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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
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).