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Automated Analysis of Postural and Movement Qualities of Violin Players

机译:小提琴球员姿势和运动质量的自动分析

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Learning to playa music instrument is a complex task, requiring continuous practice and the development of sophisticated motor control techniques. The traditional model of music learning is based on a master-apprentice relationship, leading often to a solitary learning process, in which the time spent with the teacher is usually limited to weekly lessons and a long period of self-study is needed. Moreover, a large amount of time passes from the teacher's feedback and the student's proprioceptive perception while studying, requiring a big effort in developing an efficient and healthy technique. In this paper, we present our recent developments concerning an assistive and adaptive technology to help violin students overcoming all these difficulties, and developing their technique and repertoire properly and sefely. In particular, we focus on the multimodal corpus of violin performances which was collected for the purpose, and on the analysis of such data to compute postural and gestural features characterizing the performance under a biomechanical perspective and in terms of movement quality. Analysis is expected to provide students with feedback for reaching a physically accurate performance, maximizing efficiency and minimizing injuries.
机译:学习Playa Music Instrics是一项复杂的任务,需要持续的实践和开发复杂的电机控制技术。传统的音乐学习模式基于主学徒关系,往往是一个孤独的学习过程,其中与教师花费的时间通常限于每周课程,需要长时间的自学。此外,从教师的反馈和学生在学习的同时,大量时间通过了,在学习时,需要大力努力开发一种高效健康的技术。在本文中,我们提出了我们最近的一个关于辅助和适应性技术的发展,以帮助小提琴学生克服所有这些困难,并适当地和养殖的技术和曲目。特别是,我们专注于为目的收集的小提琴表演的多模式语料,以及分析这些数据,以计算在生物力学视角下表现性能的姿势和姿态特征,以及运动质量。预计分析将为学生提供反馈,以达到物理准确的性能,最大限度地提高效率和最小化伤害。

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