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Research on the Influence Factors and Genre Development Trends of Music Based on PageRank and LSTM Model

机译:基于PageRank和LSTM模型的音乐影响因素和流派发展趋势研究

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With the development of the new era, music is also developing. When artists create new music, many factors affect them. How to quantify the impact factor and predict the development trend of different genres during the evolution of music is a significant research topic in the current society. Based on the relationship between influencers and followers in the influence_data dataset provided by Integrative Collective Music (ICM), this paper establishes a directed network graph structure to express music influence and uses the PageRank algorithm to dynamically solve the influence degree of influencers on followers to quantify. Impact factor development captures the parameters of "music influence" in this network. And according to the aggregated influence_data dataset, the LSTM (Long Short-term Memory) neural network is established to predict different music genres' development trend. The three types of MAE predicted (Pop/Rock, Country, Jazz), MSE and R2 are MAE (6.675) ,7.843,8.306),MSE(71.879,108.297,103.521),R2(0.762,0.659 ,0.676). The results show that the model can quantify the impact factor very well and achieve good results under these three evaluation indicators.
机译:随着新时代的发展,音乐也在开发。当艺术家创造新的音乐时,很多因素会影响它们。如何量化影响因素,并预测音乐演变过程中不同类型的发展趋势是当前社会的重要研究课题。根据积分集体音乐(ICM)提供的影响力和追随者之间的关系,建立了一种指导的网络图结构,以表达音乐影响,并使用PageRank算法动态解决追随者对追随者对追随者的影响程度。影响因子开发捕获该网络中“音乐影响”的参数。并且根据聚合影响_Data数据集,建立了LSTM(长期内存)神经网络以预测不同的音乐类型的发展趋势。预测的三种MAE(Pop / Rock,Country,Jazz),MSE和R2是MAE(6.675),7.843,8.306),MSE(71.879,108.297,103.521),R2(0.762,0.659,0.676)。结果表明,该模型可以非常好地量化影响因子,并在这三个评估指标下实现良好效果。

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