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Yang Qiu

5 accepted papers

2026

MIRAGE: Towards AI-Generated Image Detection in the Wild

AAAI 2026technical

The spreading of AI-generated images (AIGI), driven by advances in generative AI, poses a significant threat to in- formation security and public trust. Existing AIGI detectors, while effective against images in clean laboratory settings, fail to generalize to in-the-wild scenarios. These real-world

Cited by 0SourcePDFScholar
2025

Quantifying Distributional Invariance in Causal Subgraph for IRM-Free Graph Generalization

NeurIPS 2025poster

Out-of-distribution generalization under distributional shifts remains a critical challenge for graph neural networks. Existing methods generally adopt the Invariant Risk Minimization (IRM) framework, requiring costly environment annotations or heuristically generated synthetic splits. To circumvent…

Cited by 0SourcecodeScholar
2025

WHAT MAKES MATH PROBLEMS HARD FOR REINFORCEMENT LEARNING: A CASE STUDY

NeurIPS 2025poster

Using a long-standing conjecture from combinatorial group theory, we explore, from multiple perspectives, the challenges of finding rare instances carrying disproportionately high rewards. Based on lessons learned in the context defined by the Andrews--Curtis conjecture, we analyze how reinforcement…

Cited by 0SourcecodeScholar
2023

D-Separation for Causal Self-Explanation

NeurIPS 2023poster

Rationalization aims to strengthen the interpretability of NLP models by extracting a subset of human-intelligible pieces of their inputting texts. Conventional works generally employ the maximum mutual information (MMI) criterion to find the rationale that is most indicative of the target label. Ho…

2023

MGR: Multi-generator Based Rationalization

ACL 2023long

Rationalization is to employ a generator and a predictor to construct a self-explaining NLP model in which the generator selects a subset of human-intelligible pieces of the input text to the following predictor. However, rationalization suffers from two key challenges, i.e., spurious correlation an…