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A Situational Resource Rating System

机译:一种情况资源评级系统

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摘要

Recommendation technologies are considered a major technological trend in both industrial and academic environments. This growing interest was highlighted by, e.g., the Netflix prize which generated an intense competition. Recommender systems are crucial to support users and help them by suggesting resources relevant at a given instant. On the other hand, these systems are a core piece of e-commerce web sites, since they aim at generating more sales by encouraging users to buy more items. However, recommender systems are often designed to work with very specific types of resources, and they hardly take into account the current user’s situation. In this paper, we present our approach to augment an existing recommender system with a situation model. On top of this model, we define a situational interest measure to estimate a user’s interest for a resource, which we demonstrate with a prototypical implementation.
机译:推荐技术被认为是工业和学术环境的主要技术趋势。这种日益增长的兴趣是突出的,例如,产生了激烈的竞争的Netflix奖。推荐系统对于支持用户来说至关重要,并通过建议在给定的即时相关资源来帮助它们。另一方面,这些系统是电子商务网站的核心片段,因为他们旨在通过鼓励用户购买更多项目来产生更多销售。但是,推荐系统通常旨在使用非常特定的类型的资源,并且几乎不会考虑到当前的用户的情况。在本文中,我们介绍了我们使用情况模型增强现有推荐系统的方法。在此模型之上,我们定义了一种情境利益措施来估计用户对资源的兴趣,我们用原型实现。

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