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Enhancing Temporal Sensitivity and Reasoning for Time-Sensitive Question Answering

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arxiv 2409.16909 v2 pith:Y54YR4QK submitted 2024-09-25 cs.CL cs.AI

classification cs.CLcs.AI
keywords temporalreasoningtime-sensitivetsqaansweringfactsframeworkinformation
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Time-Sensitive Question Answering (TSQA) demands the effective utilization of specific temporal contexts, encompassing multiple time-evolving facts, to address time-sensitive questions. This necessitates not only the parsing of temporal information within questions but also the identification and understanding of time-evolving facts to generate accurate answers. However, current large language models still have limited sensitivity to temporal information and their inadequate temporal reasoning capabilities. In this paper, we propose a novel framework that enhances temporal awareness and reasoning through Temporal Information-Aware Embedding and Granular Contrastive Reinforcement Learning. Experimental results on four TSQA datasets demonstrate that our framework significantly outperforms existing LLMs in TSQA tasks, marking a step forward in bridging the performance gap between machine and human temporal understanding and reasoning.

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Cited by 1 Pith paper

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  1. MTPChat: A Multimodal Time-Aware Persona Dataset for Conversational Agents

    cs.CL 2025-02 conditional novelty 6.0 of 10

    MTPChat adds explicit date stamps and synthetic earlier responses to multimodal persona dialogues, defines two temporal retrieval tasks, and reports modest gains from a gated fusion module.

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