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Two-layer mutually reinforced random walk for improved multi-party meeting summarization

机译:两层相互加强随机散步,以改善多方会议摘要

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This paper proposes an improved approach of summarization for spoken multi-party interaction, in which a two-layer graph with utterance-to-utterance, speaker-to-speaker, and speaker-to-utterance relations is constructed. Each utterance and each speaker are represented as a node in the utterance-layer and speaker-layer of the graph respectively, and the edge between two nodes is weighted by the similarity between the two utterances, the two speakers, or the utterance and the speaker. The relation between utterances is evaluated by lexical similarity via word overlap or topical similarity via probabilistic latent semantic analysis (PLSA). By within- and between-layer propagation in the graph, the scores from different layers can be mutually reinforced so that utterances can automatically share the scores with the utterances from the same speaker and similar utterances. For both ASR output and manual transcripts, experiments confirmed the efficacy of involving speaker information in the two-layer graph for summarization.
机译:本文提出了一种改进的口语多方交互摘要方法,其中构建了具有话语与话语,扬声器对扬声器和扬声器到话语关系的双层图。每个话语和每个扬声器分别表示为曲线层和扬声器层中的节点,并且两个节点之间的边缘由两个话语,两个扬声器或话语和扬声器之间的相似性加权。通过概率潜伏语义分析(PLSA)通过单词重叠或局部相似性通过词汇相似性评估话语之间的关系。通过图中的层之间和之间的层之间的传播,可以相互加强来自不同层的分数,使得话语可以自动与来自同一扬声器和类似话语的话语共享分数。对于ASR输出和手动转录物,实验证实了涉及讲话者信息在两层图中摘要的功效。

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