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A Clustering Approach to Categorizing 7 Degree-of-Freedom Arm Motions during Activities of Daily Living

机译:一种在日常生活活动中对7个自由度手臂运动进行分类的聚类方法

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In this paper we present a novel method of categorizing naturalistic human arm motions during activities of daily living using clustering techniques. While many current approaches attempt to define all arm motions using heuristic interpretation, or a combination of several abstract motion primitives, our unsupervised approach generates a hierarchical description of natural human motion with well recognized groups. Reliable recommendation of a subset of motions for task achievement is beneficial to various fields, such as robotic and semi-autonomous prosthetic device applications. The proposed method makes use of well-known techniques such as dynamic time warping (DTW) to obtain a divergence measure between motion segments, DTW barycenter averaging (DBA) to get a motion average, and Ward's distance criterion to build the hierarchical tree. The clusters that emerge summarize the variety of recorded motions into the following general tasks: reach-to-front, transfer-box, drinking from vessel, on-table motion, turning a key or door knob, and reach-to-back pocket. The clustering methodology is justified by comparing against an alternative measure of divergence using Bezier coefficients and K-medoids clustering.
机译:在本文中,我们提出了一种使用聚类技术对日常生活活动中自然人手臂运动进行分类的新颖方法。虽然许多当前方法尝试使用启发式解释或几种抽象运动原语的组合来定义所有手臂运动,但我们的无监督方法会生成具有公认组的自然人类运动的层次描述。可靠地推荐动作的子集以完成任务,这对各个领域都是有利的,例如机器人和半自动修复设备的应用。所提出的方法利用诸如动态时间规整(DTW)来获得运动段之间的差异度量,利用DTW重心平均(DBA)来获得运动平均值以及沃德的距离准则来构建分层树的众所周知的技术。出现的群集将各种录制的动作总结为以下常规任务:到达前方,分动箱,从船上喝水,桌上运动,转动钥匙或门把手以及到达后方的口袋。通过与使用Bezier系数和K-medoids聚类的发散性替代方法进行比较,证明了聚类方法的合理性。

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