DocumentCode :
105382
Title :
A Novel Adaptive, Real-Time Algorithm to Detect Gait Events From Wearable Sensors
Author :
Chia Bejarano, Noelia ; Ambrosini, Emilia ; Pedrocchi, Alessandra ; Ferrigno, Giancarlo ; Monticone, Marco ; Ferrante, Simona
Author_Institution :
Dept. of Electron., Inf. & Bioeng., Politec. di Milano, Milan, Italy
Volume :
23
Issue :
3
fYear :
2015
fDate :
May-15
Firstpage :
413
Lastpage :
422
Abstract :
A real-time, adaptive algorithm based on two inertial and magnetic sensors placed on the shanks was developed for gait-event detection. For each leg, the algorithm detected the Initial Contact (IC), as the minimum of the flexion/extension angle, and the End Contact (EC) and the Mid-Swing (MS), as minimum and maximum of the angular velocity, respectively. The algorithm consisted of calibration, real-time detection, and step-by-step update. Data collected from 22 healthy subjects (21 to 85 years) walking at three self-selected speeds were used to validate the algorithm against the GaitRite system. Comparable levels of accuracy and significantly lower detection delays were achieved with respect to other published methods. The algorithm robustness was tested on ten healthy subjects performing sudden speed changes and on ten stroke subjects (43 to 89 years). For healthy subjects, F1-scores of 1 and mean detection delays lower than 14 ms were obtained. For stroke subjects, F1-scores of 0.998 and 0.944 were obtained for IC and EC, respectively, with mean detection delays always below 31 ms. The algorithm accurately detected gait events in real time from a heterogeneous dataset of gait patterns and paves the way for the design of closed-loop controllers for customized gait trainings and/or assistive devices.
Keywords :
biomedical equipment; body sensor networks; calibration; closed loop systems; controllers; gait analysis; handicapped aids; magnetic sensors; medical control systems; medical disorders; medical signal processing; F1-scores; GaitRite system; adaptive real-time algorithm; angular velocity; assistive devices; calibration; closed-loop controllers; customized gait trainings; data collection; detection delays; end contact; flexion-extension angle; gait-event detection; heterogeneous dataset; inertial sensors; initial contact; magnetic sensors; mid-swing; real-time detection; self-selected speeds; step-by-step update; stroke subjects; walking; wearable sensors; Accuracy; Algorithm design and analysis; Angular velocity; Delays; Integrated circuits; Legged locomotion; Real-time systems; Ambulatory gait system; hemiparetic gait; inertial and magnetic sensors; real-time signal processing; temporal gait parameters;
fLanguage :
English
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1534-4320
Type :
jour
DOI :
10.1109/TNSRE.2014.2337914
Filename :
6862063
Link To Document :
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