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Improving Smart Conference Participation Through Socially Aware Recommendation

机译:通过具有社会意识的建议来提高智能会议的参与度

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摘要

This paper addresses recommending presentation sessions at smart conferences to participants. We propose a venue recommendation algorithm: socially aware recommendation of venues and environments (SARVE). SARVE computes correlation and social characteristic information of conference participants. In order to model a recommendation process using distributed community detection, SARVE further integrates the current context of both the smart conference community and participants. SARVE recommends presentation sessions that may be of high interest to each participant. We evaluate SARVE using a real-world dataset. In our experiments, we compare SARVE with two related state-of-the-art methods, namely context-aware mobile recommendation services and conference navigator (recommender) model. Our experimental results show that in terms of the utilized evaluation metrics, i.e., precision, recall, and f-measure, SARVE achieves more reliable and favorable social (relations and context) recommendation results.
机译:本文讨论了在智能会议上向与会者推荐的演示文稿会议。我们提出了场所推荐算法:场所和环境的社交意识推荐(SARVE)。 SARVE计算会议参与者的相关性和社会特征信息。为了使用分布式社区检测为推荐过程建模,SARVE进一步集成了智能会议社区和参与者的当前环境。 SARVE建议每个参与者都可能感兴趣的演示会议。我们使用真实数据集评估SARVE。在我们的实验中,我们将SARVE与两种相关的最新技术进行了比较,即上下文感知的移动推荐服务和会议导航器(推荐器)模型。我们的实验结果表明,从所使用的评估指标(即精确度,召回率和f量度)来看,SARVE获得了更加可靠和有利的社交(关系和上下文)推荐结果。

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