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SAW Classification Algorithm for Chinese Text Classification

机译:SAW分类算法中文文本分类

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Considering the explosive growth of data, the increased amount of text data’s effect on the performance of text categorization forward the need for higher requirements, such that the existing classification method cannot be satisfied. Based on the study of existing text classification technology and semantics, this paper puts forward a kind of Chinese text classification oriented SAW (Structural Auxiliary Word) algorithm. The algorithm uses the special space effect of Chinese text where words have an implied correlation between text information mining and text categorization for high-correlation matching. Experiments show that SAW classification algorithm on the premise of ensuring precision in classification, significantly improve the classification precision and recall, obviously improving the performance of information retrieval, and providing an effective means of data use in the era of big data information extraction.
机译:考虑到数据的爆炸性增长,文本数据对文本分类的性能的影响增加了对更高要求的需要,使得现有的分类方法不能满足。本文根据现有文本分类技术和语义的研究,提出了一种中文文本定向锯(结构辅助词)算法。该算法使用中文文本的特殊空间效果,其中单词在文本信息挖掘和文本分类之间具有隐含相关性的高相关匹配。实验表明,SAW分类算法在确保分类精度的前提下,显着提高了分类精度和召回,显然提高了信息检索的性能,并提供了大数据信息提取时代的有效数据使用方法。

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