Skip to main navigation Skip to search Skip to main content

GCINet: global convolution interaction network with a pre-trained reversible normalization method for long-term time series forecasting

Jin Fan*, Baoshun Yang, Danfeng Sun, Jie Liu, Qikai Chen, Zhipeng Wang, Jia Wu

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Long-term time series forecasting is crucial in various domains, such as weather forecasting and disease forecasting. With the rise of Transformer-based models, we have witnessed a significant improvement in long-term prediction accuracy, as these models use self-attention to capture long-term temporal features in the data during feature extraction. However, this approach has several drawbacks: Firstly, self-attention has quadratic complexity, and reducing its complexity often results in reduced prediction accuracy. Secondly, the distribution of time series data frequently changes over time, a phenomenon known as distribution shift, which is not taken into consideration in most Transformer-based models. This leads to decreased prediction accuracy as the distribution deviates from the one used for model training. Therefore, we have developed a new time series forecasting model, GCINet, which introduces a new mode of interaction based on a convolutional network. This captures both long-term and short-term temporal features while reducing complexity during feature extraction. Additionally, GCINet includes an Inverse Trained Normalization method to address distribution shift, bringing a fresh perspective to the design of time series forecasting models. Our experiments on long-term forecasting tasks demonstrate that GCINet outperforms other commonly used models.

Original languageEnglish
Pages (from-to)3227-3244
Number of pages18
JournalNeural Computing and Applications
Volume37
Issue number5
DOIs
Publication statusPublished - Feb 2025

Keywords

  • Long-term time series forecasting
  • Distribution shift
  • Feature extraction
  • Spatiotemporal complexity

Fingerprint

Dive into the research topics of 'GCINet: global convolution interaction network with a pre-trained reversible normalization method for long-term time series forecasting'. Together they form a unique fingerprint.

Cite this