Web search with personalization and knowledge

George T. Wang, Fei Xie, F. Tsunoda, H. Maezawa, A. Onoma
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引用次数: 14

Abstract

Although many search engines provide relevantly good search results to the user, they do not consider personal, domain-specific preferences in their searching or ranking algorithms. In an intranet environment we could collect background information about users such as their expertise. If we can accumulate, categorize and personalize Web usage information, it can be used to help the user search Web pages efficiently and effectively. Data analysis and mining can further facilitate Web searching in an intelligent way. This paper describes Internet Search Advisor (ISA), a personalized, knowledge-driven search system that helps the user find informative Web sites. The ISA supports multi-dimensional data analysis and data mining based on association rules and sequential patterns.
具有个性化和知识的网络搜索
尽管许多搜索引擎为用户提供了相关的良好搜索结果,但它们在搜索或排序算法中并不考虑个人的、特定于领域的偏好。在内部网环境中,我们可以收集用户的背景信息,比如他们的专业知识。如果我们能够积累、分类和个性化Web使用信息,就可以帮助用户高效、有效地搜索Web页面。数据分析和挖掘可以进一步以智能的方式促进Web搜索。本文描述了Internet Search Advisor (ISA),它是一个个性化的、知识驱动的搜索系统,可以帮助用户找到信息丰富的网站。ISA支持基于关联规则和顺序模式的多维数据分析和数据挖掘。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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