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Modeling Language Usage and Listener Engagement in Podcasts

机译:在播客中建模语言使用和倾听者参与

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While there is an abundance of popular writing targeted to podcast creators on how to speak in ways that engage their listeners, there has been little data-driven analysis of pod-casts that relates linguistic style with listener engagement. In this paper, we investigate how various factors - vocabulary diversity, distinctiveness. emotion, and syntax, among others - correlate with engagement, based on analysis of the creators' written descriptions and transcripts of the audio. We build models with different textual representations, and show that the identified features arc highly predictive of engagement. Our analysis tests popular wisdom about stylistic elements in high-engagement podcasts, corroborating some aspects, and adding new perspectives on others.
机译:虽然有丰富的播客创造者对如何用听众进行播放的播客创造者,但对Pod-casts的数据驱动分析很少,与倾听者参与相关。 在本文中,我们调查了各种因素 - 词汇多样性,独特性。 情感和语法等 - 基于分析创造者书面描述和音频的成绩单,与参与相关联。 我们构建具有不同文本表示的模型,并显示所识别的功能高度预测的参与。 我们的分析测试了关于高参与播客中的风格元素的流行智慧,证实了某些方面,并在其他方面添加了新的视角。

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