interpreter.go 10 KB

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  1. // Copyright 2014 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 vm
  17. import (
  18. "hash"
  19. "sync/atomic"
  20. "github.com/ethereum/go-ethereum/common"
  21. "github.com/ethereum/go-ethereum/common/math"
  22. "github.com/ethereum/go-ethereum/log"
  23. )
  24. // Config are the configuration options for the Interpreter
  25. type Config struct {
  26. Debug bool // Enables debugging
  27. Tracer Tracer // Opcode logger
  28. NoRecursion bool // Disables call, callcode, delegate call and create
  29. EnablePreimageRecording bool // Enables recording of SHA3/keccak preimages
  30. JumpTable [256]*operation // EVM instruction table, automatically populated if unset
  31. EWASMInterpreter string // External EWASM interpreter options
  32. EVMInterpreter string // External EVM interpreter options
  33. ExtraEips []int // Additional EIPS that are to be enabled
  34. }
  35. // Interpreter is used to run Ethereum based contracts and will utilise the
  36. // passed environment to query external sources for state information.
  37. // The Interpreter will run the byte code VM based on the passed
  38. // configuration.
  39. type Interpreter interface {
  40. // Run loops and evaluates the contract's code with the given input data and returns
  41. // the return byte-slice and an error if one occurred.
  42. Run(contract *Contract, input []byte, static bool) ([]byte, error)
  43. // CanRun tells if the contract, passed as an argument, can be
  44. // run by the current interpreter. This is meant so that the
  45. // caller can do something like:
  46. //
  47. // ```golang
  48. // for _, interpreter := range interpreters {
  49. // if interpreter.CanRun(contract.code) {
  50. // interpreter.Run(contract.code, input)
  51. // }
  52. // }
  53. // ```
  54. CanRun([]byte) bool
  55. }
  56. // ScopeContext contains the things that are per-call, such as stack and memory,
  57. // but not transients like pc and gas
  58. type ScopeContext struct {
  59. Memory *Memory
  60. Stack *Stack
  61. Contract *Contract
  62. }
  63. // keccakState wraps sha3.state. In addition to the usual hash methods, it also supports
  64. // Read to get a variable amount of data from the hash state. Read is faster than Sum
  65. // because it doesn't copy the internal state, but also modifies the internal state.
  66. type keccakState interface {
  67. hash.Hash
  68. Read([]byte) (int, error)
  69. }
  70. // EVMInterpreter represents an EVM interpreter
  71. type EVMInterpreter struct {
  72. evm *EVM
  73. cfg Config
  74. hasher keccakState // Keccak256 hasher instance shared across opcodes
  75. hasherBuf common.Hash // Keccak256 hasher result array shared aross opcodes
  76. readOnly bool // Whether to throw on stateful modifications
  77. returnData []byte // Last CALL's return data for subsequent reuse
  78. }
  79. // NewEVMInterpreter returns a new instance of the Interpreter.
  80. func NewEVMInterpreter(evm *EVM, cfg Config) *EVMInterpreter {
  81. // We use the STOP instruction whether to see
  82. // the jump table was initialised. If it was not
  83. // we'll set the default jump table.
  84. if cfg.JumpTable[STOP] == nil {
  85. var jt JumpTable
  86. switch {
  87. case evm.chainRules.IsBerlin:
  88. jt = berlinInstructionSet
  89. case evm.chainRules.IsIstanbul:
  90. jt = istanbulInstructionSet
  91. case evm.chainRules.IsConstantinople:
  92. jt = constantinopleInstructionSet
  93. case evm.chainRules.IsByzantium:
  94. jt = byzantiumInstructionSet
  95. case evm.chainRules.IsEIP158:
  96. jt = spuriousDragonInstructionSet
  97. case evm.chainRules.IsEIP150:
  98. jt = tangerineWhistleInstructionSet
  99. case evm.chainRules.IsHomestead:
  100. jt = homesteadInstructionSet
  101. default:
  102. jt = frontierInstructionSet
  103. }
  104. for i, eip := range cfg.ExtraEips {
  105. if err := EnableEIP(eip, &jt); err != nil {
  106. // Disable it, so caller can check if it's activated or not
  107. cfg.ExtraEips = append(cfg.ExtraEips[:i], cfg.ExtraEips[i+1:]...)
  108. log.Error("EIP activation failed", "eip", eip, "error", err)
  109. }
  110. }
  111. cfg.JumpTable = jt
  112. }
  113. return &EVMInterpreter{
  114. evm: evm,
  115. cfg: cfg,
  116. }
  117. }
  118. // Run loops and evaluates the contract's code with the given input data and returns
  119. // the return byte-slice and an error if one occurred.
  120. //
  121. // It's important to note that any errors returned by the interpreter should be
  122. // considered a revert-and-consume-all-gas operation except for
  123. // ErrExecutionReverted which means revert-and-keep-gas-left.
  124. func (in *EVMInterpreter) Run(contract *Contract, input []byte, readOnly bool) (ret []byte, err error) {
  125. // Increment the call depth which is restricted to 1024
  126. in.evm.depth++
  127. defer func() { in.evm.depth-- }()
  128. // Make sure the readOnly is only set if we aren't in readOnly yet.
  129. // This also makes sure that the readOnly flag isn't removed for child calls.
  130. if readOnly && !in.readOnly {
  131. in.readOnly = true
  132. defer func() { in.readOnly = false }()
  133. }
  134. // Reset the previous call's return data. It's unimportant to preserve the old buffer
  135. // as every returning call will return new data anyway.
  136. in.returnData = nil
  137. // TODO temporary fix for issue
  138. // Don't bother with the execution if there's no code.
  139. //if len(contract.Code) == 0 {
  140. // return nil, nil
  141. //}
  142. var (
  143. op OpCode // current opcode
  144. mem = NewMemory() // bound memory
  145. stack = newstack() // local stack
  146. callContext = &ScopeContext{
  147. Memory: mem,
  148. Stack: stack,
  149. Contract: contract,
  150. }
  151. // For optimisation reason we're using uint64 as the program counter.
  152. // It's theoretically possible to go above 2^64. The YP defines the PC
  153. // to be uint256. Practically much less so feasible.
  154. pc = uint64(0) // program counter
  155. cost uint64
  156. // copies used by tracer
  157. pcCopy uint64 // needed for the deferred Tracer
  158. gasCopy uint64 // for Tracer to log gas remaining before execution
  159. logged bool // deferred Tracer should ignore already logged steps
  160. res []byte // result of the opcode execution function
  161. )
  162. // Don't move this deferrred function, it's placed before the capturestate-deferred method,
  163. // so that it get's executed _after_: the capturestate needs the stacks before
  164. // they are returned to the pools
  165. defer func() {
  166. returnStack(stack)
  167. }()
  168. contract.Input = input
  169. if in.cfg.Debug {
  170. defer func() {
  171. if err != nil {
  172. if !logged {
  173. in.cfg.Tracer.CaptureState(in.evm, pcCopy, op, gasCopy, cost, callContext, in.returnData, in.evm.depth, err)
  174. } else {
  175. in.cfg.Tracer.CaptureFault(in.evm, pcCopy, op, gasCopy, cost, callContext, in.evm.depth, err)
  176. }
  177. }
  178. }()
  179. }
  180. // The Interpreter main run loop (contextual). This loop runs until either an
  181. // explicit STOP, RETURN or SELFDESTRUCT is executed, an error occurred during
  182. // the execution of one of the operations or until the done flag is set by the
  183. // parent context.
  184. steps := 0
  185. for {
  186. steps++
  187. if steps%1000 == 0 && atomic.LoadInt32(&in.evm.abort) != 0 {
  188. break
  189. }
  190. if in.cfg.Debug {
  191. // Capture pre-execution values for tracing.
  192. logged, pcCopy, gasCopy = false, pc, contract.Gas
  193. }
  194. // Get the operation from the jump table and validate the stack to ensure there are
  195. // enough stack items available to perform the operation.
  196. op = contract.GetOp(pc)
  197. operation := in.cfg.JumpTable[op]
  198. if operation == nil {
  199. return nil, &ErrInvalidOpCode{opcode: op}
  200. }
  201. // Validate stack
  202. if sLen := stack.len(); sLen < operation.minStack {
  203. return nil, &ErrStackUnderflow{stackLen: sLen, required: operation.minStack}
  204. } else if sLen > operation.maxStack {
  205. return nil, &ErrStackOverflow{stackLen: sLen, limit: operation.maxStack}
  206. }
  207. // If the operation is valid, enforce write restrictions
  208. if in.readOnly && in.evm.chainRules.IsByzantium {
  209. // If the interpreter is operating in readonly mode, make sure no
  210. // state-modifying operation is performed. The 3rd stack item
  211. // for a call operation is the value. Transferring value from one
  212. // account to the others means the state is modified and should also
  213. // return with an error.
  214. if operation.writes || (op == CALL && stack.Back(2).Sign() != 0) {
  215. return nil, ErrWriteProtection
  216. }
  217. }
  218. // Static portion of gas
  219. cost = operation.constantGas // For tracing
  220. if !contract.UseGas(operation.constantGas) {
  221. return nil, ErrOutOfGas
  222. }
  223. var memorySize uint64
  224. // calculate the new memory size and expand the memory to fit
  225. // the operation
  226. // Memory check needs to be done prior to evaluating the dynamic gas portion,
  227. // to detect calculation overflows
  228. if operation.memorySize != nil {
  229. memSize, overflow := operation.memorySize(stack)
  230. if overflow {
  231. return nil, ErrGasUintOverflow
  232. }
  233. // memory is expanded in words of 32 bytes. Gas
  234. // is also calculated in words.
  235. if memorySize, overflow = math.SafeMul(toWordSize(memSize), 32); overflow {
  236. return nil, ErrGasUintOverflow
  237. }
  238. }
  239. // Dynamic portion of gas
  240. // consume the gas and return an error if not enough gas is available.
  241. // cost is explicitly set so that the capture state defer method can get the proper cost
  242. if operation.dynamicGas != nil {
  243. var dynamicCost uint64
  244. dynamicCost, err = operation.dynamicGas(in.evm, contract, stack, mem, memorySize)
  245. cost += dynamicCost // total cost, for debug tracing
  246. if err != nil || !contract.UseGas(dynamicCost) {
  247. return nil, ErrOutOfGas
  248. }
  249. }
  250. if memorySize > 0 {
  251. mem.Resize(memorySize)
  252. }
  253. if in.cfg.Debug {
  254. in.cfg.Tracer.CaptureState(in.evm, pc, op, gasCopy, cost, callContext, in.returnData, in.evm.depth, err)
  255. logged = true
  256. }
  257. // execute the operation
  258. res, err = operation.execute(&pc, in, callContext)
  259. // if the operation clears the return data (e.g. it has returning data)
  260. // set the last return to the result of the operation.
  261. if operation.returns {
  262. in.returnData = common.CopyBytes(res)
  263. }
  264. switch {
  265. case err != nil:
  266. return nil, err
  267. case operation.reverts:
  268. return res, ErrExecutionReverted
  269. case operation.halts:
  270. return res, nil
  271. case !operation.jumps:
  272. pc++
  273. }
  274. }
  275. return nil, nil
  276. }
  277. // CanRun tells if the contract, passed as an argument, can be
  278. // run by the current interpreter.
  279. func (in *EVMInterpreter) CanRun(code []byte) bool {
  280. return true
  281. }