cs.AI updates on arXiv.org 07月21日 12:06
Temporal reasoning for timeline summarisation in social media
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本文提出NarrativeReason数据集,聚焦于叙事中事件的时间关系,结合知识蒸馏框架,通过教师模型和知识蒸馏提升学生模型的时间推理和事件摘要能力,实验证明模型在心理健康相关时间线摘要任务中表现优异。

arXiv:2501.00152v3 Announce Type: replace-cross Abstract: This paper explores whether enhancing temporal reasoning capabilities in Large Language Models (LLMs) can improve the quality of timeline summarisation, the task of summarising long texts containing sequences of events, such as social media threads. We first introduce NarrativeReason, a novel dataset focused on temporal relationships among sequential events within narratives, distinguishing it from existing temporal reasoning datasets that primarily address pair-wise event relationships. Our approach then combines temporal reasoning with timeline summarisation through a knowledge distillation framework, where we first fine-tune a teacher model on temporal reasoning tasks and then distill this knowledge into a student model while simultaneously training it for the task of timeline summarisation. Experimental results demonstrate that our model achieves superior performance on out-of-domain mental health-related timeline summarisation tasks, which involve long social media threads with repetitions of events and a mix of emotions, highlighting the importance and generalisability of leveraging temporal reasoning to improve timeline summarisation.

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时间推理 LLM 时间线摘要 知识蒸馏 NarrativeReason
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