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Dialogue Session Segmentation by Embedding-Enhanced TextTiling

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arxiv 1610.03955 v1 pith:TISEKXIY submitted 2016-10-13 cs.CL cs.HC

Dialogue Session Segmentation by Embedding-Enhanced TextTiling

classification cs.CL cs.HC
keywords conversationsessiontexttilingapproachembedding-enhancedimportantsegmentationutterances
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In human-computer conversation systems, the context of a user-issued utterance is particularly important because it provides useful background information of the conversation. However, it is unwise to track all previous utterances in the current session as not all of them are equally important. In this paper, we address the problem of session segmentation. We propose an embedding-enhanced TextTiling approach, inspired by the observation that conversation utterances are highly noisy, and that word embeddings provide a robust way of capturing semantics. Experimental results show that our approach achieves better performance than the TextTiling, MMD approaches.

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    CobSeg is a multi-branch architecture for dialogue topic segmentation that separates semantic continuity from lexical transitions, uses boundary informativeness weighting and corpus-derived cues, and reports metric ga...