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BTC Predictor

Technologies Used: LSTMs, Tensorflow, Naïve Forecasting, Ensemble Models

  • Developed a Bitcoin price forecasting project using TensorFlow, organising time series data into a supervised learning framework with precise windowing techniques.
  • Evaluated multiple models (Naive Forecasting, Dense Models, LSTM, and Ensemble) with the ensemble model surpassing individual models, achieving an MAE of 565.04 versus a 567.99 baseline. Identified that outliers caused an extreme MAE of 17,134 in a 6th model.

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