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Document ontology based personalized filtering system (poster session)

机译:基于文档本体的个性化过滤系统(发布会话)

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摘要

We propose the use of the personalized ontology model to improve the effectiveness of web documents filtering process. One important feature of this model is that by constructing the user specific ontology, web documents can be classified by using the user oriented meta data that reflects the user's view about the documents concept. Another is that by applying the user model to searching the classified documents, we achieved the effective document search performance. To find the user's preference, Bayesian Learner accepts user's interests flow as an input and writes output to users profile. Based on those user profiles, user specific ontologies are constructed to provide efficient search environment.

机译:

我们建议使用个性化本体模型来提高Web文档筛选过程的效率。该模型的一个重要特征是,通过构造用户特定的本体,可以通过使用面向用户的元数据对Web文档进行分类,该元数据反映了用户对文档概念的看法。另一个是,通过将用户模型应用于分类文档的搜索,我们获得了有效的文档搜索性能。为了找到用户的偏好,贝叶斯学习器接受用户的兴趣流作为输入,并将输出写入用户配置文件。基于这些用户个人资料,可以构建特定于用户的本体,以提供有效的搜索环境。

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