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MR-ImagenTime: Multi-Resolution Time Series Generation through Dual Image Representations

Xianyong Xu
Yuanjun Zuo
Zhihong Huang
Yihan Qin
Haoxian Xu
Leilei Du
Haotian Wang
Main:4 Pages
7 Figures
Bibliography:1 Pages
10 Tables
Appendix:4 Pages
Abstract

Time series forecasting is vital across many domains, yet existing models struggle with fixed-length inputs and inadequate multi-scale modeling. We propose MR-CDM, a framework combining hierarchical multi-resolution trend decomposition, an adaptive embedding mechanism for variable-length inputs, and a multi-scale conditional diffusion process. Evaluations on four real-world datasets demonstrate that MR-CDM significantly outperforms state-of-the-art baselines (e.g., CSDI, Informer), reducing MAE and RMSE by approximately 6-10 to a certain degree.

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