github.com/insight-chain/inb-go@v1.1.3-0.20191221022159-da049980ae38/consensus/ethash/consensus.go (about) 1 // Copyright 2017 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 MiningReward, either version 3 of the License, or 7 // (at your option) any later version. 8 // 9 // The go-ethereum library is distributed in the hope that it will be useful, 10 // but WITHOUT ANY WARRANTY; without even the implied warranty of 11 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 12 // GNU Lesser General Public License for more details. 13 // 14 // You should have received a copy of the GNU Lesser General Public License 15 // along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>. 16 17 package ethash 18 19 import ( 20 "bytes" 21 "errors" 22 "fmt" 23 "math/big" 24 "runtime" 25 "time" 26 27 mapset "github.com/deckarep/golang-set" 28 "github.com/insight-chain/inb-go/common" 29 "github.com/insight-chain/inb-go/common/math" 30 "github.com/insight-chain/inb-go/consensus" 31 "github.com/insight-chain/inb-go/core/state" 32 "github.com/insight-chain/inb-go/core/types" 33 "github.com/insight-chain/inb-go/crypto/sha3" 34 "github.com/insight-chain/inb-go/params" 35 "github.com/insight-chain/inb-go/rlp" 36 ) 37 38 // Ethash proof-of-work protocol constants. 39 var ( 40 FrontierBlockReward = big.NewInt(5e+18) // Block reward in wei for successfully mining a block 41 ByzantiumBlockReward = big.NewInt(3e+18) // Block reward in wei for successfully mining a block upward from Byzantium 42 ConstantinopleBlockReward = big.NewInt(2e+18) // Block reward in wei for successfully mining a block upward from Constantinople 43 maxUncles = 2 // Maximum number of uncles allowed in a single block 44 allowedFutureBlockTime = 15 * time.Second // Max time from current time allowed for blocks, before they're considered future blocks 45 46 // calcDifficultyConstantinople is the difficulty adjustment algorithm for Constantinople. 47 // It returns the difficulty that a new block should have when created at time given the 48 // parent block's time and difficulty. The calculation uses the Byzantium rules, but with 49 // bomb offset 5M. 50 // Specification EIP-1234: https://eips.ethereum.org/EIPS/eip-1234 51 calcDifficultyConstantinople = makeDifficultyCalculator(big.NewInt(5000000)) 52 53 // calcDifficultyByzantium is the difficulty adjustment algorithm. It returns 54 // the difficulty that a new block should have when created at time given the 55 // parent block's time and difficulty. The calculation uses the Byzantium rules. 56 // Specification EIP-649: https://eips.ethereum.org/EIPS/eip-649 57 calcDifficultyByzantium = makeDifficultyCalculator(big.NewInt(3000000)) 58 ) 59 60 // Various error messages to mark blocks invalid. These should be private to 61 // prevent engine specific errors from being referenced in the remainder of the 62 // codebase, inherently breaking if the engine is swapped out. Please put common 63 // error types into the consensus package. 64 var ( 65 errLargeBlockTime = errors.New("timestamp too big") 66 errZeroBlockTime = errors.New("timestamp equals parent's") 67 errTooManyUncles = errors.New("too many uncles") 68 errDuplicateUncle = errors.New("duplicate uncle") 69 errUncleIsAncestor = errors.New("uncle is ancestor") 70 errDanglingUncle = errors.New("uncle's parent is not ancestor") 71 errInvalidDifficulty = errors.New("non-positive difficulty") 72 errInvalidMixDigest = errors.New("invalid mix digest") 73 errInvalidPoW = errors.New("invalid proof-of-work") 74 ) 75 76 // Author implements consensus.Engine, returning the header's coinbase as the 77 // proof-of-work verified author of the block. 78 func (ethash *Ethash) Author(header *types.Header) (common.Address, error) { 79 return header.Coinbase, nil 80 } 81 82 // VerifyHeader checks whether a header conforms to the consensus rules of the 83 // stock Ethereum ethash engine. 84 func (ethash *Ethash) VerifyHeader(chain consensus.ChainReader, header *types.Header, seal bool) error { 85 // If we're running a full engine faking, accept any input as valid 86 if ethash.config.PowMode == ModeFullFake { 87 return nil 88 } 89 // Short circuit if the header is known, or it's parent not 90 number := header.Number.Uint64() 91 if chain.GetHeader(header.Hash(), number) != nil { 92 return nil 93 } 94 parent := chain.GetHeader(header.ParentHash, number-1) 95 if parent == nil { 96 return consensus.ErrUnknownAncestor 97 } 98 // Sanity checks passed, do a proper verification 99 return ethash.verifyHeader(chain, header, parent, false, seal) 100 } 101 102 // VerifyHeaders is similar to VerifyHeader, but verifies a batch of headers 103 // concurrently. The method returns a quit channel to abort the operations and 104 // a results channel to retrieve the async verifications. 105 func (ethash *Ethash) VerifyHeaders(chain consensus.ChainReader, headers []*types.Header, seals []bool) (chan<- struct{}, <-chan error) { 106 // If we're running a full engine faking, accept any input as valid 107 if ethash.config.PowMode == ModeFullFake || len(headers) == 0 { 108 abort, results := make(chan struct{}), make(chan error, len(headers)) 109 for i := 0; i < len(headers); i++ { 110 results <- nil 111 } 112 return abort, results 113 } 114 115 // Spawn as many workers as allowed threads 116 workers := runtime.GOMAXPROCS(0) 117 if len(headers) < workers { 118 workers = len(headers) 119 } 120 121 // Create a task channel and spawn the verifiers 122 var ( 123 inputs = make(chan int) 124 done = make(chan int, workers) 125 errors = make([]error, len(headers)) 126 abort = make(chan struct{}) 127 ) 128 for i := 0; i < workers; i++ { 129 go func() { 130 for index := range inputs { 131 errors[index] = ethash.verifyHeaderWorker(chain, headers, seals, index) 132 done <- index 133 } 134 }() 135 } 136 137 errorsOut := make(chan error, len(headers)) 138 go func() { 139 defer close(inputs) 140 var ( 141 in, out = 0, 0 142 checked = make([]bool, len(headers)) 143 inputs = inputs 144 ) 145 for { 146 select { 147 case inputs <- in: 148 if in++; in == len(headers) { 149 // Reached end of headers. Stop sending to workers. 150 inputs = nil 151 } 152 case index := <-done: 153 for checked[index] = true; checked[out]; out++ { 154 errorsOut <- errors[out] 155 if out == len(headers)-1 { 156 return 157 } 158 } 159 case <-abort: 160 return 161 } 162 } 163 }() 164 return abort, errorsOut 165 } 166 167 func (ethash *Ethash) verifyHeaderWorker(chain consensus.ChainReader, headers []*types.Header, seals []bool, index int) error { 168 var parent *types.Header 169 if index == 0 { 170 parent = chain.GetHeader(headers[0].ParentHash, headers[0].Number.Uint64()-1) 171 } else if headers[index-1].Hash() == headers[index].ParentHash { 172 parent = headers[index-1] 173 } 174 if parent == nil { 175 return consensus.ErrUnknownAncestor 176 } 177 if chain.GetHeader(headers[index].Hash(), headers[index].Number.Uint64()) != nil { 178 return nil // known block 179 } 180 return ethash.verifyHeader(chain, headers[index], parent, false, seals[index]) 181 } 182 183 // VerifyUncles verifies that the given block's uncles conform to the consensus 184 // rules of the stock Ethereum ethash engine. 185 func (ethash *Ethash) VerifyUncles(chain consensus.ChainReader, block *types.Block) error { 186 // If we're running a full engine faking, accept any input as valid 187 if ethash.config.PowMode == ModeFullFake { 188 return nil 189 } 190 // Verify that there are at most 2 uncles included in this block 191 if len(block.Uncles()) > maxUncles { 192 return errTooManyUncles 193 } 194 // Gather the set of past uncles and ancestors 195 uncles, ancestors := mapset.NewSet(), make(map[common.Hash]*types.Header) 196 197 number, parent := block.NumberU64()-1, block.ParentHash() 198 for i := 0; i < 7; i++ { 199 ancestor := chain.GetBlock(parent, number) 200 if ancestor == nil { 201 break 202 } 203 ancestors[ancestor.Hash()] = ancestor.Header() 204 for _, uncle := range ancestor.Uncles() { 205 uncles.Add(uncle.Hash()) 206 } 207 parent, number = ancestor.ParentHash(), number-1 208 } 209 ancestors[block.Hash()] = block.Header() 210 uncles.Add(block.Hash()) 211 212 // Verify each of the uncles that it's recent, but not an ancestor 213 for _, uncle := range block.Uncles() { 214 // Make sure every uncle is rewarded only once 215 hash := uncle.Hash() 216 if uncles.Contains(hash) { 217 return errDuplicateUncle 218 } 219 uncles.Add(hash) 220 221 // Make sure the uncle has a valid ancestry 222 if ancestors[hash] != nil { 223 return errUncleIsAncestor 224 } 225 if ancestors[uncle.ParentHash] == nil || uncle.ParentHash == block.ParentHash() { 226 return errDanglingUncle 227 } 228 if err := ethash.verifyHeader(chain, uncle, ancestors[uncle.ParentHash], true, true); err != nil { 229 return err 230 } 231 } 232 return nil 233 } 234 235 // verifyHeader checks whether a header conforms to the consensus rules of the 236 // stock Ethereum ethash engine. 237 // See YP section 4.3.4. "Block Header Validity" 238 func (ethash *Ethash) verifyHeader(chain consensus.ChainReader, header, parent *types.Header, uncle bool, seal bool) error { 239 // Ensure that the header's extra-data section is of a reasonable size 240 if uint64(len(header.Extra)) > params.MaximumExtraDataSize { 241 return fmt.Errorf("extra-data too long: %d > %d", len(header.Extra), params.MaximumExtraDataSize) 242 } 243 // Verify the header's timestamp 244 if uncle { 245 if header.Time.Cmp(math.MaxBig256) > 0 { 246 return errLargeBlockTime 247 } 248 } else { 249 if header.Time.Cmp(big.NewInt(time.Now().Add(allowedFutureBlockTime).Unix())) > 0 { 250 return consensus.ErrFutureBlock 251 } 252 } 253 if header.Time.Cmp(parent.Time) <= 0 { 254 return errZeroBlockTime 255 } 256 // Verify the block's difficulty based in it's timestamp and parent's difficulty 257 expected := ethash.CalcDifficulty(chain, header.Time.Uint64(), parent) 258 259 if expected.Cmp(header.Difficulty) != 0 { 260 return fmt.Errorf("invalid difficulty: have %v, want %v", header.Difficulty, expected) 261 } 262 // Verify that the gas limit is <= 2^63-1 263 cap := uint64(0x7fffffffffffffff) 264 if header.ResLimit > cap { 265 return fmt.Errorf("invalid resLimit: have %v, max %v", header.ResLimit, cap) 266 } 267 // Verify that the gasUsed is <= gasLimit 268 if header.ResUsed > header.ResLimit { 269 return fmt.Errorf("invalid resUsed: have %d, resLimit %d", header.ResUsed, header.ResLimit) 270 } 271 272 // Verify that the gas limit remains within allowed bounds 273 diff := int64(parent.ResLimit) - int64(header.ResLimit) 274 if diff < 0 { 275 diff *= -1 276 } 277 limit := parent.ResLimit / params.GasLimitBoundDivisor 278 279 if uint64(diff) >= limit || header.ResLimit < params.MinGasLimit { 280 return fmt.Errorf("invalid res limit: have %d, want %d += %d", header.ResLimit, parent.ResLimit, limit) 281 } 282 // Verify that the block number is parent's +1 283 if diff := new(big.Int).Sub(header.Number, parent.Number); diff.Cmp(big.NewInt(1)) != 0 { 284 return consensus.ErrInvalidNumber 285 } 286 // Verify the engine specific seal securing the block 287 if seal { 288 if err := ethash.VerifySeal(chain, header); err != nil { 289 return err 290 } 291 } 292 // If all checks passed, validate any special fields for hard forks 293 //if err := misc.VerifyDAOHeaderExtraData(chain.Config(), header); err != nil { 294 // return err 295 //} 296 //if err := misc.VerifyForkHashes(chain.Config(), header, uncle); err != nil { 297 // return err 298 //} 299 return nil 300 } 301 302 // CalcDifficulty is the difficulty adjustment algorithm. It returns 303 // the difficulty that a new block should have when created at time 304 // given the parent block's time and difficulty. 305 func (ethash *Ethash) CalcDifficulty(chain consensus.ChainReader, time uint64, parent *types.Header) *big.Int { 306 return CalcDifficulty(chain.Config(), time, parent) 307 } 308 309 // CalcDifficulty is the difficulty adjustment algorithm. It returns 310 // the difficulty that a new block should have when created at time 311 // given the parent block's time and difficulty. 312 func CalcDifficulty(config *params.ChainConfig, time uint64, parent *types.Header) *big.Int { 313 next := new(big.Int).Add(parent.Number, big1) 314 switch { 315 case config.IsConstantinople(next): 316 return calcDifficultyConstantinople(time, parent) 317 case config.IsByzantium(next): 318 return calcDifficultyByzantium(time, parent) 319 case config.IsHomestead(next): 320 return calcDifficultyHomestead(time, parent) 321 default: 322 return calcDifficultyFrontier(time, parent) 323 } 324 } 325 326 // Some weird constants to avoid constant memory allocs for them. 327 var ( 328 expDiffPeriod = big.NewInt(100000) 329 big1 = big.NewInt(1) 330 big2 = big.NewInt(2) 331 big9 = big.NewInt(9) 332 big10 = big.NewInt(10) 333 bigMinus99 = big.NewInt(-99) 334 ) 335 336 // makeDifficultyCalculator creates a difficultyCalculator with the given bomb-delay. 337 // the difficulty is calculated with Byzantium rules, which differs from Homestead in 338 // how uncles affect the calculation 339 func makeDifficultyCalculator(bombDelay *big.Int) func(time uint64, parent *types.Header) *big.Int { 340 // Note, the calculations below looks at the parent number, which is 1 below 341 // the block number. Thus we remove one from the delay given 342 bombDelayFromParent := new(big.Int).Sub(bombDelay, big1) 343 return func(time uint64, parent *types.Header) *big.Int { 344 // https://github.com/ethereum/EIPs/issues/100. 345 // algorithm: 346 // diff = (parent_diff + 347 // (parent_diff / 2048 * max((2 if len(parent.uncles) else 1) - ((timestamp - parent.timestamp) // 9), -99)) 348 // ) + 2^(periodCount - 2) 349 350 bigTime := new(big.Int).SetUint64(time) 351 bigParentTime := new(big.Int).Set(parent.Time) 352 353 // holds intermediate values to make the algo easier to read & audit 354 x := new(big.Int) 355 y := new(big.Int) 356 357 // (2 if len(parent_uncles) else 1) - (block_timestamp - parent_timestamp) // 9 358 x.Sub(bigTime, bigParentTime) 359 x.Div(x, big9) 360 if parent.UncleHash == types.EmptyUncleHash { 361 x.Sub(big1, x) 362 } else { 363 x.Sub(big2, x) 364 } 365 // max((2 if len(parent_uncles) else 1) - (block_timestamp - parent_timestamp) // 9, -99) 366 if x.Cmp(bigMinus99) < 0 { 367 x.Set(bigMinus99) 368 } 369 // parent_diff + (parent_diff / 2048 * max((2 if len(parent.uncles) else 1) - ((timestamp - parent.timestamp) // 9), -99)) 370 y.Div(parent.Difficulty, params.DifficultyBoundDivisor) 371 x.Mul(y, x) 372 x.Add(parent.Difficulty, x) 373 374 // minimum difficulty can ever be (before exponential factor) 375 if x.Cmp(params.MinimumDifficulty) < 0 { 376 x.Set(params.MinimumDifficulty) 377 } 378 // calculate a fake block number for the ice-age delay 379 // Specification: https://eips.ethereum.org/EIPS/eip-1234 380 fakeBlockNumber := new(big.Int) 381 if parent.Number.Cmp(bombDelayFromParent) >= 0 { 382 fakeBlockNumber = fakeBlockNumber.Sub(parent.Number, bombDelayFromParent) 383 } 384 // for the exponential factor 385 periodCount := fakeBlockNumber 386 periodCount.Div(periodCount, expDiffPeriod) 387 388 // the exponential factor, commonly referred to as "the bomb" 389 // diff = diff + 2^(periodCount - 2) 390 if periodCount.Cmp(big1) > 0 { 391 y.Sub(periodCount, big2) 392 y.Exp(big2, y, nil) 393 x.Add(x, y) 394 } 395 return x 396 } 397 } 398 399 // calcDifficultyHomestead is the difficulty adjustment algorithm. It returns 400 // the difficulty that a new block should have when created at time given the 401 // parent block's time and difficulty. The calculation uses the Homestead rules. 402 func calcDifficultyHomestead(time uint64, parent *types.Header) *big.Int { 403 // https://github.com/ethereum/EIPs/blob/master/EIPS/eip-2.md 404 // algorithm: 405 // diff = (parent_diff + 406 // (parent_diff / 2048 * max(1 - (block_timestamp - parent_timestamp) // 10, -99)) 407 // ) + 2^(periodCount - 2) 408 409 bigTime := new(big.Int).SetUint64(time) 410 bigParentTime := new(big.Int).Set(parent.Time) 411 412 // holds intermediate values to make the algo easier to read & audit 413 x := new(big.Int) 414 y := new(big.Int) 415 416 // 1 - (block_timestamp - parent_timestamp) // 10 417 x.Sub(bigTime, bigParentTime) 418 x.Div(x, big10) 419 x.Sub(big1, x) 420 421 // max(1 - (block_timestamp - parent_timestamp) // 10, -99) 422 if x.Cmp(bigMinus99) < 0 { 423 x.Set(bigMinus99) 424 } 425 // (parent_diff + parent_diff // 2048 * max(1 - (block_timestamp - parent_timestamp) // 10, -99)) 426 y.Div(parent.Difficulty, params.DifficultyBoundDivisor) 427 x.Mul(y, x) 428 x.Add(parent.Difficulty, x) 429 430 // minimum difficulty can ever be (before exponential factor) 431 if x.Cmp(params.MinimumDifficulty) < 0 { 432 x.Set(params.MinimumDifficulty) 433 } 434 // for the exponential factor 435 periodCount := new(big.Int).Add(parent.Number, big1) 436 periodCount.Div(periodCount, expDiffPeriod) 437 438 // the exponential factor, commonly referred to as "the bomb" 439 // diff = diff + 2^(periodCount - 2) 440 if periodCount.Cmp(big1) > 0 { 441 y.Sub(periodCount, big2) 442 y.Exp(big2, y, nil) 443 x.Add(x, y) 444 } 445 return x 446 } 447 448 // calcDifficultyFrontier is the difficulty adjustment algorithm. It returns the 449 // difficulty that a new block should have when created at time given the parent 450 // block's time and difficulty. The calculation uses the Frontier rules. 451 func calcDifficultyFrontier(time uint64, parent *types.Header) *big.Int { 452 diff := new(big.Int) 453 adjust := new(big.Int).Div(parent.Difficulty, params.DifficultyBoundDivisor) 454 bigTime := new(big.Int) 455 bigParentTime := new(big.Int) 456 457 bigTime.SetUint64(time) 458 bigParentTime.Set(parent.Time) 459 460 if bigTime.Sub(bigTime, bigParentTime).Cmp(params.DurationLimit) < 0 { 461 diff.Add(parent.Difficulty, adjust) 462 } else { 463 diff.Sub(parent.Difficulty, adjust) 464 } 465 if diff.Cmp(params.MinimumDifficulty) < 0 { 466 diff.Set(params.MinimumDifficulty) 467 } 468 469 periodCount := new(big.Int).Add(parent.Number, big1) 470 periodCount.Div(periodCount, expDiffPeriod) 471 if periodCount.Cmp(big1) > 0 { 472 // diff = diff + 2^(periodCount - 2) 473 expDiff := periodCount.Sub(periodCount, big2) 474 expDiff.Exp(big2, expDiff, nil) 475 diff.Add(diff, expDiff) 476 diff = math.BigMax(diff, params.MinimumDifficulty) 477 } 478 return diff 479 } 480 481 // VerifySeal implements consensus.Engine, checking whether the given block satisfies 482 // the PoW difficulty requirements. 483 func (ethash *Ethash) VerifySeal(chain consensus.ChainReader, header *types.Header) error { 484 return ethash.verifySeal(chain, header, false) 485 } 486 487 // verifySeal checks whether a block satisfies the PoW difficulty requirements, 488 // either using the usual ethash cache for it, or alternatively using a full DAG 489 // to make remote mining fast. 490 func (ethash *Ethash) verifySeal(chain consensus.ChainReader, header *types.Header, fulldag bool) error { 491 // If we're running a fake PoW, accept any seal as valid 492 if ethash.config.PowMode == ModeFake || ethash.config.PowMode == ModeFullFake { 493 time.Sleep(ethash.fakeDelay) 494 if ethash.fakeFail == header.Number.Uint64() { 495 return errInvalidPoW 496 } 497 return nil 498 } 499 // If we're running a shared PoW, delegate verification to it 500 if ethash.shared != nil { 501 return ethash.shared.verifySeal(chain, header, fulldag) 502 } 503 // Ensure that we have a valid difficulty for the block 504 if header.Difficulty.Sign() <= 0 { 505 return errInvalidDifficulty 506 } 507 // Recompute the digest and PoW values 508 number := header.Number.Uint64() 509 510 var ( 511 digest []byte 512 result []byte 513 ) 514 // If fast-but-heavy PoW verification was requested, use an ethash dataset 515 if fulldag { 516 dataset := ethash.dataset(number, true) 517 if dataset.generated() { 518 digest, result = hashimotoFull(dataset.dataset, ethash.SealHash(header).Bytes(), header.Nonce.Uint64()) 519 520 // Datasets are unmapped in a finalizer. Ensure that the dataset stays alive 521 // until after the call to hashimotoFull so it's not unmapped while being used. 522 runtime.KeepAlive(dataset) 523 } else { 524 // Dataset not yet generated, don't hang, use a cache instead 525 fulldag = false 526 } 527 } 528 // If slow-but-light PoW verification was requested (or DAG not yet ready), use an ethash cache 529 if !fulldag { 530 cache := ethash.cache(number) 531 532 size := datasetSize(number) 533 if ethash.config.PowMode == ModeTest { 534 size = 32 * 1024 535 } 536 digest, result = hashimotoLight(size, cache.cache, ethash.SealHash(header).Bytes(), header.Nonce.Uint64()) 537 538 // Caches are unmapped in a finalizer. Ensure that the cache stays alive 539 // until after the call to hashimotoLight so it's not unmapped while being used. 540 runtime.KeepAlive(cache) 541 } 542 // Verify the calculated values against the ones provided in the header 543 if !bytes.Equal(header.MixDigest[:], digest) { 544 return errInvalidMixDigest 545 } 546 target := new(big.Int).Div(two256, header.Difficulty) 547 if new(big.Int).SetBytes(result).Cmp(target) > 0 { 548 return errInvalidPoW 549 } 550 return nil 551 } 552 553 // Prepare implements consensus.Engine, initializing the difficulty field of a 554 // header to conform to the ethash protocol. The changes are done inline. 555 func (ethash *Ethash) Prepare(chain consensus.ChainReader, header *types.Header) error { 556 parent := chain.GetHeader(header.ParentHash, header.Number.Uint64()-1) 557 if parent == nil { 558 return consensus.ErrUnknownAncestor 559 } 560 header.Difficulty = ethash.CalcDifficulty(chain, header.Time.Uint64(), parent) 561 return nil 562 } 563 564 // Finalize implements consensus.Engine, accumulating the block and uncle rewards, 565 // setting the final state and assembling the block. 566 func (ethash *Ethash) Finalize(chain consensus.ChainReader, header *types.Header, state *state.StateDB, txs []*types.Transaction, uncles []*types.Header, receipts []*types.Receipt, vdposContext *types.VdposContext) (*types.Block, error) { 567 // Accumulate any block and uncle rewards and commit the final state root 568 accumulateRewards(chain.Config(), state, header, uncles) 569 header.Root = state.IntermediateRoot(chain.Config().IsEIP158(header.Number)) 570 571 // Header seems complete, assemble into a block and return 572 return types.NewBlock(header, txs, uncles, receipts), nil 573 } 574 575 // SealHash returns the hash of a block prior to it being sealed. 576 func (ethash *Ethash) SealHash(header *types.Header) (hash common.Hash) { 577 hasher := sha3.NewKeccak256() 578 579 rlp.Encode(hasher, []interface{}{ 580 header.ParentHash, 581 header.UncleHash, 582 header.Coinbase, 583 header.Root, 584 header.TxHash, 585 header.ReceiptHash, 586 header.Bloom, 587 header.Difficulty, 588 header.Number, 589 header.ResLimit, 590 header.ResUsed, 591 header.Time, 592 header.Extra, 593 }) 594 hasher.Sum(hash[:0]) 595 return hash 596 } 597 598 // Some weird constants to avoid constant memory allocs for them. 599 var ( 600 big8 = big.NewInt(8) 601 big32 = big.NewInt(32) 602 ) 603 604 // AccumulateRewards credits the coinbase of the given block with the mining 605 // reward. The total reward consists of the static block reward and rewards for 606 // included uncles. The coinbase of each uncle block is also rewarded. 607 func accumulateRewards(config *params.ChainConfig, state *state.StateDB, header *types.Header, uncles []*types.Header) { 608 // Select the correct block reward based on chain progression 609 blockReward := FrontierBlockReward 610 if config.IsByzantium(header.Number) { 611 blockReward = ByzantiumBlockReward 612 } 613 if config.IsConstantinople(header.Number) { 614 blockReward = ConstantinopleBlockReward 615 } 616 // Accumulate the rewards for the miner and any included uncles 617 reward := new(big.Int).Set(blockReward) 618 r := new(big.Int) 619 for _, uncle := range uncles { 620 r.Add(uncle.Number, big8) 621 r.Sub(r, header.Number) 622 r.Mul(r, blockReward) 623 r.Div(r, big8) 624 state.AddBalance(uncle.Coinbase, r) 625 626 r.Div(blockReward, big32) 627 reward.Add(reward, r) 628 } 629 state.AddBalance(header.Coinbase, reward) 630 }