github.com/Finschia/ostracon@v1.1.5/p2p/pex/addrbook.go (about) 1 // Modified for Tendermint 2 // Originally Copyright (c) 2013-2014 Conformal Systems LLC. 3 // https://github.com/conformal/btcd/blob/master/LICENSE 4 5 package pex 6 7 import ( 8 "encoding/binary" 9 "fmt" 10 "math" 11 "math/rand" 12 "net" 13 "sync" 14 "time" 15 16 "github.com/minio/highwayhash" 17 18 "github.com/Finschia/ostracon/crypto" 19 "github.com/Finschia/ostracon/libs/log" 20 tmmath "github.com/Finschia/ostracon/libs/math" 21 tmrand "github.com/Finschia/ostracon/libs/rand" 22 "github.com/Finschia/ostracon/libs/service" 23 tmsync "github.com/Finschia/ostracon/libs/sync" 24 "github.com/Finschia/ostracon/p2p" 25 ) 26 27 const ( 28 bucketTypeNew = 0x01 29 bucketTypeOld = 0x02 30 ) 31 32 // AddrBook is an address book used for tracking peers 33 // so we can gossip about them to others and select 34 // peers to dial. 35 // TODO: break this up? 36 type AddrBook interface { 37 service.Service 38 39 // Add our own addresses so we don't later add ourselves 40 AddOurAddress(*p2p.NetAddress) 41 // Check if it is our address 42 OurAddress(*p2p.NetAddress) bool 43 44 AddPrivateIDs([]string) 45 46 // Add and remove an address 47 AddAddress(addr *p2p.NetAddress, src *p2p.NetAddress) error 48 RemoveAddress(*p2p.NetAddress) 49 50 // Check if the address is in the book 51 HasAddress(*p2p.NetAddress) bool 52 53 // Do we need more peers? 54 NeedMoreAddrs() bool 55 // Is Address Book Empty? Answer should not depend on being in your own 56 // address book, or private peers 57 Empty() bool 58 59 // Pick an address to dial 60 PickAddress(biasTowardsNewAddrs int) *p2p.NetAddress 61 62 // Mark address 63 MarkGood(p2p.ID) 64 MarkAttempt(*p2p.NetAddress) 65 MarkBad(*p2p.NetAddress, time.Duration) // Move peer to bad peers list 66 // Add bad peers back to addrBook 67 ReinstateBadPeers() 68 69 IsGood(*p2p.NetAddress) bool 70 IsBanned(*p2p.NetAddress) bool 71 72 // Send a selection of addresses to peers 73 GetSelection() []*p2p.NetAddress 74 // Send a selection of addresses with bias 75 GetSelectionWithBias(biasTowardsNewAddrs int) []*p2p.NetAddress 76 77 Size() int 78 79 // Persist to disk 80 Save() 81 } 82 83 var _ AddrBook = (*addrBook)(nil) 84 85 // addrBook - concurrency safe peer address manager. 86 // Implements AddrBook. 87 type addrBook struct { 88 service.BaseService 89 90 // accessed concurrently 91 mtx tmsync.Mutex 92 rand *tmrand.Rand 93 ourAddrs map[string]struct{} 94 privateIDs map[p2p.ID]struct{} 95 addrLookup map[p2p.ID]*knownAddress // new & old 96 badPeers map[p2p.ID]*knownAddress // blacklisted peers 97 bucketsOld []map[string]*knownAddress 98 bucketsNew []map[string]*knownAddress 99 nOld int 100 nNew int 101 102 // immutable after creation 103 filePath string 104 key string // random prefix for bucket placement 105 routabilityStrict bool 106 hashKey []byte 107 108 wg sync.WaitGroup 109 } 110 111 func newHashKey() []byte { 112 return crypto.CRandBytes(highwayhash.Size) 113 } 114 115 // NewAddrBook creates a new address book. 116 // Use Start to begin processing asynchronous address updates. 117 func NewAddrBook(filePath string, routabilityStrict bool) AddrBook { 118 am := &addrBook{ 119 rand: tmrand.NewRand(), 120 ourAddrs: make(map[string]struct{}), 121 privateIDs: make(map[p2p.ID]struct{}), 122 addrLookup: make(map[p2p.ID]*knownAddress), 123 badPeers: make(map[p2p.ID]*knownAddress), 124 filePath: filePath, 125 routabilityStrict: routabilityStrict, 126 hashKey: newHashKey(), 127 } 128 am.init() 129 am.BaseService = *service.NewBaseService(nil, "AddrBook", am) 130 return am 131 } 132 133 // Initialize the buckets. 134 // When modifying this, don't forget to update loadFromFile() 135 func (a *addrBook) init() { 136 a.key = crypto.CRandHex(24) // 24/2 * 8 = 96 bits 137 // New addr buckets 138 a.bucketsNew = make([]map[string]*knownAddress, newBucketCount) 139 for i := range a.bucketsNew { 140 a.bucketsNew[i] = make(map[string]*knownAddress) 141 } 142 // Old addr buckets 143 a.bucketsOld = make([]map[string]*knownAddress, oldBucketCount) 144 for i := range a.bucketsOld { 145 a.bucketsOld[i] = make(map[string]*knownAddress) 146 } 147 } 148 149 // OnStart implements Service. 150 func (a *addrBook) OnStart() error { 151 if err := a.BaseService.OnStart(); err != nil { 152 return err 153 } 154 a.loadFromFile(a.filePath) 155 156 // wg.Add to ensure that any invocation of .Wait() 157 // later on will wait for saveRoutine to terminate. 158 a.wg.Add(1) 159 go a.saveRoutine() 160 161 return nil 162 } 163 164 // OnStop implements Service. 165 func (a *addrBook) OnStop() { 166 a.BaseService.OnStop() 167 } 168 169 func (a *addrBook) Wait() { 170 a.wg.Wait() 171 } 172 173 func (a *addrBook) FilePath() string { 174 return a.filePath 175 } 176 177 //------------------------------------------------------- 178 179 // AddOurAddress one of our addresses. 180 func (a *addrBook) AddOurAddress(addr *p2p.NetAddress) { 181 a.mtx.Lock() 182 defer a.mtx.Unlock() 183 184 a.Logger.Info("Add our address to book", "addr", addr) 185 a.ourAddrs[addr.String()] = struct{}{} 186 } 187 188 // OurAddress returns true if it is our address. 189 func (a *addrBook) OurAddress(addr *p2p.NetAddress) bool { 190 a.mtx.Lock() 191 defer a.mtx.Unlock() 192 193 _, ok := a.ourAddrs[addr.String()] 194 return ok 195 } 196 197 func (a *addrBook) AddPrivateIDs(ids []string) { 198 a.mtx.Lock() 199 defer a.mtx.Unlock() 200 201 for _, id := range ids { 202 a.privateIDs[p2p.ID(id)] = struct{}{} 203 } 204 } 205 206 // AddAddress implements AddrBook 207 // Add address to a "new" bucket. If it's already in one, only add it probabilistically. 208 // Returns error if the addr is non-routable. Does not add self. 209 // NOTE: addr must not be nil 210 func (a *addrBook) AddAddress(addr *p2p.NetAddress, src *p2p.NetAddress) error { 211 a.mtx.Lock() 212 defer a.mtx.Unlock() 213 214 return a.addAddress(addr, src) 215 } 216 217 // RemoveAddress implements AddrBook - removes the address from the book. 218 func (a *addrBook) RemoveAddress(addr *p2p.NetAddress) { 219 a.mtx.Lock() 220 defer a.mtx.Unlock() 221 222 a.removeAddress(addr) 223 } 224 225 // IsGood returns true if peer was ever marked as good and haven't 226 // done anything wrong since then. 227 func (a *addrBook) IsGood(addr *p2p.NetAddress) bool { 228 a.mtx.Lock() 229 defer a.mtx.Unlock() 230 ka, ok := a.addrLookup[addr.ID] 231 if !ok || ka == nil { 232 return false 233 } 234 235 return ka.isOld() 236 } 237 238 // IsBanned returns true if the peer is currently banned 239 func (a *addrBook) IsBanned(addr *p2p.NetAddress) bool { 240 a.mtx.Lock() 241 _, ok := a.badPeers[addr.ID] 242 a.mtx.Unlock() 243 244 return ok 245 } 246 247 // HasAddress returns true if the address is in the book. 248 func (a *addrBook) HasAddress(addr *p2p.NetAddress) bool { 249 a.mtx.Lock() 250 defer a.mtx.Unlock() 251 252 ka := a.addrLookup[addr.ID] 253 return ka != nil 254 } 255 256 // NeedMoreAddrs implements AddrBook - returns true if there are not have enough addresses in the book. 257 func (a *addrBook) NeedMoreAddrs() bool { 258 return a.Size() < needAddressThreshold 259 } 260 261 // Empty implements AddrBook - returns true if there are no addresses in the address book. 262 // Does not count the peer appearing in its own address book, or private peers. 263 func (a *addrBook) Empty() bool { 264 return a.Size() == 0 265 } 266 267 // PickAddress implements AddrBook. It picks an address to connect to. 268 // The address is picked randomly from an old or new bucket according 269 // to the biasTowardsNewAddrs argument, which must be between [0, 100] (or else is truncated to that range) 270 // and determines how biased we are to pick an address from a new bucket. 271 // PickAddress returns nil if the AddrBook is empty or if we try to pick 272 // from an empty bucket. 273 func (a *addrBook) PickAddress(biasTowardsNewAddrs int) *p2p.NetAddress { 274 a.mtx.Lock() 275 defer a.mtx.Unlock() 276 277 bookSize := a.size() 278 if bookSize <= 0 { 279 if bookSize < 0 { 280 panic(fmt.Sprintf("Addrbook size %d (new: %d + old: %d) is less than 0", a.nNew+a.nOld, a.nNew, a.nOld)) 281 } 282 return nil 283 } 284 if biasTowardsNewAddrs > 100 { 285 biasTowardsNewAddrs = 100 286 } 287 if biasTowardsNewAddrs < 0 { 288 biasTowardsNewAddrs = 0 289 } 290 291 // Bias between new and old addresses. 292 oldCorrelation := math.Sqrt(float64(a.nOld)) * (100.0 - float64(biasTowardsNewAddrs)) 293 newCorrelation := math.Sqrt(float64(a.nNew)) * float64(biasTowardsNewAddrs) 294 295 // pick a random peer from a random bucket 296 var bucket map[string]*knownAddress 297 pickFromOldBucket := (newCorrelation+oldCorrelation)*a.rand.Float64() < oldCorrelation 298 if (pickFromOldBucket && a.nOld == 0) || 299 (!pickFromOldBucket && a.nNew == 0) { 300 return nil 301 } 302 // loop until we pick a random non-empty bucket 303 for len(bucket) == 0 { 304 if pickFromOldBucket { 305 bucket = a.bucketsOld[a.rand.Intn(len(a.bucketsOld))] 306 } else { 307 bucket = a.bucketsNew[a.rand.Intn(len(a.bucketsNew))] 308 } 309 } 310 // pick a random index and loop over the map to return that index 311 randIndex := a.rand.Intn(len(bucket)) 312 for _, ka := range bucket { 313 if randIndex == 0 { 314 return ka.Addr 315 } 316 randIndex-- 317 } 318 return nil 319 } 320 321 // MarkGood implements AddrBook - it marks the peer as good and 322 // moves it into an "old" bucket. 323 func (a *addrBook) MarkGood(id p2p.ID) { 324 a.mtx.Lock() 325 defer a.mtx.Unlock() 326 327 ka := a.addrLookup[id] 328 if ka == nil { 329 return 330 } 331 ka.markGood() 332 if ka.isNew() { 333 if err := a.moveToOld(ka); err != nil { 334 a.Logger.Error("Error moving address to old", "err", err) 335 } 336 } 337 } 338 339 // MarkAttempt implements AddrBook - it marks that an attempt was made to connect to the address. 340 func (a *addrBook) MarkAttempt(addr *p2p.NetAddress) { 341 a.mtx.Lock() 342 defer a.mtx.Unlock() 343 344 ka := a.addrLookup[addr.ID] 345 if ka == nil { 346 return 347 } 348 ka.markAttempt() 349 } 350 351 // MarkBad implements AddrBook. Kicks address out from book, places 352 // the address in the badPeers pool. 353 func (a *addrBook) MarkBad(addr *p2p.NetAddress, banTime time.Duration) { 354 a.mtx.Lock() 355 defer a.mtx.Unlock() 356 357 if a.addBadPeer(addr, banTime) { 358 a.removeAddress(addr) 359 } 360 } 361 362 // ReinstateBadPeers removes bad peers from ban list and places them into a new 363 // bucket. 364 func (a *addrBook) ReinstateBadPeers() { 365 a.mtx.Lock() 366 defer a.mtx.Unlock() 367 368 for _, ka := range a.badPeers { 369 if ka.isBanned() { 370 continue 371 } 372 373 bucket, err := a.calcNewBucket(ka.Addr, ka.Src) 374 if err != nil { 375 a.Logger.Error("Failed to calculate new bucket (bad peer won't be reinstantiated)", 376 "addr", ka.Addr, "err", err) 377 continue 378 } 379 380 if err := a.addToNewBucket(ka, bucket); err != nil { 381 a.Logger.Error("Error adding peer to new bucket", "err", err) 382 } 383 delete(a.badPeers, ka.ID()) 384 385 a.Logger.Info("Reinstated address", "addr", ka.Addr) 386 } 387 } 388 389 // GetSelection implements AddrBook. 390 // It randomly selects some addresses (old & new). Suitable for peer-exchange protocols. 391 // Must never return a nil address. 392 func (a *addrBook) GetSelection() []*p2p.NetAddress { 393 a.mtx.Lock() 394 defer a.mtx.Unlock() 395 396 bookSize := a.size() 397 if bookSize <= 0 { 398 if bookSize < 0 { 399 panic(fmt.Sprintf("Addrbook size %d (new: %d + old: %d) is less than 0", a.nNew+a.nOld, a.nNew, a.nOld)) 400 } 401 return nil 402 } 403 404 numAddresses := tmmath.MaxInt( 405 tmmath.MinInt(minGetSelection, bookSize), 406 bookSize*getSelectionPercent/100) 407 numAddresses = tmmath.MinInt(maxGetSelection, numAddresses) 408 409 // XXX: instead of making a list of all addresses, shuffling, and slicing a random chunk, 410 // could we just select a random numAddresses of indexes? 411 allAddr := make([]*p2p.NetAddress, bookSize) 412 i := 0 413 for _, ka := range a.addrLookup { 414 allAddr[i] = ka.Addr 415 i++ 416 } 417 418 // Fisher-Yates shuffle the array. We only need to do the first 419 // `numAddresses' since we are throwing the rest. 420 for i := 0; i < numAddresses; i++ { 421 // pick a number between current index and the end 422 j := tmrand.Intn(len(allAddr)-i) + i 423 allAddr[i], allAddr[j] = allAddr[j], allAddr[i] 424 } 425 426 // slice off the limit we are willing to share. 427 return allAddr[:numAddresses] 428 } 429 430 func percentageOfNum(p, n int) int { 431 return int(math.Round((float64(p) / float64(100)) * float64(n))) 432 } 433 434 // GetSelectionWithBias implements AddrBook. 435 // It randomly selects some addresses (old & new). Suitable for peer-exchange protocols. 436 // Must never return a nil address. 437 // 438 // Each address is picked randomly from an old or new bucket according to the 439 // biasTowardsNewAddrs argument, which must be between [0, 100] (or else is truncated to 440 // that range) and determines how biased we are to pick an address from a new 441 // bucket. 442 func (a *addrBook) GetSelectionWithBias(biasTowardsNewAddrs int) []*p2p.NetAddress { 443 a.mtx.Lock() 444 defer a.mtx.Unlock() 445 446 bookSize := a.size() 447 if bookSize <= 0 { 448 if bookSize < 0 { 449 panic(fmt.Sprintf("Addrbook size %d (new: %d + old: %d) is less than 0", a.nNew+a.nOld, a.nNew, a.nOld)) 450 } 451 return nil 452 } 453 454 if biasTowardsNewAddrs > 100 { 455 biasTowardsNewAddrs = 100 456 } 457 if biasTowardsNewAddrs < 0 { 458 biasTowardsNewAddrs = 0 459 } 460 461 numAddresses := tmmath.MaxInt( 462 tmmath.MinInt(minGetSelection, bookSize), 463 bookSize*getSelectionPercent/100) 464 numAddresses = tmmath.MinInt(maxGetSelection, numAddresses) 465 466 // number of new addresses that, if possible, should be in the beginning of the selection 467 // if there are no enough old addrs, will choose new addr instead. 468 numRequiredNewAdd := tmmath.MaxInt(percentageOfNum(biasTowardsNewAddrs, numAddresses), numAddresses-a.nOld) 469 selection := a.randomPickAddresses(bucketTypeNew, numRequiredNewAdd) 470 selection = append(selection, a.randomPickAddresses(bucketTypeOld, numAddresses-len(selection))...) 471 return selection 472 } 473 474 //------------------------------------------------ 475 476 // Size returns the number of addresses in the book. 477 func (a *addrBook) Size() int { 478 a.mtx.Lock() 479 defer a.mtx.Unlock() 480 481 return a.size() 482 } 483 484 func (a *addrBook) size() int { 485 return a.nNew + a.nOld 486 } 487 488 //---------------------------------------------------------- 489 490 // Save persists the address book to disk. 491 func (a *addrBook) Save() { 492 a.saveToFile(a.filePath) // thread safe 493 } 494 495 func (a *addrBook) saveRoutine() { 496 defer a.wg.Done() 497 498 saveFileTicker := time.NewTicker(dumpAddressInterval) 499 out: 500 for { 501 select { 502 case <-saveFileTicker.C: 503 a.saveToFile(a.filePath) 504 case <-a.Quit(): 505 break out 506 } 507 } 508 saveFileTicker.Stop() 509 a.saveToFile(a.filePath) 510 } 511 512 //---------------------------------------------------------- 513 514 func (a *addrBook) getBucket(bucketType byte, bucketIdx int) map[string]*knownAddress { 515 switch bucketType { 516 case bucketTypeNew: 517 return a.bucketsNew[bucketIdx] 518 case bucketTypeOld: 519 return a.bucketsOld[bucketIdx] 520 default: 521 panic("Invalid bucket type") 522 } 523 } 524 525 // Adds ka to new bucket. Returns false if it couldn't do it cuz buckets full. 526 // NOTE: currently it always returns true. 527 func (a *addrBook) addToNewBucket(ka *knownAddress, bucketIdx int) error { 528 // Consistency check to ensure we don't add an already known address 529 if ka.isOld() { 530 return errAddrBookOldAddressNewBucket{ka.Addr, bucketIdx} 531 } 532 533 addrStr := ka.Addr.String() 534 bucket := a.getBucket(bucketTypeNew, bucketIdx) 535 536 // Already exists? 537 if _, ok := bucket[addrStr]; ok { 538 return nil 539 } 540 541 // Enforce max addresses. 542 if len(bucket) > newBucketSize { 543 a.Logger.Info("new bucket is full, expiring new") 544 a.expireNew(bucketIdx) 545 } 546 547 // Add to bucket. 548 bucket[addrStr] = ka 549 // increment nNew if the peer doesnt already exist in a bucket 550 if ka.addBucketRef(bucketIdx) == 1 { 551 a.nNew++ 552 } 553 554 // Add it to addrLookup 555 a.addrLookup[ka.ID()] = ka 556 return nil 557 } 558 559 // Adds ka to old bucket. Returns false if it couldn't do it cuz buckets full. 560 func (a *addrBook) addToOldBucket(ka *knownAddress, bucketIdx int) bool { 561 // Sanity check 562 if ka.isNew() { 563 a.Logger.Error(fmt.Sprintf("Cannot add new address to old bucket: %v", ka)) 564 return false 565 } 566 if len(ka.Buckets) != 0 { 567 a.Logger.Error(fmt.Sprintf("Cannot add already old address to another old bucket: %v", ka)) 568 return false 569 } 570 571 addrStr := ka.Addr.String() 572 bucket := a.getBucket(bucketTypeOld, bucketIdx) 573 574 // Already exists? 575 if _, ok := bucket[addrStr]; ok { 576 return true 577 } 578 579 // Enforce max addresses. 580 if len(bucket) > oldBucketSize { 581 return false 582 } 583 584 // Add to bucket. 585 bucket[addrStr] = ka 586 if ka.addBucketRef(bucketIdx) == 1 { 587 a.nOld++ 588 } 589 590 // Ensure in addrLookup 591 a.addrLookup[ka.ID()] = ka 592 593 return true 594 } 595 596 func (a *addrBook) removeFromBucket(ka *knownAddress, bucketType byte, bucketIdx int) { 597 if ka.BucketType != bucketType { 598 a.Logger.Error(fmt.Sprintf("Bucket type mismatch: %v", ka)) 599 return 600 } 601 bucket := a.getBucket(bucketType, bucketIdx) 602 delete(bucket, ka.Addr.String()) 603 if ka.removeBucketRef(bucketIdx) == 0 { 604 if bucketType == bucketTypeNew { 605 a.nNew-- 606 } else { 607 a.nOld-- 608 } 609 delete(a.addrLookup, ka.ID()) 610 } 611 } 612 613 func (a *addrBook) removeFromAllBuckets(ka *knownAddress) { 614 for _, bucketIdx := range ka.Buckets { 615 bucket := a.getBucket(ka.BucketType, bucketIdx) 616 delete(bucket, ka.Addr.String()) 617 } 618 ka.Buckets = nil 619 if ka.BucketType == bucketTypeNew { 620 a.nNew-- 621 } else { 622 a.nOld-- 623 } 624 delete(a.addrLookup, ka.ID()) 625 } 626 627 //---------------------------------------------------------- 628 629 func (a *addrBook) pickOldest(bucketType byte, bucketIdx int) *knownAddress { 630 bucket := a.getBucket(bucketType, bucketIdx) 631 var oldest *knownAddress 632 for _, ka := range bucket { 633 if oldest == nil || ka.LastAttempt.Before(oldest.LastAttempt) { 634 oldest = ka 635 } 636 } 637 return oldest 638 } 639 640 // adds the address to a "new" bucket. if its already in one, 641 // it only adds it probabilistically 642 func (a *addrBook) addAddress(addr, src *p2p.NetAddress) error { 643 if addr == nil || src == nil { 644 return ErrAddrBookNilAddr{addr, src} 645 } 646 647 if err := addr.Valid(); err != nil { 648 return ErrAddrBookInvalidAddr{Addr: addr, AddrErr: err} 649 } 650 651 if _, ok := a.badPeers[addr.ID]; ok { 652 return ErrAddressBanned{addr} 653 } 654 655 if _, ok := a.privateIDs[addr.ID]; ok { 656 return ErrAddrBookPrivate{addr} 657 } 658 659 if _, ok := a.privateIDs[src.ID]; ok { 660 return ErrAddrBookPrivateSrc{src} 661 } 662 663 // TODO: we should track ourAddrs by ID and by IP:PORT and refuse both. 664 if _, ok := a.ourAddrs[addr.String()]; ok { 665 return ErrAddrBookSelf{addr} 666 } 667 668 if a.routabilityStrict && !addr.Routable() { 669 return ErrAddrBookNonRoutable{addr} 670 } 671 672 ka := a.addrLookup[addr.ID] 673 if ka != nil { 674 // If its already old and the address ID's are the same, ignore it. 675 // Thereby avoiding issues with a node on the network attempting to change 676 // the IP of a known node ID. (Which could yield an eclipse attack on the node) 677 if ka.isOld() && ka.Addr.ID == addr.ID { 678 return nil 679 } 680 // Already in max new buckets. 681 if len(ka.Buckets) == maxNewBucketsPerAddress { 682 return nil 683 } 684 // The more entries we have, the less likely we are to add more. 685 factor := int32(2 * len(ka.Buckets)) 686 if a.rand.Int31n(factor) != 0 { 687 return nil 688 } 689 } else { 690 ka = newKnownAddress(addr, src) 691 } 692 693 bucket, err := a.calcNewBucket(addr, src) 694 if err != nil { 695 return err 696 } 697 return a.addToNewBucket(ka, bucket) 698 } 699 700 func (a *addrBook) randomPickAddresses(bucketType byte, num int) []*p2p.NetAddress { 701 var buckets []map[string]*knownAddress 702 switch bucketType { 703 case bucketTypeNew: 704 buckets = a.bucketsNew 705 case bucketTypeOld: 706 buckets = a.bucketsOld 707 default: 708 panic("unexpected bucketType") 709 } 710 total := 0 711 for _, bucket := range buckets { 712 total += len(bucket) 713 } 714 addresses := make([]*knownAddress, 0, total) 715 for _, bucket := range buckets { 716 for _, ka := range bucket { 717 addresses = append(addresses, ka) 718 } 719 } 720 selection := make([]*p2p.NetAddress, 0, num) 721 chosenSet := make(map[string]bool, num) 722 rand.Shuffle(total, func(i, j int) { 723 addresses[i], addresses[j] = addresses[j], addresses[i] 724 }) 725 for _, addr := range addresses { 726 if chosenSet[addr.Addr.String()] { 727 continue 728 } 729 chosenSet[addr.Addr.String()] = true 730 selection = append(selection, addr.Addr) 731 if len(selection) >= num { 732 return selection 733 } 734 } 735 return selection 736 } 737 738 // Make space in the new buckets by expiring the really bad entries. 739 // If no bad entries are available we remove the oldest. 740 func (a *addrBook) expireNew(bucketIdx int) { 741 for addrStr, ka := range a.bucketsNew[bucketIdx] { 742 // If an entry is bad, throw it away 743 if ka.isBad() { 744 a.Logger.Info("expire new", "msg", log.NewLazySprintf("expiring bad address %v", addrStr)) 745 a.removeFromBucket(ka, bucketTypeNew, bucketIdx) 746 return 747 } 748 } 749 750 // If we haven't thrown out a bad entry, throw out the oldest entry 751 oldest := a.pickOldest(bucketTypeNew, bucketIdx) 752 a.removeFromBucket(oldest, bucketTypeNew, bucketIdx) 753 } 754 755 // Promotes an address from new to old. If the destination bucket is full, 756 // demote the oldest one to a "new" bucket. 757 // TODO: Demote more probabilistically? 758 func (a *addrBook) moveToOld(ka *knownAddress) error { 759 // Sanity check 760 if ka.isOld() { 761 a.Logger.Error(fmt.Sprintf("Cannot promote address that is already old %v", ka)) 762 return nil 763 } 764 if len(ka.Buckets) == 0 { 765 a.Logger.Error(fmt.Sprintf("Cannot promote address that isn't in any new buckets %v", ka)) 766 return nil 767 } 768 769 // Remove from all (new) buckets. 770 a.removeFromAllBuckets(ka) 771 // It's officially old now. 772 ka.BucketType = bucketTypeOld 773 774 // Try to add it to its oldBucket destination. 775 oldBucketIdx, err := a.calcOldBucket(ka.Addr) 776 if err != nil { 777 return err 778 } 779 added := a.addToOldBucket(ka, oldBucketIdx) 780 if !added { 781 // No room; move the oldest to a new bucket 782 oldest := a.pickOldest(bucketTypeOld, oldBucketIdx) 783 a.removeFromBucket(oldest, bucketTypeOld, oldBucketIdx) 784 newBucketIdx, err := a.calcNewBucket(oldest.Addr, oldest.Src) 785 if err != nil { 786 return err 787 } 788 if err := a.addToNewBucket(oldest, newBucketIdx); err != nil { 789 a.Logger.Error("Error adding peer to old bucket", "err", err) 790 } 791 792 // Finally, add our ka to old bucket again. 793 added = a.addToOldBucket(ka, oldBucketIdx) 794 if !added { 795 a.Logger.Error(fmt.Sprintf("Could not re-add ka %v to oldBucketIdx %v", ka, oldBucketIdx)) 796 } 797 } 798 return nil 799 } 800 801 func (a *addrBook) removeAddress(addr *p2p.NetAddress) { 802 ka := a.addrLookup[addr.ID] 803 if ka == nil { 804 return 805 } 806 a.Logger.Info("Remove address from book", "addr", addr) 807 a.removeFromAllBuckets(ka) 808 } 809 810 func (a *addrBook) addBadPeer(addr *p2p.NetAddress, banTime time.Duration) bool { 811 // check it exists in addrbook 812 ka := a.addrLookup[addr.ID] 813 // check address is not already there 814 if ka == nil { 815 return false 816 } 817 818 if _, alreadyBadPeer := a.badPeers[addr.ID]; !alreadyBadPeer { 819 // add to bad peer list 820 ka.ban(banTime) 821 a.badPeers[addr.ID] = ka 822 a.Logger.Info("Add address to blacklist", "addr", addr) 823 } 824 return true 825 } 826 827 //--------------------------------------------------------------------- 828 // calculate bucket placements 829 830 // hash(key + sourcegroup + int64(hash(key + group + sourcegroup)) % bucket_per_group) % num_new_buckets 831 func (a *addrBook) calcNewBucket(addr, src *p2p.NetAddress) (int, error) { 832 data1 := []byte{} 833 data1 = append(data1, []byte(a.key)...) 834 data1 = append(data1, []byte(a.groupKey(addr))...) 835 data1 = append(data1, []byte(a.groupKey(src))...) 836 hash1, err := a.hash(data1) 837 if err != nil { 838 return 0, err 839 } 840 hash64 := binary.BigEndian.Uint64(hash1) 841 hash64 %= newBucketsPerGroup 842 var hashbuf [8]byte 843 binary.BigEndian.PutUint64(hashbuf[:], hash64) 844 data2 := []byte{} 845 data2 = append(data2, []byte(a.key)...) 846 data2 = append(data2, a.groupKey(src)...) 847 data2 = append(data2, hashbuf[:]...) 848 849 hash2, err := a.hash(data2) 850 if err != nil { 851 return 0, err 852 } 853 result := int(binary.BigEndian.Uint64(hash2) % newBucketCount) 854 return result, nil 855 } 856 857 // hash(key + group + int64(hash(key + addr)) % buckets_per_group) % num_old_buckets 858 func (a *addrBook) calcOldBucket(addr *p2p.NetAddress) (int, error) { 859 data1 := []byte{} 860 data1 = append(data1, []byte(a.key)...) 861 data1 = append(data1, []byte(addr.String())...) 862 hash1, err := a.hash(data1) 863 if err != nil { 864 return 0, err 865 } 866 hash64 := binary.BigEndian.Uint64(hash1) 867 hash64 %= oldBucketsPerGroup 868 var hashbuf [8]byte 869 binary.BigEndian.PutUint64(hashbuf[:], hash64) 870 data2 := []byte{} 871 data2 = append(data2, []byte(a.key)...) 872 data2 = append(data2, a.groupKey(addr)...) 873 data2 = append(data2, hashbuf[:]...) 874 875 hash2, err := a.hash(data2) 876 if err != nil { 877 return 0, err 878 } 879 result := int(binary.BigEndian.Uint64(hash2) % oldBucketCount) 880 return result, nil 881 } 882 883 // Return a string representing the network group of this address. 884 // This is the /16 for IPv4 (e.g. 1.2.0.0), the /32 (/36 for he.net) for IPv6, the string 885 // "local" for a local address and the string "unroutable" for an unroutable 886 // address. 887 func (a *addrBook) groupKey(na *p2p.NetAddress) string { 888 return groupKeyFor(na, a.routabilityStrict) 889 } 890 891 func groupKeyFor(na *p2p.NetAddress, routabilityStrict bool) string { 892 if routabilityStrict && na.Local() { 893 return "local" 894 } 895 if routabilityStrict && !na.Routable() { 896 return "unroutable" 897 } 898 899 if ipv4 := na.IP.To4(); ipv4 != nil { 900 return na.IP.Mask(net.CIDRMask(16, 32)).String() 901 } 902 903 if na.RFC6145() || na.RFC6052() { 904 // last four bytes are the ip address 905 ip := na.IP[12:16] 906 return ip.Mask(net.CIDRMask(16, 32)).String() 907 } 908 909 if na.RFC3964() { 910 ip := na.IP[2:6] 911 return ip.Mask(net.CIDRMask(16, 32)).String() 912 } 913 914 if na.RFC4380() { 915 // teredo tunnels have the last 4 bytes as the v4 address XOR 916 // 0xff. 917 ip := net.IP(make([]byte, 4)) 918 for i, byte := range na.IP[12:16] { 919 ip[i] = byte ^ 0xff 920 } 921 return ip.Mask(net.CIDRMask(16, 32)).String() 922 } 923 924 if na.OnionCatTor() { 925 // group is keyed off the first 4 bits of the actual onion key. 926 return fmt.Sprintf("tor:%d", na.IP[6]&((1<<4)-1)) 927 } 928 929 // OK, so now we know ourselves to be a IPv6 address. 930 // bitcoind uses /32 for everything, except for Hurricane Electric's 931 // (he.net) IP range, which it uses /36 for. 932 bits := 32 933 heNet := &net.IPNet{IP: net.ParseIP("2001:470::"), Mask: net.CIDRMask(32, 128)} 934 if heNet.Contains(na.IP) { 935 bits = 36 936 } 937 ipv6Mask := net.CIDRMask(bits, 128) 938 return na.IP.Mask(ipv6Mask).String() 939 } 940 941 func (a *addrBook) hash(b []byte) ([]byte, error) { 942 hasher, err := highwayhash.New64(a.hashKey) 943 if err != nil { 944 return nil, err 945 } 946 hasher.Write(b) 947 return hasher.Sum(nil), nil 948 }