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A SVM-based Image Classification Method in Document System of Personnel Archives

机译:基于SVM的人员档案文献系统的图像分类方法

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Information technology has deeply penetrated into the personnel archives management to improve its security, privacy and high efficiency. This paper comes up with a method to solve problems about image classification. It combines SVM with Huffman tree to construct a classifier HFM-SVM. Constructing HFM-SVM, it extracts paragraph and local pixel features of archive document images as training samples and test data and can classify all of personnel archive documents into five classes such as ID cards, application forms and labor contracts and so on. Comparing with multiple classifiers, the experimental results show that HFM-SVM does better in automatically fast and accurate classification of personnel archive document images.
机译:信息技术深深渗透到人事档案管理中,以提高其安全,隐私和高效率。本文提出了一种解决图像分类问题的方法。它将SVM与Huffman树组合以构建分类器HFM-SVM。构建HFM-SVM,提取存档文档图像的段落和本地像素特征作为培训样本和测试数据,并可以将所有人员存档文件分为五个类,例如身份证,申请表和劳动合同等。比较多分类器,实验结果表明,HFM-SVM在自动快速准确地分类人员档案文件图像方面表现出更好。

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