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neural-ordinary-differential-equations

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APDTFlow is a modern and extensible forecasting framework for time series data that leverages advanced techniques including neural ordinary differential equations (Neural ODEs), transformer-based components, and probabilistic modeling. Its modular design allows researchers and practitioners to experiment with multiple forecasting models and easily

  • Updated Nov 12, 2025
  • Python

Code developed for the authors master's thesis "Novel Deep Learning Strategies for Time Series Forecasting" during the academic year 2023/2024 at the Norwegian University of Science and Technology (NTNU).

  • Updated Jun 6, 2024
  • Julia

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