DocumentCode :
3322127
Title :
Human Abnormal Gait Modeling via Hidden Markov Model
Author :
Chen, Meng ; Huang, Bufu ; Xu, Yangsheng
Author_Institution :
Chinese Univ. of Hong Kong, Hong Kong
fYear :
2007
fDate :
8-11 July 2007
Firstpage :
517
Lastpage :
522
Abstract :
This paper presents a method for modeling human abnormal gait using hidden Markov model under the framework of a shoe-integrated system. The intelligent system focuses on modeling the following patterns: normal gait, toe in and toe out gait abnormalities. In the developed prototype, an inertial measurement unit (IMU) consisting of three-dimensional gyroscopes and accelerometers is employed to measure angular velocities and accelerations of human foot. Four force sensing resistors (FSRs) and one bend sensor are arranged on a insole of each foot for force and flexion information acquisition. The proposed method is mainly based on principal component analysis (PCA) for feature generation and hidden Markov model (HMM) for multi-pattern modeling. The "similarity distance measure" criterion is introduced to do model-to- model evaluation. Experiment results demonstrate the proposed approach is robust and efficient in detecting abnormal gait patterns. Our goal is to provide a cost-effective system for detecting gait abnormalities in order to assist persons with abnormal gaits in developing the normal walking pattern in their daily life.
Keywords :
accelerometers; footwear; gait analysis; gyroscopes; hidden Markov models; medical computing; patient rehabilitation; principal component analysis; 3D gyroscopes; accelerometers; feature generation; force sensing resistors; hidden Markov model; human abnormal gait modeling; inertial measurement unit; intelligent system; multipattern modeling; principal component analysis; shoe-integrated system; similarity distance measure criterion; Accelerometers; Foot; Force sensors; Gyroscopes; Hidden Markov models; Humans; Intelligent systems; Measurement units; Principal component analysis; Prototypes; Shoe-integrated system; abnormal gait; hidden Markov model; similarity distance measure;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Acquisition, 2007. ICIA '07. International Conference on
Conference_Location :
Seogwipo-si
Print_ISBN :
1-4244-1220-X
Electronic_ISBN :
1-4244-1220-X
Type :
conf
DOI :
10.1109/ICIA.2007.4295787
Filename :
4295787
Link To Document :
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