tx_pool_test.go 31 KB

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  1. // Copyright 2015 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. package core
  17. import (
  18. "crypto/ecdsa"
  19. "math/big"
  20. "math/rand"
  21. "testing"
  22. "time"
  23. "github.com/ethereum/go-ethereum/common"
  24. "github.com/ethereum/go-ethereum/core/state"
  25. "github.com/ethereum/go-ethereum/core/types"
  26. "github.com/ethereum/go-ethereum/crypto"
  27. "github.com/ethereum/go-ethereum/ethdb"
  28. "github.com/ethereum/go-ethereum/event"
  29. )
  30. func transaction(nonce uint64, gaslimit *big.Int, key *ecdsa.PrivateKey) *types.Transaction {
  31. tx, _ := types.SignTx(types.NewTransaction(nonce, common.Address{}, big.NewInt(100), gaslimit, big.NewInt(1), nil), types.HomesteadSigner{}, key)
  32. return tx
  33. }
  34. func setupTxPool() (*TxPool, *ecdsa.PrivateKey) {
  35. db, _ := ethdb.NewMemDatabase()
  36. statedb, _ := state.New(common.Hash{}, db)
  37. key, _ := crypto.GenerateKey()
  38. newPool := NewTxPool(testChainConfig(), new(event.TypeMux), func() (*state.StateDB, error) { return statedb, nil }, func() *big.Int { return big.NewInt(1000000) })
  39. newPool.resetState()
  40. return newPool, key
  41. }
  42. func deriveSender(tx *types.Transaction) (common.Address, error) {
  43. return types.Sender(types.HomesteadSigner{}, tx)
  44. }
  45. // This test simulates a scenario where a new block is imported during a
  46. // state reset and tests whether the pending state is in sync with the
  47. // block head event that initiated the resetState().
  48. func TestStateChangeDuringPoolReset(t *testing.T) {
  49. var (
  50. db, _ = ethdb.NewMemDatabase()
  51. key, _ = crypto.GenerateKey()
  52. address = crypto.PubkeyToAddress(key.PublicKey)
  53. mux = new(event.TypeMux)
  54. statedb, _ = state.New(common.Hash{}, db)
  55. trigger = false
  56. )
  57. // setup pool with 2 transaction in it
  58. statedb.SetBalance(address, new(big.Int).Mul(common.Big1, common.Ether))
  59. tx0 := transaction(0, big.NewInt(100000), key)
  60. tx1 := transaction(1, big.NewInt(100000), key)
  61. // stateFunc is used multiple times to reset the pending state.
  62. // when simulate is true it will create a state that indicates
  63. // that tx0 and tx1 are included in the chain.
  64. stateFunc := func() (*state.StateDB, error) {
  65. // delay "state change" by one. The tx pool fetches the
  66. // state multiple times and by delaying it a bit we simulate
  67. // a state change between those fetches.
  68. stdb := statedb
  69. if trigger {
  70. statedb, _ = state.New(common.Hash{}, db)
  71. // simulate that the new head block included tx0 and tx1
  72. statedb.SetNonce(address, 2)
  73. statedb.SetBalance(address, new(big.Int).Mul(common.Big1, common.Ether))
  74. trigger = false
  75. }
  76. return stdb, nil
  77. }
  78. gasLimitFunc := func() *big.Int { return big.NewInt(1000000000) }
  79. txpool := NewTxPool(testChainConfig(), mux, stateFunc, gasLimitFunc)
  80. txpool.resetState()
  81. nonce := txpool.State().GetNonce(address)
  82. if nonce != 0 {
  83. t.Fatalf("Invalid nonce, want 0, got %d", nonce)
  84. }
  85. txpool.AddBatch(types.Transactions{tx0, tx1})
  86. nonce = txpool.State().GetNonce(address)
  87. if nonce != 2 {
  88. t.Fatalf("Invalid nonce, want 2, got %d", nonce)
  89. }
  90. // trigger state change in the background
  91. trigger = true
  92. txpool.resetState()
  93. pendingTx, err := txpool.Pending()
  94. if err != nil {
  95. t.Fatalf("Could not fetch pending transactions: %v", err)
  96. }
  97. for addr, txs := range pendingTx {
  98. t.Logf("%0x: %d\n", addr, len(txs))
  99. }
  100. nonce = txpool.State().GetNonce(address)
  101. if nonce != 2 {
  102. t.Fatalf("Invalid nonce, want 2, got %d", nonce)
  103. }
  104. }
  105. func TestInvalidTransactions(t *testing.T) {
  106. pool, key := setupTxPool()
  107. tx := transaction(0, big.NewInt(100), key)
  108. from, _ := deriveSender(tx)
  109. currentState, _ := pool.currentState()
  110. currentState.AddBalance(from, big.NewInt(1))
  111. if err := pool.Add(tx); err != ErrInsufficientFunds {
  112. t.Error("expected", ErrInsufficientFunds)
  113. }
  114. balance := new(big.Int).Add(tx.Value(), new(big.Int).Mul(tx.Gas(), tx.GasPrice()))
  115. currentState.AddBalance(from, balance)
  116. if err := pool.Add(tx); err != ErrIntrinsicGas {
  117. t.Error("expected", ErrIntrinsicGas, "got", err)
  118. }
  119. currentState.SetNonce(from, 1)
  120. currentState.AddBalance(from, big.NewInt(0xffffffffffffff))
  121. tx = transaction(0, big.NewInt(100000), key)
  122. if err := pool.Add(tx); err != ErrNonce {
  123. t.Error("expected", ErrNonce)
  124. }
  125. tx = transaction(1, big.NewInt(100000), key)
  126. pool.minGasPrice = big.NewInt(1000)
  127. if err := pool.Add(tx); err != ErrCheap {
  128. t.Error("expected", ErrCheap, "got", err)
  129. }
  130. pool.SetLocal(tx)
  131. if err := pool.Add(tx); err != nil {
  132. t.Error("expected", nil, "got", err)
  133. }
  134. }
  135. func TestTransactionQueue(t *testing.T) {
  136. pool, key := setupTxPool()
  137. tx := transaction(0, big.NewInt(100), key)
  138. from, _ := deriveSender(tx)
  139. currentState, _ := pool.currentState()
  140. currentState.AddBalance(from, big.NewInt(1000))
  141. pool.resetState()
  142. pool.enqueueTx(tx.Hash(), tx)
  143. pool.promoteExecutables(currentState)
  144. if len(pool.pending) != 1 {
  145. t.Error("expected valid txs to be 1 is", len(pool.pending))
  146. }
  147. tx = transaction(1, big.NewInt(100), key)
  148. from, _ = deriveSender(tx)
  149. currentState.SetNonce(from, 2)
  150. pool.enqueueTx(tx.Hash(), tx)
  151. pool.promoteExecutables(currentState)
  152. if _, ok := pool.pending[from].txs.items[tx.Nonce()]; ok {
  153. t.Error("expected transaction to be in tx pool")
  154. }
  155. if len(pool.queue) > 0 {
  156. t.Error("expected transaction queue to be empty. is", len(pool.queue))
  157. }
  158. pool, key = setupTxPool()
  159. tx1 := transaction(0, big.NewInt(100), key)
  160. tx2 := transaction(10, big.NewInt(100), key)
  161. tx3 := transaction(11, big.NewInt(100), key)
  162. from, _ = deriveSender(tx1)
  163. currentState, _ = pool.currentState()
  164. currentState.AddBalance(from, big.NewInt(1000))
  165. pool.resetState()
  166. pool.enqueueTx(tx1.Hash(), tx1)
  167. pool.enqueueTx(tx2.Hash(), tx2)
  168. pool.enqueueTx(tx3.Hash(), tx3)
  169. pool.promoteExecutables(currentState)
  170. if len(pool.pending) != 1 {
  171. t.Error("expected tx pool to be 1, got", len(pool.pending))
  172. }
  173. if pool.queue[from].Len() != 2 {
  174. t.Error("expected len(queue) == 2, got", pool.queue[from].Len())
  175. }
  176. }
  177. func TestRemoveTx(t *testing.T) {
  178. pool, key := setupTxPool()
  179. tx := transaction(0, big.NewInt(100), key)
  180. from, _ := deriveSender(tx)
  181. currentState, _ := pool.currentState()
  182. currentState.AddBalance(from, big.NewInt(1))
  183. pool.enqueueTx(tx.Hash(), tx)
  184. pool.promoteTx(from, tx.Hash(), tx)
  185. if len(pool.queue) != 1 {
  186. t.Error("expected queue to be 1, got", len(pool.queue))
  187. }
  188. if len(pool.pending) != 1 {
  189. t.Error("expected pending to be 1, got", len(pool.pending))
  190. }
  191. pool.Remove(tx.Hash())
  192. if len(pool.queue) > 0 {
  193. t.Error("expected queue to be 0, got", len(pool.queue))
  194. }
  195. if len(pool.pending) > 0 {
  196. t.Error("expected pending to be 0, got", len(pool.pending))
  197. }
  198. }
  199. func TestNegativeValue(t *testing.T) {
  200. pool, key := setupTxPool()
  201. tx, _ := types.SignTx(types.NewTransaction(0, common.Address{}, big.NewInt(-1), big.NewInt(100), big.NewInt(1), nil), types.HomesteadSigner{}, key)
  202. from, _ := deriveSender(tx)
  203. currentState, _ := pool.currentState()
  204. currentState.AddBalance(from, big.NewInt(1))
  205. if err := pool.Add(tx); err != ErrNegativeValue {
  206. t.Error("expected", ErrNegativeValue, "got", err)
  207. }
  208. }
  209. func TestTransactionChainFork(t *testing.T) {
  210. pool, key := setupTxPool()
  211. addr := crypto.PubkeyToAddress(key.PublicKey)
  212. resetState := func() {
  213. db, _ := ethdb.NewMemDatabase()
  214. statedb, _ := state.New(common.Hash{}, db)
  215. pool.currentState = func() (*state.StateDB, error) { return statedb, nil }
  216. currentState, _ := pool.currentState()
  217. currentState.AddBalance(addr, big.NewInt(100000000000000))
  218. pool.resetState()
  219. }
  220. resetState()
  221. tx := transaction(0, big.NewInt(100000), key)
  222. if err := pool.add(tx); err != nil {
  223. t.Error("didn't expect error", err)
  224. }
  225. pool.RemoveBatch([]*types.Transaction{tx})
  226. // reset the pool's internal state
  227. resetState()
  228. if err := pool.add(tx); err != nil {
  229. t.Error("didn't expect error", err)
  230. }
  231. }
  232. func TestTransactionDoubleNonce(t *testing.T) {
  233. pool, key := setupTxPool()
  234. addr := crypto.PubkeyToAddress(key.PublicKey)
  235. resetState := func() {
  236. db, _ := ethdb.NewMemDatabase()
  237. statedb, _ := state.New(common.Hash{}, db)
  238. pool.currentState = func() (*state.StateDB, error) { return statedb, nil }
  239. currentState, _ := pool.currentState()
  240. currentState.AddBalance(addr, big.NewInt(100000000000000))
  241. pool.resetState()
  242. }
  243. resetState()
  244. signer := types.HomesteadSigner{}
  245. tx1, _ := types.SignTx(types.NewTransaction(0, common.Address{}, big.NewInt(100), big.NewInt(100000), big.NewInt(1), nil), signer, key)
  246. tx2, _ := types.SignTx(types.NewTransaction(0, common.Address{}, big.NewInt(100), big.NewInt(1000000), big.NewInt(2), nil), signer, key)
  247. tx3, _ := types.SignTx(types.NewTransaction(0, common.Address{}, big.NewInt(100), big.NewInt(1000000), big.NewInt(1), nil), signer, key)
  248. // Add the first two transaction, ensure higher priced stays only
  249. if err := pool.add(tx1); err != nil {
  250. t.Error("didn't expect error", err)
  251. }
  252. if err := pool.add(tx2); err != nil {
  253. t.Error("didn't expect error", err)
  254. }
  255. state, _ := pool.currentState()
  256. pool.promoteExecutables(state)
  257. if pool.pending[addr].Len() != 1 {
  258. t.Error("expected 1 pending transactions, got", pool.pending[addr].Len())
  259. }
  260. if tx := pool.pending[addr].txs.items[0]; tx.Hash() != tx2.Hash() {
  261. t.Errorf("transaction mismatch: have %x, want %x", tx.Hash(), tx2.Hash())
  262. }
  263. // Add the thid transaction and ensure it's not saved (smaller price)
  264. if err := pool.add(tx3); err != nil {
  265. t.Error("didn't expect error", err)
  266. }
  267. pool.promoteExecutables(state)
  268. if pool.pending[addr].Len() != 1 {
  269. t.Error("expected 1 pending transactions, got", pool.pending[addr].Len())
  270. }
  271. if tx := pool.pending[addr].txs.items[0]; tx.Hash() != tx2.Hash() {
  272. t.Errorf("transaction mismatch: have %x, want %x", tx.Hash(), tx2.Hash())
  273. }
  274. // Ensure the total transaction count is correct
  275. if len(pool.all) != 1 {
  276. t.Error("expected 1 total transactions, got", len(pool.all))
  277. }
  278. }
  279. func TestMissingNonce(t *testing.T) {
  280. pool, key := setupTxPool()
  281. addr := crypto.PubkeyToAddress(key.PublicKey)
  282. currentState, _ := pool.currentState()
  283. currentState.AddBalance(addr, big.NewInt(100000000000000))
  284. tx := transaction(1, big.NewInt(100000), key)
  285. if err := pool.add(tx); err != nil {
  286. t.Error("didn't expect error", err)
  287. }
  288. if len(pool.pending) != 0 {
  289. t.Error("expected 0 pending transactions, got", len(pool.pending))
  290. }
  291. if pool.queue[addr].Len() != 1 {
  292. t.Error("expected 1 queued transaction, got", pool.queue[addr].Len())
  293. }
  294. if len(pool.all) != 1 {
  295. t.Error("expected 1 total transactions, got", len(pool.all))
  296. }
  297. }
  298. func TestNonceRecovery(t *testing.T) {
  299. const n = 10
  300. pool, key := setupTxPool()
  301. addr := crypto.PubkeyToAddress(key.PublicKey)
  302. currentState, _ := pool.currentState()
  303. currentState.SetNonce(addr, n)
  304. currentState.AddBalance(addr, big.NewInt(100000000000000))
  305. pool.resetState()
  306. tx := transaction(n, big.NewInt(100000), key)
  307. if err := pool.Add(tx); err != nil {
  308. t.Error(err)
  309. }
  310. // simulate some weird re-order of transactions and missing nonce(s)
  311. currentState.SetNonce(addr, n-1)
  312. pool.resetState()
  313. if fn := pool.pendingState.GetNonce(addr); fn != n+1 {
  314. t.Errorf("expected nonce to be %d, got %d", n+1, fn)
  315. }
  316. }
  317. func TestRemovedTxEvent(t *testing.T) {
  318. pool, key := setupTxPool()
  319. tx := transaction(0, big.NewInt(1000000), key)
  320. from, _ := deriveSender(tx)
  321. currentState, _ := pool.currentState()
  322. currentState.AddBalance(from, big.NewInt(1000000000000))
  323. pool.resetState()
  324. pool.eventMux.Post(RemovedTransactionEvent{types.Transactions{tx}})
  325. pool.eventMux.Post(ChainHeadEvent{nil})
  326. if pool.pending[from].Len() != 1 {
  327. t.Error("expected 1 pending tx, got", pool.pending[from].Len())
  328. }
  329. if len(pool.all) != 1 {
  330. t.Error("expected 1 total transactions, got", len(pool.all))
  331. }
  332. }
  333. // Tests that if an account runs out of funds, any pending and queued transactions
  334. // are dropped.
  335. func TestTransactionDropping(t *testing.T) {
  336. // Create a test account and fund it
  337. pool, key := setupTxPool()
  338. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  339. state, _ := pool.currentState()
  340. state.AddBalance(account, big.NewInt(1000))
  341. // Add some pending and some queued transactions
  342. var (
  343. tx0 = transaction(0, big.NewInt(100), key)
  344. tx1 = transaction(1, big.NewInt(200), key)
  345. tx10 = transaction(10, big.NewInt(100), key)
  346. tx11 = transaction(11, big.NewInt(200), key)
  347. )
  348. pool.promoteTx(account, tx0.Hash(), tx0)
  349. pool.promoteTx(account, tx1.Hash(), tx1)
  350. pool.enqueueTx(tx10.Hash(), tx10)
  351. pool.enqueueTx(tx11.Hash(), tx11)
  352. // Check that pre and post validations leave the pool as is
  353. if pool.pending[account].Len() != 2 {
  354. t.Errorf("pending transaction mismatch: have %d, want %d", pool.pending[account].Len(), 2)
  355. }
  356. if pool.queue[account].Len() != 2 {
  357. t.Errorf("queued transaction mismatch: have %d, want %d", pool.queue[account].Len(), 2)
  358. }
  359. if len(pool.all) != 4 {
  360. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), 4)
  361. }
  362. pool.resetState()
  363. if pool.pending[account].Len() != 2 {
  364. t.Errorf("pending transaction mismatch: have %d, want %d", pool.pending[account].Len(), 2)
  365. }
  366. if pool.queue[account].Len() != 2 {
  367. t.Errorf("queued transaction mismatch: have %d, want %d", pool.queue[account].Len(), 2)
  368. }
  369. if len(pool.all) != 4 {
  370. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), 4)
  371. }
  372. // Reduce the balance of the account, and check that invalidated transactions are dropped
  373. state.AddBalance(account, big.NewInt(-750))
  374. pool.resetState()
  375. if _, ok := pool.pending[account].txs.items[tx0.Nonce()]; !ok {
  376. t.Errorf("funded pending transaction missing: %v", tx0)
  377. }
  378. if _, ok := pool.pending[account].txs.items[tx1.Nonce()]; ok {
  379. t.Errorf("out-of-fund pending transaction present: %v", tx1)
  380. }
  381. if _, ok := pool.queue[account].txs.items[tx10.Nonce()]; !ok {
  382. t.Errorf("funded queued transaction missing: %v", tx10)
  383. }
  384. if _, ok := pool.queue[account].txs.items[tx11.Nonce()]; ok {
  385. t.Errorf("out-of-fund queued transaction present: %v", tx11)
  386. }
  387. if len(pool.all) != 2 {
  388. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), 2)
  389. }
  390. }
  391. // Tests that if a transaction is dropped from the current pending pool (e.g. out
  392. // of fund), all consecutive (still valid, but not executable) transactions are
  393. // postponed back into the future queue to prevent broadcasting them.
  394. func TestTransactionPostponing(t *testing.T) {
  395. // Create a test account and fund it
  396. pool, key := setupTxPool()
  397. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  398. state, _ := pool.currentState()
  399. state.AddBalance(account, big.NewInt(1000))
  400. // Add a batch consecutive pending transactions for validation
  401. txns := []*types.Transaction{}
  402. for i := 0; i < 100; i++ {
  403. var tx *types.Transaction
  404. if i%2 == 0 {
  405. tx = transaction(uint64(i), big.NewInt(100), key)
  406. } else {
  407. tx = transaction(uint64(i), big.NewInt(500), key)
  408. }
  409. pool.promoteTx(account, tx.Hash(), tx)
  410. txns = append(txns, tx)
  411. }
  412. // Check that pre and post validations leave the pool as is
  413. if pool.pending[account].Len() != len(txns) {
  414. t.Errorf("pending transaction mismatch: have %d, want %d", pool.pending[account].Len(), len(txns))
  415. }
  416. if len(pool.queue) != 0 {
  417. t.Errorf("queued transaction mismatch: have %d, want %d", pool.queue[account].Len(), 0)
  418. }
  419. if len(pool.all) != len(txns) {
  420. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), len(txns))
  421. }
  422. pool.resetState()
  423. if pool.pending[account].Len() != len(txns) {
  424. t.Errorf("pending transaction mismatch: have %d, want %d", pool.pending[account].Len(), len(txns))
  425. }
  426. if len(pool.queue) != 0 {
  427. t.Errorf("queued transaction mismatch: have %d, want %d", pool.queue[account].Len(), 0)
  428. }
  429. if len(pool.all) != len(txns) {
  430. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), len(txns))
  431. }
  432. // Reduce the balance of the account, and check that transactions are reorganised
  433. state.AddBalance(account, big.NewInt(-750))
  434. pool.resetState()
  435. if _, ok := pool.pending[account].txs.items[txns[0].Nonce()]; !ok {
  436. t.Errorf("tx %d: valid and funded transaction missing from pending pool: %v", 0, txns[0])
  437. }
  438. if _, ok := pool.queue[account].txs.items[txns[0].Nonce()]; ok {
  439. t.Errorf("tx %d: valid and funded transaction present in future queue: %v", 0, txns[0])
  440. }
  441. for i, tx := range txns[1:] {
  442. if i%2 == 1 {
  443. if _, ok := pool.pending[account].txs.items[tx.Nonce()]; ok {
  444. t.Errorf("tx %d: valid but future transaction present in pending pool: %v", i+1, tx)
  445. }
  446. if _, ok := pool.queue[account].txs.items[tx.Nonce()]; !ok {
  447. t.Errorf("tx %d: valid but future transaction missing from future queue: %v", i+1, tx)
  448. }
  449. } else {
  450. if _, ok := pool.pending[account].txs.items[tx.Nonce()]; ok {
  451. t.Errorf("tx %d: out-of-fund transaction present in pending pool: %v", i+1, tx)
  452. }
  453. if _, ok := pool.queue[account].txs.items[tx.Nonce()]; ok {
  454. t.Errorf("tx %d: out-of-fund transaction present in future queue: %v", i+1, tx)
  455. }
  456. }
  457. }
  458. if len(pool.all) != len(txns)/2 {
  459. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), len(txns)/2)
  460. }
  461. }
  462. // Tests that if the transaction count belonging to a single account goes above
  463. // some threshold, the higher transactions are dropped to prevent DOS attacks.
  464. func TestTransactionQueueAccountLimiting(t *testing.T) {
  465. // Create a test account and fund it
  466. pool, key := setupTxPool()
  467. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  468. state, _ := pool.currentState()
  469. state.AddBalance(account, big.NewInt(1000000))
  470. pool.resetState()
  471. // Keep queuing up transactions and make sure all above a limit are dropped
  472. for i := uint64(1); i <= maxQueuedPerAccount+5; i++ {
  473. if err := pool.Add(transaction(i, big.NewInt(100000), key)); err != nil {
  474. t.Fatalf("tx %d: failed to add transaction: %v", i, err)
  475. }
  476. if len(pool.pending) != 0 {
  477. t.Errorf("tx %d: pending pool size mismatch: have %d, want %d", i, len(pool.pending), 0)
  478. }
  479. if i <= maxQueuedPerAccount {
  480. if pool.queue[account].Len() != int(i) {
  481. t.Errorf("tx %d: queue size mismatch: have %d, want %d", i, pool.queue[account].Len(), i)
  482. }
  483. } else {
  484. if pool.queue[account].Len() != int(maxQueuedPerAccount) {
  485. t.Errorf("tx %d: queue limit mismatch: have %d, want %d", i, pool.queue[account].Len(), maxQueuedPerAccount)
  486. }
  487. }
  488. }
  489. if len(pool.all) != int(maxQueuedPerAccount) {
  490. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), maxQueuedPerAccount)
  491. }
  492. }
  493. // Tests that if the transaction count belonging to multiple accounts go above
  494. // some threshold, the higher transactions are dropped to prevent DOS attacks.
  495. func TestTransactionQueueGlobalLimiting(t *testing.T) {
  496. // Reduce the queue limits to shorten test time
  497. defer func(old uint64) { maxQueuedInTotal = old }(maxQueuedInTotal)
  498. maxQueuedInTotal = maxQueuedPerAccount * 3
  499. // Create the pool to test the limit enforcement with
  500. db, _ := ethdb.NewMemDatabase()
  501. statedb, _ := state.New(common.Hash{}, db)
  502. pool := NewTxPool(testChainConfig(), new(event.TypeMux), func() (*state.StateDB, error) { return statedb, nil }, func() *big.Int { return big.NewInt(1000000) })
  503. pool.resetState()
  504. // Create a number of test accounts and fund them
  505. state, _ := pool.currentState()
  506. keys := make([]*ecdsa.PrivateKey, 5)
  507. for i := 0; i < len(keys); i++ {
  508. keys[i], _ = crypto.GenerateKey()
  509. state.AddBalance(crypto.PubkeyToAddress(keys[i].PublicKey), big.NewInt(1000000))
  510. }
  511. // Generate and queue a batch of transactions
  512. nonces := make(map[common.Address]uint64)
  513. txs := make(types.Transactions, 0, 3*maxQueuedInTotal)
  514. for len(txs) < cap(txs) {
  515. key := keys[rand.Intn(len(keys))]
  516. addr := crypto.PubkeyToAddress(key.PublicKey)
  517. txs = append(txs, transaction(nonces[addr]+1, big.NewInt(100000), key))
  518. nonces[addr]++
  519. }
  520. // Import the batch and verify that limits have been enforced
  521. pool.AddBatch(txs)
  522. queued := 0
  523. for addr, list := range pool.queue {
  524. if list.Len() > int(maxQueuedPerAccount) {
  525. t.Errorf("addr %x: queued accounts overflown allowance: %d > %d", addr, list.Len(), maxQueuedPerAccount)
  526. }
  527. queued += list.Len()
  528. }
  529. if queued > int(maxQueuedInTotal) {
  530. t.Fatalf("total transactions overflow allowance: %d > %d", queued, maxQueuedInTotal)
  531. }
  532. }
  533. // Tests that if an account remains idle for a prolonged amount of time, any
  534. // non-executable transactions queued up are dropped to prevent wasting resources
  535. // on shuffling them around.
  536. func TestTransactionQueueTimeLimiting(t *testing.T) {
  537. // Reduce the queue limits to shorten test time
  538. defer func(old time.Duration) { maxQueuedLifetime = old }(maxQueuedLifetime)
  539. defer func(old time.Duration) { evictionInterval = old }(evictionInterval)
  540. maxQueuedLifetime = time.Second
  541. evictionInterval = time.Second
  542. // Create a test account and fund it
  543. pool, key := setupTxPool()
  544. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  545. state, _ := pool.currentState()
  546. state.AddBalance(account, big.NewInt(1000000))
  547. // Queue up a batch of transactions
  548. for i := uint64(1); i <= maxQueuedPerAccount; i++ {
  549. if err := pool.Add(transaction(i, big.NewInt(100000), key)); err != nil {
  550. t.Fatalf("tx %d: failed to add transaction: %v", i, err)
  551. }
  552. }
  553. // Wait until at least two expiration cycles hit and make sure the transactions are gone
  554. time.Sleep(2 * evictionInterval)
  555. if len(pool.queue) > 0 {
  556. t.Fatalf("old transactions remained after eviction")
  557. }
  558. }
  559. // Tests that even if the transaction count belonging to a single account goes
  560. // above some threshold, as long as the transactions are executable, they are
  561. // accepted.
  562. func TestTransactionPendingLimiting(t *testing.T) {
  563. // Create a test account and fund it
  564. pool, key := setupTxPool()
  565. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  566. state, _ := pool.currentState()
  567. state.AddBalance(account, big.NewInt(1000000))
  568. pool.resetState()
  569. // Keep queuing up transactions and make sure all above a limit are dropped
  570. for i := uint64(0); i < maxQueuedPerAccount+5; i++ {
  571. if err := pool.Add(transaction(i, big.NewInt(100000), key)); err != nil {
  572. t.Fatalf("tx %d: failed to add transaction: %v", i, err)
  573. }
  574. if pool.pending[account].Len() != int(i)+1 {
  575. t.Errorf("tx %d: pending pool size mismatch: have %d, want %d", i, pool.pending[account].Len(), i+1)
  576. }
  577. if len(pool.queue) != 0 {
  578. t.Errorf("tx %d: queue size mismatch: have %d, want %d", i, pool.queue[account].Len(), 0)
  579. }
  580. }
  581. if len(pool.all) != int(maxQueuedPerAccount+5) {
  582. t.Errorf("total transaction mismatch: have %d, want %d", len(pool.all), maxQueuedPerAccount+5)
  583. }
  584. }
  585. // Tests that the transaction limits are enforced the same way irrelevant whether
  586. // the transactions are added one by one or in batches.
  587. func TestTransactionQueueLimitingEquivalency(t *testing.T) { testTransactionLimitingEquivalency(t, 1) }
  588. func TestTransactionPendingLimitingEquivalency(t *testing.T) { testTransactionLimitingEquivalency(t, 0) }
  589. func testTransactionLimitingEquivalency(t *testing.T, origin uint64) {
  590. // Add a batch of transactions to a pool one by one
  591. pool1, key1 := setupTxPool()
  592. account1, _ := deriveSender(transaction(0, big.NewInt(0), key1))
  593. state1, _ := pool1.currentState()
  594. state1.AddBalance(account1, big.NewInt(1000000))
  595. for i := uint64(0); i < maxQueuedPerAccount+5; i++ {
  596. if err := pool1.Add(transaction(origin+i, big.NewInt(100000), key1)); err != nil {
  597. t.Fatalf("tx %d: failed to add transaction: %v", i, err)
  598. }
  599. }
  600. // Add a batch of transactions to a pool in one big batch
  601. pool2, key2 := setupTxPool()
  602. account2, _ := deriveSender(transaction(0, big.NewInt(0), key2))
  603. state2, _ := pool2.currentState()
  604. state2.AddBalance(account2, big.NewInt(1000000))
  605. txns := []*types.Transaction{}
  606. for i := uint64(0); i < maxQueuedPerAccount+5; i++ {
  607. txns = append(txns, transaction(origin+i, big.NewInt(100000), key2))
  608. }
  609. pool2.AddBatch(txns)
  610. // Ensure the batch optimization honors the same pool mechanics
  611. if len(pool1.pending) != len(pool2.pending) {
  612. t.Errorf("pending transaction count mismatch: one-by-one algo: %d, batch algo: %d", len(pool1.pending), len(pool2.pending))
  613. }
  614. if len(pool1.queue) != len(pool2.queue) {
  615. t.Errorf("queued transaction count mismatch: one-by-one algo: %d, batch algo: %d", len(pool1.queue), len(pool2.queue))
  616. }
  617. if len(pool1.all) != len(pool2.all) {
  618. t.Errorf("total transaction count mismatch: one-by-one algo %d, batch algo %d", len(pool1.all), len(pool2.all))
  619. }
  620. }
  621. // Tests that if the transaction count belonging to multiple accounts go above
  622. // some hard threshold, the higher transactions are dropped to prevent DOS
  623. // attacks.
  624. func TestTransactionPendingGlobalLimiting(t *testing.T) {
  625. // Reduce the queue limits to shorten test time
  626. defer func(old uint64) { maxPendingTotal = old }(maxPendingTotal)
  627. maxPendingTotal = minPendingPerAccount * 10
  628. // Create the pool to test the limit enforcement with
  629. db, _ := ethdb.NewMemDatabase()
  630. statedb, _ := state.New(common.Hash{}, db)
  631. pool := NewTxPool(testChainConfig(), new(event.TypeMux), func() (*state.StateDB, error) { return statedb, nil }, func() *big.Int { return big.NewInt(1000000) })
  632. pool.resetState()
  633. // Create a number of test accounts and fund them
  634. state, _ := pool.currentState()
  635. keys := make([]*ecdsa.PrivateKey, 5)
  636. for i := 0; i < len(keys); i++ {
  637. keys[i], _ = crypto.GenerateKey()
  638. state.AddBalance(crypto.PubkeyToAddress(keys[i].PublicKey), big.NewInt(1000000))
  639. }
  640. // Generate and queue a batch of transactions
  641. nonces := make(map[common.Address]uint64)
  642. txs := types.Transactions{}
  643. for _, key := range keys {
  644. addr := crypto.PubkeyToAddress(key.PublicKey)
  645. for j := 0; j < int(maxPendingTotal)/len(keys)*2; j++ {
  646. txs = append(txs, transaction(nonces[addr], big.NewInt(100000), key))
  647. nonces[addr]++
  648. }
  649. }
  650. // Import the batch and verify that limits have been enforced
  651. pool.AddBatch(txs)
  652. pending := 0
  653. for _, list := range pool.pending {
  654. pending += list.Len()
  655. }
  656. if pending > int(maxPendingTotal) {
  657. t.Fatalf("total pending transactions overflow allowance: %d > %d", pending, maxPendingTotal)
  658. }
  659. }
  660. // Tests that if the transaction count belonging to multiple accounts go above
  661. // some hard threshold, if they are under the minimum guaranteed slot count then
  662. // the transactions are still kept.
  663. func TestTransactionPendingMinimumAllowance(t *testing.T) {
  664. // Reduce the queue limits to shorten test time
  665. defer func(old uint64) { maxPendingTotal = old }(maxPendingTotal)
  666. maxPendingTotal = 0
  667. // Create the pool to test the limit enforcement with
  668. db, _ := ethdb.NewMemDatabase()
  669. statedb, _ := state.New(common.Hash{}, db)
  670. pool := NewTxPool(testChainConfig(), new(event.TypeMux), func() (*state.StateDB, error) { return statedb, nil }, func() *big.Int { return big.NewInt(1000000) })
  671. pool.resetState()
  672. // Create a number of test accounts and fund them
  673. state, _ := pool.currentState()
  674. keys := make([]*ecdsa.PrivateKey, 5)
  675. for i := 0; i < len(keys); i++ {
  676. keys[i], _ = crypto.GenerateKey()
  677. state.AddBalance(crypto.PubkeyToAddress(keys[i].PublicKey), big.NewInt(1000000))
  678. }
  679. // Generate and queue a batch of transactions
  680. nonces := make(map[common.Address]uint64)
  681. txs := types.Transactions{}
  682. for _, key := range keys {
  683. addr := crypto.PubkeyToAddress(key.PublicKey)
  684. for j := 0; j < int(minPendingPerAccount)*2; j++ {
  685. txs = append(txs, transaction(nonces[addr], big.NewInt(100000), key))
  686. nonces[addr]++
  687. }
  688. }
  689. // Import the batch and verify that limits have been enforced
  690. pool.AddBatch(txs)
  691. for addr, list := range pool.pending {
  692. if list.Len() != int(minPendingPerAccount) {
  693. t.Errorf("addr %x: total pending transactions mismatch: have %d, want %d", addr, list.Len(), minPendingPerAccount)
  694. }
  695. }
  696. }
  697. // Benchmarks the speed of validating the contents of the pending queue of the
  698. // transaction pool.
  699. func BenchmarkPendingDemotion100(b *testing.B) { benchmarkPendingDemotion(b, 100) }
  700. func BenchmarkPendingDemotion1000(b *testing.B) { benchmarkPendingDemotion(b, 1000) }
  701. func BenchmarkPendingDemotion10000(b *testing.B) { benchmarkPendingDemotion(b, 10000) }
  702. func benchmarkPendingDemotion(b *testing.B, size int) {
  703. // Add a batch of transactions to a pool one by one
  704. pool, key := setupTxPool()
  705. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  706. state, _ := pool.currentState()
  707. state.AddBalance(account, big.NewInt(1000000))
  708. for i := 0; i < size; i++ {
  709. tx := transaction(uint64(i), big.NewInt(100000), key)
  710. pool.promoteTx(account, tx.Hash(), tx)
  711. }
  712. // Benchmark the speed of pool validation
  713. b.ResetTimer()
  714. for i := 0; i < b.N; i++ {
  715. pool.demoteUnexecutables(state)
  716. }
  717. }
  718. // Benchmarks the speed of scheduling the contents of the future queue of the
  719. // transaction pool.
  720. func BenchmarkFuturePromotion100(b *testing.B) { benchmarkFuturePromotion(b, 100) }
  721. func BenchmarkFuturePromotion1000(b *testing.B) { benchmarkFuturePromotion(b, 1000) }
  722. func BenchmarkFuturePromotion10000(b *testing.B) { benchmarkFuturePromotion(b, 10000) }
  723. func benchmarkFuturePromotion(b *testing.B, size int) {
  724. // Add a batch of transactions to a pool one by one
  725. pool, key := setupTxPool()
  726. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  727. state, _ := pool.currentState()
  728. state.AddBalance(account, big.NewInt(1000000))
  729. for i := 0; i < size; i++ {
  730. tx := transaction(uint64(1+i), big.NewInt(100000), key)
  731. pool.enqueueTx(tx.Hash(), tx)
  732. }
  733. // Benchmark the speed of pool validation
  734. b.ResetTimer()
  735. for i := 0; i < b.N; i++ {
  736. pool.promoteExecutables(state)
  737. }
  738. }
  739. // Benchmarks the speed of iterative transaction insertion.
  740. func BenchmarkPoolInsert(b *testing.B) {
  741. // Generate a batch of transactions to enqueue into the pool
  742. pool, key := setupTxPool()
  743. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  744. state, _ := pool.currentState()
  745. state.AddBalance(account, big.NewInt(1000000))
  746. txs := make(types.Transactions, b.N)
  747. for i := 0; i < b.N; i++ {
  748. txs[i] = transaction(uint64(i), big.NewInt(100000), key)
  749. }
  750. // Benchmark importing the transactions into the queue
  751. b.ResetTimer()
  752. for _, tx := range txs {
  753. pool.Add(tx)
  754. }
  755. }
  756. // Benchmarks the speed of batched transaction insertion.
  757. func BenchmarkPoolBatchInsert100(b *testing.B) { benchmarkPoolBatchInsert(b, 100) }
  758. func BenchmarkPoolBatchInsert1000(b *testing.B) { benchmarkPoolBatchInsert(b, 1000) }
  759. func BenchmarkPoolBatchInsert10000(b *testing.B) { benchmarkPoolBatchInsert(b, 10000) }
  760. func benchmarkPoolBatchInsert(b *testing.B, size int) {
  761. // Generate a batch of transactions to enqueue into the pool
  762. pool, key := setupTxPool()
  763. account, _ := deriveSender(transaction(0, big.NewInt(0), key))
  764. state, _ := pool.currentState()
  765. state.AddBalance(account, big.NewInt(1000000))
  766. batches := make([]types.Transactions, b.N)
  767. for i := 0; i < b.N; i++ {
  768. batches[i] = make(types.Transactions, size)
  769. for j := 0; j < size; j++ {
  770. batches[i][j] = transaction(uint64(size*i+j), big.NewInt(100000), key)
  771. }
  772. }
  773. // Benchmark importing the transactions into the queue
  774. b.ResetTimer()
  775. for _, batch := range batches {
  776. pool.AddBatch(batch)
  777. }
  778. }