weHelp: A Reference Architecture for Social Recommender Systems.

Swapneel Sheth, Nipun Arora, Christian Murphy, Gail Kaiser
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Abstract

Recommender systems have become increasingly popular. Most of the research on recommender systems has focused on recommendation algorithms. There has been relatively little research, however, in the area of generalized system architectures for recommendation systems. In this paper, we introduce weHelp: a reference architecture for social recommender systems - systems where recommendations are derived automatically from the aggregate of logged activities conducted by the system's users. Our architecture is designed to be application and domain agnostic. We feel that a good reference architecture will make designing a recommendation system easier; in particular, weHelp aims to provide a practical design template to help developers design their own well-modularized systems.

Abstract Image

Abstract Image

weHelp:社会推荐系统的参考架构。
推荐系统已经变得越来越流行。大多数关于推荐系统的研究都集中在推荐算法上。然而,在推荐系统的广义系统架构方面的研究相对较少。在本文中,我们介绍了weHelp:一个用于社交推荐系统的参考架构,在这个系统中,推荐是自动从系统用户进行的记录活动的总和中获得的。我们的体系结构设计为与应用程序和领域无关。我们觉得一个好的参考架构会让设计推荐系统变得更容易;特别是,weHelp旨在提供一个实用的设计模板,帮助开发人员设计他们自己的模块化良好的系统。
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