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Develop a personalized intelligent music selection system based on heart rate variability and machine learning

机译:开发基于心率变异性和机器学习的个性化智能音乐选择系统

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摘要

Music often plays an important role in people's daily lives. Because it has the power to affect human emotion, music has gained a place in work environments and in sports training as a way to enhance the performance of particular tasks. Studies have shown that office workers perform certain jobs better and joggers run longer distances when listening to music. However, a personalized music system which can automatically recommend songs according to user's physiological response remains absent. Therefore, this study aims to establish an intelligent music selection system for individual users to enhance their learning performance. We first created an emotional music database using data analytics classifications. During testing, innovative wearable sensing devices were used to detect heart rate variability (HRV) in experiments, which subsequently guided music selection. User emotions were then analyzed and appropriate songs were selected by using the proposed application software (App). Machine learning was used to record user preference, ensuring accurate and precise classification. Significant results generated through experimental validation indicate that this system generates high satisfaction levels, does not increase mental workload, and improves users' performance. Under the trend of the Internet of Things (IoT) and the continuing development of wearable devices, the proposed system could stimulate innovative applications for smart factory, home, and health care.
机译:音乐经常在人们的日常生活中发挥重要作用。由于音乐具有影响人类情感的能力,因此它已在工作环境和运动训练中占有一席之地,以此来增强特定任务的性能。研究表明,上班族在听音乐时可以更好地完成某些工作,而慢跑者可以走更长的距离。但是,仍然没有能够根据用户的生理反应自动推荐歌曲的个性化音乐系统。因此,本研究旨在建立一种针对个人用户的智能音乐选择系统,以提高他们的学习性能。我们首先使用数据分析分类创建了一个情感音乐数据库。在测试过程中,创新的可穿戴传感设备用于在实验中检测心率变异性(HRV),随后指导音乐的选择。然后分析用户情绪,并使用建议的应用程序软件(App)选择适当的歌曲。机器学习被用来记录用户的喜好,以确保准确和准确的分类。通过实验验证产生的重要结果表明,该系统产生了很高的满意度,没有增加心理工作量,并改善了用户的表现。在物联网(IoT)的趋势和可穿戴设备的持续发展下,拟议的系统可以刺激智能工厂,家庭和医疗保健领域的创新应用。

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