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User Preference Retrieval using Semantic Categorization for Web Search

机译:用户偏好使用Web Search使用语义分类检索

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Search engines have been one of the most popular ways for people to find web pages of interest. Presently, when a user enters a keyword in a search engine, the search results are usually presented the same result to other users who search the same keyword, which might not be related to each user's field of interest. Therefore, the researcher of this study would like to propose a new searching technique to get each user's most relevant information by using a user preference. This research will categorize user preference to build the user profile and general profile base on user's search history and category hierarchy, respectively. The search engines then use those profiles to determine the interests of each user, execute the search query to obtain a set of relevant documents, and re-ranking the documents in a manner that best reflects their relevance to the user's profile. Many algorithms have been designed, analyzed, implemented and experimented to find the most appropriate and the most effective one to create the relationship between each keyword and each category to best meet each user's preference.
机译:搜索引擎是人们找到感兴趣的网页最受欢迎的方式之一。目前,当用户在搜索引擎中进入关键字时,搜索结果通常向搜索相同关键字的其他用户呈现相同的结果,这可能与每个用户的感兴趣领域不相关。因此,本研究的研究人员希望通过使用用户偏好提出新的搜索技术来获取每个用户最相关的信息。该研究将分别对用户首选项分别分别对用户的搜索历史记录和类别层次结构构建用户配置文件和一般配置文件。然后,搜索引擎使用这些配置文件来确定每个用户的兴趣,执行搜索查询以获取一组相关文档,并以最能反映其与用户的简档相关的方式重新排序文档。已经设计了许多算法,分析,实施和尝试,以找到最合适的和最有效的算法,以创建每个关键字和每个类别之间的关系,以最好地满足每个用户的偏好。

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