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20242026
most citedAbduct, Act, Predict: Scaffolding Causal Inference for Automated Failure Attribution in Multi-Agent Systems

1 citations · 1 across the 12 of their papers we have counts for

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cs.CL2026

SafeReview: Defending LLM-based Review Systems Against Adversarial Hidden Prompts

Yuan Xin, Yixuan Weng, Minjun Zhu +5

As Large Language Models (LLMs) are increasingly integrated into academic peer review, their vulnerability to adversarial hidden prompts, i.e., adversarial instructions embedded in…

cs.CL2025

Deep Research: A Systematic Survey

Zhengliang Shi, Yiqun Chen, Haitao Li +23

Large language models (LLMs) have rapidly evolved from text generators into powerful problem solvers. Yet, many open tasks demand critical thinking, multi-source, and verifiable ou…

cs.CL2025

DeepScientist: Advancing Frontier-Pushing Scientific Findings Progressively

Yixuan Weng, Minjun Zhu, Qiujie Xie +4

While previous AI Scientist systems can generate novel findings, they often lack the focus to produce scientifically valuable contributions that address pressing human-defined chal…

cs.CL2025

AI-Generated Text is Non-Stationary: Detection via Temporal Tomography

Alva West, Yixuan Weng, Minjun Zhu +4

The field of AI-generated text detection has evolved from supervised classification to zero-shot statistical analysis. However, current approaches share a fundamental limitation: t…

cs.CL2025

T-Detect: Tail-Aware Statistical Normalization for Robust Detection of Adversarial Machine-Generated Text

Alva West, Luodan Zhang, Liuliu Zhang +3

Large language models (LLMs) have shown the capability to generate fluent and logical content, presenting significant challenges to machine-generated text detection, particularly t…

cs.CL2024

Personality Alignment of Large Language Models

Minjun Zhu, Yixuan Weng, Linyi Yang +1

Aligning large language models (LLMs) typically aim to reflect general human values and behaviors, but they often fail to capture the unique characteristics and preferences of indi…