Commentary-Based Social Network Analysis and Visualization of Hong Kong Singers

J. Leung, Chun-hung Li
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Abstract

Music and singers are influential in local society. An in-depth study on singers is beneficial to various sectors. However, the evolutional characteristic and the daunting complexity of the interrelationship among singers made the problem technically intriguing. In this paper, we present a novel commentary-based social network analysis (CBSNA) methodology to analyze the singer relationships. Developing weighting schemes and adopting k-nearest-neighbors (kNN) approach from network theory as a visualization technique, we simplify the resulting dense network to ease understanding and further investigations. Proof-of-concept experiments are conducted by using two popular datasets to verify the effectiveness of the proposed approach and the empirical results are promising.
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基于评论的香港歌手社会网络分析与可视化
音乐和歌手在当地社会很有影响力。深入研究歌手对各行各业都有好处。然而,歌手之间相互关系的进化特征和令人生畏的复杂性使得这个问题在技术上很有趣。在本文中,我们提出了一种新的基于评论的社会网络分析(CBSNA)方法来分析歌手关系。开发加权方案并采用网络理论中的k-近邻(kNN)方法作为可视化技术,我们简化了得到的密集网络,以方便理解和进一步的研究。使用两个流行的数据集进行了概念验证实验,验证了所提出方法的有效性,实证结果是有希望的。
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