fix corr_pairs startup candle count bug
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@ -67,6 +67,12 @@ Backtesting mode requires [downloading the necessary data](#downloading-data-to-
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*want* to retrain a new model with the same config file, you should simply change the `identifier`.
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*want* to retrain a new model with the same config file, you should simply change the `identifier`.
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This way, you can return to using any model you wish by simply specifying the `identifier`.
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This way, you can return to using any model you wish by simply specifying the `identifier`.
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!!! Note
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Backtesting calls the `set_freqai_targets()` function for every window defined in `backtest_period_days` parameter
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to better simulate the dry/run live behavior, but it's analyzes the whole time-range at once in `feature_engineering_*()` for performance reasons.
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Because of this, strategy authors need to make sure that strategies do not look-ahead into the future at `feature_engineering_*()` functions.
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Strategy authors should carefully read the [Common Mistakes](strategy-customization.md#common-mistakes-when-developing-strategies)
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---
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---
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### Saving prediction data
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### Saving prediction data
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@ -313,14 +313,8 @@ class IFreqaiModel(ABC):
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dk.append_predictions(append_df)
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dk.append_predictions(append_df)
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else:
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else:
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if populate_indicators:
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if populate_indicators:
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tr_from_main_df = (f'{dataframe["date"].min().strftime("%Y%m%d")}'
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f'-{dataframe["date"].max().strftime("%Y%m%d")}')
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timerange = TimeRange.parse_timerange(tr_from_main_df)
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self.dd.load_all_pair_histories(timerange, self.dk)
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corr_df, base_df = self.dd.get_base_and_corr_dataframes(timerange, pair, dk)
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dataframe = self.dk.use_strategy_to_populate_indicators(
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dataframe = self.dk.use_strategy_to_populate_indicators(
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strategy, prediction_dataframe=dataframe, pair=metadata["pair"],
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strategy, prediction_dataframe=dataframe, pair=metadata["pair"]
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corr_dataframes=corr_df, base_dataframes=base_df
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)
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)
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populate_indicators = False
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populate_indicators = False
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