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Coordinative Structure of Manipulative Hand-Movements Facilitates Their Recognition

机译:操纵性手部动作的协调结构有助于其识别

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摘要

Manipulative hand movements involve coordinated movements of the fingers to manipulate an object within the hand, and are classified as either simultaneous or sequential. Simultaneous hand movements are characterized by single coordinated patterns of digit movements, while sequential hand movements involve sequences of such patterns. Here, we investigate the extent of the coordination among 15 hand-joints during simultaneous hand movements, and demonstrate that it leads to a concise representation that facilitates movement recognition. Principal component analysis (PCA), performed in the 15-dimensional (15-D) joint-space, indicates that the first principal-component captures more than 98% of the variability in individual hand movements. Consequently, the first principal direction provides a 15-D feature-vector that describes the underlying-coordination and can be used for automatic recognition. We evaluated this recognition strategy on a set of nine simultaneous hand-movements using a database of six users, each performing six sessions. A dedicated classifier for each user resulted in recognition rates of 97.0plusmn4.7% during testing, while a single generic classifier achieved 95.2plusmn2.5% recognition rates. We conclude that the suggested feature-vector captures the invariant structure of simultaneous hand-movements, facilitates their recognition, and may provide insight into motor planning
机译:操纵性手运动涉及手指的协调运动,以操纵手中的对象,并且被分类为同时或顺序。同时的手部运动的特征在于手指运动的单个协调模式,而顺序的手部运动则涉及这些模式的序列。在这里,我们调查了在同时进行的手部运动过程中15个手部关节之间的协调程度,并证明了这种简化可以简化运动识别。在15维(15-D)关节空间中执行的主成分分析(PCA)表明,第一主成分捕获了单个手部动作中98%以上的可变性。因此,第一主要方向提供了一个15维特征向量,该向量描述了基础坐标并可用于自动识别。我们使用六个用户的数据库在一组九个同时进行的手部动作上评估了这种识别策略,每个用户执行六个会话。在测试过程中,针对每个用户的专用分类器的识别率为97.0plusmn4.7%,而单个通用分类器的识别率为95.2plusmn2.5%。我们得出的结论是,建议的特征向量捕获了手部同时运动的不变结构,有助于它们的识别,并可能提供对运动计划的洞察力

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