TagRec框架作为开发基于标签的推荐系统的工具包

Dominik Kowald, Simone Kopeinik, E. Lex
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引用次数: 19

摘要

推荐系统已经成为支持用户在过载的信息空间中识别相关内容的重要工具。为了简化推荐系统的开发,许多推荐框架被提出,服务于广泛的应用领域。我们的TagRec框架是为开发和评估基于标签的推荐系统量身定制的开源框架的少数例子之一。在本文中,我们介绍了TagRec的当前更新状态,并总结和反思了TagRec已经实现的四个用例:(i)标签推荐,(ii)资源推荐,(iii)推荐评估,以及(iv)标签推荐。迄今为止,TagRec在两个大型欧洲研究项目中服务于基于标签的推荐系统的开发和/或评估过程,这些项目已在17篇研究论文中进行了描述。因此,我们相信这项工作对基于标签的推荐系统的研究人员和实践者都很有意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The TagRec Framework as a Toolkit for the Development of Tag-Based Recommender Systems
Recommender systems have become important tools to support users in identifying relevant content in an overloaded information space. To ease the development of recommender systems, a number of recommender frameworks have been proposed that serve a wide range of application domains. Our TagRec framework is one of the few examples of an open-source framework tailored towards developing and evaluating tag-based recommender systems. In this paper, we present the current, updated state of TagRec, and we summarize and reflect on four use cases that have been implemented with TagRec: (i) tag recommendations, (ii) resource recommendations, (iii) recommendation evaluation, and (iv) hashtag recommendations. To date, TagRec served the development and/or evaluation process of tag-based recommender systems in two large scale European research projects, which have been described in 17 research papers. Thus, we believe that this work is of interest for both researchers and practitioners of tag-based recommender systems.
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