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Utilizing Image Transforms and Diffusion Models for Generative Modeling of Short and Long Time Series

  • Ilan Naiman
  • , Nimrod Berman
  • , Itai Pemper
  • , Idan Arbiv
  • , Gal Fadlon
  • , Omri Azencot

    Research output: Contribution to journalConference articlepeer-review

    22 Scopus citations

    Abstract

    Lately, there has been a surge in interest surrounding generative modeling of time series data. Most existing approaches are designed either to process short sequences or to handle long-range sequences. This dichotomy can be attributed to gradient issues with recurrent networks, computational costs associated with transformers, and limited expressiveness of state space models. Towards a unified generative model for varying-length time series, we propose in this work to transform sequences into images. By employing invertible transforms such as the delay embedding and the short-time Fourier transform, we unlock three main advantages: i) We can exploit advanced diffusion vision models; ii) We can remarkably process short- and long-range inputs within the same framework; and iii) We can harness recent and established tools proposed in the time series to image literature. We validate the effectiveness of our method through a comprehensive evaluation across multiple tasks, including unconditional generation, interpolation, and extrapolation. We show that our approach achieves consistently state-of-the-art results against strong baselines. In the unconditional generation tasks, we show remarkable mean improvements of 58.17% over previous diffusion models in the short discriminative score and 132.61% in the (ultra-)long classification scores. Code is at https://github.com/azencot-group/ImagenTime.

    Original languageEnglish
    JournalAdvances in Neural Information Processing Systems
    Volume37
    StatePublished - 1 Jan 2024
    Event38th Conference on Neural Information Processing Systems, NeurIPS 2024 - Vancouver, Canada
    Duration: 9 Dec 202415 Dec 2024

    ASJC Scopus subject areas

    • Signal Processing
    • Information Systems
    • Computer Networks and Communications

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