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Providing personalized recommendation for attending events based on individual interest profiles

机译:根据个人兴趣概况为参加活动提供个性化推荐

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In this article we present a framework to extract user interests from social network profiles such as Facebook to personalize recommendations about products and services. Matching users' interests as keywords with product attributes as keywords, performed by currently available personalization systems, has a very low recall, so more general category-based framework is needed. It turns out that substantial reasoning about products and their categories is required to match a taxonomy of the owner of products and services, with that of a user, as expressed in a public profile. To handle inconsistencies between these taxonomies, a mapping of one into another is expressed as a Defeasible Logic program (DeLP), where a potential mapping can be defeated by other ones if relevant information becomes available. Events and things to do are recommended at StubHub.com and www.facebook.com/StubHub/ so that the reader can observe the system at a scale. Also, we present content management system which supports personalized recommendation is outlined.
机译:在本文中,我们提供了一个框架,可从Facebook等社交网络配置文件中提取用户兴趣,以个性化有关产品和服务的建议。由当前可用的个性化系统执行的将用户兴趣作为关键字与产品属性作为关键字进行匹配的召回率非常低,因此需要更通用的基于类别的框架。事实证明,要使产品和服务的所有者与用户的分类与用户的分类相匹配,就需要对产品及其类别进行大量推理。为了处理这些分类法之间的不一致,将一个映射到另一个映射表示为Defeasible Logic程序(DeLP),如果相关信息可用,则可能会被其他映射打败。建议在StubHub.com和www.facebook.com/StubHub/上进行活动和要做的事情,以便读者可以大规模观察系统。此外,我们概述了支持个性化推荐的内容管理系统。

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