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Shuwei Li

6 accepted papers

2026

Aggregating Diverse Cue Experts for AI-Generated Image Detection

AAAI 2026technical

The rapid emergence of image synthesis models poses challenges to the generalization of AI-generated image detectors. However, existing methods often rely on model-specific features, leading to overfitting and poor generalization. In this paper, we introduce the Multi-Cue Aggregation Network (MCAN),

Cited by 0SourcePDFScholar
2026

Bridging Day and Night: Target-Class Hallucination Suppression in Unpaired Image Translation

AAAI 2026technical

Day-to-night unpaired image translation is important to downstream tasks but remains challenging due to large appearance shifts and the lack of direct pixel-level supervision. Existing methods often introduce semantic hallucinations, where objects from target classes such as traffic signs and vehicl

Cited by 7SourcePDFScholar
2026

FUSE: Frequency-domain Unification and Spectral Energy Alignment for Multi-modal Object Re-Identification

ICML 2026poster

Despite significant progress in multi-modal Re-Identification (ReID), existing methods tend to emphasize low-frequency cues. Consequently, they focus on attributes such as color, illumination, and coarse appearance, while overlooking mid- and high-frequency structures that encode geometric, textural…

Cited by 0SourceScholar
2025

InfoSEM: A Deep Generative Model with Informative Priors for Gene Regulatory Network Inference

ICML 2025poster

Inferring Gene Regulatory Networks (GRNs) from gene expression data is crucial for understanding biological processes. While supervised models are reported to achieve high performance for this task, they rely on costly ground truth (GT) labels and risk learning gene-specific biases—such as class imb…

Cited by 0SourcePDFScholar