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Analyzing Correspondence between Sound Objects and Body Motion

机译:分析声音对象与身体动作之间的对应关系

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Links between music and body motion can be studied through experiments called sound-tracing. One of the main challenges in such research is to develop robust analysis techniques that are able to-deal with the multidimensional data that musical sound and body motion present. The article evaluates four different analysis methods applied to an experiment in which participants moved their hands following perceptual features of short sound objects. Motion capture data has been analyzed and correlated with a set of quantitative sound features using four different methods: (a) a pattern recognition classifier, (b) t-tests, (c) Spearman's p correlation, and (d) canonical correlation. This article shows how the analysis methods complement each other, and that applying several analysis techniques to the same data set can broaden the knowledge gained from the experiment.
机译:音乐和身体运动之间的联系可以通过称为声音追踪的实验来研究。此类研究的主要挑战之一是开发可靠的分析技术,该技术能够处理音乐声和身体运动所呈现的多维数据。本文评估了应用于实验的四种不同分析方法,其中参与者根据短声音对象的感知特征来动手。运动捕获数据已使用四种不同方法进行了分析,并与一组定量声音特征相关联:(a)模式识别分类器,(b)t检验,(c)Spearman的p相关性和(d)典型相关性。本文说明了分析方法如何相互补充,将几种分析技术应用于同一数据集可以拓宽从实验中获得的知识。

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