Papers › Ask Again, Then Fail: Large Language Models' Vacillations in Judgment

Ask Again, Then Fail: Large Language Models' Vacillations in Judgment

3 Oct 2023arXiv:2310.02174archive 2025-07-28

Qiming Xie, Zengzhi Wang, Yi Feng, Rui Xia

We observe that current conversational language models often waver in their judgments when faced with follow-up questions, even if the original judgment was correct. This wavering presents a significant challenge for generating reliable responses and building user trust. To comprehensively assess this issue, we introduce a \textsc{Follow-up Questioning Mechanism} along with two metrics to quantify this inconsistency, confirming its widespread presence in current language models. To mitigate this issue, we explore various prompting strategies for closed-source models; moreover, we develop a training-based framework \textsc{Unwavering-FQ} that teaches language models to maintain their originally correct judgments through synthesized high-quality preference data. Our experimental results confirm the effectiveness of our framework and its ability to enhance the general capabilities of models.

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