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Opinion summarization for short texts based on BM25 and syntactic parsing

机译:基于BM25和语法解析的短文意见汇总。

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Online short texts of hot topics submitted to social media by users can provide valuable personal opinions, which are useful for service providers and individuals. However, it is difficult for readers to grasp the main opinions of massive short texts. In this paper, to cope with the summarization challenge of short texts, we proposed a novel approach, which makes full use of BM25 to weight each short text and syntactic parsing to generate important information of each opinion cluster. The approach also utilizes the feature pruning to reduce the dimensions of the vectors. We conduct our experiments on real datasets and evaluate the results by standard metrics and manual evaluation. The experimental results show that our proposed approach improves the accuracy when compared to the state-of-the-art method.
机译:用户向社交媒体提交的热门话题的在线简短文本可以提供有价值的个人意见,这对于服务提供商和个人很有用。但是,读者很难掌握大量简短文本的主要观点。在本文中,为了应对简短文本的概括性挑战,我们提出了一种新颖的方法,该方法充分利用BM25加权每个简短文本并进行语法分析以生成每个意见群的重要信息。该方法还利用特征修剪来减小向量的尺寸。我们在真实的数据集上进行实验,并通过标准指标和人工评估来评估结果。实验结果表明,与最新方法相比,我们提出的方法提高了准确性。

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