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Gesture Recognition Technologies for Gestural Know-how Management Preservation and Transmission of Expert Gestures in Wheel Throwing Pottery

机译:手势识别技术,用于识别讲究和传输车轮投掷陶器的专家手势

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The acquisition of gestural know-how in manual professions constitutes a real challenge since it passes from master to learner, through a many years long 《in person》 transmission. However this binding transmission is not always possible for practical reasons; the learner must train himself alone, by using traditional Knowledge Management tools such as e-documentation and multimedia contents. These tools present important limitations, only providing the learner expert knowledge in a descriptive way, with a low attractiveness and interaction level, without any sensorimotor feedback. It thus becomes crucial to find novel ways to preserve and transmit know-how. In this work we present the idea of a methodological framework for gestural know-how management in wheel throwing pottery, based on motion capture and gesture recognition technologies. In combination with machine learning techniques, they permit to model the practical, cinematic aspects of potter's expertise. These technologies can be used to compare experts' and learners' simulated performances and to provide real-time feedback to the learner, guiding him in the adjustment of his gestures. The final goal is to propose a novel and highly interactive embodied pedagogical application for gestural know-how transmission, supporting 《self》 trainings, and making them more efficient.
机译:收购手势专业知识在手册职业中构成了真正的挑战,因为它通过掌握到学习者,通过多年的“亲自”传播。然而,由于实际原因,这种装订传输并不总是可以的;学习者必须通过使用电子文档和多媒体内容等传统知识管理工具来单独训练自己。这些工具存在重要的局限性,只能以描述性方式提供学习者专家知识,具有低吸引力和互动水平,而无需任何传感器反馈。因此,寻找新的方法来保护和传输专业知识的新方法变得至关重要。在这项工作中,我们基于运动捕获和手势识别技术,展示了车轮投掷陶器中的手势专业知识管理方法框架的想法。与机器学习技术相结合,他们允许建模Potter专业知识的实用,电影方面。这些技术可用于比较专家和学习者的模拟表演,并为学习者提供实时反馈,指导他在调整他的手势时。最终目标是提出一种新颖且高度互动的体现教学应用程序,用于识字的技术,支持“自我”培训,并使它们更有效。

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