worker.go 34 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 miner
  17. import (
  18. "bytes"
  19. "errors"
  20. "math/big"
  21. "sync"
  22. "sync/atomic"
  23. "time"
  24. mapset "github.com/deckarep/golang-set"
  25. "github.com/ethereum/go-ethereum/common"
  26. "github.com/ethereum/go-ethereum/consensus"
  27. "github.com/ethereum/go-ethereum/consensus/misc"
  28. "github.com/ethereum/go-ethereum/core"
  29. "github.com/ethereum/go-ethereum/core/state"
  30. "github.com/ethereum/go-ethereum/core/types"
  31. "github.com/ethereum/go-ethereum/event"
  32. "github.com/ethereum/go-ethereum/log"
  33. "github.com/ethereum/go-ethereum/params"
  34. )
  35. const (
  36. // resultQueueSize is the size of channel listening to sealing result.
  37. resultQueueSize = 10
  38. // txChanSize is the size of channel listening to NewTxsEvent.
  39. // The number is referenced from the size of tx pool.
  40. txChanSize = 4096
  41. // chainHeadChanSize is the size of channel listening to ChainHeadEvent.
  42. chainHeadChanSize = 10
  43. // chainSideChanSize is the size of channel listening to ChainSideEvent.
  44. chainSideChanSize = 10
  45. // resubmitAdjustChanSize is the size of resubmitting interval adjustment channel.
  46. resubmitAdjustChanSize = 10
  47. // miningLogAtDepth is the number of confirmations before logging successful mining.
  48. miningLogAtDepth = 7
  49. // minRecommitInterval is the minimal time interval to recreate the mining block with
  50. // any newly arrived transactions.
  51. minRecommitInterval = 1 * time.Second
  52. // maxRecommitInterval is the maximum time interval to recreate the mining block with
  53. // any newly arrived transactions.
  54. maxRecommitInterval = 15 * time.Second
  55. // intervalAdjustRatio is the impact a single interval adjustment has on sealing work
  56. // resubmitting interval.
  57. intervalAdjustRatio = 0.1
  58. // intervalAdjustBias is applied during the new resubmit interval calculation in favor of
  59. // increasing upper limit or decreasing lower limit so that the limit can be reachable.
  60. intervalAdjustBias = 200 * 1000.0 * 1000.0
  61. // staleThreshold is the maximum depth of the acceptable stale block.
  62. staleThreshold = 7
  63. )
  64. // environment is the worker's current environment and holds all of the current state information.
  65. type environment struct {
  66. signer types.Signer
  67. state *state.StateDB // apply state changes here
  68. ancestors mapset.Set // ancestor set (used for checking uncle parent validity)
  69. family mapset.Set // family set (used for checking uncle invalidity)
  70. uncles mapset.Set // uncle set
  71. tcount int // tx count in cycle
  72. gasPool *core.GasPool // available gas used to pack transactions
  73. header *types.Header
  74. txs []*types.Transaction
  75. receipts []*types.Receipt
  76. }
  77. // task contains all information for consensus engine sealing and result submitting.
  78. type task struct {
  79. receipts []*types.Receipt
  80. state *state.StateDB
  81. block *types.Block
  82. createdAt time.Time
  83. }
  84. const (
  85. commitInterruptNone int32 = iota
  86. commitInterruptNewHead
  87. commitInterruptResubmit
  88. )
  89. // newWorkReq represents a request for new sealing work submitting with relative interrupt notifier.
  90. type newWorkReq struct {
  91. interrupt *int32
  92. noempty bool
  93. timestamp int64
  94. }
  95. // intervalAdjust represents a resubmitting interval adjustment.
  96. type intervalAdjust struct {
  97. ratio float64
  98. inc bool
  99. }
  100. // worker is the main object which takes care of submitting new work to consensus engine
  101. // and gathering the sealing result.
  102. type worker struct {
  103. config *Config
  104. chainConfig *params.ChainConfig
  105. engine consensus.Engine
  106. eth Backend
  107. chain *core.BlockChain
  108. // Feeds
  109. pendingLogsFeed event.Feed
  110. // Subscriptions
  111. mux *event.TypeMux
  112. txsCh chan core.NewTxsEvent
  113. txsSub event.Subscription
  114. chainHeadCh chan core.ChainHeadEvent
  115. chainHeadSub event.Subscription
  116. chainSideCh chan core.ChainSideEvent
  117. chainSideSub event.Subscription
  118. // Channels
  119. newWorkCh chan *newWorkReq
  120. taskCh chan *task
  121. resultCh chan *types.Block
  122. startCh chan struct{}
  123. exitCh chan struct{}
  124. resubmitIntervalCh chan time.Duration
  125. resubmitAdjustCh chan *intervalAdjust
  126. current *environment // An environment for current running cycle.
  127. localUncles map[common.Hash]*types.Block // A set of side blocks generated locally as the possible uncle blocks.
  128. remoteUncles map[common.Hash]*types.Block // A set of side blocks as the possible uncle blocks.
  129. unconfirmed *unconfirmedBlocks // A set of locally mined blocks pending canonicalness confirmations.
  130. mu sync.RWMutex // The lock used to protect the coinbase and extra fields
  131. coinbase common.Address
  132. extra []byte
  133. pendingMu sync.RWMutex
  134. pendingTasks map[common.Hash]*task
  135. snapshotMu sync.RWMutex // The lock used to protect the block snapshot and state snapshot
  136. snapshotBlock *types.Block
  137. snapshotState *state.StateDB
  138. // atomic status counters
  139. running int32 // The indicator whether the consensus engine is running or not.
  140. newTxs int32 // New arrival transaction count since last sealing work submitting.
  141. // noempty is the flag used to control whether the feature of pre-seal empty
  142. // block is enabled. The default value is false(pre-seal is enabled by default).
  143. // But in some special scenario the consensus engine will seal blocks instantaneously,
  144. // in this case this feature will add all empty blocks into canonical chain
  145. // non-stop and no real transaction will be included.
  146. noempty uint32
  147. // External functions
  148. isLocalBlock func(block *types.Block) bool // Function used to determine whether the specified block is mined by local miner.
  149. // Test hooks
  150. newTaskHook func(*task) // Method to call upon receiving a new sealing task.
  151. skipSealHook func(*task) bool // Method to decide whether skipping the sealing.
  152. fullTaskHook func() // Method to call before pushing the full sealing task.
  153. resubmitHook func(time.Duration, time.Duration) // Method to call upon updating resubmitting interval.
  154. }
  155. func newWorker(config *Config, chainConfig *params.ChainConfig, engine consensus.Engine, eth Backend, mux *event.TypeMux, isLocalBlock func(*types.Block) bool, init bool) *worker {
  156. worker := &worker{
  157. config: config,
  158. chainConfig: chainConfig,
  159. engine: engine,
  160. eth: eth,
  161. mux: mux,
  162. chain: eth.BlockChain(),
  163. isLocalBlock: isLocalBlock,
  164. localUncles: make(map[common.Hash]*types.Block),
  165. remoteUncles: make(map[common.Hash]*types.Block),
  166. unconfirmed: newUnconfirmedBlocks(eth.BlockChain(), miningLogAtDepth),
  167. pendingTasks: make(map[common.Hash]*task),
  168. txsCh: make(chan core.NewTxsEvent, txChanSize),
  169. chainHeadCh: make(chan core.ChainHeadEvent, chainHeadChanSize),
  170. chainSideCh: make(chan core.ChainSideEvent, chainSideChanSize),
  171. newWorkCh: make(chan *newWorkReq),
  172. taskCh: make(chan *task),
  173. resultCh: make(chan *types.Block, resultQueueSize),
  174. exitCh: make(chan struct{}),
  175. startCh: make(chan struct{}, 1),
  176. resubmitIntervalCh: make(chan time.Duration),
  177. resubmitAdjustCh: make(chan *intervalAdjust, resubmitAdjustChanSize),
  178. }
  179. // Subscribe NewTxsEvent for tx pool
  180. worker.txsSub = eth.TxPool().SubscribeNewTxsEvent(worker.txsCh)
  181. // Subscribe events for blockchain
  182. worker.chainHeadSub = eth.BlockChain().SubscribeChainHeadEvent(worker.chainHeadCh)
  183. worker.chainSideSub = eth.BlockChain().SubscribeChainSideEvent(worker.chainSideCh)
  184. // Sanitize recommit interval if the user-specified one is too short.
  185. recommit := worker.config.Recommit
  186. if recommit < minRecommitInterval {
  187. log.Warn("Sanitizing miner recommit interval", "provided", recommit, "updated", minRecommitInterval)
  188. recommit = minRecommitInterval
  189. }
  190. go worker.mainLoop()
  191. go worker.newWorkLoop(recommit)
  192. go worker.resultLoop()
  193. go worker.taskLoop()
  194. // Submit first work to initialize pending state.
  195. if init {
  196. worker.startCh <- struct{}{}
  197. }
  198. return worker
  199. }
  200. // setEtherbase sets the etherbase used to initialize the block coinbase field.
  201. func (w *worker) setEtherbase(addr common.Address) {
  202. w.mu.Lock()
  203. defer w.mu.Unlock()
  204. w.coinbase = addr
  205. }
  206. // setExtra sets the content used to initialize the block extra field.
  207. func (w *worker) setExtra(extra []byte) {
  208. w.mu.Lock()
  209. defer w.mu.Unlock()
  210. w.extra = extra
  211. }
  212. // setRecommitInterval updates the interval for miner sealing work recommitting.
  213. func (w *worker) setRecommitInterval(interval time.Duration) {
  214. w.resubmitIntervalCh <- interval
  215. }
  216. // disablePreseal disables pre-sealing mining feature
  217. func (w *worker) disablePreseal() {
  218. atomic.StoreUint32(&w.noempty, 1)
  219. }
  220. // enablePreseal enables pre-sealing mining feature
  221. func (w *worker) enablePreseal() {
  222. atomic.StoreUint32(&w.noempty, 0)
  223. }
  224. // pending returns the pending state and corresponding block.
  225. func (w *worker) pending() (*types.Block, *state.StateDB) {
  226. // return a snapshot to avoid contention on currentMu mutex
  227. w.snapshotMu.RLock()
  228. defer w.snapshotMu.RUnlock()
  229. if w.snapshotState == nil {
  230. return nil, nil
  231. }
  232. return w.snapshotBlock, w.snapshotState.Copy()
  233. }
  234. // pendingBlock returns pending block.
  235. func (w *worker) pendingBlock() *types.Block {
  236. // return a snapshot to avoid contention on currentMu mutex
  237. w.snapshotMu.RLock()
  238. defer w.snapshotMu.RUnlock()
  239. return w.snapshotBlock
  240. }
  241. // start sets the running status as 1 and triggers new work submitting.
  242. func (w *worker) start() {
  243. atomic.StoreInt32(&w.running, 1)
  244. w.startCh <- struct{}{}
  245. }
  246. // stop sets the running status as 0.
  247. func (w *worker) stop() {
  248. atomic.StoreInt32(&w.running, 0)
  249. }
  250. // isRunning returns an indicator whether worker is running or not.
  251. func (w *worker) isRunning() bool {
  252. return atomic.LoadInt32(&w.running) == 1
  253. }
  254. // close terminates all background threads maintained by the worker.
  255. // Note the worker does not support being closed multiple times.
  256. func (w *worker) close() {
  257. close(w.exitCh)
  258. }
  259. // newWorkLoop is a standalone goroutine to submit new mining work upon received events.
  260. func (w *worker) newWorkLoop(recommit time.Duration) {
  261. var (
  262. interrupt *int32
  263. minRecommit = recommit // minimal resubmit interval specified by user.
  264. timestamp int64 // timestamp for each round of mining.
  265. )
  266. timer := time.NewTimer(0)
  267. defer timer.Stop()
  268. <-timer.C // discard the initial tick
  269. // commit aborts in-flight transaction execution with given signal and resubmits a new one.
  270. commit := func(noempty bool, s int32) {
  271. if interrupt != nil {
  272. atomic.StoreInt32(interrupt, s)
  273. }
  274. interrupt = new(int32)
  275. w.newWorkCh <- &newWorkReq{interrupt: interrupt, noempty: noempty, timestamp: timestamp}
  276. timer.Reset(recommit)
  277. atomic.StoreInt32(&w.newTxs, 0)
  278. }
  279. // recalcRecommit recalculates the resubmitting interval upon feedback.
  280. recalcRecommit := func(target float64, inc bool) {
  281. var (
  282. prev = float64(recommit.Nanoseconds())
  283. next float64
  284. )
  285. if inc {
  286. next = prev*(1-intervalAdjustRatio) + intervalAdjustRatio*(target+intervalAdjustBias)
  287. // Recap if interval is larger than the maximum time interval
  288. if next > float64(maxRecommitInterval.Nanoseconds()) {
  289. next = float64(maxRecommitInterval.Nanoseconds())
  290. }
  291. } else {
  292. next = prev*(1-intervalAdjustRatio) + intervalAdjustRatio*(target-intervalAdjustBias)
  293. // Recap if interval is less than the user specified minimum
  294. if next < float64(minRecommit.Nanoseconds()) {
  295. next = float64(minRecommit.Nanoseconds())
  296. }
  297. }
  298. recommit = time.Duration(int64(next))
  299. }
  300. // clearPending cleans the stale pending tasks.
  301. clearPending := func(number uint64) {
  302. w.pendingMu.Lock()
  303. for h, t := range w.pendingTasks {
  304. if t.block.NumberU64()+staleThreshold <= number {
  305. delete(w.pendingTasks, h)
  306. }
  307. }
  308. w.pendingMu.Unlock()
  309. }
  310. for {
  311. select {
  312. case <-w.startCh:
  313. clearPending(w.chain.CurrentBlock().NumberU64())
  314. timestamp = time.Now().Unix()
  315. commit(false, commitInterruptNewHead)
  316. case head := <-w.chainHeadCh:
  317. clearPending(head.Block.NumberU64())
  318. timestamp = time.Now().Unix()
  319. commit(false, commitInterruptNewHead)
  320. case <-timer.C:
  321. // If mining is running resubmit a new work cycle periodically to pull in
  322. // higher priced transactions. Disable this overhead for pending blocks.
  323. if w.isRunning() && (w.chainConfig.Clique == nil || w.chainConfig.Clique.Period > 0) {
  324. // Short circuit if no new transaction arrives.
  325. if atomic.LoadInt32(&w.newTxs) == 0 {
  326. timer.Reset(recommit)
  327. continue
  328. }
  329. commit(true, commitInterruptResubmit)
  330. }
  331. case interval := <-w.resubmitIntervalCh:
  332. // Adjust resubmit interval explicitly by user.
  333. if interval < minRecommitInterval {
  334. log.Warn("Sanitizing miner recommit interval", "provided", interval, "updated", minRecommitInterval)
  335. interval = minRecommitInterval
  336. }
  337. log.Info("Miner recommit interval update", "from", minRecommit, "to", interval)
  338. minRecommit, recommit = interval, interval
  339. if w.resubmitHook != nil {
  340. w.resubmitHook(minRecommit, recommit)
  341. }
  342. case adjust := <-w.resubmitAdjustCh:
  343. // Adjust resubmit interval by feedback.
  344. if adjust.inc {
  345. before := recommit
  346. recalcRecommit(float64(recommit.Nanoseconds())/adjust.ratio, true)
  347. log.Trace("Increase miner recommit interval", "from", before, "to", recommit)
  348. } else {
  349. before := recommit
  350. recalcRecommit(float64(minRecommit.Nanoseconds()), false)
  351. log.Trace("Decrease miner recommit interval", "from", before, "to", recommit)
  352. }
  353. if w.resubmitHook != nil {
  354. w.resubmitHook(minRecommit, recommit)
  355. }
  356. case <-w.exitCh:
  357. return
  358. }
  359. }
  360. }
  361. // mainLoop is a standalone goroutine to regenerate the sealing task based on the received event.
  362. func (w *worker) mainLoop() {
  363. defer w.txsSub.Unsubscribe()
  364. defer w.chainHeadSub.Unsubscribe()
  365. defer w.chainSideSub.Unsubscribe()
  366. for {
  367. select {
  368. case req := <-w.newWorkCh:
  369. w.commitNewWork(req.interrupt, req.noempty, req.timestamp)
  370. case ev := <-w.chainSideCh:
  371. // Short circuit for duplicate side blocks
  372. if _, exist := w.localUncles[ev.Block.Hash()]; exist {
  373. continue
  374. }
  375. if _, exist := w.remoteUncles[ev.Block.Hash()]; exist {
  376. continue
  377. }
  378. // Add side block to possible uncle block set depending on the author.
  379. if w.isLocalBlock != nil && w.isLocalBlock(ev.Block) {
  380. w.localUncles[ev.Block.Hash()] = ev.Block
  381. } else {
  382. w.remoteUncles[ev.Block.Hash()] = ev.Block
  383. }
  384. // If our mining block contains less than 2 uncle blocks,
  385. // add the new uncle block if valid and regenerate a mining block.
  386. if w.isRunning() && w.current != nil && w.current.uncles.Cardinality() < 2 {
  387. start := time.Now()
  388. if err := w.commitUncle(w.current, ev.Block.Header()); err == nil {
  389. var uncles []*types.Header
  390. w.current.uncles.Each(func(item interface{}) bool {
  391. hash, ok := item.(common.Hash)
  392. if !ok {
  393. return false
  394. }
  395. uncle, exist := w.localUncles[hash]
  396. if !exist {
  397. uncle, exist = w.remoteUncles[hash]
  398. }
  399. if !exist {
  400. return false
  401. }
  402. uncles = append(uncles, uncle.Header())
  403. return false
  404. })
  405. w.commit(uncles, nil, true, start)
  406. }
  407. }
  408. case ev := <-w.txsCh:
  409. // Apply transactions to the pending state if we're not mining.
  410. //
  411. // Note all transactions received may not be continuous with transactions
  412. // already included in the current mining block. These transactions will
  413. // be automatically eliminated.
  414. if !w.isRunning() && w.current != nil {
  415. // If block is already full, abort
  416. if gp := w.current.gasPool; gp != nil && gp.Gas() < params.TxGas {
  417. continue
  418. }
  419. w.mu.RLock()
  420. coinbase := w.coinbase
  421. w.mu.RUnlock()
  422. txs := make(map[common.Address]types.Transactions)
  423. for _, tx := range ev.Txs {
  424. acc, _ := types.Sender(w.current.signer, tx)
  425. txs[acc] = append(txs[acc], tx)
  426. }
  427. txset := types.NewTransactionsByPriceAndNonce(w.current.signer, txs)
  428. tcount := w.current.tcount
  429. w.commitTransactions(txset, coinbase, nil)
  430. // Only update the snapshot if any new transactons were added
  431. // to the pending block
  432. if tcount != w.current.tcount {
  433. w.updateSnapshot()
  434. }
  435. } else {
  436. // Special case, if the consensus engine is 0 period clique(dev mode),
  437. // submit mining work here since all empty submission will be rejected
  438. // by clique. Of course the advance sealing(empty submission) is disabled.
  439. if w.chainConfig.Clique != nil && w.chainConfig.Clique.Period == 0 {
  440. w.commitNewWork(nil, true, time.Now().Unix())
  441. }
  442. }
  443. atomic.AddInt32(&w.newTxs, int32(len(ev.Txs)))
  444. // System stopped
  445. case <-w.exitCh:
  446. return
  447. case <-w.txsSub.Err():
  448. return
  449. case <-w.chainHeadSub.Err():
  450. return
  451. case <-w.chainSideSub.Err():
  452. return
  453. }
  454. }
  455. }
  456. // taskLoop is a standalone goroutine to fetch sealing task from the generator and
  457. // push them to consensus engine.
  458. func (w *worker) taskLoop() {
  459. var (
  460. stopCh chan struct{}
  461. prev common.Hash
  462. )
  463. // interrupt aborts the in-flight sealing task.
  464. interrupt := func() {
  465. if stopCh != nil {
  466. close(stopCh)
  467. stopCh = nil
  468. }
  469. }
  470. for {
  471. select {
  472. case task := <-w.taskCh:
  473. if w.newTaskHook != nil {
  474. w.newTaskHook(task)
  475. }
  476. // Reject duplicate sealing work due to resubmitting.
  477. sealHash := w.engine.SealHash(task.block.Header())
  478. if sealHash == prev {
  479. continue
  480. }
  481. // Interrupt previous sealing operation
  482. interrupt()
  483. stopCh, prev = make(chan struct{}), sealHash
  484. if w.skipSealHook != nil && w.skipSealHook(task) {
  485. continue
  486. }
  487. w.pendingMu.Lock()
  488. w.pendingTasks[w.engine.SealHash(task.block.Header())] = task
  489. w.pendingMu.Unlock()
  490. if err := w.engine.Seal(w.chain, task.block, w.resultCh, stopCh); err != nil {
  491. log.Warn("Block sealing failed", "err", err)
  492. }
  493. case <-w.exitCh:
  494. interrupt()
  495. return
  496. }
  497. }
  498. }
  499. // resultLoop is a standalone goroutine to handle sealing result submitting
  500. // and flush relative data to the database.
  501. func (w *worker) resultLoop() {
  502. for {
  503. select {
  504. case block := <-w.resultCh:
  505. // Short circuit when receiving empty result.
  506. if block == nil {
  507. continue
  508. }
  509. // Short circuit when receiving duplicate result caused by resubmitting.
  510. if w.chain.HasBlock(block.Hash(), block.NumberU64()) {
  511. continue
  512. }
  513. var (
  514. sealhash = w.engine.SealHash(block.Header())
  515. hash = block.Hash()
  516. )
  517. w.pendingMu.RLock()
  518. task, exist := w.pendingTasks[sealhash]
  519. w.pendingMu.RUnlock()
  520. if !exist {
  521. log.Error("Block found but no relative pending task", "number", block.Number(), "sealhash", sealhash, "hash", hash)
  522. continue
  523. }
  524. // Different block could share same sealhash, deep copy here to prevent write-write conflict.
  525. var (
  526. receipts = make([]*types.Receipt, len(task.receipts))
  527. logs []*types.Log
  528. )
  529. for i, receipt := range task.receipts {
  530. // add block location fields
  531. receipt.BlockHash = hash
  532. receipt.BlockNumber = block.Number()
  533. receipt.TransactionIndex = uint(i)
  534. receipts[i] = new(types.Receipt)
  535. *receipts[i] = *receipt
  536. // Update the block hash in all logs since it is now available and not when the
  537. // receipt/log of individual transactions were created.
  538. for _, log := range receipt.Logs {
  539. log.BlockHash = hash
  540. }
  541. logs = append(logs, receipt.Logs...)
  542. }
  543. // Commit block and state to database.
  544. _, err := w.chain.WriteBlockWithState(block, receipts, logs, task.state, true)
  545. if err != nil {
  546. log.Error("Failed writing block to chain", "err", err)
  547. continue
  548. }
  549. log.Info("Successfully sealed new block", "number", block.Number(), "sealhash", sealhash, "hash", hash,
  550. "elapsed", common.PrettyDuration(time.Since(task.createdAt)))
  551. // Broadcast the block and announce chain insertion event
  552. w.mux.Post(core.NewMinedBlockEvent{Block: block})
  553. // Insert the block into the set of pending ones to resultLoop for confirmations
  554. w.unconfirmed.Insert(block.NumberU64(), block.Hash())
  555. case <-w.exitCh:
  556. return
  557. }
  558. }
  559. }
  560. // makeCurrent creates a new environment for the current cycle.
  561. func (w *worker) makeCurrent(parent *types.Block, header *types.Header) error {
  562. state, err := w.chain.StateAt(parent.Root())
  563. if err != nil {
  564. return err
  565. }
  566. env := &environment{
  567. signer: types.NewEIP155Signer(w.chainConfig.ChainID),
  568. state: state,
  569. ancestors: mapset.NewSet(),
  570. family: mapset.NewSet(),
  571. uncles: mapset.NewSet(),
  572. header: header,
  573. }
  574. // when 08 is processed ancestors contain 07 (quick block)
  575. for _, ancestor := range w.chain.GetBlocksFromHash(parent.Hash(), 7) {
  576. for _, uncle := range ancestor.Uncles() {
  577. env.family.Add(uncle.Hash())
  578. }
  579. env.family.Add(ancestor.Hash())
  580. env.ancestors.Add(ancestor.Hash())
  581. }
  582. // Keep track of transactions which return errors so they can be removed
  583. env.tcount = 0
  584. w.current = env
  585. return nil
  586. }
  587. // commitUncle adds the given block to uncle block set, returns error if failed to add.
  588. func (w *worker) commitUncle(env *environment, uncle *types.Header) error {
  589. hash := uncle.Hash()
  590. if env.uncles.Contains(hash) {
  591. return errors.New("uncle not unique")
  592. }
  593. if env.header.ParentHash == uncle.ParentHash {
  594. return errors.New("uncle is sibling")
  595. }
  596. if !env.ancestors.Contains(uncle.ParentHash) {
  597. return errors.New("uncle's parent unknown")
  598. }
  599. if env.family.Contains(hash) {
  600. return errors.New("uncle already included")
  601. }
  602. env.uncles.Add(uncle.Hash())
  603. return nil
  604. }
  605. // updateSnapshot updates pending snapshot block and state.
  606. // Note this function assumes the current variable is thread safe.
  607. func (w *worker) updateSnapshot() {
  608. w.snapshotMu.Lock()
  609. defer w.snapshotMu.Unlock()
  610. var uncles []*types.Header
  611. w.current.uncles.Each(func(item interface{}) bool {
  612. hash, ok := item.(common.Hash)
  613. if !ok {
  614. return false
  615. }
  616. uncle, exist := w.localUncles[hash]
  617. if !exist {
  618. uncle, exist = w.remoteUncles[hash]
  619. }
  620. if !exist {
  621. return false
  622. }
  623. uncles = append(uncles, uncle.Header())
  624. return false
  625. })
  626. w.snapshotBlock = types.NewBlock(
  627. w.current.header,
  628. w.current.txs,
  629. uncles,
  630. w.current.receipts,
  631. )
  632. w.snapshotState = w.current.state.Copy()
  633. }
  634. func (w *worker) commitTransaction(tx *types.Transaction, coinbase common.Address) ([]*types.Log, error) {
  635. snap := w.current.state.Snapshot()
  636. receipt, err := core.ApplyTransaction(w.chainConfig, w.chain, &coinbase, w.current.gasPool, w.current.state, w.current.header, tx, &w.current.header.GasUsed, *w.chain.GetVMConfig())
  637. if err != nil {
  638. w.current.state.RevertToSnapshot(snap)
  639. return nil, err
  640. }
  641. w.current.txs = append(w.current.txs, tx)
  642. w.current.receipts = append(w.current.receipts, receipt)
  643. return receipt.Logs, nil
  644. }
  645. func (w *worker) commitTransactions(txs *types.TransactionsByPriceAndNonce, coinbase common.Address, interrupt *int32) bool {
  646. // Short circuit if current is nil
  647. if w.current == nil {
  648. return true
  649. }
  650. if w.current.gasPool == nil {
  651. w.current.gasPool = new(core.GasPool).AddGas(w.current.header.GasLimit)
  652. }
  653. var coalescedLogs []*types.Log
  654. for {
  655. // In the following three cases, we will interrupt the execution of the transaction.
  656. // (1) new head block event arrival, the interrupt signal is 1
  657. // (2) worker start or restart, the interrupt signal is 1
  658. // (3) worker recreate the mining block with any newly arrived transactions, the interrupt signal is 2.
  659. // For the first two cases, the semi-finished work will be discarded.
  660. // For the third case, the semi-finished work will be submitted to the consensus engine.
  661. if interrupt != nil && atomic.LoadInt32(interrupt) != commitInterruptNone {
  662. // Notify resubmit loop to increase resubmitting interval due to too frequent commits.
  663. if atomic.LoadInt32(interrupt) == commitInterruptResubmit {
  664. ratio := float64(w.current.header.GasLimit-w.current.gasPool.Gas()) / float64(w.current.header.GasLimit)
  665. if ratio < 0.1 {
  666. ratio = 0.1
  667. }
  668. w.resubmitAdjustCh <- &intervalAdjust{
  669. ratio: ratio,
  670. inc: true,
  671. }
  672. }
  673. return atomic.LoadInt32(interrupt) == commitInterruptNewHead
  674. }
  675. // If we don't have enough gas for any further transactions then we're done
  676. if w.current.gasPool.Gas() < params.TxGas {
  677. log.Trace("Not enough gas for further transactions", "have", w.current.gasPool, "want", params.TxGas)
  678. break
  679. }
  680. // Retrieve the next transaction and abort if all done
  681. tx := txs.Peek()
  682. if tx == nil {
  683. break
  684. }
  685. // Error may be ignored here. The error has already been checked
  686. // during transaction acceptance is the transaction pool.
  687. //
  688. // We use the eip155 signer regardless of the current hf.
  689. from, _ := types.Sender(w.current.signer, tx)
  690. // Check whether the tx is replay protected. If we're not in the EIP155 hf
  691. // phase, start ignoring the sender until we do.
  692. if tx.Protected() && !w.chainConfig.IsEIP155(w.current.header.Number) {
  693. log.Trace("Ignoring reply protected transaction", "hash", tx.Hash(), "eip155", w.chainConfig.EIP155Block)
  694. txs.Pop()
  695. continue
  696. }
  697. // Start executing the transaction
  698. w.current.state.Prepare(tx.Hash(), common.Hash{}, w.current.tcount)
  699. logs, err := w.commitTransaction(tx, coinbase)
  700. switch err {
  701. case core.ErrGasLimitReached:
  702. // Pop the current out-of-gas transaction without shifting in the next from the account
  703. log.Trace("Gas limit exceeded for current block", "sender", from)
  704. txs.Pop()
  705. case core.ErrNonceTooLow:
  706. // New head notification data race between the transaction pool and miner, shift
  707. log.Trace("Skipping transaction with low nonce", "sender", from, "nonce", tx.Nonce())
  708. txs.Shift()
  709. case core.ErrNonceTooHigh:
  710. // Reorg notification data race between the transaction pool and miner, skip account =
  711. log.Trace("Skipping account with hight nonce", "sender", from, "nonce", tx.Nonce())
  712. txs.Pop()
  713. case nil:
  714. // Everything ok, collect the logs and shift in the next transaction from the same account
  715. coalescedLogs = append(coalescedLogs, logs...)
  716. w.current.tcount++
  717. txs.Shift()
  718. default:
  719. // Strange error, discard the transaction and get the next in line (note, the
  720. // nonce-too-high clause will prevent us from executing in vain).
  721. log.Debug("Transaction failed, account skipped", "hash", tx.Hash(), "err", err)
  722. txs.Shift()
  723. }
  724. }
  725. if !w.isRunning() && len(coalescedLogs) > 0 {
  726. // We don't push the pendingLogsEvent while we are mining. The reason is that
  727. // when we are mining, the worker will regenerate a mining block every 3 seconds.
  728. // In order to avoid pushing the repeated pendingLog, we disable the pending log pushing.
  729. // make a copy, the state caches the logs and these logs get "upgraded" from pending to mined
  730. // logs by filling in the block hash when the block was mined by the local miner. This can
  731. // cause a race condition if a log was "upgraded" before the PendingLogsEvent is processed.
  732. cpy := make([]*types.Log, len(coalescedLogs))
  733. for i, l := range coalescedLogs {
  734. cpy[i] = new(types.Log)
  735. *cpy[i] = *l
  736. }
  737. w.pendingLogsFeed.Send(cpy)
  738. }
  739. // Notify resubmit loop to decrease resubmitting interval if current interval is larger
  740. // than the user-specified one.
  741. if interrupt != nil {
  742. w.resubmitAdjustCh <- &intervalAdjust{inc: false}
  743. }
  744. return false
  745. }
  746. // commitNewWork generates several new sealing tasks based on the parent block.
  747. func (w *worker) commitNewWork(interrupt *int32, noempty bool, timestamp int64) {
  748. w.mu.RLock()
  749. defer w.mu.RUnlock()
  750. tstart := time.Now()
  751. parent := w.chain.CurrentBlock()
  752. if parent.Time() >= uint64(timestamp) {
  753. timestamp = int64(parent.Time() + 1)
  754. }
  755. // this will ensure we're not going off too far in the future
  756. if now := time.Now().Unix(); timestamp > now+1 {
  757. wait := time.Duration(timestamp-now) * time.Second
  758. log.Info("Mining too far in the future", "wait", common.PrettyDuration(wait))
  759. time.Sleep(wait)
  760. }
  761. num := parent.Number()
  762. header := &types.Header{
  763. ParentHash: parent.Hash(),
  764. Number: num.Add(num, common.Big1),
  765. GasLimit: core.CalcGasLimit(parent, w.config.GasFloor, w.config.GasCeil),
  766. Extra: w.extra,
  767. Time: uint64(timestamp),
  768. }
  769. // Only set the coinbase if our consensus engine is running (avoid spurious block rewards)
  770. if w.isRunning() {
  771. if w.coinbase == (common.Address{}) {
  772. log.Error("Refusing to mine without etherbase")
  773. return
  774. }
  775. header.Coinbase = w.coinbase
  776. }
  777. if err := w.engine.Prepare(w.chain, header); err != nil {
  778. log.Error("Failed to prepare header for mining", "err", err)
  779. return
  780. }
  781. // If we are care about TheDAO hard-fork check whether to override the extra-data or not
  782. if daoBlock := w.chainConfig.DAOForkBlock; daoBlock != nil {
  783. // Check whether the block is among the fork extra-override range
  784. limit := new(big.Int).Add(daoBlock, params.DAOForkExtraRange)
  785. if header.Number.Cmp(daoBlock) >= 0 && header.Number.Cmp(limit) < 0 {
  786. // Depending whether we support or oppose the fork, override differently
  787. if w.chainConfig.DAOForkSupport {
  788. header.Extra = common.CopyBytes(params.DAOForkBlockExtra)
  789. } else if bytes.Equal(header.Extra, params.DAOForkBlockExtra) {
  790. header.Extra = []byte{} // If miner opposes, don't let it use the reserved extra-data
  791. }
  792. }
  793. }
  794. // Could potentially happen if starting to mine in an odd state.
  795. err := w.makeCurrent(parent, header)
  796. if err != nil {
  797. log.Error("Failed to create mining context", "err", err)
  798. return
  799. }
  800. // Create the current work task and check any fork transitions needed
  801. env := w.current
  802. if w.chainConfig.DAOForkSupport && w.chainConfig.DAOForkBlock != nil && w.chainConfig.DAOForkBlock.Cmp(header.Number) == 0 {
  803. misc.ApplyDAOHardFork(env.state)
  804. }
  805. // Accumulate the uncles for the current block
  806. uncles := make([]*types.Header, 0, 2)
  807. commitUncles := func(blocks map[common.Hash]*types.Block) {
  808. // Clean up stale uncle blocks first
  809. for hash, uncle := range blocks {
  810. if uncle.NumberU64()+staleThreshold <= header.Number.Uint64() {
  811. delete(blocks, hash)
  812. }
  813. }
  814. for hash, uncle := range blocks {
  815. if len(uncles) == 2 {
  816. break
  817. }
  818. if err := w.commitUncle(env, uncle.Header()); err != nil {
  819. log.Trace("Possible uncle rejected", "hash", hash, "reason", err)
  820. } else {
  821. log.Debug("Committing new uncle to block", "hash", hash)
  822. uncles = append(uncles, uncle.Header())
  823. }
  824. }
  825. }
  826. // Prefer to locally generated uncle
  827. commitUncles(w.localUncles)
  828. commitUncles(w.remoteUncles)
  829. // Create an empty block based on temporary copied state for
  830. // sealing in advance without waiting block execution finished.
  831. if !noempty && atomic.LoadUint32(&w.noempty) == 0 {
  832. w.commit(uncles, nil, false, tstart)
  833. }
  834. // Fill the block with all available pending transactions.
  835. pending, err := w.eth.TxPool().Pending()
  836. if err != nil {
  837. log.Error("Failed to fetch pending transactions", "err", err)
  838. return
  839. }
  840. // Short circuit if there is no available pending transactions.
  841. // But if we disable empty precommit already, ignore it. Since
  842. // empty block is necessary to keep the liveness of the network.
  843. if len(pending) == 0 && atomic.LoadUint32(&w.noempty) == 0 {
  844. w.updateSnapshot()
  845. return
  846. }
  847. // Split the pending transactions into locals and remotes
  848. localTxs, remoteTxs := make(map[common.Address]types.Transactions), pending
  849. for _, account := range w.eth.TxPool().Locals() {
  850. if txs := remoteTxs[account]; len(txs) > 0 {
  851. delete(remoteTxs, account)
  852. localTxs[account] = txs
  853. }
  854. }
  855. if len(localTxs) > 0 {
  856. txs := types.NewTransactionsByPriceAndNonce(w.current.signer, localTxs)
  857. if w.commitTransactions(txs, w.coinbase, interrupt) {
  858. return
  859. }
  860. }
  861. if len(remoteTxs) > 0 {
  862. txs := types.NewTransactionsByPriceAndNonce(w.current.signer, remoteTxs)
  863. if w.commitTransactions(txs, w.coinbase, interrupt) {
  864. return
  865. }
  866. }
  867. w.commit(uncles, w.fullTaskHook, true, tstart)
  868. }
  869. // commit runs any post-transaction state modifications, assembles the final block
  870. // and commits new work if consensus engine is running.
  871. func (w *worker) commit(uncles []*types.Header, interval func(), update bool, start time.Time) error {
  872. // Deep copy receipts here to avoid interaction between different tasks.
  873. receipts := make([]*types.Receipt, len(w.current.receipts))
  874. for i, l := range w.current.receipts {
  875. receipts[i] = new(types.Receipt)
  876. *receipts[i] = *l
  877. }
  878. s := w.current.state.Copy()
  879. block, err := w.engine.FinalizeAndAssemble(w.chain, w.current.header, s, w.current.txs, uncles, w.current.receipts)
  880. if err != nil {
  881. return err
  882. }
  883. if w.isRunning() {
  884. if interval != nil {
  885. interval()
  886. }
  887. select {
  888. case w.taskCh <- &task{receipts: receipts, state: s, block: block, createdAt: time.Now()}:
  889. w.unconfirmed.Shift(block.NumberU64() - 1)
  890. feesWei := new(big.Int)
  891. for i, tx := range block.Transactions() {
  892. feesWei.Add(feesWei, new(big.Int).Mul(new(big.Int).SetUint64(receipts[i].GasUsed), tx.GasPrice()))
  893. }
  894. feesEth := new(big.Float).Quo(new(big.Float).SetInt(feesWei), new(big.Float).SetInt(big.NewInt(params.Ether)))
  895. log.Info("Commit new mining work", "number", block.Number(), "sealhash", w.engine.SealHash(block.Header()),
  896. "uncles", len(uncles), "txs", w.current.tcount, "gas", block.GasUsed(), "fees", feesEth, "elapsed", common.PrettyDuration(time.Since(start)))
  897. case <-w.exitCh:
  898. log.Info("Worker has exited")
  899. }
  900. }
  901. if update {
  902. w.updateSnapshot()
  903. }
  904. return nil
  905. }
  906. // postSideBlock fires a side chain event, only use it for testing.
  907. func (w *worker) postSideBlock(event core.ChainSideEvent) {
  908. select {
  909. case w.chainSideCh <- event:
  910. case <-w.exitCh:
  911. }
  912. }