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Towards Portable Shopping Histories: Using GoodRelations to Expose Ownership Information to E-Commerce Sites

机译:迈向便携式购物历史:使用妥善统计将所有权信息揭示到电子商务网站

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Recommender systems are an important technology component for many e-commerce applications. In short, they are technical means that suggest potentially relevant products and services to the users of a Web site, typically a shop. The recommendations are computed in advance or during the actual visit and use various types of data as input, in particular past purchases and the purchasing behavior of other users with similar preferences. One major problem with recommender systems is that the quality of recommendations depends on the amount, quality, and representativeness of the information about items already owned by the visitor, e.g. from past purchases at that particular shop. For first-time visitors and customers migrating from other merchants, the amount of available information is often too small to generate good recommendations. Today, shopping history data for a single user is fragmented and spread over multiple sites, and cannot be actively exposed by the user to additional shops. In this paper, we propose to use Semantic Web technology, namely GoodRelations and schema.org, to empower e-commerce customers to (1) collect and manage ownership information about products, (2) detect if a shop site is interested in such information in exchange for better recommendations or other incentives, and (3) expose the information to such shop sites directly from their browser. We then sketch how a shop site could use the ownership information to recommend relevant products.
机译:推荐系统是许多电子商务应用程序的重要技术组件。简而言之,它们是技术手段,向网站的用户建议潜在相关的产品和服务,通常是一家商店。这些建议提前或在实际访问期间计算,并使用各种类型的数据作为输入,特别是过去购买以及具有相似偏好的其他用户的购买行为。推荐系统的一个主要问题是建议的质量取决于有关访客已拥有的物品信息的金额,质量和代表性,例如,从过去的购买。对于从其他商家迁移的首次访问者和客户,可用信息的数量往往太小而无法产生良好的建议。如今,单个用户的购物历史数据分段并在多个站点上传播,并且不能被用户主动公开额外的商店。在本文中,我们建议使用语义Web技术,即Goodrelations和Schema.org,向电子商务客户提供给(1)收集和管理有关产品的所有权信息,(2)检测商店网站是否对此类信息感兴趣换取更好的建议或其他激励措施,(3)将信息直接从浏览器中公开到此类商店网站。然后,我们如何描绘商店网站如何使用所有权信息来推荐相关产品。

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