Toward Piano Teaching Evaluation Based on Neural Network

Sci. Program. Pub Date : 2022-01-12 DOI:10.1155/2022/6328768
Wanshu Luo, Bin Ning
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引用次数: 3

Abstract

With the rise of piano teaching in recent years, many people participated in the team of learning steel playing. However, expensive piano teaching fees and its unique one-to-one teaching model have caused piano education resources to be very short, so learning piano performance has become a very extravagant event. The factors affecting music performance are varying, and there are many types of their evaluation such as rhythm, expressiveness, music, and style grasp. The computer is used to simulate this evaluation process to essentially identify the mathematical relationship between factors affecting music performance and evaluation indicators. The use of computer multimedia software for piano teaching has become a feasible way to alleviate the contradiction. This paper discusses the implementation method of piano teaching software, the issues of computer piano teaching, the computer teaching as one-way knowledge, and the lack of interaction. The neural network (NN) model is used to evaluate the piano performance and simulate teachers to guide students through their exercise. The performance of the proposed system is tested for the piano music of “Ode to Joy,” which is different from the collection of NN training samples, and is delivered ten times by another piano teacher, student A (piano level 6), and student B (piano level 5).
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基于神经网络的钢琴教学评价研究
随着近年来钢琴教学的兴起,很多人参加了学习钢弹的团队。然而,昂贵的钢琴教学费用和其独特的一对一教学模式导致钢琴教育资源非常短缺,因此学习钢琴演奏成为一件非常奢侈的事情。影响音乐表演的因素是多种多样的,对其的评价有节奏、表现力、音乐、风格把握等多种类型。利用计算机模拟这一评价过程,从本质上识别影响音乐演奏的因素与评价指标之间的数学关系。利用计算机多媒体软件进行钢琴教学已成为缓解这一矛盾的可行途径。本文论述了钢琴教学软件的实施方法、计算机钢琴教学存在的问题、计算机教学是单向知识、缺乏互动性等问题。运用神经网络(NN)模型对钢琴演奏进行评价,并模拟教师指导学生练习。针对不同于NN训练样本集合的“欢乐颂”钢琴音乐测试了所提出系统的性能,并由另一位钢琴老师,学生A(钢琴级别6)和学生B(钢琴级别5)交付了10次。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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