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Attractor-Shape for Dynamical Analysis of Human Movement: Applications in Stroke Rehabilitation and Action Recognition

机译:用于人体运动动力学分析的吸引子形状:在中风康复和动作识别中的应用

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In this paper, we propose a novel shape-theoretic framework for dynamical analysis of human movement from 3D data. The key idea we propose is the use of global descriptors of the shape of the dynamical attractor as a feature for modeling actions. We apply this approach to the novel application scenario of estimation of movement quality from a single-marker for future usage in home-based stroke rehabilitation. Using a dataset collected from 15 stroke survivors performing repetitive task therapy, we demonstrate that the proposed method outperforms traditional methods, such as kinematic analysis and use of chaotic invariants, in estimation of movement quality. In addition, we demonstrate that the proposed framework is sufficiently general for the application of action and gesture recognition as well. Our experimental results reflect improved action recognition results on two publicly available 3D human activity databases.
机译:在本文中,我们提出了一种新颖的形状理论框架,用于从3D数据动态分析人体运动。我们提出的关键思想是使用动态吸引子形状的全局描述符作为建模动作的功能。我们将这种方法应用于从单个标记估算运动质量的新型应用场景中,以便将来在基于家庭的中风康复中使用。使用从执行重复性任务治疗的15名卒中幸存者收集的数据集,我们证明了该方法在运动质量估计方面优于传统方法,如运动学分析和混沌不变式的使用。此外,我们证明了所提出的框架对于动作和手势识别的应用也足够通用。我们的实验结果反映了两个公开的3D人类活动数据库中动作识别结果的改善。

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