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Chenwang Wu

4 accepted papers

2026

Beyond Raw Detection Scores: Markov-Informed Calibration for Boosting Machine-Generated Text Detection

ICLR 2026poster

While machine-generated texts (MGTs) offer great convenience, they also pose risks such as disinformation and phishing, highlighting the need for reliable detection. Metric-based methods, which extract statistically distinguishable features of MGTs, are often more practical than complex model-based…

Cited by 0SourcecodeScholar
2025

Advancing Machine-Generated Text Detection from an Easy to Hard Supervision Perspective

NeurIPS 2025poster

Existing machine-generated text (MGT) detection methods implicitly assume labels as the "golden standard". However, we reveal boundary ambiguity in MGT detection, implying that traditional training paradigms are inexact. Moreover, limitations of human cognition and the superintelligence of detectors…

Cited by 0SourcecodeScholar
2022

Graph Convolution Network based Recommender Systems: Learning Guarantee and Item Mixture Powered Strategy

NeurIPS 2022accept

Inspired by their powerful representation ability on graph-structured data, Graph Convolution Networks (GCNs) have been widely applied to recommender systems, and have shown superior performance. Despite their empirical success, there is a lack of theoretical explorations such as generalization prop…

Cited by 19SourcePDFScholar