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Bridging Neural Networks and Dynamic Time Warping for Adaptive Time Series Classification

  • 2026
  • OriginalPaper
  • Chapter
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Abstract

This chapter delves into the challenges and solutions for time series classification, focusing on the integration of neural networks and dynamic time warping (DTW). It highlights the limitations of existing deep learning methods, such as the need for large amounts of labeled data and the lack of interpretability. The proposed model introduces a dynamic length-shortening algorithm that transforms time series into prototypes while preserving key structural patterns, enabling the DTW recurrence relation to be reformulated as an equivalent recurrent neural network. The chapter also discusses the computational flow of the proposed neural model and its interpretability advantages. Extensive experiments demonstrate the effectiveness of the approach across multiple benchmark time series classification tasks, showcasing its superiority in low-resource settings and its competitiveness in data-rich environments. The model's ability to bridge the gap between instance-based methods and deep learning is a significant advancement in the field of time series classification.

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Title
Bridging Neural Networks and Dynamic Time Warping for Adaptive Time Series Classification
Authors
Jintao Qu
Zichong Wang
Chenhao Wu
Wenbin Zhang
Dongmei Li
Copyright Year
2026
DOI
https://doi.org/10.1007/978-3-032-06109-6_30
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