EFFECTS OF DATA SMOOTHING ON THE RECONSTRUCTION OF HELICAL AXIS PARAMETERS IN HUMAN JOINT KINEMATICS

被引:30
作者
DELANGE, A
HUISKES, R
KAUER, JMG
机构
[1] CATHOLIC UNIV NIJMEGEN,INST ORTHOPAED,BIOMECH SECT,6500 HB NIJMEGEN,NETHERLANDS
[2] CATHOLIC UNIV NIJMEGEN,DEPT ANAT & EMBRYOL,6500 HB NIJMEGEN,NETHERLANDS
来源
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME | 1990年 / 112卷 / 02期
关键词
D O I
10.1115/1.2891160
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
In biomechanical joint-motion analyses, the continuous motion to be studied is often approximated by a sequence of finite displacements, and the Finite Helical Axis (FHA) or “screw axis” for each displacement is estimated from position measurements on a number of anatomical or artificial landmarks. When FHA parameters are directly determined from raw (noisy) displacement data, both the position and the direction of the FHA are ill-determined, in particular when the sequential displacement steps are small. This implies, that under certain conditions, the continuous pathways of joint motions cannot be adequately described. The purpose of the present experimental study is to investigate the applicability of smoothing (or filtering) techniques, in those cases where FHA parameters are ill-determined. Two different quintic-spline smoothing methods were used to analyze the motion data obtained with Roentgenstereophotogrammetry in two experiments. One concerning carpal motions in a wrist-joint specimen, and one relative to a kinematic laboratory model, in which the axis positions are a priori known. The smoothed and nonsmoothed FHA parameter errors were compared. The influences of the number of samples and the size of the sampling interval (displacement step) were investigated, as were the effects of equidistant and nonequidistant sampling conditions and noise invariance. © 1990 by ASME.
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页码:107 / 113
页数:7
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