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对古典钢琴和交响乐中表现性动态的线性与非线性模型的评估。

An evaluation of linear and non-linear models of expressive dynamics in classical piano and symphonic music.

作者信息

Cancino-Chacón Carlos Eduardo, Gadermaier Thassilo, Widmer Gerhard, Grachten Maarten

机构信息

1Austrian Research Institute for Artificial Intelligence, Vienna, Austria.

2Department of Computational Perception, Johannes Kepler University, Linz, Austria.

出版信息

Mach Learn. 2017;106(6):887-909. doi: 10.1007/s10994-017-5631-y. Epub 2017 Mar 9.

Abstract

Expressive interpretation forms an important but complex aspect of music, particularly in Western classical music. Modeling the relation between musical expression and structural aspects of the score being performed is an ongoing line of research. Prior work has shown that some simple numerical descriptors of the score (capturing dynamics annotations and pitch) are effective for predicting expressive dynamics in classical piano performances. Nevertheless, the features have only been tested in a very simple linear regression model. In this work, we explore the potential of non-linear and temporal modeling of expressive dynamics. Using a set of descriptors that capture different types of structure in the musical score, we compare linear and different non-linear models in a large-scale evaluation on three different corpora, involving both piano and orchestral music. To the best of our knowledge, this is the first study where models of musical expression are evaluated on both types of music. We show that, in addition to being more accurate, non-linear models describe interactions between numerical descriptors that linear models do not.

摘要

表现性诠释是音乐的一个重要但复杂的方面,尤其是在西方古典音乐中。对音乐表现与所演奏乐谱的结构方面之间的关系进行建模是一个持续的研究方向。先前的研究表明,乐谱的一些简单数值描述符(捕捉力度标注和音高)对于预测古典钢琴演奏中的表现性力度是有效的。然而,这些特征仅在一个非常简单的线性回归模型中进行了测试。在这项工作中,我们探索表现性力度的非线性和时间建模的潜力。使用一组捕捉乐谱中不同类型结构的描述符,我们在对三个不同语料库(包括钢琴和管弦乐音乐)的大规模评估中比较了线性模型和不同的非线性模型。据我们所知,这是第一项在两种类型的音乐上评估音乐表现模型的研究。我们表明,非线性模型除了更准确之外,还描述了线性模型所没有的数值描述符之间的相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8de/6994224/bf4f611e57ef/10994_2017_5631_Fig1_HTML.jpg

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