基于语义相似度的个性化信息过滤

W. Hongsheng, Shuai Xiaoming
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引用次数: 5

摘要

为了满足不同用户的检索需求,获得更准确的检索结果,提出了一种基于语义相似度的个性化信息过滤算法。本文采用语义网来描述用户兴趣信息和文档信息,过滤系统可以提高对用户兴趣和检索文档的语义理解,通过计算基于语义网的语义相似度,更准确地进行个性化信息过滤。设计了一个实验来测试该算法的精确性能。测试结果表明,该算法大大提高了个性化信息过滤的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Personalized information filtering based on semantic similarity
In order to meet the retrieval needs of different users and get more accurate retrieval results, a personalized information filtering algorithm based on semantic similarity is proposed. In this paper, semantic web is used to describe the user interest information and document information, thus filtering system can improve the semantic understanding of user interest and retrieval documents, and make personalized information filtering more accurately by calculating the semantic similarity based on semantic web. An experiment is designed to test the precise performance of the algorithm. The testing results show that the accuracy of personalized information filtering is highly improved by using this algorithm.
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