github.com/dominant-strategies/go-quai@v0.28.2/p2p/rlpx/rlpx_test.go (about) 1 // Copyright 2020 The go-ethereum Authors 2 // This file is part of the go-ethereum library. 3 // 4 // The go-ethereum library is free software: you can redistribute it and/or modify 5 // it under the terms of the GNU Lesser General Public License as published by 6 // the Free Software Foundation, either version 3 of the License, or 7 // (at your option) any later version. 8 // 9 // The go-ethereum library is distributed in the hope that it will be useful, 10 // but WITHOUT ANY WARRANTY; without even the implied warranty of 11 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 12 // GNU Lesser General Public License for more details. 13 // 14 // You should have received a copy of the GNU Lesser General Public License 15 // along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>. 16 17 package rlpx 18 19 import ( 20 "bytes" 21 "crypto/ecdsa" 22 "encoding/hex" 23 "fmt" 24 "io" 25 "net" 26 "reflect" 27 "strings" 28 "testing" 29 30 "github.com/davecgh/go-spew/spew" 31 "github.com/dominant-strategies/go-quai/crypto" 32 "github.com/dominant-strategies/go-quai/crypto/ecies" 33 "github.com/dominant-strategies/go-quai/rlp" 34 "github.com/stretchr/testify/assert" 35 ) 36 37 type message struct { 38 code uint64 39 data []byte 40 err error 41 } 42 43 func TestHandshake(t *testing.T) { 44 p1, p2 := createPeers(t) 45 p1.Close() 46 p2.Close() 47 } 48 49 // This test checks that messages can be sent and received through WriteMsg/ReadMsg. 50 func TestReadWriteMsg(t *testing.T) { 51 peer1, peer2 := createPeers(t) 52 defer peer1.Close() 53 defer peer2.Close() 54 55 testCode := uint64(23) 56 testData := []byte("test") 57 checkMsgReadWrite(t, peer1, peer2, testCode, testData) 58 59 t.Log("enabling snappy") 60 peer1.SetSnappy(true) 61 peer2.SetSnappy(true) 62 checkMsgReadWrite(t, peer1, peer2, testCode, testData) 63 } 64 65 func checkMsgReadWrite(t *testing.T, p1, p2 *Conn, msgCode uint64, msgData []byte) { 66 // Set up the reader. 67 ch := make(chan message, 1) 68 go func() { 69 var msg message 70 msg.code, msg.data, _, msg.err = p1.Read() 71 ch <- msg 72 }() 73 74 // Write the message. 75 _, err := p2.Write(msgCode, msgData) 76 if err != nil { 77 t.Fatal(err) 78 } 79 80 // Check it was received correctly. 81 msg := <-ch 82 assert.Equal(t, msgCode, msg.code, "wrong message code returned from ReadMsg") 83 assert.Equal(t, msgData, msg.data, "wrong message data returned from ReadMsg") 84 } 85 86 func createPeers(t *testing.T) (peer1, peer2 *Conn) { 87 conn1, conn2 := net.Pipe() 88 key1, key2 := newkey(), newkey() 89 peer1 = NewConn(conn1, &key2.PublicKey) // dialer 90 peer2 = NewConn(conn2, nil) // listener 91 doHandshake(t, peer1, peer2, key1, key2) 92 return peer1, peer2 93 } 94 95 func doHandshake(t *testing.T, peer1, peer2 *Conn, key1, key2 *ecdsa.PrivateKey) { 96 keyChan := make(chan *ecdsa.PublicKey, 1) 97 go func() { 98 pubKey, err := peer2.Handshake(key2) 99 if err != nil { 100 t.Errorf("peer2 could not do handshake: %v", err) 101 } 102 keyChan <- pubKey 103 }() 104 105 pubKey2, err := peer1.Handshake(key1) 106 if err != nil { 107 t.Errorf("peer1 could not do handshake: %v", err) 108 } 109 pubKey1 := <-keyChan 110 111 // Confirm the handshake was successful. 112 if !reflect.DeepEqual(pubKey1, &key1.PublicKey) || !reflect.DeepEqual(pubKey2, &key2.PublicKey) { 113 t.Fatal("unsuccessful handshake") 114 } 115 } 116 117 // This test checks the frame data of written messages. 118 func TestFrameReadWrite(t *testing.T) { 119 conn := NewConn(nil, nil) 120 hash := fakeHash([]byte{1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1}) 121 conn.InitWithSecrets(Secrets{ 122 AES: crypto.Keccak256(), 123 MAC: crypto.Keccak256(), 124 IngressMAC: hash, 125 EgressMAC: hash, 126 }) 127 h := conn.session 128 129 golden := unhex(` 130 00828ddae471818bb0bfa6b551d1cb42 131 01010101010101010101010101010101 132 ba628a4ba590cb43f7848f41c4382885 133 01010101010101010101010101010101 134 `) 135 msgCode := uint64(8) 136 msg := []uint{1, 2, 3, 4} 137 msgEnc, _ := rlp.EncodeToBytes(msg) 138 139 // Check writeFrame. The frame that's written should be equal to the test vector. 140 buf := new(bytes.Buffer) 141 if err := h.writeFrame(buf, msgCode, msgEnc); err != nil { 142 t.Fatalf("WriteMsg error: %v", err) 143 } 144 if !bytes.Equal(buf.Bytes(), golden) { 145 t.Fatalf("output mismatch:\n got: %x\n want: %x", buf.Bytes(), golden) 146 } 147 148 // Check readFrame on the test vector. 149 content, err := h.readFrame(bytes.NewReader(golden)) 150 if err != nil { 151 t.Fatalf("ReadMsg error: %v", err) 152 } 153 wantContent := unhex("08C401020304") 154 if !bytes.Equal(content, wantContent) { 155 t.Errorf("frame content mismatch:\ngot %x\nwant %x", content, wantContent) 156 } 157 } 158 159 type fakeHash []byte 160 161 func (fakeHash) Write(p []byte) (int, error) { return len(p), nil } 162 func (fakeHash) Reset() {} 163 func (fakeHash) BlockSize() int { return 0 } 164 func (h fakeHash) Size() int { return len(h) } 165 func (h fakeHash) Sum(b []byte) []byte { return append(b, h...) } 166 167 type handshakeAuthTest struct { 168 input string 169 wantVersion uint 170 wantRest []rlp.RawValue 171 } 172 173 var HandshakeAuthTests = []handshakeAuthTest{ 174 // (Auth₂) encoding 175 { 176 input: ` 177 01b304ab7578555167be8154d5cc456f567d5ba302662433674222360f08d5f1534499d3678b513b 178 0fca474f3a514b18e75683032eb63fccb16c156dc6eb2c0b1593f0d84ac74f6e475f1b8d56116b84 179 9634a8c458705bf83a626ea0384d4d7341aae591fae42ce6bd5c850bfe0b999a694a49bbbaf3ef6c 180 da61110601d3b4c02ab6c30437257a6e0117792631a4b47c1d52fc0f8f89caadeb7d02770bf999cc 181 147d2df3b62e1ffb2c9d8c125a3984865356266bca11ce7d3a688663a51d82defaa8aad69da39ab6 182 d5470e81ec5f2a7a47fb865ff7cca21516f9299a07b1bc63ba56c7a1a892112841ca44b6e0034dee 183 70c9adabc15d76a54f443593fafdc3b27af8059703f88928e199cb122362a4b35f62386da7caad09 184 c001edaeb5f8a06d2b26fb6cb93c52a9fca51853b68193916982358fe1e5369e249875bb8d0d0ec3 185 6f917bc5e1eafd5896d46bd61ff23f1a863a8a8dcd54c7b109b771c8e61ec9c8908c733c0263440e 186 2aa067241aaa433f0bb053c7b31a838504b148f570c0ad62837129e547678c5190341e4f1693956c 187 3bf7678318e2d5b5340c9e488eefea198576344afbdf66db5f51204a6961a63ce072c8926c 188 `, 189 wantVersion: 4, 190 wantRest: []rlp.RawValue{}, 191 }, 192 // (Auth₃) RLPx v4 encoding with version 56, additional list elements 193 { 194 input: ` 195 01b8044c6c312173685d1edd268aa95e1d495474c6959bcdd10067ba4c9013df9e40ff45f5bfd6f7 196 2471f93a91b493f8e00abc4b80f682973de715d77ba3a005a242eb859f9a211d93a347fa64b597bf 197 280a6b88e26299cf263b01b8dfdb712278464fd1c25840b995e84d367d743f66c0e54a586725b7bb 198 f12acca27170ae3283c1073adda4b6d79f27656993aefccf16e0d0409fe07db2dc398a1b7e8ee93b 199 cd181485fd332f381d6a050fba4c7641a5112ac1b0b61168d20f01b479e19adf7fdbfa0905f63352 200 bfc7e23cf3357657455119d879c78d3cf8c8c06375f3f7d4861aa02a122467e069acaf513025ff19 201 6641f6d2810ce493f51bee9c966b15c5043505350392b57645385a18c78f14669cc4d960446c1757 202 1b7c5d725021babbcd786957f3d17089c084907bda22c2b2675b4378b114c601d858802a55345a15 203 116bc61da4193996187ed70d16730e9ae6b3bb8787ebcaea1871d850997ddc08b4f4ea668fbf3740 204 7ac044b55be0908ecb94d4ed172ece66fd31bfdadf2b97a8bc690163ee11f5b575a4b44e36e2bfb2 205 f0fce91676fd64c7773bac6a003f481fddd0bae0a1f31aa27504e2a533af4cef3b623f4791b2cca6 206 d490 207 `, 208 wantVersion: 56, 209 wantRest: []rlp.RawValue{{0x01}, {0x02}, {0xC2, 0x04, 0x05}}, 210 }, 211 } 212 213 type handshakeAckTest struct { 214 input string 215 wantVersion uint 216 wantRest []rlp.RawValue 217 } 218 219 var HandshakeRespTests = []handshakeAckTest{ 220 // (Ack₂) encoding 221 { 222 input: ` 223 01ea0451958701280a56482929d3b0757da8f7fbe5286784beead59d95089c217c9b917788989470 224 b0e330cc6e4fb383c0340ed85fab836ec9fb8a49672712aeabbdfd1e837c1ff4cace34311cd7f4de 225 05d59279e3524ab26ef753a0095637ac88f2b499b9914b5f64e143eae548a1066e14cd2f4bd7f814 226 c4652f11b254f8a2d0191e2f5546fae6055694aed14d906df79ad3b407d94692694e259191cde171 227 ad542fc588fa2b7333313d82a9f887332f1dfc36cea03f831cb9a23fea05b33deb999e85489e645f 228 6aab1872475d488d7bd6c7c120caf28dbfc5d6833888155ed69d34dbdc39c1f299be1057810f34fb 229 e754d021bfca14dc989753d61c413d261934e1a9c67ee060a25eefb54e81a4d14baff922180c395d 230 3f998d70f46f6b58306f969627ae364497e73fc27f6d17ae45a413d322cb8814276be6ddd13b885b 231 201b943213656cde498fa0e9ddc8e0b8f8a53824fbd82254f3e2c17e8eaea009c38b4aa0a3f306e8 232 797db43c25d68e86f262e564086f59a2fc60511c42abfb3057c247a8a8fe4fb3ccbadde17514b7ac 233 8000cdb6a912778426260c47f38919a91f25f4b5ffb455d6aaaf150f7e5529c100ce62d6d92826a7 234 1778d809bdf60232ae21ce8a437eca8223f45ac37f6487452ce626f549b3b5fdee26afd2072e4bc7 235 5833c2464c805246155289f4 236 `, 237 wantVersion: 4, 238 wantRest: []rlp.RawValue{}, 239 }, 240 // (Ack₃) encoding with version 57, additional list elements 241 { 242 input: ` 243 01f004076e58aae772bb101ab1a8e64e01ee96e64857ce82b1113817c6cdd52c09d26f7b90981cd7 244 ae835aeac72e1573b8a0225dd56d157a010846d888dac7464baf53f2ad4e3d584531fa203658fab0 245 3a06c9fd5e35737e417bc28c1cbf5e5dfc666de7090f69c3b29754725f84f75382891c561040ea1d 246 dc0d8f381ed1b9d0d4ad2a0ec021421d847820d6fa0ba66eaf58175f1b235e851c7e2124069fbc20 247 2888ddb3ac4d56bcbd1b9b7eab59e78f2e2d400905050f4a92dec1c4bdf797b3fc9b2f8e84a482f3 248 d800386186712dae00d5c386ec9387a5e9c9a1aca5a573ca91082c7d68421f388e79127a5177d4f8 249 590237364fd348c9611fa39f78dcdceee3f390f07991b7b47e1daa3ebcb6ccc9607811cb17ce51f1 250 c8c2c5098dbdd28fca547b3f58c01a424ac05f869f49c6a34672ea2cbbc558428aa1fe48bbfd6115 251 8b1b735a65d99f21e70dbc020bfdface9f724a0d1fb5895db971cc81aa7608baa0920abb0a565c9c 252 436e2fd13323428296c86385f2384e408a31e104670df0791d93e743a3a5194ee6b076fb6323ca59 253 3011b7348c16cf58f66b9633906ba54a2ee803187344b394f75dd2e663a57b956cb830dd7a908d4f 254 39a2336a61ef9fda549180d4ccde21514d117b6c6fd07a9102b5efe710a32af4eeacae2cb3b1dec0 255 35b9593b48b9d3ca4c13d245d5f04169b0b1 256 `, 257 wantVersion: 57, 258 wantRest: []rlp.RawValue{{0x06}, {0xC2, 0x07, 0x08}, {0x81, 0xFA}}, 259 }, 260 } 261 262 var ( 263 keyA, _ = crypto.HexToECDSA("49a7b37aa6f6645917e7b807e9d1c00d4fa71f18343b0d4122a4d2df64dd6fee") 264 keyB, _ = crypto.HexToECDSA("b71c71a67e1177ad4e901695e1b4b9ee17ae16c6668d313eac2f96dbcda3f291") 265 ) 266 267 func TestHandshakeForwardCompatibility(t *testing.T) { 268 var ( 269 pubA = crypto.FromECDSAPub(&keyA.PublicKey)[1:] 270 pubB = crypto.FromECDSAPub(&keyB.PublicKey)[1:] 271 ephA, _ = crypto.HexToECDSA("869d6ecf5211f1cc60418a13b9d870b22959d0c16f02bec714c960dd2298a32d") 272 ephB, _ = crypto.HexToECDSA("e238eb8e04fee6511ab04c6dd3c89ce097b11f25d584863ac2b6d5b35b1847e4") 273 ephPubA = crypto.FromECDSAPub(&ephA.PublicKey)[1:] 274 ephPubB = crypto.FromECDSAPub(&ephB.PublicKey)[1:] 275 nonceA = unhex("7e968bba13b6c50e2c4cd7f241cc0d64d1ac25c7f5952df231ac6a2bda8ee5d6") 276 nonceB = unhex("559aead08264d5795d3909718cdd05abd49572e84fe55590eef31a88a08fdffd") 277 _, _, _, _ = pubA, pubB, ephPubA, ephPubB 278 authSignature = unhex("299ca6acfd35e3d72d8ba3d1e2b60b5561d5af5218eb5bc182045769eb4226910a301acae3b369fffc4a4899d6b02531e89fd4fe36a2cf0d93607ba470b50f7800") 279 _ = authSignature 280 ) 281 makeAuth := func(test handshakeAuthTest) *authMsgV4 { 282 msg := &authMsgV4{Version: test.wantVersion, Rest: test.wantRest} 283 copy(msg.Signature[:], authSignature) 284 copy(msg.InitiatorPubkey[:], pubA) 285 copy(msg.Nonce[:], nonceA) 286 return msg 287 } 288 makeAck := func(test handshakeAckTest) *authRespV4 { 289 msg := &authRespV4{Version: test.wantVersion, Rest: test.wantRest} 290 copy(msg.RandomPubkey[:], ephPubB) 291 copy(msg.Nonce[:], nonceB) 292 return msg 293 } 294 295 // check auth msg parsing 296 for _, test := range HandshakeAuthTests { 297 var h handshakeState 298 r := bytes.NewReader(unhex(test.input)) 299 msg := new(authMsgV4) 300 ciphertext, err := h.readMsg(msg, keyB, r) 301 if err != nil { 302 t.Errorf("error for input %x:\n %v", unhex(test.input), err) 303 continue 304 } 305 if !bytes.Equal(ciphertext, unhex(test.input)) { 306 t.Errorf("wrong ciphertext for input %x:\n %x", unhex(test.input), ciphertext) 307 } 308 want := makeAuth(test) 309 if !reflect.DeepEqual(msg, want) { 310 t.Errorf("wrong msg for input %x:\ngot %s\nwant %s", unhex(test.input), spew.Sdump(msg), spew.Sdump(want)) 311 } 312 } 313 314 // check auth resp parsing 315 for _, test := range HandshakeRespTests { 316 var h handshakeState 317 input := unhex(test.input) 318 r := bytes.NewReader(input) 319 msg := new(authRespV4) 320 ciphertext, err := h.readMsg(msg, keyA, r) 321 if err != nil { 322 t.Errorf("error for input %x:\n %v", input, err) 323 continue 324 } 325 if !bytes.Equal(ciphertext, input) { 326 t.Errorf("wrong ciphertext for input %x:\n %x", input, err) 327 } 328 want := makeAck(test) 329 if !reflect.DeepEqual(msg, want) { 330 t.Errorf("wrong msg for input %x:\ngot %s\nwant %s", input, spew.Sdump(msg), spew.Sdump(want)) 331 } 332 } 333 334 // check derivation for (Auth₂, Ack₂) on recipient side 335 var ( 336 hs = &handshakeState{ 337 initiator: false, 338 respNonce: nonceB, 339 randomPrivKey: ecies.ImportECDSA(ephB), 340 } 341 authCiphertext = unhex(HandshakeAuthTests[0].input) 342 authRespCiphertext = unhex(HandshakeRespTests[0].input) 343 authMsg = makeAuth(HandshakeAuthTests[0]) 344 wantAES = unhex("80e8632c05fed6fc2a13b0f8d31a3cf645366239170ea067065aba8e28bac487") 345 wantMAC = unhex("2ea74ec5dae199227dff1af715362700e989d889d7a493cb0639691efb8e5f98") 346 wantFooIngressHash = unhex("0c7ec6340062cc46f5e9f1e3cf86f8c8c403c5a0964f5df0ebd34a75ddc86db5") 347 ) 348 if err := hs.handleAuthMsg(authMsg, keyB); err != nil { 349 t.Fatalf("handleAuthMsg: %v", err) 350 } 351 derived, err := hs.secrets(authCiphertext, authRespCiphertext) 352 if err != nil { 353 t.Fatalf("secrets: %v", err) 354 } 355 if !bytes.Equal(derived.AES, wantAES) { 356 t.Errorf("aes-secret mismatch:\ngot %x\nwant %x", derived.AES, wantAES) 357 } 358 if !bytes.Equal(derived.MAC, wantMAC) { 359 t.Errorf("mac-secret mismatch:\ngot %x\nwant %x", derived.MAC, wantMAC) 360 } 361 io.WriteString(derived.IngressMAC, "foo") 362 fooIngressHash := derived.IngressMAC.Sum(nil) 363 if !bytes.Equal(fooIngressHash, wantFooIngressHash) { 364 t.Errorf("ingress-mac('foo') mismatch:\ngot %x\nwant %x", fooIngressHash, wantFooIngressHash) 365 } 366 } 367 368 func BenchmarkHandshakeRead(b *testing.B) { 369 var input = unhex(HandshakeAuthTests[0].input) 370 371 for i := 0; i < b.N; i++ { 372 var ( 373 h handshakeState 374 r = bytes.NewReader(input) 375 msg = new(authMsgV4) 376 ) 377 if _, err := h.readMsg(msg, keyB, r); err != nil { 378 b.Fatal(err) 379 } 380 } 381 } 382 383 func unhex(str string) []byte { 384 r := strings.NewReplacer("\t", "", " ", "", "\n", "") 385 b, err := hex.DecodeString(r.Replace(str)) 386 if err != nil { 387 panic(fmt.Sprintf("invalid hex string: %q", str)) 388 } 389 return b 390 } 391 392 func newkey() *ecdsa.PrivateKey { 393 key, err := crypto.GenerateKey() 394 if err != nil { 395 panic("couldn't generate key: " + err.Error()) 396 } 397 return key 398 }