ethereum.forks.bpo5.fork

Ethereum Specification.

.. contents:: Table of Contents :backlinks: none :local:

Introduction

Entry point for the Ethereum specification.

BASE_FEE_MAX_CHANGE_DENOMINATOR

96
BASE_FEE_MAX_CHANGE_DENOMINATOR = Uint(8)

ELASTICITY_MULTIPLIER

97
ELASTICITY_MULTIPLIER = Uint(2)

EMPTY_OMMER_HASH

98
EMPTY_OMMER_HASH = keccak256(rlp.encode([]))

SYSTEM_ADDRESS

99
SYSTEM_ADDRESS = hex_to_address("0xfffffffffffffffffffffffffffffffffffffffe")

BEACON_ROOTS_ADDRESS

100
BEACON_ROOTS_ADDRESS = hex_to_address(
101
    "0x000F3df6D732807Ef1319fB7B8bB8522d0Beac02"
102
)

SYSTEM_TRANSACTION_GAS

103
SYSTEM_TRANSACTION_GAS = Uint(30000000)

MAX_BLOB_GAS_PER_BLOCK

104
MAX_BLOB_GAS_PER_BLOCK: Final[U64] = (
105
    GasCosts.BLOB_SCHEDULE_MAX * GasCosts.PER_BLOB
106
)

VERSIONED_HASH_VERSION_KZG

107
VERSIONED_HASH_VERSION_KZG = b"\x01"

WITHDRAWAL_REQUEST_PREDEPLOY_ADDRESS

109
WITHDRAWAL_REQUEST_PREDEPLOY_ADDRESS = hex_to_address(
110
    "0x00000961Ef480Eb55e80D19ad83579A64c007002"
111
)

CONSOLIDATION_REQUEST_PREDEPLOY_ADDRESS

112
CONSOLIDATION_REQUEST_PREDEPLOY_ADDRESS = hex_to_address(
113
    "0x0000BBdDc7CE488642fb579F8B00f3a590007251"
114
)

HISTORY_STORAGE_ADDRESS

115
HISTORY_STORAGE_ADDRESS = hex_to_address(
116
    "0x0000F90827F1C53a10cb7A02335B175320002935"
117
)

MAX_BLOCK_SIZE

118
MAX_BLOCK_SIZE = 10_485_760

SAFETY_MARGIN

119
SAFETY_MARGIN = 2_097_152

MAX_RLP_BLOCK_SIZE

120
MAX_RLP_BLOCK_SIZE = MAX_BLOCK_SIZE - SAFETY_MARGIN

BLOB_COUNT_LIMIT

121
BLOB_COUNT_LIMIT = 6

BlockChain

History and current state of the block chain.

124
@final
125
@dataclass
class BlockChain:

blocks

131
    blocks: List[Block]

state

132
    state: State

chain_id

133
    chain_id: U64

apply_fork

Transforms the state from the previous hard fork (old) into the block chain object for this hard fork and returns it.

When forks need to implement an irregular state transition, this function is used to handle the irregularity. See the :ref:DAO Fork <dao-fork> for an example.

Parameters

old : Previous block chain object.

Returns

new : BlockChain Upgraded block chain object for this hard fork.

def apply_fork(old: BlockChain) -> BlockChain:
137
    <snip>
156
    return old

get_last_256_block_hashes

Obtain the list of hashes of the previous 256 blocks in order of increasing block number.

This function will return less hashes for the first 256 blocks.

The BLOCKHASH opcode needs to access the latest hashes on the chain, therefore this function retrieves them.

Parameters

chain : History and current state.

Returns

recent_block_hashes : List[Hash32] Hashes of the recent 256 blocks in order of increasing block number.

def get_last_256_block_hashes(chain: BlockChain) -> List[Hash32]:
160
    <snip>
180
    recent_blocks = chain.blocks[-255:]
181
    # TODO: This function has not been tested rigorously
182
    if len(recent_blocks) == 0:
183
        return []
184
185
    recent_block_hashes = []
186
187
    for block in recent_blocks:
188
        prev_block_hash = block.header.parent_hash
189
        recent_block_hashes.append(prev_block_hash)
190
191
    # We are computing the hash only for the most recent block and not for
192
    # the rest of the blocks as they have successors which have the hash of
193
    # the current block as parent hash.
194
    most_recent_block_hash = keccak256(rlp.encode(recent_blocks[-1].header))
195
    recent_block_hashes.append(most_recent_block_hash)
196
197
    return recent_block_hashes

state_transition

Attempts to apply a block to an existing block chain.

All parts of the block's contents need to be verified before being added to the chain. Blocks are verified by ensuring that the contents of the block make logical sense with the contents of the parent block. The information in the block's header must also match the corresponding information in the block.

To implement Ethereum, in theory clients are only required to store the most recent 255 blocks of the chain since as far as execution is concerned, only those blocks are accessed. Practically, however, clients should store more blocks to handle reorgs.

Parameters

chain : History and current state. block : Block to apply to chain.

def state_transition(chain: BlockChain, ​​block: Block) -> None:
201
    <snip>
223
    if len(rlp.encode(block)) > MAX_RLP_BLOCK_SIZE:
224
        raise InvalidBlock("Block rlp size exceeds MAX_RLP_BLOCK_SIZE")
225
226
    validate_header(chain, block.header)
227
    if block.ommers != ():
228
        raise InvalidBlock
229
230
    block_state = BlockState(pre_state=chain.state)
231
232
    block_env = vm.BlockEnvironment(
233
        chain_id=chain.chain_id,
234
        state=block_state,
235
        block_gas_limit=block.header.gas_limit,
236
        block_hashes=get_last_256_block_hashes(chain),
237
        coinbase=block.header.coinbase,
238
        number=block.header.number,
239
        base_fee_per_gas=block.header.base_fee_per_gas,
240
        time=block.header.timestamp,
241
        prev_randao=block.header.prev_randao,
242
        excess_blob_gas=block.header.excess_blob_gas,
243
        parent_beacon_block_root=block.header.parent_beacon_block_root,
244
    )
245
246
    block_output = apply_body(
247
        block_env=block_env,
248
        transactions=block.transactions,
249
        withdrawals=block.withdrawals,
250
    )
251
    block_diff = extract_block_diff(block_state)
252
    block_state_root = chain.state.compute_state_root(block_diff)
253
    transactions_root = root(block_output.transactions_trie)
254
    receipt_root = root(block_output.receipts_trie)
255
    block_logs_bloom = logs_bloom(block_output.block_logs)
256
    withdrawals_root = root(block_output.withdrawals_trie)
257
    requests_hash = compute_requests_hash(block_output.requests)
258
259
    if block_output.block_gas_used != block.header.gas_used:
260
        raise InvalidBlock(
261
            f"{block_output.block_gas_used} != {block.header.gas_used}"
262
        )
263
    if transactions_root != block.header.transactions_root:
264
        raise InvalidBlock
265
    if block_state_root != block.header.state_root:
266
        raise InvalidBlock
267
    if receipt_root != block.header.receipt_root:
268
        raise InvalidBlock
269
    if block_logs_bloom != block.header.bloom:
270
        raise InvalidBlock
271
    if withdrawals_root != block.header.withdrawals_root:
272
        raise InvalidBlock
273
    if block_output.blob_gas_used != block.header.blob_gas_used:
274
        raise InvalidBlock
275
    if requests_hash != block.header.requests_hash:
276
        raise InvalidBlock
277
278
    apply_changes_to_state(chain.state, block_diff)
279
    chain.blocks.append(block)
280
    if len(chain.blocks) > 255:
281
        # Real clients have to store more blocks to deal with reorgs, but the
282
        # protocol only requires the last 255
283
        chain.blocks = chain.blocks[-255:]

calculate_base_fee_per_gas

Calculates the base fee per gas for the block.

Parameters

block_gas_limit : Gas limit of the block for which the base fee is being calculated. parent_gas_limit : Gas limit of the parent block. parent_gas_used : Gas used in the parent block. parent_base_fee_per_gas : Base fee per gas of the parent block.

Returns

base_fee_per_gas : Uint Base fee per gas for the block.

def calculate_base_fee_per_gas(block_gas_limit: Uint, ​​parent_gas_limit: Uint, ​​parent_gas_used: Uint, ​​parent_base_fee_per_gas: Uint) -> Uint:
292
    <snip>
312
    parent_gas_target = parent_gas_limit // ELASTICITY_MULTIPLIER
313
    if not check_gas_limit(block_gas_limit, parent_gas_limit):
314
        raise InvalidBlock
315
316
    if parent_gas_used == parent_gas_target:
317
        expected_base_fee_per_gas = parent_base_fee_per_gas
318
    elif parent_gas_used > parent_gas_target:
319
        gas_used_delta = parent_gas_used - parent_gas_target
320
321
        parent_fee_gas_delta = parent_base_fee_per_gas * gas_used_delta
322
        target_fee_gas_delta = parent_fee_gas_delta // parent_gas_target
323
324
        base_fee_per_gas_delta = max(
325
            target_fee_gas_delta // BASE_FEE_MAX_CHANGE_DENOMINATOR,
326
            Uint(1),
327
        )
328
329
        expected_base_fee_per_gas = (
330
            parent_base_fee_per_gas + base_fee_per_gas_delta
331
        )
332
    else:
333
        gas_used_delta = parent_gas_target - parent_gas_used
334
335
        parent_fee_gas_delta = parent_base_fee_per_gas * gas_used_delta
336
        target_fee_gas_delta = parent_fee_gas_delta // parent_gas_target
337
338
        base_fee_per_gas_delta = (
339
            target_fee_gas_delta // BASE_FEE_MAX_CHANGE_DENOMINATOR
340
        )
341
342
        expected_base_fee_per_gas = (
343
            parent_base_fee_per_gas - base_fee_per_gas_delta
344
        )
345
346
    return Uint(expected_base_fee_per_gas)

validate_header

Verifies a block header.

In order to consider a block's header valid, the logic for the quantities in the header should match the logic for the block itself. For example the header timestamp should be greater than the block's parent timestamp because the block was created after the parent block. Additionally, the block's number should be directly following the parent block's number since it is the next block in the sequence.

Parameters

chain : History and current state. header : Header to check for correctness.

def validate_header(chain: BlockChain, ​​header: Header) -> None:
350
    <snip>
368
    if header.number < Uint(1):
369
        raise InvalidBlock
370
371
    parent_header = chain.blocks[-1].header
372
373
    excess_blob_gas = calculate_excess_blob_gas(parent_header)
374
    if header.excess_blob_gas != excess_blob_gas:
375
        raise InvalidBlock
376
377
    if header.gas_used > header.gas_limit:
378
        raise InvalidBlock
379
380
    expected_base_fee_per_gas = calculate_base_fee_per_gas(
381
        header.gas_limit,
382
        parent_header.gas_limit,
383
        parent_header.gas_used,
384
        parent_header.base_fee_per_gas,
385
    )
386
    if expected_base_fee_per_gas != header.base_fee_per_gas:
387
        raise InvalidBlock
388
    if header.timestamp <= parent_header.timestamp:
389
        raise InvalidBlock
390
    if header.number != parent_header.number + Uint(1):
391
        raise InvalidBlock
392
    if len(header.extra_data) > 32:
393
        raise InvalidBlock
394
    if header.difficulty != 0:
395
        raise InvalidBlock
396
    if header.nonce != b"\x00\x00\x00\x00\x00\x00\x00\x00":
397
        raise InvalidBlock
398
    if header.ommers_hash != EMPTY_OMMER_HASH:
399
        raise InvalidBlock
400
401
    block_parent_hash = keccak256(rlp.encode(parent_header))
402
    if header.parent_hash != block_parent_hash:
403
        raise InvalidBlock

check_transaction

Check if the transaction is includable in the block.

Parameters

block_env : The block scoped environment. block_output : The block output for the current block. tx : The transaction. tx_state : The transaction state tracker.

Returns

sender_address : The sender of the transaction. effective_gas_price : The price to charge for gas when the transaction is executed. blob_versioned_hashes : The blob versioned hashes of the transaction. tx_blob_gas_used: The blob gas used by the transaction.

Raises

InvalidBlock : If the transaction is not includable. GasUsedExceedsLimitError : If the gas used by the transaction exceeds the block's gas limit. NonceMismatchError : If the nonce of the transaction is not equal to the sender's nonce. InsufficientBalanceError : If the sender's balance is not enough to pay for the transaction. InvalidSenderError : If the transaction is from an address that does not exist anymore. PriorityFeeGreaterThanMaxFeeError : If the priority fee is greater than the maximum fee per gas. InsufficientMaxFeePerGasError : If the maximum fee per gas is insufficient for the transaction. InsufficientMaxFeePerBlobGasError : If the maximum fee per blob gas is insufficient for the transaction. BlobGasLimitExceededError : If the blob gas used by the transaction exceeds the block's blob gas limit. InvalidBlobVersionedHashError : If the transaction contains a blob versioned hash with an invalid version. NoBlobDataError : If the transaction is a type 3 but has no blobs. BlobCountExceededError : If the transaction is a type 3 and has more blobs than the limit. TransactionTypeContractCreationError: If the transaction type is not allowed to create contracts. EmptyAuthorizationListError : If the transaction is a SetCodeTransaction and the authorization list is empty.

def check_transaction(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​block_output: ethereum.forks.bpo5.vm.BlockOutput, ​​tx: Transaction, ​​tx_state: TransactionState) -> Tuple[Address, Uint, Tuple[VersionedHash, ...], U64]:
412
    <snip>
472
    gas_available = block_env.block_gas_limit - block_output.block_gas_used
473
    blob_gas_available = MAX_BLOB_GAS_PER_BLOCK - block_output.blob_gas_used
474
475
    if tx.gas > gas_available:
476
        raise GasUsedExceedsLimitError("gas used exceeds limit")
477
478
    tx_blob_gas_used = calculate_total_blob_gas(tx)
479
    if tx_blob_gas_used > blob_gas_available:
480
        raise BlobGasLimitExceededError("blob gas limit exceeded")
481
482
    tx_chain_id = chain_id(tx)
483
    if tx_chain_id is not None and tx_chain_id != block_env.chain_id:
484
        raise WrongChainIdError(
485
            expected=block_env.chain_id,
486
            actual=tx_chain_id,
487
        )
488
489
    sender_address = recover_sender(tx)
490
    sender_account = get_account(tx_state, sender_address)
491
492
    if isinstance(tx, FeeMarketCapableTransaction):
493
        if tx.max_fee_per_gas < tx.max_priority_fee_per_gas:
494
            raise PriorityFeeGreaterThanMaxFeeError(
495
                "priority fee greater than max fee"
496
            )
497
        if tx.max_fee_per_gas < block_env.base_fee_per_gas:
498
            raise InsufficientMaxFeePerGasError(
499
                tx.max_fee_per_gas, block_env.base_fee_per_gas
500
            )
501
502
        priority_fee_per_gas = min(
503
            tx.max_priority_fee_per_gas,
504
            tx.max_fee_per_gas - block_env.base_fee_per_gas,
505
        )
506
        effective_gas_price = priority_fee_per_gas + block_env.base_fee_per_gas
507
        max_gas_fee = tx.gas * tx.max_fee_per_gas
508
    else:
509
        if tx.gas_price < block_env.base_fee_per_gas:
510
            raise InvalidBlock
511
        effective_gas_price = tx.gas_price
512
        max_gas_fee = tx.gas * tx.gas_price
513
514
    if isinstance(tx, BlobTransaction):
515
        blob_count = len(tx.blob_versioned_hashes)
516
        if blob_count == 0:
517
            raise NoBlobDataError("no blob data in transaction")
518
        if blob_count > BLOB_COUNT_LIMIT:
519
            raise BlobCountExceededError(
520
                f"Tx has {blob_count} blobs. Max allowed: {BLOB_COUNT_LIMIT}"
521
            )
522
        for blob_versioned_hash in tx.blob_versioned_hashes:
523
            if blob_versioned_hash[0:1] != VERSIONED_HASH_VERSION_KZG:
524
                raise InvalidBlobVersionedHashError(
525
                    "invalid blob versioned hash"
526
                )
527
528
        blob_gas_price = calculate_blob_gas_price(block_env.excess_blob_gas)
529
        if Uint(tx.max_fee_per_blob_gas) < blob_gas_price:
530
            raise InsufficientMaxFeePerBlobGasError(
531
                "insufficient max fee per blob gas"
532
            )
533
534
        max_gas_fee += Uint(calculate_total_blob_gas(tx)) * Uint(
535
            tx.max_fee_per_blob_gas
536
        )
537
        blob_versioned_hashes = tx.blob_versioned_hashes
538
    else:
539
        blob_versioned_hashes = ()
540
541
    if isinstance(tx, (BlobTransaction, SetCodeTransaction)):
542
        if not isinstance(tx.to, Address):
543
            raise TransactionTypeContractCreationError(tx)
544
545
    if isinstance(tx, SetCodeTransaction):
546
        if not any(tx.authorizations):
547
            raise EmptyAuthorizationListError("empty authorization list")
548
549
    if sender_account.nonce > Uint(tx.nonce):
550
        raise NonceMismatchError("nonce too low")
551
    elif sender_account.nonce < Uint(tx.nonce):
552
        raise NonceMismatchError("nonce too high")
553
554
    if Uint(sender_account.balance) < max_gas_fee + Uint(tx.value):
555
        raise InsufficientBalanceError("insufficient sender balance")
556
    sender_code = get_code(tx_state, sender_account.code_hash)
557
    if sender_account.code_hash != EMPTY_CODE_HASH and not is_valid_delegation(
558
        sender_code
559
    ):
560
        raise InvalidSenderError("not EOA")
561
562
    return (
563
        sender_address,
564
        effective_gas_price,
565
        blob_versioned_hashes,
566
        tx_blob_gas_used,
567
    )

make_receipt

Make the receipt for a transaction that was executed.

Parameters

tx : The executed transaction. error : Error in the top level frame of the transaction, if any. cumulative_gas_used : The total gas used so far in the block after the transaction was executed. logs : The logs produced by the transaction.

Returns

receipt : The receipt for the transaction.

def make_receipt(tx: Transaction, ​​error: Optional[EthereumException], ​​cumulative_gas_used: Uint, ​​logs: Tuple[Log, ...]) -> Bytes | Receipt:
576
    <snip>
597
    receipt = Receipt(
598
        succeeded=error is None,
599
        cumulative_gas_used=cumulative_gas_used,
600
        bloom=logs_bloom(logs),
601
        logs=logs,
602
    )
603
604
    return encode_receipt(tx, receipt)

process_checked_system_transaction

Process a system transaction and raise an error if the contract does not contain code or if the transaction fails.

Parameters

block_env : The block scoped environment. target_address : Address of the contract to call. data : Data to pass to the contract.

Returns

system_tx_output : MessageCallOutput Output of processing the system transaction.

def process_checked_system_transaction(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​target_address: Address, ​​data: Bytes) -> MessageCallOutput:
612
    <snip>
631
    # Pre-check that the system contract has code. We use a throwaway
632
    # TransactionState here that is *never* propagated back to BlockState
633
    # (no incorporate_tx_into_block call); the same get_account / get_code
634
    # lookups are performed and properly tracked by
635
    # process_unchecked_system_transaction below, which this function
636
    # always calls. Reading via a TransactionState (rather than directly
637
    # against pre_state) lets us see system contracts deployed earlier in
638
    # the same block — see EIP-7002 and EIP-7251 for this edge case.
639
    untracked_state = TransactionState(parent=block_env.state)
640
    system_contract_code = get_code(
641
        untracked_state,
642
        get_account(untracked_state, target_address).code_hash,
643
    )
644
645
    if len(system_contract_code) == 0:
646
        raise InvalidBlock(
647
            f"System contract address {target_address.hex()} does not "
648
            "contain code"
649
        )
650
651
    system_tx_output = process_unchecked_system_transaction(
652
        block_env,
653
        target_address,
654
        data,
655
    )
656
657
    if system_tx_output.error:
658
        raise InvalidBlock(
659
            f"System contract ({target_address.hex()}) call failed: "
660
            f"{system_tx_output.error}"
661
        )
662
663
    return system_tx_output

process_unchecked_system_transaction

Process a system transaction without checking if the contract contains code or if the transaction fails.

Parameters

block_env : The block scoped environment. target_address : Address of the contract to call. data : Data to pass to the contract.

Returns

system_tx_output : MessageCallOutput Output of processing the system transaction.

def process_unchecked_system_transaction(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​target_address: Address, ​​data: Bytes) -> MessageCallOutput:
671
    <snip>
690
    system_tx_state = TransactionState(parent=block_env.state)
691
    system_contract_code = get_code(
692
        system_tx_state,
693
        get_account(system_tx_state, target_address).code_hash,
694
    )
695
696
    tx_env = vm.TransactionEnvironment(
697
        origin=SYSTEM_ADDRESS,
698
        gas_price=block_env.base_fee_per_gas,
699
        gas=SYSTEM_TRANSACTION_GAS,
700
        access_list_addresses=set(),
701
        access_list_storage_keys=set(),
702
        state=system_tx_state,
703
        blob_versioned_hashes=(),
704
        authorizations=(),
705
        index_in_block=None,
706
        tx_hash=None,
707
    )
708
709
    system_tx_message = Message(
710
        block_env=block_env,
711
        tx_env=tx_env,
712
        caller=SYSTEM_ADDRESS,
713
        target=target_address,
714
        gas=SYSTEM_TRANSACTION_GAS,
715
        value=U256(0),
716
        data=data,
717
        code=system_contract_code,
718
        depth=Uint(0),
719
        current_target=target_address,
720
        code_address=target_address,
721
        should_transfer_value=False,
722
        is_static=False,
723
        accessed_addresses=set(),
724
        accessed_storage_keys=set(),
725
        disable_precompiles=False,
726
        parent_evm=None,
727
    )
728
729
    system_tx_output = process_message_call(system_tx_message)
730
731
    incorporate_tx_into_block(system_tx_state)
732
733
    return system_tx_output

apply_body

Executes a block.

Many of the contents of a block are stored in data structures called tries. There is a transactions trie which is similar to a ledger of the transactions stored in the current block. There is also a receipts trie which stores the results of executing a transaction, like the post state and gas used. This function creates and executes the block that is to be added to the chain.

Parameters

block_env : The block scoped environment. transactions : Transactions included in the block. withdrawals : Withdrawals to be processed in the current block.

Returns

block_output : The block output for the current block.

def apply_body(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​transactions: Tuple[LegacyTransaction | Bytes, ...], ​​withdrawals: Tuple[Withdrawal, ...]) -> ethereum.forks.bpo5.vm.BlockOutput:
741
    <snip>
766
    block_output = vm.BlockOutput()
767
768
    process_unchecked_system_transaction(
769
        block_env=block_env,
770
        target_address=BEACON_ROOTS_ADDRESS,
771
        data=block_env.parent_beacon_block_root,
772
    )
773
774
    process_unchecked_system_transaction(
775
        block_env=block_env,
776
        target_address=HISTORY_STORAGE_ADDRESS,
777
        data=block_env.block_hashes[-1],  # The parent hash
778
    )
779
780
    for i, tx in enumerate(map(decode_transaction, transactions)):
781
        process_transaction(block_env, block_output, tx, Uint(i))
782
783
    process_withdrawals(block_env, block_output, withdrawals)
784
785
    process_general_purpose_requests(
786
        block_env=block_env,
787
        block_output=block_output,
788
    )
789
790
    return block_output

process_general_purpose_requests

Process all the requests in the block.

Parameters

block_env : The execution environment for the Block. block_output : The block output for the current block.

def process_general_purpose_requests(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​block_output: ethereum.forks.bpo5.vm.BlockOutput) -> None:
797
    <snip>
808
    # Requests are to be in ascending order of request type
809
    deposit_requests = parse_deposit_requests(block_output)
810
    requests_from_execution = block_output.requests
811
    if len(deposit_requests) > 0:
812
        requests_from_execution.append(DEPOSIT_REQUEST_TYPE + deposit_requests)
813
814
    system_withdrawal_tx_output = process_checked_system_transaction(
815
        block_env=block_env,
816
        target_address=WITHDRAWAL_REQUEST_PREDEPLOY_ADDRESS,
817
        data=b"",
818
    )
819
820
    if len(system_withdrawal_tx_output.return_data) > 0:
821
        requests_from_execution.append(
822
            WITHDRAWAL_REQUEST_TYPE + system_withdrawal_tx_output.return_data
823
        )
824
825
    system_consolidation_tx_output = process_checked_system_transaction(
826
        block_env=block_env,
827
        target_address=CONSOLIDATION_REQUEST_PREDEPLOY_ADDRESS,
828
        data=b"",
829
    )
830
831
    if len(system_consolidation_tx_output.return_data) > 0:
832
        requests_from_execution.append(
833
            CONSOLIDATION_REQUEST_TYPE
834
            + system_consolidation_tx_output.return_data
835
        )

process_transaction

Execute a transaction against the provided environment.

This function processes the actions needed to execute a transaction. It decrements the sender's account balance after calculating the gas fee and refunds them the proper amount after execution. Calling contracts, deploying code, and incrementing nonces are all examples of actions that happen within this function or from a call made within this function.

Accounts that are marked for deletion are processed and destroyed after execution.

Parameters

block_env : Environment for the Ethereum Virtual Machine. block_output : The block output for the current block. tx : Transaction to execute. index: Index of the transaction in the block.

def process_transaction(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​block_output: ethereum.forks.bpo5.vm.BlockOutput, ​​tx: Transaction, ​​index: Uint) -> None:
844
    <snip>
868
    tx_state = TransactionState(parent=block_env.state)
869
870
    trie_set(
871
        block_output.transactions_trie,
872
        rlp.encode(index),
873
        encode_transaction(tx),
874
    )
875
876
    intrinsic = validate_transaction(tx)
877
878
    (
879
        sender,
880
        effective_gas_price,
881
        blob_versioned_hashes,
882
        tx_blob_gas_used,
883
    ) = check_transaction(
884
        block_env=block_env,
885
        block_output=block_output,
886
        tx=tx,
887
        tx_state=tx_state,
888
    )
889
890
    sender_account = get_account(tx_state, sender)
891
892
    if isinstance(tx, BlobTransaction):
893
        blob_gas_fee = calculate_data_fee(block_env.excess_blob_gas, tx)
894
    else:
895
        blob_gas_fee = Uint(0)
896
897
    effective_gas_fee = tx.gas * effective_gas_price
898
899
    gas = tx.gas - intrinsic.regular
900
    increment_nonce(tx_state, sender)
901
902
    sender_balance_after_gas_fee = (
903
        Uint(sender_account.balance) - effective_gas_fee - blob_gas_fee
904
    )
905
    set_account_balance(tx_state, sender, U256(sender_balance_after_gas_fee))
906
907
    access_list_addresses = set()
908
    access_list_storage_keys = set()
909
    access_list_addresses.add(block_env.coinbase)
910
    if has_access_list(tx):
911
        for access in tx.access_list:
912
            access_list_addresses.add(access.account)
913
            for slot in access.slots:
914
                access_list_storage_keys.add((access.account, slot))
915
916
    authorizations: Tuple[Authorization, ...] = ()
917
    if isinstance(tx, SetCodeTransaction):
918
        authorizations = tx.authorizations
919
920
    tx_env = vm.TransactionEnvironment(
921
        origin=sender,
922
        gas_price=effective_gas_price,
923
        gas=gas,
924
        access_list_addresses=access_list_addresses,
925
        access_list_storage_keys=access_list_storage_keys,
926
        state=tx_state,
927
        blob_versioned_hashes=blob_versioned_hashes,
928
        authorizations=authorizations,
929
        index_in_block=index,
930
        tx_hash=get_transaction_hash(encode_transaction(tx)),
931
    )
932
933
    message = prepare_message(block_env, tx_env, tx)
934
935
    tx_output = process_message_call(message)
936
937
    # For EIP-7623 we first calculate the execution_gas_used, which includes
938
    # the execution gas refund.
939
    tx_gas_used_before_refund = tx.gas - tx_output.gas_left
940
    tx_gas_refund = min(
941
        tx_gas_used_before_refund // Uint(5), Uint(tx_output.refund_counter)
942
    )
943
    tx_gas_used_after_refund = tx_gas_used_before_refund - tx_gas_refund
944
945
    # Transactions with less execution_gas_used than the floor pay at the
946
    # floor cost.
947
    tx_gas_used_after_refund = max(
948
        tx_gas_used_after_refund, intrinsic.calldata_floor
949
    )
950
951
    tx_gas_left = tx.gas - tx_gas_used_after_refund
952
    gas_refund_amount = tx_gas_left * effective_gas_price
953
954
    # For non-1559 transactions effective_gas_price == tx.gas_price
955
    priority_fee_per_gas = effective_gas_price - block_env.base_fee_per_gas
956
    transaction_fee = tx_gas_used_after_refund * priority_fee_per_gas
957
958
    # refund gas
959
    create_ether(tx_state, sender, U256(gas_refund_amount))
960
961
    # transfer miner fees
962
    create_ether(tx_state, block_env.coinbase, U256(transaction_fee))
963
964
    for address in tx_output.accounts_to_delete:
965
        destroy_account(tx_state, address)
966
967
    block_output.block_gas_used += tx_gas_used_after_refund
968
    block_output.blob_gas_used += tx_blob_gas_used
969
970
    receipt = make_receipt(
971
        tx, tx_output.error, block_output.block_gas_used, tx_output.logs
972
    )
973
974
    receipt_key = rlp.encode(Uint(index))
975
    block_output.receipt_keys += (receipt_key,)
976
977
    trie_set(
978
        block_output.receipts_trie,
979
        receipt_key,
980
        receipt,
981
    )
982
983
    block_output.block_logs += tx_output.logs
984
985
    incorporate_tx_into_block(tx_state)

process_withdrawals

Increase the balance of the withdrawing account.

def process_withdrawals(block_env: ethereum.forks.bpo5.vm.BlockEnvironment, ​​block_output: ethereum.forks.bpo5.vm.BlockOutput, ​​withdrawals: Tuple[Withdrawal, ...]) -> None:
993
    <snip>
996
    wd_state = TransactionState(parent=block_env.state)
997
998
    for i, wd in enumerate(withdrawals):
999
        trie_set(
1000
            block_output.withdrawals_trie,
1001
            rlp.encode(Uint(i)),
1002
            rlp.encode(wd),
1003
        )
1004
1005
        create_ether(wd_state, wd.address, wd.amount * U256(10**9))
1006
1007
    incorporate_tx_into_block(wd_state)

check_gas_limit

Validates the gas limit for a block.

The bounds of the gas limit, max_adjustment_delta, is set as the quotient of the parent block's gas limit and the LIMIT_ADJUSTMENT_FACTOR. Therefore, if the gas limit that is passed through as a parameter is greater than or equal to the sum of the parent's gas and the adjustment delta then the limit for gas is too high and fails this function's check. Similarly, if the limit is less than or equal to the difference of the parent's gas and the adjustment delta or the predefined LIMIT_MINIMUM then this function's check fails because the gas limit doesn't allow for a sufficient or reasonable amount of gas to be used on a block.

Parameters

gas_limit : Gas limit to validate.

parent_gas_limit : Gas limit of the parent block.

Returns

check : bool True if gas limit constraints are satisfied, False otherwise.

def check_gas_limit(gas_limit: Uint, ​​parent_gas_limit: Uint) -> bool:
1011
    <snip>
1039
    max_adjustment_delta = parent_gas_limit // GasCosts.LIMIT_ADJUSTMENT_FACTOR
1040
    if gas_limit >= parent_gas_limit + max_adjustment_delta:
1041
        return False
1042
    if gas_limit <= parent_gas_limit - max_adjustment_delta:
1043
        return False
1044
    if gas_limit < GasCosts.LIMIT_MINIMUM:
1045
        return False
1046
1047
    return True