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#multiple-instance-learning

Max-pooling Network Revisited: Analyzing the Role of Semantic Probability in Multiple Instance Learning for Hallucination Detection

arXiv cs.CL · 2026-05-12 Cached

This paper analyzes hallucination detection in LLMs, proposing a max-pooling approach that improves efficiency by eliminating costly semantic consistency computations while maintaining competitive performance.

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#multiple-instance-learning

Multi-View Attention Multiple-Instance Learning Enhanced by LLM Reasoning for Cognitive Distortion Detection

arXiv cs.CL · 2026-04-20 Cached

This paper proposes a novel framework combining Large Language Models with Multiple-Instance Learning to detect cognitive distortions in mental health texts by decomposing utterances into Emotion, Logic, and Behavior components and using multi-view gated attention for classification. The approach demonstrates improved performance on Korean and English datasets, particularly for distortions with high interpretive ambiguity.

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