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An Effective Recommender Algorithm for Cold-Start Problem in Academic Social Networks

机译:学术社交网络中冷启动问题的有效推荐算法

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摘要

Abundance of information in recent years has become a serious challenge for web users. Recommender systems (RSs) have been often utilized to alleviate this issue. RSs prune large information spaces to recommend the most relevant items to users by considering their preferences. Nonetheless, in situations where users or items have few opinions, the recommendations cannot be made properly. This notable shortcoming in practical RSs is called cold-start problem. In the present study, we propose a novel approach to address this problem by incorporating social networking features. Coined as enhanced content-based algorithm using social networking (ECSN), the proposed algorithm considers the submitted ratings of faculty mates and friends besides user's own preferences. The effectiveness of ECSN algorithm was evaluated by implementing it in MyExpert, a newly designed academic social network (ASN) for academics in Malaysia. Real feedbacks from live interactions of MyExpert users with the recommended items are recorded for 12 consecutive weeks in which four different algorithms, namely, random, collaborative, content-based, and ECSN were applied every three weeks. The empirical results show significant performance of ECSN in mitigating the cold-start problem besides improving the prediction accuracy of recommendations when compared with other studied recommender algorithms.
机译:近年来,信息的丰富性已成为Web用户的一项严峻挑战。推荐系统(RSs)通常用于缓解此问题。 RS会修剪大量的信息空间,以通过考虑用户的偏好向用户推荐最相关的项目。但是,在用户或项目意见不多的情况下,无法正确提出建议。实际RS中的这一明显缺陷称为冷启动问题。在当前的研究中,我们提出了一种新颖的方法,通过结合社交网络功能来解决此问题。作为使用社交网络(ECSN)的基于内容的增强型算法,该算法考虑了用户和用户自己的喜好所提交的同事和朋友的评分。通过在MyExpert(一种针对马来西亚学者的新设计的学术社交网络(ASN))中实施ECSN算法,评估了ECSN算法的有效性。连续12周记录MyExpert用户与推荐项目的实时互动的真实反馈,其中每三周应用四种不同算法,即随机,协作,基于内容和ECSN。与其他研究的推荐算法相比,经验结果表明,除了提高推荐的预测准确性外,ECSN在缓解冷启动问题方面也具有显着性能。

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  • 来源
    《Mathematical Problems in Engineering》 |2014年第5期|123726.1-123726.11|共11页
  • 作者单位

    Faculty of Computer Science and Information Technology, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Faculty of Computer Science and Information Technology, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Asia-Europe Institute, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Department of Computer Science, Chalous Branch, Islamic Azad University (IAU), Chalous 46615-397, Iran;

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