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BasicTemplateOptionsPriceModel.py
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64 lines (53 loc) · 2.75 KB
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# QUANTCONNECT.COM - Democratizing Finance, Empowering Individuals.
# Lean Algorithmic Trading Engine v2.0. Copyright 2014 QuantConnect Corporation.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
from AlgorithmImports import *
### <summary>
### Example demonstrating how to define an option price model.
### </summary>
### <meta name="tag" content="using data" />
### <meta name="tag" content="options" />
### <meta name="tag" content="filter selection" />
### <meta name="tag" content="option price model" />
class BasicTemplateOptionsPriceModel(QCAlgorithm):
'''Example demonstrating how to define an option price model.'''
def Initialize(self):
self.SetStartDate(2020, 1, 1)
self.SetEndDate(2020, 1, 5)
self.SetCash(100000)
# Add the option
option = self.AddOption("AAPL")
self.optionSymbol = option.Symbol
# Add the initial contract filter
option.SetFilter(-3, +3, 0, 31)
# Define the Option Price Model
option.PriceModel = OptionPriceModels.CrankNicolsonFD()
#option.PriceModel = OptionPriceModels.BlackScholes()
#option.PriceModel = OptionPriceModels.AdditiveEquiprobabilities()
#option.PriceModel = OptionPriceModels.BaroneAdesiWhaley()
#option.PriceModel = OptionPriceModels.BinomialCoxRossRubinstein()
#option.PriceModel = OptionPriceModels.BinomialJarrowRudd()
#option.PriceModel = OptionPriceModels.BinomialJoshi()
#option.PriceModel = OptionPriceModels.BinomialLeisenReimer()
#option.PriceModel = OptionPriceModels.BinomialTian()
#option.PriceModel = OptionPriceModels.BinomialTrigeorgis()
#option.PriceModel = OptionPriceModels.BjerksundStensland()
#option.PriceModel = OptionPriceModels.Integral()
# Set warm up with 30 trading days to warm up the underlying volatility model
self.SetWarmUp(30, Resolution.Daily)
def OnData(self,slice):
'''OnData will test whether the option contracts has a non-zero Greeks.Delta'''
if self.IsWarmingUp or not slice.OptionChains.ContainsKey(self.optionSymbol):
return
chain = slice.OptionChains[self.optionSymbol]
if not any([x for x in chain if x.Greeks.Delta != 0]):
self.Log(f'No contract with Delta != 0')