基于双视图自适应加权的短文本表示

Yunju Zhang, Ming Guo, Qiang Yan, Guangyou Shen
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引用次数: 0

摘要

提出了一种双视图自适应加权的短文本表示方法。建立并整合了两种观点,用于训练文本的表示。利用训练集的两种表示形式,设计改进的自适应双视图加权聚类算法对文本进行聚类,分别获得视图权值和属性权值,并利用得到的聚类中心表示特征空间。建立了一种利用两种聚类词向量权重的加权相似度计算方法,计算待表示的短文本词与特征空间中的特征词之间的相似度。然后构造文本映射矩阵用于短文本表示。实验结果表明,该方法对短文本的表示效果显著。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Short Text Representation via Adaptive Weighting with Two Views
This paper proposes a short text representation method via adaptive weighting with two views. Two views are established and integrated for training texts for representation. With two representations of the training set, the improved adaptive two-view weighting clustering algorithm is designed to cluster texts, view weights and the attribute weights can be obtained respectively, based on which the obtained cluster centers are utilized to represent the feature space. A weighted similarity calculation method utilizing two types of weights of clustered word vectors is established to calculate the similarity between the terms of the short text to be represented and the feature terms in the feature space. Thereafter the text mapping matrix is constructed for short text representation. The experimental results reveal that our method has a remarkable effect on representing short text.
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