A Method Of Behavior Evaluation Based On Web Browsing Information
2017 INTERNATIONAL CONFERENCE ON SMART GRID AND ELECTRICAL AUTOMATION (ICSGEA)(2017)
摘要
In order to improve the value of web browsing history data and evaluate people's web browsing behavior, a method for browsing history data based on TF-IDF and Naive Bayes which is used to classify people's behavior on the Internet is designed. During the experiment, the number of browsing history data is about one million, which is gotten from 945 students' real web browsing behavior. About 84% students' behavior can be classified eventually. This method gets good effect and improves the value of the web browsing history data and accuracy of crawling page information.
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关键词
Web page classification, Machine Learning, Naive Bayes
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