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cs.CL2025

Exploring Causal Effect of Social Bias on Faithfulness Hallucinations in Large Language Models

Zhenliang Zhang, Junzhe Zhang, Xinyu Hu +2

Large language models (LLMs) have achieved remarkable success in various tasks, yet they remain vulnerable to faithfulness hallucinations, where the output does not align with the…

cs.CL2025

ICR Probe: Tracking Hidden State Dynamics for Reliable Hallucination Detection in LLMs

Zhenliang Zhang, Xinyu Hu, Huixuan Zhang +2

Large language models (LLMs) excel at various natural language processing tasks, but their tendency to generate hallucinations undermines their reliability. Existing hallucination…

cs.CL2025

MINOS: A Multimodal Evaluation Model for Bidirectional Generation Between Image and Text

Junzhe Zhang, Huixuan Zhang, Xinyu Hu +4

Evaluation is important for multimodal generation tasks, while traditional multimodal evaluation metrics suffer from several limitations. With the rapid progress of MLLMs, there is…

cs.CL2025

C-FAITH: A Chinese Fine-Grained Benchmark for Automated Hallucination Evaluation

Xu Zhang, Zhifei Liu, Jiahao Wang +4

Despite the rapid advancement of large language models, they remain highly susceptible to generating hallucinations, which significantly hinders their widespread application. Hallu…

cs.CL2025

Exploring and Evaluating Multimodal Knowledge Reasoning Consistency of Multimodal Large Language Models

Boyu Jia, Junzhe Zhang, Huixuan Zhang +1

In recent years, multimodal large language models (MLLMs) have achieved significant breakthroughs, enhancing understanding across text and vision. However, current MLLMs still face…

cs.CL2024

Quantity Matters: Towards Assessing and Mitigating Number Hallucination in Large Vision-Language Models

Huixuan Zhang, Junzhe Zhang, Xiaojun Wan

Large-scale vision-language models have demonstrated impressive skill in handling tasks that involve both areas. Nevertheless, these models frequently experience significant issues…