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原位校准和运动捕捉变换优化可改善仪器化跑步机测量。

In situ calibration and motion capture transformation optimization improve instrumented treadmill measurements.

作者信息

Goldberg Saryn R, Kepple Thomas M, Stanhope Steven J

机构信息

Department of Engineering, Hofstra University, Hempstead, NY, USA.

出版信息

J Appl Biomech. 2009 Nov;25(4):401-6. doi: 10.1123/jab.25.4.401.

Abstract

We increased the accuracy of an instrumented treadmill's measurement of center of pressure and force data by calibrating in situ and optimizing the transformation between the motion capture and treadmill force plate coordinate systems. We calibrated the device in situ by applying known vertical and shear loads at known locations across the tread surface and calculating a 6 x 6 calibration matrix for the 6 output forces and moments. To optimize the transformation, we first estimated the transformation based on a locating jig and then measured center-of-pressure error across the treadmill force plate using the CalTester tool. We input these data into an optimization scheme to find the transformation between the motion capture and treadmill force plate coordinate systems that minimized the error in the center-of-pressure measurements derived from force plate and motion capture sources. When the calibration and transformation optimizations were made, the average measured error in the center of pressure was reduced to approximately 1 mm when the treadmill was stationary and to less than 3 mm when moving. Using bilateral gait data, we show the importance of calibrating these devices in situ and performing transformation optimizations.

摘要

我们通过现场校准并优化运动捕捉与跑步机测力板坐标系之间的转换,提高了仪器化跑步机对压力中心和力数据的测量精度。我们通过在整个踏板表面的已知位置施加已知的垂直和剪切载荷,并为6个输出力和力矩计算一个6×6的校准矩阵,对设备进行了现场校准。为了优化转换,我们首先基于定位夹具估计转换,然后使用CalTester工具测量整个跑步机测力板上的压力中心误差。我们将这些数据输入到一个优化方案中,以找到运动捕捉与跑步机测力板坐标系之间的转换,从而使源自测力板和运动捕捉源的压力中心测量误差最小化。在校准和转换优化完成后,跑步机静止时压力中心的平均测量误差降低到约1毫米,运动时降低到小于3毫米。利用双侧步态数据,我们展示了现场校准这些设备并进行转换优化的重要性。

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