Categorization of product pages depending on information on the Web

Naoto Sato, Kanako Komiya, Koji Fujimoto, Y. Kotani
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引用次数: 1

Abstract

In this paper, the authors categorize product pages on the Web depending on their information. We used naive Bayes and the complement naive Bayes classifier, and tried four kinds of features to categorize them: all the words of the titles of the product pages, the nouns extracted from the titles, all the words of the titles and the descriptions of the product pages, and the nouns extracted from them. The experiments show that the product pages can be classified most correctly depending on only the nouns of the titles of the product pages. Moreover the complement naive Bayes classifier outperformed the naive Bayes classifier.
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根据Web上的信息对产品页面进行分类
在本文中,作者根据其信息对Web上的产品页面进行了分类。我们使用朴素贝叶斯和补充朴素贝叶斯分类器,并尝试了四种特征对它们进行分类:产品页面标题的所有单词、标题中提取的名词、标题和产品页面描述的所有单词、标题和描述中提取的名词。实验表明,仅依靠产品页面标题中的名词就可以对产品页面进行最正确的分类。此外,补充朴素贝叶斯分类器优于朴素贝叶斯分类器。
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