DocumentCode :
53181
Title :
A Novel Approach to Reducing Number of Sensing Units for Wearable Gait Analysis Systems
Author :
Salarian, A. ; Burkhard, P.R. ; Vingerhoets, F.J.G. ; Jolles, Brigitte M. ; Aminian, Kamiar
Author_Institution :
Lab. of Movement Anal. & Meas., Ecole Polytech. Fed. de Lausanne, Lausanne, Switzerland
Volume :
60
Issue :
1
fYear :
2013
fDate :
Jan. 2013
Firstpage :
72
Lastpage :
77
Abstract :
Gait analysis methods to estimate spatiotemporal measures, based on two, three or four gyroscopes attached on lower limbs have been discussed in the literature. The most common approach to reduce the number of sensing units is to simplify the underlying biomechanical gait model. In this study, we propose a novel method based on prediction of movements of thighs from movements of shanks. Datasets from three previous studies were used. Data from the first study (ten healthy subjects and ten with Parkinson´s disease) were used to develop and calibrate a system with only two gyroscopes attached on shanks. Data from two other studies (36 subjects with hip replacement, seven subjects with coxarthrosis, and eight control subjects) were used for comparison with the other methods and for assessment of error compared to a motion capture system. Results show that the error of estimation of stride length compared to motion capture with the system with four gyroscopes and our new method based on two gyroscopes was close ( -0.8 ±6.6 versus 3.8 ±6.6 cm). An alternative with three sensing units did not show better results (error: -0.2 ±8.4 cm). Finally, a fourth that also used two units but with a simpler gait model had the highest bias compared to the reference (error: -25.6 ±7.6 cm). We concluded that it is feasible to estimate movements of thighs from movements of shanks to reduce number of needed sensing units from 4 to 2 in context of ambulatory gait analysis.
Keywords :
biomedical equipment; biomedical measurement; diseases; gait analysis; gyroscopes; measurement errors; motion measurement; Parkinson disease; ambulatory gait analysis; biomechanical gait model; coxarthrosis; gait analysis methods; gyroscope system calibration; gyroscopes; hip replacement subjects; lower limbs; motion capture system comparison; sensing unit number; shank movement; spatiotemporal measure estimation; stride length estimation error; wearable gait analysis systems; Biological system modeling; Estimation; Gyroscopes; Harmonic analysis; Mathematical model; Sensors; Thigh; Gait analysis; inertial systems; objective assessment; wearable sensors; Aged; Arthroplasty, Replacement, Hip; Case-Control Studies; Clothing; Female; Gait; Humans; Male; Middle Aged; Models, Biological; Monitoring, Ambulatory; Parkinson Disease; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2012.2223465
Filename :
6327615
Link To Document :
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