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Fanpu Cao

3 accepted papers

2026

Enhancing Multivariate Time Series Forecasting with Global Temporal Retrieval

ICLR 2026poster

Multivariate time series forecasting (MTSF) plays a vital role in numerous real-world applications, yet existing models remain constrained by their reliance on a limited historical context. This limitation prevents them from effectively capturing global periodic patterns that often span cycles signi…

Cited by 0SourcecodeScholar
2026

ISTER: LINEAR TRANSFORMER FOR EFFICIENT MULTIVARIATE TIME SERIES FORECASTING

ICASSP 2026poster

Transformer-based models have achieved remarkable success in multivariate time series forecasting (MTSF) by capturing long-range dependencies. However, their widespread adoption is hindered by the quadratic computational complexity of self-attention, which limits scalability on high-dimensional sequ…

Cited by 0SourcePDFScholar
2026

ProCache: Constraint-Aware Feature Caching with Selective Computation for Diffusion Transformer Acceleration

AAAI 2026technical

Diffusion Transformers (DiTs) have achieved state-of-the-art performance in generative modeling, yet their high computational cost hinders real-time deployment. While feature caching offers a promising training-free acceleration solution by exploiting temporal redundancy, existing methods suffer fro

Cited by 0SourcePDFScholar