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Beyond Semantic Equivalence: Logical Graphs for LLM Uncertainty Quantification

arXiv cs.AI · 2026-07-21 Cached

This paper proposes Logical Graph Uncertainty (LGU), a framework that models implication and incompatibility among answers to improve uncertainty estimation in LLMs, outperforming semantic entropy baselines by up to 7.1% AUROC and 3.5% AUARC across benchmarks.

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Diversity-Oriented Fine-Tuning for Uncertainty-Based Hallucination Detection

arXiv cs.AI · 2026-07-21 Cached

This paper proposes diversity-oriented fine-tuning strategies to improve uncertainty-based hallucination detection in LLMs by encouraging varied generations, making hallucinations more detectable via semantic entropy.

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SAGE: Answer-Conditioned Uncertainty Targets for Verbal Uncertainty Alignment

arXiv cs.CL · 2026-06-11 Cached

SAGE proposes a group-level uncertainty target that constructs an answer-conditioned uncertainty geometry over sampled responses to improve verbal uncertainty alignment in LLMs, and introduces GUPO for training. Experiments across reasoning tasks show improved uncertainty ranking and reduced overconfidence.

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When Does Delegation Beat Majority? A Delegation-Based Aggregator for Multi-Sample LLM Inference

arXiv cs.AI · 2026-06-09 Cached

The paper proposes a delegation-based aggregator called Propagational Proxy Voting (PPV) that uses letter entropy and reasoning geometry to improve over majority voting for multi-sample LLM inference, achieving gains on MMLU-Pro without requiring gold labels or auxiliary training.

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Mind the Unseen Mass: Unmasking LLM Hallucinations via Soft-Hybrid Alphabet Estimation

arXiv cs.CL · 2026-04-22 Cached

Researchers introduce SHADE, a hybrid estimator that combines Good-Turing coverage with graph-spectral cues to quantify semantic uncertainty and detect LLM hallucinations when only a few black-box samples are available.

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