPair;
  6. import java.security.KeyPairGenerator;
  7. import java.security.MessageDigest;
  8. import java.security.PublicKey;
  9. import java.security.Signature;
  10. import java.security.interfaces.DSAPublicKey;
  11. import java.util.ArrayList;
  12. import java.util.List;
  13. import java.util.Random;
  14. import javax.crypto.KeyAgreement;
  15. import javax.crypto.interfaces.DHPublicKey;
  16. import javax.crypto.spec.DHParameterSpec;
  17. import javax.crypto.spec.DHPublicKeySpec;
  18. import javax.net.ssl.SSLContext;
  19. import de.tudarmstadt.informatik.hostage.commons.HelperUtils;
  20. import de.tudarmstadt.informatik.hostage.wrapper.ByteArray;
  21. /**
  22. * SSH protocol
  23. * @author Wulf Pfeiffer
  24. */
  25. public final class SSH implements Protocol<ByteArray> {
  26. /**
  27. * Represents the states of the protocol
  28. */
  29. private enum STATE {
  30. NONE,
  31. SERVER_VERSION,
  32. CLIENT_VERSION,
  33. KEX_INIT,
  34. CLOSED
  35. }
  36. /**
  37. * Denotes in which state the protocol is right now
  38. */
  39. private STATE connectionState = STATE.NONE;
  40. private String serverVersion = "SSH-2.0-";
  41. private String serverType = "OpenSSH_6.0p1 Debian-4";
  42. //Diffie-Hellman-Group-1 p and g
  43. private final byte[] p = {
  44. (byte)0x00,
  45. (byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,
  46. (byte)0xC9,(byte)0x0F,(byte)0xDA,(byte)0xA2,(byte)0x21,(byte)0x68,(byte)0xC2,(byte)0x34,
  47. (byte)0xC4,(byte)0xC6,(byte)0x62,(byte)0x8B,(byte)0x80,(byte)0xDC,(byte)0x1C,(byte)0xD1,
  48. (byte)0x29,(byte)0x02,(byte)0x4E,(byte)0x08,(byte)0x8A,(byte)0x67,(byte)0xCC,(byte)0x74,
  49. (byte)0x02,(byte)0x0B,(byte)0xBE,(byte)0xA6,(byte)0x3B,(byte)0x13,(byte)0x9B,(byte)0x22,
  50. (byte)0x51,(byte)0x4A,(byte)0x08,(byte)0x79,(byte)0x8E,(byte)0x34,(byte)0x04,(byte)0xDD,
  51. (byte)0xEF,(byte)0x95,(byte)0x19,(byte)0xB3,(byte)0xCD,(byte)0x3A,(byte)0x43,(byte)0x1B,
  52. (byte)0x30,(byte)0x2B,(byte)0x0A,(byte)0x6D,(byte)0xF2,(byte)0x5F,(byte)0x14,(byte)0x37,
  53. (byte)0x4F,(byte)0xE1,(byte)0x35,(byte)0x6D,(byte)0x6D,(byte)0x51,(byte)0xC2,(byte)0x45,
  54. (byte)0xE4,(byte)0x85,(byte)0xB5,(byte)0x76,(byte)0x62,(byte)0x5E,(byte)0x7E,(byte)0xC6,
  55. (byte)0xF4,(byte)0x4C,(byte)0x42,(byte)0xE9,(byte)0xA6,(byte)0x37,(byte)0xED,(byte)0x6B,
  56. (byte)0x0B,(byte)0xFF,(byte)0x5C,(byte)0xB6,(byte)0xF4,(byte)0x06,(byte)0xB7,(byte)0xED,
  57. (byte)0xEE,(byte)0x38,(byte)0x6B,(byte)0xFB,(byte)0x5A,(byte)0x89,(byte)0x9F,(byte)0xA5,
  58. (byte)0xAE,(byte)0x9F,(byte)0x24,(byte)0x11,(byte)0x7C,(byte)0x4B,(byte)0x1F,(byte)0xE6,
  59. (byte)0x49,(byte)0x28,(byte)0x66,(byte)0x51,(byte)0xEC,(byte)0xE6,(byte)0x53,(byte)0x81,
  60. (byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF,(byte)0xFF
  61. };
  62. private final byte[] g = {0x02};
  63. private byte[] V_S = serverType.getBytes();
  64. private byte[] V_C;
  65. private byte[] I_S;
  66. private byte[] I_C;
  67. private byte[] e;
  68. private byte[] f;
  69. private byte[] k;
  70. private byte[] h;
  71. private byte[] K_S;
  72. private byte[] sig;
  73. private KeyPair dsa;
  74. private String kex_alg = "diffie-hellman-group1-sha1";
  75. private String server_alg = "ssh-dss";
  76. private String encrypt_alg_c = "aes128-ctr";
  77. private String encrypt_alg_s = "aes128-ctr";
  78. private String mac_alg_c = "hmac-sha1";
  79. private String mac_alg_s = "hmac-sha1";
  80. private String comp_alg_c = "none";
  81. private String comp_alg_s = "none";
  82. private int cipherBlockSize = 16;
  83. private STATE state = STATE.NONE;
  84. @Override
  85. public int getPort() {
  86. return 22;
  87. }
  88. @Override
  89. public TALK_FIRST whoTalksFirst() {
  90. return TALK_FIRST.SERVER;
  91. }
  92. @Override
  93. public List<ByteArray> processMessage(ByteArray message) {
  94. List<ByteArray> response = new ArrayList<ByteArray>();
  95. byte[] request = null;
  96. if(message != null) request = message.get();
  97. switch(connectionState) {
  98. case NONE:
  99. response.add(new ByteArray(serverVersion + serverType + "\r\n"));
  100. connectionState = STATE.SERVER_VERSION;
  101. break;
  102. case SERVER_VERSION:
  103. extractType(request);
  104. extractCookie(request);
  105. response.add(new ByteArray(kexInit()));
  106. connectionState = STATE.CLIENT_VERSION;
  107. break;
  108. case CLIENT_VERSION:
  109. extractPubKey(request);
  110. response.add(new ByteArray(dhKexReply()));
  111. connectionState = STATE.KEX_INIT;
  112. break;
  113. case KEX_INIT:
  114. connectionState = STATE.CLOSED;
  115. break;
  116. case CLOSED:
  117. break;
  118. default:
  119. connectionState = STATE.CLOSED;
  120. break;
  121. }
  122. return response;
  123. }
  124. @Override
  125. public boolean isClosed() {
  126. return (state == STATE.CLOSED);
  127. }
  128. @Override
  129. public boolean isSecure() {
  130. return false;
  131. }
  132. @Override
  133. public Class<ByteArray> getType() {
  134. return ByteArray.class;
  135. }
  136. @Override
  137. public String toString() {
  138. return "SSH";
  139. }
  140. @Override
  141. public SSLContext getSSLContext() {
  142. return null;
  143. }
  144. /**
  145. * Wraps the packets with packet length and padding
  146. * @param packet content that is wrapped
  147. * @return wrapped packet
  148. */
  149. private byte[] wrapPacket(byte[] packet) {
  150. int packetLength = 5 + packet.length; //4 byte packet length, 1 byte padding length, payload length
  151. int paddingLengthCBS = cipherBlockSize - (packetLength % cipherBlockSize);
  152. int paddingLength8 = 8 - (packetLength % 8);
  153. int paddingLength = paddingLengthCBS > paddingLength8 ? paddingLengthCBS : paddingLength8;
  154. if(paddingLength < 4) paddingLength += cipherBlockSize;
  155. packetLength = packetLength + paddingLength - 4; //add padding string length to packet length
  156. byte[] packetLen = ByteBuffer.allocate(4).putInt(packetLength).array();
  157. byte[] paddingLen = {(byte) paddingLength};
  158. byte[] paddingString = new byte[paddingLength];
  159. for(int i = 0; i < paddingLength; i++) {
  160. paddingString[i] = 0x00;
  161. }
  162. return HelperUtils.concat(packetLen, paddingLen, packet, paddingString);
  163. }
  164. /**
  165. * Builds the Kex Init packet that contains all the allowed algorithms by the server
  166. * @return Kex Init packet
  167. */
  168. private byte[] kexInit() {
  169. byte[] msgCode = {0x14};
  170. I_S = randomBytes(16);
  171. byte[] kexLength = ByteBuffer.allocate(4).putInt(kex_alg.getBytes().length).array();
  172. byte[] serverLength = ByteBuffer.allocate(4).putInt(server_alg.getBytes().length).array();
  173. byte[] encrypt_c_Length = ByteBuffer.allocate(4).putInt(encrypt_alg_c.getBytes().length).array();
  174. byte[] encrypt_s_Length = ByteBuffer.allocate(4).putInt(encrypt_alg_s.getBytes().length).array();
  175. byte[] mac_c_Length = ByteBuffer.allocate(4).putInt(mac_alg_c.getBytes().length).array();
  176. byte[] mac_s_Length = ByteBuffer.allocate(4).putInt(mac_alg_s.getBytes().length).array();
  177. byte[] comp_c_Length = ByteBuffer.allocate(4).putInt(comp_alg_c.getBytes().length).array();
  178. byte[] comp_s_Length = ByteBuffer.allocate(4).putInt(comp_alg_s.getBytes().length).array();
  179. byte[] language_c_s = {0x00, 0x00, 0x00, 0x00};
  180. byte[] language_s_c = {0x00, 0x00, 0x00, 0x00};
  181. byte[] kexFirsPckt = {0x00};
  182. byte[] reserved = {0x00, 0x00, 0x00, 0x00};
  183. byte[] response = HelperUtils.concat(msgCode, I_S, kexLength, kex_alg.getBytes(), serverLength, server_alg.getBytes(),
  184. encrypt_c_Length, encrypt_alg_c.getBytes(), encrypt_s_Length, encrypt_alg_s.getBytes(), mac_c_Length, mac_alg_c.getBytes(),
  185. mac_s_Length, mac_alg_s.getBytes(), comp_c_Length, comp_alg_c.getBytes(), comp_s_Length, comp_alg_s.getBytes(),
  186. language_c_s, language_s_c, kexFirsPckt, reserved);
  187. return wrapPacket(response);
  188. }
  189. /**
  190. * Builds the Diffie-Hellman Kex Reply, containing the host key,f and the signature
  191. * @return Diffie-Hellman Kex Reply packet
  192. */
  193. private byte[] dhKexReply() {
  194. generateDHKeys();
  195. generateHostKey();
  196. generateSha1Hash();
  197. generateSignature();
  198. byte[] msgCode = {0x1f};
  199. byte[] hostKeyLength = ByteBuffer.allocate(4).putInt(K_S.length).array();
  200. byte[] fDHLength = ByteBuffer.allocate(4).putInt(f.length).array();
  201. byte[] signatureLength = ByteBuffer.allocate(4).putInt(sig.length).array();
  202. byte[] server_algLength = ByteBuffer.allocate(4).putInt(server_alg.getBytes().length).array();
  203. byte[] payloadLength = ByteBuffer.allocate(4).putInt(server_algLength.length + signatureLength.length + sig.length + server_alg.getBytes().length).array();
  204. byte[] response = HelperUtils.concat(msgCode, hostKeyLength, K_S,
  205. fDHLength, f, payloadLength, server_algLength, server_alg.getBytes(), signatureLength, sig);
  206. return wrapPacket(response);
  207. }
  208. // private byte[] newKeys() {
  209. // byte[] msgCode = {0x15};
  210. // return wrapPckt(msgCode);
  211. // }
  212. /**
  213. * Generates the required Diffie-Hellman keys with p and g from Oakley Group 1
  214. */
  215. private void generateDHKeys() {
  216. try {
  217. KeyPairGenerator myKpairGen = KeyPairGenerator.getInstance("DH");
  218. KeyAgreement myKeyAgree = KeyAgreement.getInstance("DH");
  219. BigInteger p = new BigInteger(this.p);
  220. BigInteger g = new BigInteger(this.g);
  221. BigInteger e = new BigInteger(this.e);
  222. DHParameterSpec dhParamSpec = new DHParameterSpec(p, g);
  223. myKpairGen.initialize(dhParamSpec);
  224. KeyPair myKpair = myKpairGen.generateKeyPair();
  225. myKeyAgree.init(myKpair.getPrivate());
  226. BigInteger f = ((DHPublicKey) (myKpair.getPublic())).getY();
  227. this.f = f.toByteArray();
  228. KeyFactory myKeyFac = KeyFactory.getInstance("DH");
  229. DHPublicKeySpec keySpec = new DHPublicKeySpec(e, p, g);
  230. PublicKey yourPubKey = myKeyFac.generatePublic(keySpec);
  231. myKeyAgree.doPhase(yourPubKey, true);
  232. byte[] mySharedSecret = myKeyAgree.generateSecret();
  233. k = mySharedSecret;
  234. } catch (Exception e) {
  235. e.printStackTrace();
  236. }
  237. }
  238. /**
  239. * Generates the Host Key based on the DSA algorithm
  240. */
  241. private void generateHostKey() {
  242. try {
  243. KeyPairGenerator generator = KeyPairGenerator.getInstance("DSA");
  244. dsa = generator.generateKeyPair();
  245. byte[] string = "ssh-dss".getBytes();
  246. byte[] stringLength = ByteBuffer.allocate(4).putInt(string.length).array();
  247. byte[] p = ((DSAPublicKey) dsa.getPublic()).getParams().getP().toByteArray();
  248. if(p[0] != 0x00) p = HelperUtils.concat(new byte[]{0x00}, p);
  249. byte[] pLength = ByteBuffer.allocate(4).putInt(p.length).array();
  250. byte[] q = ((DSAPublicKey) dsa.getPublic()).getParams().getQ().toByteArray();
  251. if(q[0] != 0x00) q = HelperUtils.concat(new byte[]{0x00}, q);
  252. byte[] qLength = ByteBuffer.allocate(4).putInt(q.length).array();
  253. byte[] g = ((DSAPublicKey) dsa.getPublic()).getParams().getG().toByteArray();
  254. if(g[0] != 0x00) g = HelperUtils.concat(new byte[]{0x00}, g);
  255. byte[] gLength = ByteBuffer.allocate(4).putInt(g.length).array();
  256. byte[] y = ((DSAPublicKey) dsa.getPublic()).getY().toByteArray();
  257. if(y[0] != 0x00) y = HelperUtils.concat(new byte[]{0x00}, y);
  258. byte[] yLength = ByteBuffer.allocate(4).putInt(y.length).array();
  259. K_S = HelperUtils.concat(stringLength, string, pLength, p, qLength, q, gLength, g, yLength, y);
  260. } catch (Exception e) {
  261. e.printStackTrace();
  262. }
  263. }
  264. /**
  265. * Generates the SHA-1 Hash from several values
  266. */
  267. private void generateSha1Hash() {
  268. try {
  269. MessageDigest sha = MessageDigest.getInstance("SHA-1");
  270. sha.update(V_C);
  271. sha.update(V_S);
  272. sha.update(I_C);
  273. sha.update(I_S);
  274. sha.update(K_S);
  275. sha.update(e);
  276. sha.update(f);
  277. sha.update(k);
  278. h = sha.digest();
  279. } catch (Exception e) {
  280. e.printStackTrace();
  281. }
  282. }
  283. /**
  284. * Generates the signature of the hash using DSA algorithm with SHA-1
  285. */
  286. private void generateSignature() {
  287. try {
  288. Signature sig = Signature.getInstance("SHA1withDSA");
  289. sig.initVerify(dsa.getPublic());
  290. sig.initSign(dsa.getPrivate());
  291. sig.update(h);
  292. this.sig = extractSignature(sig.sign());
  293. } catch (Exception e) {
  294. e.printStackTrace();
  295. }
  296. }
  297. /**
  298. * Extracts the type of the client
  299. * @param request containing the clients type
  300. */
  301. private void extractType(byte[] request) {
  302. int length = 0;
  303. for(int i = 8; i < request.length; i++, length++) { //start at 8 because "SSH-2.0-" is not part of type
  304. if(request[i] == 0x0d) break; //find the end of the type: '\r'
  305. }
  306. V_C = new byte[length];
  307. System.arraycopy(request, 8, V_C, 0, length);
  308. }
  309. /**
  310. * Extracts the cookie from the Kex Init client request
  311. * @param request containing the clients cookie
  312. */
  313. private void extractCookie(byte[] request) {
  314. int pos = 0;
  315. if(request[5] != 0x14) { //if type packet is in front of kex init
  316. pos = 1; //start behind the end of type message
  317. for(int i = 0; i < request.length; i++, pos++) {
  318. if(request[i] == 0x0a) break; //find end of type message: '\n'
  319. }
  320. }
  321. I_C = new byte[16];
  322. System.arraycopy(request, 6+pos, I_C, 0, 16); //srcLen: headersize+position after type packet
  323. }
  324. /**
  325. * Extracts the public key from the DH Kex Request
  326. * @param request containing the clients public key
  327. */
  328. private void extractPubKey(byte[] request) {
  329. e = new byte[byteToInt(new byte[] {request[6], request[7], request[8], request[9]})];
  330. for(int i = 0; i < e.length; i++) {
  331. e[i] = request[i+10];
  332. }
  333. }
  334. /**
  335. * Converts a byte[] to int
  336. * @param bytes that are converted
  337. * @return converted byte[] as int
  338. */
  339. private static int byteToInt(byte[] bytes) {
  340. int ret = 0;
  341. for (int i=0; i < bytes.length; i++) {
  342. ret <<= 8;
  343. ret |= (int)bytes[i] & 0xFF;
  344. }
  345. return ret;
  346. }
  347. /**
  348. * Generates a random byte[] of a specified size
  349. * @param size of the byte[]
  350. * @return random byte[]
  351. */
  352. private byte[] randomBytes(int size) {
  353. byte[] bytes = new byte[size];
  354. Random rdm = new Random();
  355. rdm.nextBytes(bytes);
  356. return bytes;
  357. }
  358. /**
  359. * Extracts r and s from a DSA-signature
  360. * @param signature
  361. * @return r and s as byte[]
  362. */
  363. private byte[] extractSignature(byte[] signature) {
  364. //{ r INTEGER, s INTEGER }
  365. int length = 0;
  366. int index = 3;
  367. length = signature[index++] & 0xff;
  368. byte[] r = new byte[length];
  369. System.arraycopy(signature, index, r, 0, r.length);
  370. index = index + length + 1;
  371. length = signature[index++] & 0xff;
  372. byte[] s = new byte[length];
  373. System.arraycopy(signature, index, s, 0, s.length);
  374. byte[] result = new byte[40];
  375. // result must be 40 bytes, but length of r and s may not be 20 bytes
  376. System.arraycopy(r,
  377. (r.length > 20) ? 1 : 0,
  378. result,
  379. (r.length > 20) ? 0 : 20 - r.length,
  380. (r.length > 20) ? 20 : r.length);
  381. System.arraycopy(s,
  382. (s.length > 20) ? 1 : 0,
  383. result,
  384. (s.length > 20) ? 20 : 40 - s.length,
  385. (s.length > 20) ? 20 : s.length);
  386. return result;
  387. }
  388. }