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A Website Recommender System Based on an Analysis of the User's Access Log

机译:基于用户访问日志分析的网站推荐系统

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Recommender Systems assists users in decision-making process when a potentially overwhelming set of choices of products or services is available. These systems automate the process of recommending products and services to consumers by analyzing data about items, users, and transactions and find associations between items and users. The results obtained are represented as recommendations. Collaborative filtering and content based filtering are widely used methods of providing recommendations. The website recommender system proposes the use of web mining techniques to recommend a personalized set of websites that might be of interest to a user. This approach exploits user access patterns as registered by proxy web server to underpin the relation between users and websites. These patterns are determined by clustering websites based on preferences given to them by different users. Hence, the websites visited by different users similarly and those visited by active user, forms the basis for the website recommender system to generate recommendations for the active user.
机译:当潜在的压倒性产品或服务选择集可用时,Recommender Systems会协助用户进行决策过程。这些系统通过分析有关商品,用户和交易的数据,并找到商品和用户之间的关联,来自动化向消费者推荐产品和服务的过程。获得的结果表示为建议。协作过滤和基于内容的过滤是提供建议的广泛使用的方法。网站推荐系统建议使用Web挖掘技术来推荐用户可能感兴趣的个性化网站集。这种方法利用代理Web服务器注册的用户访问模式来巩固用户和网站之间的关系。这些模式是由网站根据不同用户给予的偏好进行聚类来确定的。因此,不同用户访问的网站和活动用户访问的网站相似,构成了网站推荐系统为活动用户生成推荐的基础。

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