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From the 1 of 5 linked papers with an AI index.

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5 papers

cs.LG2026

TFGformer: Multivariate Time Series Forecasting via Time-Frequency Graph Learning and Covariate Fusion

Yu Sun, Yuan Chang, Xiaohou Shi +1

Large-scale multivariate time series from heterogeneous IoT sensors demand accurate long-term forecasting for resource scheduling and predictive maintenance. While recent time seri…

cs.LG2026

VAN-AD: Visual Masked Autoencoder with Normalizing Flow For Time Series Anomaly Detection

PengYu Chen, Shang Wan, Xiaohou Shi +3

The paper proposes VAN-AD, a framework that adapts a vision‑based masked autoencoder pretrained on ImageNet for time‑series anomaly detection, adding an adaptive distribution mappi…

cs.LG2026

Time Tracker: Mixture-of-Experts-Enhanced Foundation Time Series Forecasting Model with Decoupled Training Pipelines

Aobo Liang, Yan Sun, Xiaohou Shi +1

In the past few years, time series foundation models have achieved superior predicting accuracy. However, real-world time series often exhibit significant diversity in their tempor…

cs.LG2026

RED-F: Reconstruction-Elimination based Dual-stream Contrastive Forecasting for Multivariate Time Series Anomaly Prediction

PengYu Chen, Xiaohou Shi, Yuan Chang +2

Anomaly prediction (AP) in multivariate time series (MTS) is crucial to ensure system dependability. Existing methods either focus solely on whether an anomaly is imminent without…

cs.LG2024

WaveRoRA: Wavelet Rotary Route Attention for Multivariate Time Series Forecasting

Aobo Liang, Yan Sun, Nadra Guizani

In recent years, Transformer-based models (Transformers) have achieved significant success in multivariate time series forecasting (MTSF). However, previous works focus on extracti…