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通过熟悉度和专业知识对人类与计算机旋律预测的比较

A Comparison of Human and Computational Melody Prediction Through Familiarity and Expertise.

作者信息

Pesek Matevž, Medvešek Špela, Podlesek Anja, Tkalčič Marko, Marolt Matija

机构信息

Faculty of Computer and Information Science, University of Ljubljana, Ljubljana, Slovenia.

Faculty of Arts, University of Ljubljana, Ljubljana, Slovenia.

出版信息

Front Psychol. 2020 Dec 9;11:557398. doi: 10.3389/fpsyg.2020.557398. eCollection 2020.

Abstract

Melody prediction is an important aspect of music listening. The success of prediction, i.e., whether the next note played in a song is the same as the one predicted by the listener, depends on various factors. In the paper, we present two studies, where we assess how music familiarity and music expertise influence melody prediction in human listeners, and, expressed in appropriate data/algorithmic ways, computational models. To gather data on human listeners, we designed a melody prediction user study, where familiarity was controlled by two different music collections, while expertise was assessed by adapting the Music Sophistication Index instrument to Slovenian language. In the second study, we evaluated the melody prediction accuracy of computational melody prediction models. We evaluated two models, the SymCHM and the Implication-Realization model, which differ substantially in how they approach melody prediction. Our results show that both music familiarity and expertise affect the prediction accuracy of human listeners, as well as of computational models.

摘要

旋律预测是音乐聆听的一个重要方面。预测的成功与否,即歌曲中接下来演奏的音符是否与听众预测的音符相同,取决于多种因素。在本文中,我们呈现了两项研究,在研究中我们评估了音乐熟悉度和音乐专业知识如何影响人类听众以及以适当的数据/算法方式呈现的计算模型中的旋律预测。为了收集关于人类听众的数据,我们设计了一项旋律预测用户研究,其中熟悉度由两个不同的音乐集控制,而专业知识则通过将音乐成熟度指数工具改编为斯洛文尼亚语来评估。在第二项研究中,我们评估了计算旋律预测模型的旋律预测准确性。我们评估了两个模型,即SymCHM模型和蕴含 - 实现模型,它们在处理旋律预测的方式上有很大差异。我们的结果表明,音乐熟悉度和专业知识都会影响人类听众以及计算模型的预测准确性。

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