# pragma pylint: disable=missing-docstring, invalid-name, pointless-string-statement # flake8: noqa: F401 # isort: skip_file # --- Do not remove these imports --- import numpy as np import pandas as pd from datetime import datetime, timedelta, timezone from pandas import DataFrame from typing import Dict, Optional, Union, Tuple from freqtrade.strategy import ( IStrategy, Trade, Order, PairLocks, informative, # @informative decorator # Hyperopt Parameters BooleanParameter, CategoricalParameter, DecimalParameter, IntParameter, RealParameter, # timeframe helpers timeframe_to_minutes, timeframe_to_next_date, timeframe_to_prev_date, # Strategy helper functions merge_informative_pair, stoploss_from_absolute, stoploss_from_open, AnnotationType, ) # -------------------------------- # Add your lib to import here import talib.abstract as ta from pykalman import KalmanFilter class EmaSlopeStrategy(IStrategy): # Strategy interface version - allow new iterations of the strategy interface. # Check the documentation or the Sample strategy to get the latest version. INTERFACE_VERSION = 3 # Optimal timeframe for the strategy. timeframe = "12h" # Can this strategy go short? can_short: bool = True # Minimal ROI designed for the strategy. # This attribute will be overridden if the config file contains "minimal_roi". minimal_roi = {"60": 0.01, "30": 0.02, "0": 0.04} # Optimal stoploss designed for the strategy. # This attribute will be overridden if the config file contains "stoploss". stoploss = -0.05 # Trailing stoploss trailing_stop = True # trailing_only_offset_is_reached = False # trailing_stop_positive = 0.01 # trailing_stop_positive_offset = 0.05 # Disabled / not configured # Run "populate_indicators()" only for new candle. process_only_new_candles = True # These values can be overridden in the config. use_exit_signal = True exit_profit_only = False ignore_roi_if_entry_signal = False # Number of candles the strategy requires before producing valid signals startup_candle_count: int = 90 # Optional order type mapping. order_types = { "entry": "limit", "exit": "limit", "stoploss": "market", "stoploss_on_exchange": False, } # Optional order time in force. order_time_in_force = {"entry": "GTC", "exit": "GTC"} # EMA timeperiod parameter ema_timeperiod = IntParameter( low=2, high=90, default=8, space="timeperiod", optimize=True, load=True ) # Return on investment parameters enter_long_ror = DecimalParameter( low=0, high=1, default=0.0, decimals=1, space="enter", optimize=True, load=True ) exit_long_ror = DecimalParameter( low=-1, high=0, default=0.0, decimals=1, space="exit", optimize=True, load=True ) enter_short_ror = DecimalParameter( low=-1, high=0, default=0.0, decimals=1, space="enter", optimize=True, load=True ) exit_short_ror = DecimalParameter( low=0, high=1, default=0.0, decimals=1, space="exit", optimize=True, load=True ) @property def plot_config(self): return { # Main plot indicators (Moving averages, ...) "main_plot": { "ema8": {"color": "blue"}, "kalman": {"color": "red"}, }, "subplots": { # Subplots - each dict defines one additional plot "returns": { "ror_ema8": {"color": "blue"}, "ror_kalman": {"color": "red"}, } }, } def version(self) -> str | None: return super().version() def leverage( self, pair: str, current_time: datetime, current_rate: float, proposed_leverage: float, max_leverage: float, entry_tag: str | None, side: str, **kwargs, ) -> float: return 5.0 def informative_pairs(self): """ Define additional, informative pair/interval combinations to be cached from the exchange. These pair/interval combinations are non-tradeable, unless they are part of the whitelist as well. For more information, please consult the documentation :return: List of tuples in the format (pair, interval) Sample: return [("ETH/USDT", "5m"), ("BTC/USDT", "15m"), ] """ return [] def populate_indicators(self, dataframe: DataFrame, metadata: dict) -> DataFrame: # EMA - Parameter Range for val in self.ema_timeperiod.range: dataframe[f"ema{val}"] = ta.EMA(dataframe, timeperiod=val) dataframe[f"ror_ema{val}"] = dataframe[f"ema{val}"].pct_change() return dataframe def populate_entry_trend(self, dataframe: DataFrame, metadata: dict) -> DataFrame: dataframe.loc[ ( ( dataframe[f"ror_ema{self.ema_timeperiod.value}"] > self.enter_long_ror.value ) & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(1) > 0) # & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(2) > 0) & (dataframe["volume"] > 0) ), "enter_long", ] = 1 dataframe.loc[ ( ( dataframe[f"ror_ema{self.ema_timeperiod.value}"] < self.enter_short_ror.value ) & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(1) < 0) # & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(2) < 0) & (dataframe["volume"] > 0) ), "enter_short", ] = 1 return dataframe def populate_exit_trend(self, dataframe: DataFrame, metadata: dict) -> DataFrame: dataframe.loc[ ( ( dataframe[f"ror_ema{self.ema_timeperiod.value}"] < self.exit_long_ror.value ) # & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(1) < 0) # & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(2) < 0) & (dataframe["volume"] > 0) ), "exit_long", ] = 1 dataframe.loc[ ( ( dataframe[f"ror_ema{self.ema_timeperiod.value}"] > self.exit_short_ror.value ) # & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(1) > 0) # & (dataframe[f"ror_ema{self.ema_timeperiod.value}"].shift(2) > 0) & (dataframe["volume"] > 0) ), "exit_short", ] = 1 return dataframe