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The Application of Digital Archives Classification with Progressive M-SVM to Wisdom School Building

机译:渐进M-SVM的数字档案分类在智慧教学楼中的应用

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When using the SVM algorithm, the training set is so large that the traditional classification methods can't satisfy the real-time requirements, how to design a more efficient SVM algorithm is one of the important study problems. We improve the method of the building about the digital archive's corpus and also improve the course of Chinese participle and the multiprocessing of text feature selection with TF, IDF and Information Gain. The experiment shows that this improved method about M-SVM has obtained a better result.
机译:当使用支持向量机算法时,训练集太大,传统的分类方法不能满足实时性的要求,如何设计更有效的支持向量机算法是重要的研究问题之一。我们改进了建立数字档案馆的语料库的方法,并改进了中文分词的过程以及使用TF,IDF和Information Gain进行文本特征选择的多处理。实验表明,该改进的M-SVM方法取得了较好的效果。

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