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Adaptive Multi-Scale Decomposition Framework for Time Series Forecasting
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Transformer-based and MLP-based methods have emerged as leading approaches in time series forecasting (TSF). While Transformer-based methods excel in capturing long-range dependencies, they suffer from high computational complexities and tend to overfit. Conversely, MLP-based methods offer computational efficiency and adeptness in modeling temporal dynamics, but they struggle with capturing complex temporal patterns effectively. To address these challenges, we propose a novel MLP-based Adaptive Multi-Scale Decomposition (AMD) framework for TSF. Our framework decomposes time series into distinct temporal patterns at multiple scales, leveraging the Multi-Scale Decomposable Mixing (MDM) block to dissect and aggregate these patterns in a residual manner. Complemented by the Dual Dependency Interaction (DDI) block and the Adaptive Multi-predictor Synthesis (AMS) block, our approach effectively models both temporal and channel dependencies and utilizes autocorrelation to refine multi-scale data integration. Comprehensive experiments demonstrate that our AMD framework not only overcomes the limitations of existing methods but also consistently achieves state-of-the-art performance in both long-term and short-term forecasting tasks across various datasets, showcasing superior efficiency. Code is available at https://github.com/TROUBADOUR000/AMD
Forward citations
Cited by 4 Pith papers
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TimeFilter improves multivariate time series forecasting by dynamically filtering a patch-level spatial-temporal graph with a Mixture-of-Experts router, achieving state-of-the-art MSE on 13 benchmarks.
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DUET: Dual Clustering Enhanced Multivariate Time Series Forecasting
DUET improves multivariate time series forecasting by combining temporal distribution clustering with channel soft clustering and masked attention.
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Enhancing Irregular Time Series Forecasting with Continuous-Time Modeling Framework
WrapFlow combines continuous-time event/gap tokenization with simulation-free residual flow matching on a Transformer to improve irregular multivariate time-series forecasting.
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