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A recommender system by using classification based on frequent pattern mining and J48 algorithm

机译:基于频繁模式挖掘和J48算法的分类推荐系统

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User's behavior modeling on the web and extracting its patterns can be utilized for customizing search results without user's specifications. Since offering a precise suggestion to users in search engines and e-commerce is desirable for users, precision is the most important factor in such systems. The main challenge in recent researches is to improve precision and recall factors in recommender systems. In addition, classification based on frequent patterns mining is received a lot of research in data mining field. In this study a hybrid method is proposed to generate a list of interesting suggestions based on users view. To verify the precision of the proposed method, we used different classifiers. The results show that, J48 classification has the highest precision and recall for the proposed method.
机译:用户在网络上的行为建模和提取其模式可用于自定义搜索结果,而无需用户指定。由于用户希望在搜索引擎和电子商务中向用户提供准确的建议,因此精确度是此类系统中最重要的因素。近期研究的主要挑战是提高推荐系统的准确性和召回率。另外,基于频繁模式挖掘的分类在数据挖掘领域受到了很多研究。在这项研究中,提出了一种混合方法来基于用户视图生成有趣的建议列表。为了验证所提方法的准确性,我们使用了不同的分类器。结果表明,J48分类方法具有较高的查全率和查全率。

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