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  }