github.com/electroneum/electroneum-sc@v0.0.0-20230105223411-3bc1d078281e/core/vm/gas_table.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 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 17 package vm 18 19 import ( 20 "errors" 21 22 "github.com/electroneum/electroneum-sc/common" 23 "github.com/electroneum/electroneum-sc/common/math" 24 "github.com/electroneum/electroneum-sc/params" 25 ) 26 27 // memoryGasCost calculates the quadratic gas for memory expansion. It does so 28 // only for the memory region that is expanded, not the total memory. 29 func memoryGasCost(mem *Memory, newMemSize uint64) (uint64, error) { 30 if newMemSize == 0 { 31 return 0, nil 32 } 33 // The maximum that will fit in a uint64 is max_word_count - 1. Anything above 34 // that will result in an overflow. Additionally, a newMemSize which results in 35 // a newMemSizeWords larger than 0xFFFFFFFF will cause the square operation to 36 // overflow. The constant 0x1FFFFFFFE0 is the highest number that can be used 37 // without overflowing the gas calculation. 38 if newMemSize > 0x1FFFFFFFE0 { 39 return 0, ErrGasUintOverflow 40 } 41 newMemSizeWords := toWordSize(newMemSize) 42 newMemSize = newMemSizeWords * 32 43 44 if newMemSize > uint64(mem.Len()) { 45 square := newMemSizeWords * newMemSizeWords 46 linCoef := newMemSizeWords * params.MemoryGas 47 quadCoef := square / params.QuadCoeffDiv 48 newTotalFee := linCoef + quadCoef 49 50 fee := newTotalFee - mem.lastGasCost 51 mem.lastGasCost = newTotalFee 52 53 return fee, nil 54 } 55 return 0, nil 56 } 57 58 // memoryCopierGas creates the gas functions for the following opcodes, and takes 59 // the stack position of the operand which determines the size of the data to copy 60 // as argument: 61 // CALLDATACOPY (stack position 2) 62 // CODECOPY (stack position 2) 63 // EXTCODECOPY (stack position 3) 64 // RETURNDATACOPY (stack position 2) 65 func memoryCopierGas(stackpos int) gasFunc { 66 return func(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 67 // Gas for expanding the memory 68 gas, err := memoryGasCost(mem, memorySize) 69 if err != nil { 70 return 0, err 71 } 72 // And gas for copying data, charged per word at param.CopyGas 73 words, overflow := stack.Back(stackpos).Uint64WithOverflow() 74 if overflow { 75 return 0, ErrGasUintOverflow 76 } 77 78 if words, overflow = math.SafeMul(toWordSize(words), params.CopyGas); overflow { 79 return 0, ErrGasUintOverflow 80 } 81 82 if gas, overflow = math.SafeAdd(gas, words); overflow { 83 return 0, ErrGasUintOverflow 84 } 85 return gas, nil 86 } 87 } 88 89 var ( 90 gasCallDataCopy = memoryCopierGas(2) 91 gasCodeCopy = memoryCopierGas(2) 92 gasExtCodeCopy = memoryCopierGas(3) 93 gasReturnDataCopy = memoryCopierGas(2) 94 ) 95 96 func gasSStore(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 97 var ( 98 y, x = stack.Back(1), stack.Back(0) 99 current = evm.StateDB.GetState(contract.Address(), x.Bytes32()) 100 ) 101 // The legacy gas metering only takes into consideration the current state 102 // Legacy rules should be applied if we are in Petersburg (removal of EIP-1283) 103 // OR Constantinople is not active 104 if evm.chainRules.IsPetersburg || !evm.chainRules.IsConstantinople { 105 // This checks for 3 scenario's and calculates gas accordingly: 106 // 107 // 1. From a zero-value address to a non-zero value (NEW VALUE) 108 // 2. From a non-zero value address to a zero-value address (DELETE) 109 // 3. From a non-zero to a non-zero (CHANGE) 110 switch { 111 case current == (common.Hash{}) && y.Sign() != 0: // 0 => non 0 112 return params.SstoreSetGas, nil 113 case current != (common.Hash{}) && y.Sign() == 0: // non 0 => 0 114 evm.StateDB.AddRefund(params.SstoreRefundGas) 115 return params.SstoreClearGas, nil 116 default: // non 0 => non 0 (or 0 => 0) 117 return params.SstoreResetGas, nil 118 } 119 } 120 // The new gas metering is based on net gas costs (EIP-1283): 121 // 122 // (1.) If current value equals new value (this is a no-op), 200 gas is deducted. 123 // (2.) If current value does not equal new value 124 // (2.1.) If original value equals current value (this storage slot has not been changed by the current execution context) 125 // (2.1.1.) If original value is 0, 20000 gas is deducted. 126 // (2.1.2.) Otherwise, 5000 gas is deducted. If new value is 0, add 15000 gas to refund counter. 127 // (2.2.) If original value does not equal current value (this storage slot is dirty), 200 gas is deducted. Apply both of the following clauses. 128 // (2.2.1.) If original value is not 0 129 // (2.2.1.1.) If current value is 0 (also means that new value is not 0), remove 15000 gas from refund counter. We can prove that refund counter will never go below 0. 130 // (2.2.1.2.) If new value is 0 (also means that current value is not 0), add 15000 gas to refund counter. 131 // (2.2.2.) If original value equals new value (this storage slot is reset) 132 // (2.2.2.1.) If original value is 0, add 19800 gas to refund counter. 133 // (2.2.2.2.) Otherwise, add 4800 gas to refund counter. 134 value := common.Hash(y.Bytes32()) 135 if current == value { // noop (1) 136 return params.NetSstoreNoopGas, nil 137 } 138 original := evm.StateDB.GetCommittedState(contract.Address(), x.Bytes32()) 139 if original == current { 140 if original == (common.Hash{}) { // create slot (2.1.1) 141 return params.NetSstoreInitGas, nil 142 } 143 if value == (common.Hash{}) { // delete slot (2.1.2b) 144 evm.StateDB.AddRefund(params.NetSstoreClearRefund) 145 } 146 return params.NetSstoreCleanGas, nil // write existing slot (2.1.2) 147 } 148 if original != (common.Hash{}) { 149 if current == (common.Hash{}) { // recreate slot (2.2.1.1) 150 evm.StateDB.SubRefund(params.NetSstoreClearRefund) 151 } else if value == (common.Hash{}) { // delete slot (2.2.1.2) 152 evm.StateDB.AddRefund(params.NetSstoreClearRefund) 153 } 154 } 155 if original == value { 156 if original == (common.Hash{}) { // reset to original inexistent slot (2.2.2.1) 157 evm.StateDB.AddRefund(params.NetSstoreResetClearRefund) 158 } else { // reset to original existing slot (2.2.2.2) 159 evm.StateDB.AddRefund(params.NetSstoreResetRefund) 160 } 161 } 162 return params.NetSstoreDirtyGas, nil 163 } 164 165 // Here come the EIP220 rules: 166 // 167 // (0.) If *gasleft* is less than or equal to 2300, fail the current call. 168 // (1.) If current value equals new value (this is a no-op), SLOAD_GAS is deducted. 169 // (2.) If current value does not equal new value: 170 // (2.1.) If original value equals current value (this storage slot has not been changed by the current execution context): 171 // (2.1.1.) If original value is 0, SSTORE_SET_GAS (20K) gas is deducted. 172 // (2.1.2.) Otherwise, SSTORE_RESET_GAS gas is deducted. If new value is 0, add SSTORE_CLEARS_SCHEDULE to refund counter. 173 // (2.2.) If original value does not equal current value (this storage slot is dirty), SLOAD_GAS gas is deducted. Apply both of the following clauses: 174 // (2.2.1.) If original value is not 0: 175 // (2.2.1.1.) If current value is 0 (also means that new value is not 0), subtract SSTORE_CLEARS_SCHEDULE gas from refund counter. 176 // (2.2.1.2.) If new value is 0 (also means that current value is not 0), add SSTORE_CLEARS_SCHEDULE gas to refund counter. 177 // (2.2.2.) If original value equals new value (this storage slot is reset): 178 // (2.2.2.1.) If original value is 0, add SSTORE_SET_GAS - SLOAD_GAS to refund counter. 179 // (2.2.2.2.) Otherwise, add SSTORE_RESET_GAS - SLOAD_GAS gas to refund counter. 180 func gasSStoreEIP2200(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 181 // If we fail the minimum gas availability invariant, fail (0) 182 if contract.Gas <= params.SstoreSentryGasEIP2200 { 183 return 0, errors.New("not enough gas for reentrancy sentry") 184 } 185 // Gas sentry honoured, do the actual gas calculation based on the stored value 186 var ( 187 y, x = stack.Back(1), stack.Back(0) 188 current = evm.StateDB.GetState(contract.Address(), x.Bytes32()) 189 ) 190 value := common.Hash(y.Bytes32()) 191 192 if current == value { // noop (1) 193 return params.SloadGasEIP2200, nil 194 } 195 original := evm.StateDB.GetCommittedState(contract.Address(), x.Bytes32()) 196 if original == current { 197 if original == (common.Hash{}) { // create slot (2.1.1) 198 return params.SstoreSetGasEIP2200, nil 199 } 200 if value == (common.Hash{}) { // delete slot (2.1.2b) 201 evm.StateDB.AddRefund(params.SstoreClearsScheduleRefundEIP2200) 202 } 203 return params.SstoreResetGasEIP2200, nil // write existing slot (2.1.2) 204 } 205 if original != (common.Hash{}) { 206 if current == (common.Hash{}) { // recreate slot (2.2.1.1) 207 evm.StateDB.SubRefund(params.SstoreClearsScheduleRefundEIP2200) 208 } else if value == (common.Hash{}) { // delete slot (2.2.1.2) 209 evm.StateDB.AddRefund(params.SstoreClearsScheduleRefundEIP2200) 210 } 211 } 212 if original == value { 213 if original == (common.Hash{}) { // reset to original inexistent slot (2.2.2.1) 214 evm.StateDB.AddRefund(params.SstoreSetGasEIP2200 - params.SloadGasEIP2200) 215 } else { // reset to original existing slot (2.2.2.2) 216 evm.StateDB.AddRefund(params.SstoreResetGasEIP2200 - params.SloadGasEIP2200) 217 } 218 } 219 return params.SloadGasEIP2200, nil // dirty update (2.2) 220 } 221 222 func makeGasLog(n uint64) gasFunc { 223 return func(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 224 requestedSize, overflow := stack.Back(1).Uint64WithOverflow() 225 if overflow { 226 return 0, ErrGasUintOverflow 227 } 228 229 gas, err := memoryGasCost(mem, memorySize) 230 if err != nil { 231 return 0, err 232 } 233 234 if gas, overflow = math.SafeAdd(gas, params.LogGas); overflow { 235 return 0, ErrGasUintOverflow 236 } 237 if gas, overflow = math.SafeAdd(gas, n*params.LogTopicGas); overflow { 238 return 0, ErrGasUintOverflow 239 } 240 241 var memorySizeGas uint64 242 if memorySizeGas, overflow = math.SafeMul(requestedSize, params.LogDataGas); overflow { 243 return 0, ErrGasUintOverflow 244 } 245 if gas, overflow = math.SafeAdd(gas, memorySizeGas); overflow { 246 return 0, ErrGasUintOverflow 247 } 248 return gas, nil 249 } 250 } 251 252 func gasKeccak256(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 253 gas, err := memoryGasCost(mem, memorySize) 254 if err != nil { 255 return 0, err 256 } 257 wordGas, overflow := stack.Back(1).Uint64WithOverflow() 258 if overflow { 259 return 0, ErrGasUintOverflow 260 } 261 if wordGas, overflow = math.SafeMul(toWordSize(wordGas), params.Keccak256WordGas); overflow { 262 return 0, ErrGasUintOverflow 263 } 264 if gas, overflow = math.SafeAdd(gas, wordGas); overflow { 265 return 0, ErrGasUintOverflow 266 } 267 return gas, nil 268 } 269 270 // pureMemoryGascost is used by several operations, which aside from their 271 // static cost have a dynamic cost which is solely based on the memory 272 // expansion 273 func pureMemoryGascost(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 274 return memoryGasCost(mem, memorySize) 275 } 276 277 var ( 278 gasReturn = pureMemoryGascost 279 gasRevert = pureMemoryGascost 280 gasMLoad = pureMemoryGascost 281 gasMStore8 = pureMemoryGascost 282 gasMStore = pureMemoryGascost 283 gasCreate = pureMemoryGascost 284 ) 285 286 func gasCreate2(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 287 gas, err := memoryGasCost(mem, memorySize) 288 if err != nil { 289 return 0, err 290 } 291 wordGas, overflow := stack.Back(2).Uint64WithOverflow() 292 if overflow { 293 return 0, ErrGasUintOverflow 294 } 295 if wordGas, overflow = math.SafeMul(toWordSize(wordGas), params.Keccak256WordGas); overflow { 296 return 0, ErrGasUintOverflow 297 } 298 if gas, overflow = math.SafeAdd(gas, wordGas); overflow { 299 return 0, ErrGasUintOverflow 300 } 301 return gas, nil 302 } 303 304 func gasExpFrontier(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 305 expByteLen := uint64((stack.data[stack.len()-2].BitLen() + 7) / 8) 306 307 var ( 308 gas = expByteLen * params.ExpByteFrontier // no overflow check required. Max is 256 * ExpByte gas 309 overflow bool 310 ) 311 if gas, overflow = math.SafeAdd(gas, params.ExpGas); overflow { 312 return 0, ErrGasUintOverflow 313 } 314 return gas, nil 315 } 316 317 func gasExpEIP158(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 318 expByteLen := uint64((stack.data[stack.len()-2].BitLen() + 7) / 8) 319 320 var ( 321 gas = expByteLen * params.ExpByteEIP158 // no overflow check required. Max is 256 * ExpByte gas 322 overflow bool 323 ) 324 if gas, overflow = math.SafeAdd(gas, params.ExpGas); overflow { 325 return 0, ErrGasUintOverflow 326 } 327 return gas, nil 328 } 329 330 func gasCall(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 331 var ( 332 gas uint64 333 transfersValue = !stack.Back(2).IsZero() 334 address = common.Address(stack.Back(1).Bytes20()) 335 ) 336 if evm.chainRules.IsEIP158 { 337 if transfersValue && evm.StateDB.Empty(address) { 338 gas += params.CallNewAccountGas 339 } 340 } else if !evm.StateDB.Exist(address) { 341 gas += params.CallNewAccountGas 342 } 343 if transfersValue { 344 gas += params.CallValueTransferGas 345 } 346 memoryGas, err := memoryGasCost(mem, memorySize) 347 if err != nil { 348 return 0, err 349 } 350 var overflow bool 351 if gas, overflow = math.SafeAdd(gas, memoryGas); overflow { 352 return 0, ErrGasUintOverflow 353 } 354 355 evm.callGasTemp, err = callGas(evm.chainRules.IsEIP150, contract.Gas, gas, stack.Back(0)) 356 if err != nil { 357 return 0, err 358 } 359 if gas, overflow = math.SafeAdd(gas, evm.callGasTemp); overflow { 360 return 0, ErrGasUintOverflow 361 } 362 return gas, nil 363 } 364 365 func gasCallCode(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 366 memoryGas, err := memoryGasCost(mem, memorySize) 367 if err != nil { 368 return 0, err 369 } 370 var ( 371 gas uint64 372 overflow bool 373 ) 374 if stack.Back(2).Sign() != 0 { 375 gas += params.CallValueTransferGas 376 } 377 if gas, overflow = math.SafeAdd(gas, memoryGas); overflow { 378 return 0, ErrGasUintOverflow 379 } 380 evm.callGasTemp, err = callGas(evm.chainRules.IsEIP150, contract.Gas, gas, stack.Back(0)) 381 if err != nil { 382 return 0, err 383 } 384 if gas, overflow = math.SafeAdd(gas, evm.callGasTemp); overflow { 385 return 0, ErrGasUintOverflow 386 } 387 return gas, nil 388 } 389 390 func gasDelegateCall(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 391 gas, err := memoryGasCost(mem, memorySize) 392 if err != nil { 393 return 0, err 394 } 395 evm.callGasTemp, err = callGas(evm.chainRules.IsEIP150, contract.Gas, gas, stack.Back(0)) 396 if err != nil { 397 return 0, err 398 } 399 var overflow bool 400 if gas, overflow = math.SafeAdd(gas, evm.callGasTemp); overflow { 401 return 0, ErrGasUintOverflow 402 } 403 return gas, nil 404 } 405 406 func gasStaticCall(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 407 gas, err := memoryGasCost(mem, memorySize) 408 if err != nil { 409 return 0, err 410 } 411 evm.callGasTemp, err = callGas(evm.chainRules.IsEIP150, contract.Gas, gas, stack.Back(0)) 412 if err != nil { 413 return 0, err 414 } 415 var overflow bool 416 if gas, overflow = math.SafeAdd(gas, evm.callGasTemp); overflow { 417 return 0, ErrGasUintOverflow 418 } 419 return gas, nil 420 } 421 422 func gasSelfdestruct(evm *EVM, contract *Contract, stack *Stack, mem *Memory, memorySize uint64) (uint64, error) { 423 var gas uint64 424 // EIP150 homestead gas reprice fork: 425 if evm.chainRules.IsEIP150 { 426 gas = params.SelfdestructGasEIP150 427 var address = common.Address(stack.Back(0).Bytes20()) 428 429 if evm.chainRules.IsEIP158 { 430 // if empty and transfers value 431 if evm.StateDB.Empty(address) && evm.StateDB.GetBalance(contract.Address()).Sign() != 0 { 432 gas += params.CreateBySelfdestructGas 433 } 434 } else if !evm.StateDB.Exist(address) { 435 gas += params.CreateBySelfdestructGas 436 } 437 } 438 439 if !evm.StateDB.HasSuicided(contract.Address()) { 440 evm.StateDB.AddRefund(params.SelfdestructRefundGas) 441 } 442 return gas, nil 443 }