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确定沿伸展轨迹的自然手臂配置。

Determining natural arm configuration along a reaching trajectory.

作者信息

Kang Tao, He Jiping, Tillery Stephen I Helms

机构信息

The Biodesign Institute and Harrington Department of Bioengineering, Arizona State University, Tempe, AZ, USA.

出版信息

Exp Brain Res. 2005 Dec;167(3):352-61. doi: 10.1007/s00221-005-0039-5. Epub 2005 Oct 20.

Abstract

Owing to the flexibility and redundancy of neuromuscular and skeletal systems, humans can trace the same hand trajectory in space with various arm configurations. However, the joint trajectories of typical unrestrained movements tend to be consistent both within and across subjects. In this paper we propose a method to solve the 3-D inverse kinematics problem based on minimizing the magnitude of total work done by joint torques. We examined the fit of the joint-space trajectories against those observed from human performance in a variety of movement paths in 3-D workspace. The results showed that the joint-space trajectories produced by the method are in good agreement with the subjects' arm movements (r2>0.98), with the exception of shoulder adduction/abduction (where, in the worst case, r2 approximately 0.8). Comparison of humeral rotation predicted by our algorithm with other models showed that the correlation coefficient r2) between actual data and our predictions is extremely high (mostly >0.98, 11 out of 15 cases, with a few exceptions, 4 of 15, in the range of 0.8-0.9) and the slope of linear regression is much closer to one (<0.05 distortion in 12 out of 15 cases, with only one case >0.15). However, the discrepancy in shoulder adduction/abduction indicated that when only the hand path is known, additional constraint(s) may be required to generate a complete match with human performance.

摘要

由于神经肌肉和骨骼系统的灵活性与冗余性,人类能够通过各种手臂配置在空间中描绘出相同的手部轨迹。然而,典型的无约束运动的关节轨迹在个体内部和个体之间往往是一致的。在本文中,我们提出了一种基于最小化关节扭矩所做总功的大小来解决三维逆运动学问题的方法。我们在三维工作空间中的各种运动路径上,将关节空间轨迹与从人类表现中观察到的轨迹进行了拟合检验。结果表明,该方法生成的关节空间轨迹与受试者的手臂运动高度吻合(r2>0.98),肩部内收/外展情况除外(在最坏情况下,r2约为0.8)。将我们算法预测的肱骨旋转与其他模型进行比较表明,实际数据与我们预测之间的相关系数r2极高(大多数>0.98,15个案例中有11个,少数例外情况,15个案例中有4个,范围在0.8 - 0.9),线性回归的斜率更接近1(15个案例中有12个失真<0.05,只有1个案例>0.15)。然而,肩部内收/外展的差异表明,当仅知道手部路径时,可能需要额外的约束条件才能与人类表现完全匹配。

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