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Multi-factor matching method for basic information of science and technology experts based on Web mining

机译:基于Web挖掘的科技专家基本信息的多因素匹配方法。

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摘要

The accuracy rate of information extracting by Web mining is not high because of the diversity and complexity of Web page. In order to increase the accuracy rate of information extracting by Web mining for building the science and technology basic information system, a novel multi-factor matching is proposed in this paper. The proposed method integrates the position of every word among the keywords corpus in normalized text and the multi-factor matching method between keywords corpus and normalized text which extracted from Web page by URL. The extracted results include the name, sex, birth, hometown and professional title of science and technology experts respectively. Experiments show that the accuracy rates obtain 95.64 percent and the recall rates achieve 99.69 percent respectively. The results show as by proposed method can satisfied the application requirements.
机译:由于网页的多样性和复杂性,通过网络挖掘提取信息的准确率不高。为了提高网络挖掘技术在构建科技基础信息系统中的准确率,提出了一种新颖的多因素匹配方法。该方法整合了归一化文本中关键词语料库中每个词的位置以及通过URL从网页中提取出的关键词语料库与归一化文本之间的多因素匹配方法。提取的结果分别包括科技专家的姓名,性别,出生地,家乡和职称。实验表明,准确率达到95.64%,召回率达到99.69%。结果表明,所提出的方法可以满足应用要求。

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