# pragma pylint: disable=missing-docstring, invalid-name, pointless-string-statement # flake8: noqa: F401 # isort: skip_file # --- Do not remove these libs --- import numpy as np # noqa import pandas as pd # noqa from pandas import DataFrame import os from datetime import datetime from freqtrade.strategy import (BooleanParameter, CategoricalParameter, DecimalParameter, IStrategy, IntParameter, RealParameter) from freqtrade.strategy import merge_informative_pair # -------------------------------- # Add your lib to import here import talib.abstract as ta import freqtrade.vendor.qtpylib.indicators as qtpylib import ta as taichi pd.set_option('display.max_columns', 100) pd.set_option('display.max_rows', None) pd.set_option('display.expand_frame_repr', True) def delete_log_results(): if os.path.exists("mylogs.txt"): os.remove("mylogs.txt") def log_to_results(str_to_log): fr = open("mylogs.txt", "a") #fr.write(str(datetime.now()) + " : " + str_to_log + "\n") fr.write(str_to_log + "\n") fr.close() # This class is a sample. Feel free to customize it. class SampleStrategy(IStrategy): delete_log_results() # 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 # Can this strategy go short? can_short: bool = False #roi0 = RealParameter(0.01, 0.09, decimals=1, default=0.04, space="buy") # Minimal ROI designed for the strategy. # This attribute will be overridden if the config file contains "minimal_roi". minimal_roi = { #"60": 0.01, #"30": 0.01, "0": 0.29/4, } # Optimal stoploss designed for the strategy. # This attribute will be overridden if the config file contains "stoploss". stoploss = -0.25/2 # Trailing stoploss trailing_stop = False # trailing_only_offset_is_reached = False trailing_stop_positive = 0.01 # trailing_stop_positive_offset = 0.0 # Disabled / not configured # Optimal timeframe for the strategy. timeframe = '1h' # 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 = 26 # 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' } def informative_pairs(self): # get access to all pairs available in whitelist. #pairs = self.dp.current_whitelist() # Assign tf to each pair so they can be downloaded and cached for strategy. #informative_pairs = [(pair, '1d') for pair in pairs] # Optionally Add additional "static" pairs informative_pairs += [("BTC/USDT:USDT", "1h"), ("BTC/USDT:USDT", "4h"), ] return informative_pairs def populate_indicators(self, dataframe: DataFrame, metadata: dict) -> DataFrame: #log_to_results("populate_indicators" + str(metadata)) if not self.dp: # Don't do anything if DataProvider is not available. return dataframe inf_tf = '1h' # Get the informative pair informative = self.dp.get_pair_dataframe(pair="BTC/USDT:USDT", timeframe=inf_tf) dataframe = merge_informative_pair(dataframe, informative, self.timeframe, inf_tf, ffill=True) #log_to_results(dataframe.to_string()) dataframe['ICH_SSB'] = taichi.trend.ichimoku_b(dataframe['high'], dataframe['low'], window2=26, window3=52).shift(26) dataframe['ICH_SSA'] = taichi.trend.ichimoku_a(dataframe['high'], dataframe['low'], window1=9, window2=26).shift(26) #print(dataframe['ICH_SSA']) dataframe['ICH_KS'] = taichi.trend.ichimoku_base_line(dataframe['high'], dataframe['low']) #print(dataframe['ICH_KS']) dataframe['ICH_TS'] = taichi.trend.ichimoku_conversion_line(dataframe['high'], dataframe['low']) #print(dataframe['ICH_TS']) dataframe['ICH_CS'] = dataframe['close'].shift(-26) # RSI #dataframe['rsi'] = ta.RSI(dataframe) return dataframe def populate_entry_trend(self, dataframe: DataFrame, metadata: dict) -> DataFrame: #log_to_results("populate_entry_trend") #log_to_results(str(dataframe['ICH_CS'])) #log_to_results(str(dataframe['high'])) #log_to_results(str(dataframe['ICH_KS'])) #log_to_results(str(dataframe['ICH_TS'])) #log_to_results(str(dataframe['ICH_SSA'])) #log_to_results(str(dataframe['ICH_SSB'])) dataframe.loc[ ( (dataframe['close'] > dataframe['high'].shift(26)) & (dataframe['close'] > dataframe['ICH_KS'].shift(26)) & (dataframe['close'] > dataframe['ICH_TS'].shift(26)) & (dataframe['close'] > dataframe['ICH_SSA'].shift(26)) & (dataframe['close'] > dataframe['ICH_SSB'].shift(26)) & (dataframe['open'] < dataframe['ICH_SSB']) & (dataframe['close'] > dataframe['ICH_SSB']) & (dataframe['close_1h'] > dataframe['open_1h']) #here the btc values #& (qtpylib.crossed_above(dataframe['rsi'], 30)) # Signal: RSI crosses above 30 ), 'enter_long'] = 1 dataframe.loc[ ( (dataframe['close'] < dataframe['low'].shift(26)) & (dataframe['close'] < dataframe['ICH_KS'].shift(26)) & (dataframe['close'] < dataframe['ICH_TS'].shift(26)) & (dataframe['close'] < dataframe['ICH_SSA'].shift(26)) & (dataframe['close'] < dataframe['ICH_SSB'].shift(26)) & (dataframe['open'] > dataframe['ICH_SSB']) & (dataframe['close'] < dataframe['ICH_SSB']) & (dataframe['close_1h'] < dataframe['open_1h']) #here the btc values ), 'enter_short'] = 1 #log_to_results(str(metadata)) #log_to_results(str(dataframe)) #dataframe.loc[ #( - # (qtpylib.crossed_above(dataframe['ICH_KS'], dataframe['ICH_TS'])) #), #'enter_short'] = 1 return dataframe def populate_exit_trend(self, dataframe: DataFrame, metadata: dict) -> DataFrame: #dataframe.loc[ # ( # # Signal: RSI crosses above 70 # (qtpylib.crossed_below(dataframe['close'], dataframe['ICH_KS'])) # ), # 'exit_long'] = 1 #dataframe.loc[ # ( # Signal: RSI crosses above 70 # (qtpylib.crossed_above(dataframe['ICH_TS'], dataframe['ICH_KS'])) # ), # 'exit_short'] = 1 return dataframe