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Weiwei Duan

4 accepted papers

2026

CHAL: Causal-guided Hierarchical Anomaly-aware Learning for Moving Infrared Small Target Detection

CVPR 2026

Infrared small target detection is one highly special category of object detection, faced with tiny target imaging size and cluttered backgrounds. Currently, almost all existing methods are target-centered, directly learning the target features from backgrounds. However, due to weak target signals,

Cited by 0SourcecodeScholar
2026

Cross-domain Joint Learning with Prototype-guided Mixture-of-Experts for Infrared Moving Small Target Detection

AAAI 2026technical

Infrared small target detection often faces significant domain gaps across datasets due to varying sensors and scene distributions. Currently, most existing methods are typically based on single-domain learning (i.e., training and test are on the same dataset), requiring training separate detectors

Cited by 0SourcePDFScholar
2026

SeViL: Semi-supervised Vision-Language Learning with Text Prompt Guiding for Moving Infrared Small Target Detection

AAAI 2026technical

Unlike traditional object detection, moving infrared small target detection is highly challenging due to tiny target size and limited labeled samples. Currently, most existing methods mainly focus on the pure-vision features usually by fully-supervised learning, heavily relying on extensive high-cos

Cited by 0SourcePDFScholar
2025

Motion Prior Knowledge Learning with Homogeneous Language Descriptions for Moving Infrared Small Target Detection

AAAI 2025technical

Different from traditional object detection, pure vision is not enough to infrared small target detection, due to small target size and weak background contrast. For promoting detection performance, more target representations are needed. Currently, motion representations have been proved to be one…