399 lines
17 KiB
Python
399 lines
17 KiB
Python
import logging
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import operator
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from datetime import datetime, timezone
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from pathlib import Path
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from typing import Dict, List, Optional, Tuple
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import arrow
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from pandas import DataFrame
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from freqtrade.configuration import TimeRange
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from freqtrade.constants import DEFAULT_DATAFRAME_COLUMNS
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from freqtrade.data.converter import (clean_ohlcv_dataframe, ohlcv_to_dataframe,
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trades_remove_duplicates, trades_to_ohlcv)
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from freqtrade.data.history.idatahandler import IDataHandler, get_datahandler
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from freqtrade.exceptions import OperationalException
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from freqtrade.exchange import Exchange
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from freqtrade.misc import format_ms_time
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logger = logging.getLogger(__name__)
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def load_pair_history(pair: str,
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timeframe: str,
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datadir: Path, *,
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timerange: Optional[TimeRange] = None,
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fill_up_missing: bool = True,
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drop_incomplete: bool = True,
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startup_candles: int = 0,
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data_format: str = None,
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data_handler: IDataHandler = None,
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) -> DataFrame:
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"""
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Load cached ohlcv history for the given pair.
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:param pair: Pair to load data for
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:param timeframe: Timeframe (e.g. "5m")
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:param datadir: Path to the data storage location.
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:param data_format: Format of the data. Ignored if data_handler is set.
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:param timerange: Limit data to be loaded to this timerange
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:param fill_up_missing: Fill missing values with "No action"-candles
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:param drop_incomplete: Drop last candle assuming it may be incomplete.
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:param startup_candles: Additional candles to load at the start of the period
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:param data_handler: Initialized data-handler to use.
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Will be initialized from data_format if not set
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:return: DataFrame with ohlcv data, or empty DataFrame
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"""
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data_handler = get_datahandler(datadir, data_format, data_handler)
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return data_handler.ohlcv_load(pair=pair,
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timeframe=timeframe,
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timerange=timerange,
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fill_missing=fill_up_missing,
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drop_incomplete=drop_incomplete,
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startup_candles=startup_candles,
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)
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def load_data(datadir: Path,
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timeframe: str,
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pairs: List[str], *,
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timerange: Optional[TimeRange] = None,
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fill_up_missing: bool = True,
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startup_candles: int = 0,
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fail_without_data: bool = False,
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data_format: str = 'json',
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) -> Dict[str, DataFrame]:
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"""
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Load ohlcv history data for a list of pairs.
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:param datadir: Path to the data storage location.
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:param timeframe: Timeframe (e.g. "5m")
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:param pairs: List of pairs to load
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:param timerange: Limit data to be loaded to this timerange
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:param fill_up_missing: Fill missing values with "No action"-candles
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:param startup_candles: Additional candles to load at the start of the period
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:param fail_without_data: Raise OperationalException if no data is found.
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:param data_format: Data format which should be used. Defaults to json
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:return: dict(<pair>:<Dataframe>)
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"""
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result: Dict[str, DataFrame] = {}
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if startup_candles > 0 and timerange:
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logger.info(f'Using indicator startup period: {startup_candles} ...')
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data_handler = get_datahandler(datadir, data_format)
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for pair in pairs:
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hist = load_pair_history(pair=pair, timeframe=timeframe,
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datadir=datadir, timerange=timerange,
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fill_up_missing=fill_up_missing,
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startup_candles=startup_candles,
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data_handler=data_handler
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)
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if not hist.empty:
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result[pair] = hist
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if fail_without_data and not result:
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raise OperationalException("No data found. Terminating.")
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return result
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def refresh_data(datadir: Path,
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timeframe: str,
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pairs: List[str],
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exchange: Exchange,
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data_format: str = None,
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timerange: Optional[TimeRange] = None,
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) -> None:
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"""
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Refresh ohlcv history data for a list of pairs.
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:param datadir: Path to the data storage location.
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:param timeframe: Timeframe (e.g. "5m")
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:param pairs: List of pairs to load
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:param exchange: Exchange object
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:param timerange: Limit data to be loaded to this timerange
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"""
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data_handler = get_datahandler(datadir, data_format)
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for pair in pairs:
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_download_pair_history(pair=pair, timeframe=timeframe,
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datadir=datadir, timerange=timerange,
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exchange=exchange, data_handler=data_handler)
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def _load_cached_data_for_updating(pair: str, timeframe: str, timerange: Optional[TimeRange],
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data_handler: IDataHandler) -> Tuple[DataFrame, Optional[int]]:
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"""
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Load cached data to download more data.
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If timerange is passed in, checks whether data from an before the stored data will be
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downloaded.
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If that's the case then what's available should be completely overwritten.
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Otherwise downloads always start at the end of the available data to avoid data gaps.
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Note: Only used by download_pair_history().
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"""
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start = None
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if timerange:
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if timerange.starttype == 'date':
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start = datetime.fromtimestamp(timerange.startts, tz=timezone.utc)
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# Intentionally don't pass timerange in - since we need to load the full dataset.
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data = data_handler.ohlcv_load(pair, timeframe=timeframe,
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timerange=None, fill_missing=False,
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drop_incomplete=True, warn_no_data=False)
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if not data.empty:
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if start and start < data.iloc[0]['date']:
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# Earlier data than existing data requested, redownload all
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data = DataFrame(columns=DEFAULT_DATAFRAME_COLUMNS)
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else:
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start = data.iloc[-1]['date']
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start_ms = int(start.timestamp() * 1000) if start else None
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return data, start_ms
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def _download_pair_history(datadir: Path,
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exchange: Exchange,
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pair: str, *,
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timeframe: str = '5m',
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timerange: Optional[TimeRange] = None,
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data_handler: IDataHandler = None) -> bool:
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"""
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Download latest candles from the exchange for the pair and timeframe passed in parameters
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The data is downloaded starting from the last correct data that
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exists in a cache. If timerange starts earlier than the data in the cache,
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the full data will be redownloaded
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Based on @Rybolov work: https://github.com/rybolov/freqtrade-data
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:param pair: pair to download
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:param timeframe: Timeframe (e.g "5m")
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:param timerange: range of time to download
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:return: bool with success state
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"""
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data_handler = get_datahandler(datadir, data_handler=data_handler)
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try:
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logger.info(
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f'Download history data for pair: "{pair}", timeframe: {timeframe} '
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f'and store in {datadir}.'
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)
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# data, since_ms = _load_cached_data_for_updating_old(datadir, pair, timeframe, timerange)
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data, since_ms = _load_cached_data_for_updating(pair, timeframe, timerange,
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data_handler=data_handler)
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logger.debug("Current Start: %s",
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f"{data.iloc[0]['date']:%Y-%m-%d %H:%M:%S}" if not data.empty else 'None')
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logger.debug("Current End: %s",
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f"{data.iloc[-1]['date']:%Y-%m-%d %H:%M:%S}" if not data.empty else 'None')
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# Default since_ms to 30 days if nothing is given
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new_data = exchange.get_historic_ohlcv(pair=pair,
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timeframe=timeframe,
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since_ms=since_ms if since_ms else
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int(arrow.utcnow().shift(
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days=-30).float_timestamp) * 1000
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)
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# TODO: Maybe move parsing to exchange class (?)
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new_dataframe = ohlcv_to_dataframe(new_data, timeframe, pair,
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fill_missing=False, drop_incomplete=True)
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if data.empty:
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data = new_dataframe
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else:
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# Run cleaning again to ensure there were no duplicate candles
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# Especially between existing and new data.
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data = clean_ohlcv_dataframe(data.append(new_dataframe), timeframe, pair,
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fill_missing=False, drop_incomplete=False)
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logger.debug("New Start: %s",
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f"{data.iloc[0]['date']:%Y-%m-%d %H:%M:%S}" if not data.empty else 'None')
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logger.debug("New End: %s",
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f"{data.iloc[-1]['date']:%Y-%m-%d %H:%M:%S}" if not data.empty else 'None')
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data_handler.ohlcv_store(pair, timeframe, data=data)
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return True
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except Exception as e:
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logger.error(
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f'Failed to download history data for pair: "{pair}", timeframe: {timeframe}. '
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f'Error: {e}'
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)
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return False
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def refresh_backtest_ohlcv_data(exchange: Exchange, pairs: List[str], timeframes: List[str],
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datadir: Path, timerange: Optional[TimeRange] = None,
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erase: bool = False, data_format: str = None) -> List[str]:
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"""
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Refresh stored ohlcv data for backtesting and hyperopt operations.
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Used by freqtrade download-data subcommand.
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:return: List of pairs that are not available.
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"""
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pairs_not_available = []
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data_handler = get_datahandler(datadir, data_format)
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for pair in pairs:
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if pair not in exchange.markets:
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pairs_not_available.append(pair)
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logger.info(f"Skipping pair {pair}...")
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continue
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for timeframe in timeframes:
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if erase:
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if data_handler.ohlcv_purge(pair, timeframe):
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logger.info(
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f'Deleting existing data for pair {pair}, interval {timeframe}.')
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logger.info(f'Downloading pair {pair}, interval {timeframe}.')
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_download_pair_history(datadir=datadir, exchange=exchange,
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pair=pair, timeframe=str(timeframe),
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timerange=timerange, data_handler=data_handler)
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return pairs_not_available
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def _download_trades_history(exchange: Exchange,
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pair: str, *,
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timerange: Optional[TimeRange] = None,
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data_handler: IDataHandler
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) -> bool:
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"""
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Download trade history from the exchange.
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Appends to previously downloaded trades data.
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"""
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try:
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since = timerange.startts * 1000 if \
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(timerange and timerange.starttype == 'date') else int(arrow.utcnow().shift(
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days=-30).float_timestamp) * 1000
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trades = data_handler.trades_load(pair)
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# TradesList columns are defined in constants.DEFAULT_TRADES_COLUMNS
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# DEFAULT_TRADES_COLUMNS: 0 -> timestamp
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# DEFAULT_TRADES_COLUMNS: 1 -> id
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if trades and since < trades[0][0]:
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# since is before the first trade
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logger.info(f"Start earlier than available data. Redownloading trades for {pair}...")
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trades = []
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from_id = trades[-1][1] if trades else None
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if trades and since < trades[-1][0]:
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# Reset since to the last available point
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# - 5 seconds (to ensure we're getting all trades)
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since = trades[-1][0] - (5 * 1000)
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logger.info(f"Using last trade date -5s - Downloading trades for {pair} "
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f"since: {format_ms_time(since)}.")
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logger.debug(f"Current Start: {format_ms_time(trades[0][0]) if trades else 'None'}")
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logger.debug(f"Current End: {format_ms_time(trades[-1][0]) if trades else 'None'}")
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logger.info(f"Current Amount of trades: {len(trades)}")
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# Default since_ms to 30 days if nothing is given
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new_trades = exchange.get_historic_trades(pair=pair,
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since=since,
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from_id=from_id,
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)
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trades.extend(new_trades[1])
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# Remove duplicates to make sure we're not storing data we don't need
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trades = trades_remove_duplicates(trades)
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data_handler.trades_store(pair, data=trades)
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logger.debug(f"New Start: {format_ms_time(trades[0][0])}")
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logger.debug(f"New End: {format_ms_time(trades[-1][0])}")
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logger.info(f"New Amount of trades: {len(trades)}")
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return True
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except Exception as e:
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logger.error(
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f'Failed to download historic trades for pair: "{pair}". '
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f'Error: {e}'
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)
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return False
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def refresh_backtest_trades_data(exchange: Exchange, pairs: List[str], datadir: Path,
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timerange: TimeRange, erase: bool = False,
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data_format: str = 'jsongz') -> List[str]:
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"""
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Refresh stored trades data for backtesting and hyperopt operations.
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Used by freqtrade download-data subcommand.
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:return: List of pairs that are not available.
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"""
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pairs_not_available = []
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data_handler = get_datahandler(datadir, data_format=data_format)
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for pair in pairs:
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if pair not in exchange.markets:
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pairs_not_available.append(pair)
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logger.info(f"Skipping pair {pair}...")
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continue
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if erase:
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if data_handler.trades_purge(pair):
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logger.info(f'Deleting existing data for pair {pair}.')
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logger.info(f'Downloading trades for pair {pair}.')
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_download_trades_history(exchange=exchange,
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pair=pair,
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timerange=timerange,
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data_handler=data_handler)
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return pairs_not_available
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def convert_trades_to_ohlcv(pairs: List[str], timeframes: List[str],
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datadir: Path, timerange: TimeRange, erase: bool = False,
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data_format_ohlcv: str = 'json',
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data_format_trades: str = 'jsongz') -> None:
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"""
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Convert stored trades data to ohlcv data
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"""
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data_handler_trades = get_datahandler(datadir, data_format=data_format_trades)
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data_handler_ohlcv = get_datahandler(datadir, data_format=data_format_ohlcv)
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for pair in pairs:
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trades = data_handler_trades.trades_load(pair)
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for timeframe in timeframes:
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if erase:
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if data_handler_ohlcv.ohlcv_purge(pair, timeframe):
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logger.info(f'Deleting existing data for pair {pair}, interval {timeframe}.')
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ohlcv = trades_to_ohlcv(trades, timeframe)
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# Store ohlcv
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data_handler_ohlcv.ohlcv_store(pair, timeframe, data=ohlcv)
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def get_timerange(data: Dict[str, DataFrame]) -> Tuple[arrow.Arrow, arrow.Arrow]:
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"""
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Get the maximum common timerange for the given backtest data.
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:param data: dictionary with preprocessed backtesting data
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:return: tuple containing min_date, max_date
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"""
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timeranges = [
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(arrow.get(frame['date'].min()), arrow.get(frame['date'].max()))
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for frame in data.values()
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]
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return (min(timeranges, key=operator.itemgetter(0))[0],
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max(timeranges, key=operator.itemgetter(1))[1])
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def validate_backtest_data(data: DataFrame, pair: str, min_date: datetime,
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max_date: datetime, timeframe_min: int) -> bool:
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"""
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Validates preprocessed backtesting data for missing values and shows warnings about it that.
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:param data: preprocessed backtesting data (as DataFrame)
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:param pair: pair used for log output.
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:param min_date: start-date of the data
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:param max_date: end-date of the data
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:param timeframe_min: Timeframe in minutes
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"""
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# total difference in minutes / timeframe-minutes
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expected_frames = int((max_date - min_date).total_seconds() // 60 // timeframe_min)
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found_missing = False
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dflen = len(data)
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if dflen < expected_frames:
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found_missing = True
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logger.warning("%s has missing frames: expected %s, got %s, that's %s missing values",
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pair, expected_frames, dflen, expected_frames - dflen)
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return found_missing
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