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Quantitative Analysis of Comprehensive Influence of Music Network Based on Logistic Regression and Bidirectional Clustering

机译:基于逻辑回归和双向聚类的音乐网络全面影响的定量分析

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This paper makes a quantitative analysis of the comprehensive influence of music networks. Firstly, 11 music features are selected from energy, popularity, and other aspects to build a comprehensive evaluation index of music influence, and the PageRank algorithm is used to quantify the music influence. Secondly, the multiobjective logistic regression is used to construct the music similarity measurement model and, combined with music influence and music similarity, to judge whether the influence of different musicians is the actual influence. Thirdly, the influence and similarity of the same music genre and different music genres are analyzed by using the two-way cluster analysis method. Finally, the lasso region is used for feature selection to obtain the change factors in the process of music evolution and analyze the dynamic changes in the process of music development. Therefore, this paper uses network science to build a dynamic network to analyze the similarity of music, the evolution process, and the impact of music on culture, which has certain research significance and practical value in the fields of music, history, social science, and practice.
机译:本文对音乐网络的全面影响进行了定量分析。首先,选择11个音乐特征,从能量,流行度和其他方面选择,以构建音乐影响的综合评估指标,并且PageRank算法用于量化音乐影响。其次,使用多目标逻辑回归来构建音乐相似度测量模型,并与音乐影响和音乐相似,判断不同音乐家的影响是否是实际影响。第三,通过使用双向聚类分析方法分析相同音乐类型和不同乐谱的影响和相似性。最后,套索区域用于特征选择,以获得音乐演进过程中的变化因子,并分析音乐开发过程中的动态变化。因此,本文采用网络科学构建动态网络来分析音乐,演进过程和音乐对文化的影响的相似性,在音乐,历史,社会科学领域具有一定的研究意义和实用价值,和练习。

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