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Objective descriptors for the assessment of student music performances

机译:评估学生音乐表演的客观指标

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Assessment of students' music performances is a subjective task that requires the judgment of technical correctness as well as aesthetic properties. A computational model automatically evaluating music performance based on objective measurements could ensure consistent and reproducible assessments for, e.g., automatic music tutoring systems. In this study, we investigate the effectiveness of various audio descriptors for assessing performances. Specifically, three different sets of features, including a baseline set, score-independent features, and score-based features, are compared with respect to their efficiency in regression tasks. The results show that human assessments can be modeled to a certain degree, however, the generality of the model still needs further investigation.
机译:评估学生的音乐表演是一项主观任务,需要判断技术上的正确性以及美学特性。基于客观测量自动评估音乐性能的计算模型可以确保对例如自动音乐辅导系统进行一致且可重现的评估。在这项研究中,我们调查了各种音频描述符对评估表演的有效性。具体而言,将三种不同的功能集(包括基线集,独立于得分的功能和基于得分的功能)在回归任务中的效率进行了比较。结果表明,可以在一定程度上对人类评估进行建模,但是该模型的普遍性仍需进一步研究。

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