Methods for Gait Analysis During Obstacle Avoidance Task

被引:6
|
作者
Patashov, Dmitry [1 ,2 ]
Menahem, Yakir [2 ]
Ben-Haim, Ohad [2 ]
Gazit, Eran [3 ]
Maidan, Inbal [3 ,4 ,5 ]
Mirelman, Anat [3 ,4 ,5 ]
Sosnik, Ronen [1 ]
Goldstein, Dmitry [2 ]
Hausdorff, Jeffrey M. [3 ,4 ,6 ,7 ]
机构
[1] Holon Inst Technol, Fac Engn, Holon, Palestine
[2] Holon Inst Technol, Fac Sciences, 52 Golomb St, Holon, Palestine
[3] Neurol Inst, Ctr Study Movement,Tel Aviv Sourasky Med Ctr, Cognit,Mobility, Tel Aviv, Palestine
[4] Tel Aviv Univ, Sagol Sch Neuroscience, Tel Aviv, Palestine
[5] Tel Aviv Univ, Sackler Sch Med, Dept Neurol, Tel Aviv, Palestine
[6] Tel Aviv Univ, Dept Phys Therapy, Tel Aviv, Palestine
[7] Rush Univ, Rush Alzheimer's Dis Ctr, Dept Orthpaed Surg, Chicago, IL USA
关键词
Quasi-periodic signal; Noisy signal; Peak detection; Complex envelope; Signal segmentation; Kernel clustering; Missing data; Adaptive filtering; Dual multi-label forecasting; VIRTUAL-REALITY; PEAK DETECTION; OLDER-ADULTS; TREADMILL; TIME; ALGORITHM; CHILDREN; SPEED; FALLS; RISK;
D O I
10.1007/s10439-019-02380-4
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In this study, we present algorithms developed for gait analysis, but suitable for many other signal processing tasks. A novel general-purpose algorithm for extremum estimation of quasi-periodic noisy signals is proposed. This algorithm is both flexible and robust, and allows custom adjustments to detect a predetermined wave pattern while being immune to signal noise and variability. A method for signal segmentation was also developed for analyzing kinematic data recorded while performing on obstacle avoidance task. The segmentation allows detecting preparation and recovery phases related to obstacle avoidance. A simple kernel-based clustering method was used for classification of unsupervised data containing features of steps within the walking trial and discriminating abnormal from regular steps. Moreover, a novel algorithm for missing data approximation and adaptive signal filtering is also presented. This algorithm allows restoring faulty data with high accuracy based on the surrounding information. In addition, a predictive machine learning technique is proposed for supervised multiclass labeling with non-standard label structure.
引用
收藏
页码:634 / 643
页数:10
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