Development of Vision Based Multiview Gait Recognition System with MMUGait Database
This paper describes the acquisition setup and development of a new gait database, MMUGait. This database consists of 82 subjects walking under normal condition and 19 subjects walking with 11 covariate factors, which were captured under two views. This paper also proposes a multiview model-based ga...
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Published in | TheScientificWorld Vol. 2014; no. 2014; pp. 1 - 13 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Cairo, Egypt
Hindawi Publishing Corporation
01.01.2014
John Wiley & Sons, Inc Wiley |
Subjects | |
Online Access | Get full text |
ISSN | 2356-6140 1537-744X 1537-744X |
DOI | 10.1155/2014/376569 |
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Abstract | This paper describes the acquisition setup and development of a new gait database, MMUGait. This database consists of 82 subjects walking under normal condition and 19 subjects walking with 11 covariate factors, which were captured under two views. This paper also proposes a multiview model-based gait recognition system with joint detection approach that performs well under different walking trajectories and covariate factors, which include self-occluded or external occluded silhouettes. In the proposed system, the process begins by enhancing the human silhouette to remove the artifacts. Next, the width and height of the body are obtained. Subsequently, the joint angular trajectories are determined once the body joints are automatically detected. Lastly, crotch height and step-size of the walking subject are determined. The extracted features are smoothened by Gaussian filter to eliminate the effect of outliers. The extracted features are normalized with linear scaling, which is followed by feature selection prior to the classification process. The classification experiments carried out on MMUGait database were benchmarked against the SOTON Small DB from University of Southampton. Results showed correct classification rate above 90% for all the databases. The proposed approach is found to outperform other approaches on SOTON Small DB in most cases. |
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AbstractList | This paper describes the acquisition setup and development of a new gait database, MMUGait. This database consists of 82 subjects walking under normal condition and 19 subjects walking with 11 covariate factors, which were captured under two views. This paper also proposes a multiview model-based gait recognition system with joint detection approach that performs well under different walking trajectories and covariate factors, which include self-occluded or external occluded silhouettes. In the proposed system, the process begins by enhancing the human silhouette to remove the artifacts. Next, the width and height of the body are obtained. Subsequently, the joint angular trajectories are determined once the body joints are automatically detected. Lastly, crotch height and step-size of the walking subject are determined. The extracted features are smoothened by Gaussian filter to eliminate the effect of outliers. The extracted features are normalized with linear scaling, which is followed by feature selection prior to the classification process. The classification experiments carried out on MMUGait database were benchmarked against the SOTON Small DB from University of Southampton. Results showed correct classification rate above 90% for all the databases. The proposed approach is found to outperform other approaches on SOTON Small DB in most cases. This paper describes the acquisition setup and development of a new gait database, MMUGait. This database consists of 82 subjects walking under normal condition and 19 subjects walking with 11 covariate factors, which were captured under two views. This paper also proposes a multiview model-based gait recognition system with joint detection approach that performs well under different walking trajectories and covariate factors, which include self-occluded or external occluded silhouettes. In the proposed system, the process begins by enhancing the human silhouette to remove the artifacts. Next, the width and height of the body are obtained. Subsequently, the joint angular trajectories are determined once the body joints are automatically detected. Lastly, crotch height and step-size of the walking subject are determined. The extracted features are smoothened by Gaussian filter to eliminate the effect of outliers. The extracted features are normalized with linear scaling, which is followed by feature selection prior to the classification process. The classification experiments carried out on MMUGait database were benchmarked against the SOTON Small DB from University of Southampton. Results showed correct classification rate above 90% for all the databases. The proposed approach is found to outperform other approaches on SOTON Small DB in most cases.This paper describes the acquisition setup and development of a new gait database, MMUGait. This database consists of 82 subjects walking under normal condition and 19 subjects walking with 11 covariate factors, which were captured under two views. This paper also proposes a multiview model-based gait recognition system with joint detection approach that performs well under different walking trajectories and covariate factors, which include self-occluded or external occluded silhouettes. In the proposed system, the process begins by enhancing the human silhouette to remove the artifacts. Next, the width and height of the body are obtained. Subsequently, the joint angular trajectories are determined once the body joints are automatically detected. Lastly, crotch height and step-size of the walking subject are determined. The extracted features are smoothened by Gaussian filter to eliminate the effect of outliers. The extracted features are normalized with linear scaling, which is followed by feature selection prior to the classification process. The classification experiments carried out on MMUGait database were benchmarked against the SOTON Small DB from University of Southampton. Results showed correct classification rate above 90% for all the databases. The proposed approach is found to outperform other approaches on SOTON Small DB in most cases. |
Audience | Academic |
Author | Tong, Hau-Lee Tan, Wooi-Haw Abdullah, Junaidi Ng, Hu |
AuthorAffiliation | Faculty of Computing and Informatics, Multimedia University, 63100 Cyberjaya, Malaysia |
AuthorAffiliation_xml | – name: Faculty of Computing and Informatics, Multimedia University, 63100 Cyberjaya, Malaysia |
Author_xml | – sequence: 1 fullname: Tong, Hau-Lee – sequence: 2 fullname: Abdullah, Junaidi – sequence: 3 fullname: Tan, Wooi-Haw – sequence: 4 fullname: Ng, Hu |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/25143972$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_1109_ACCESS_2024_3493389 crossref_primary_10_1016_j_legalmed_2016_02_001 crossref_primary_10_1007_s10462_020_09885_8 crossref_primary_10_3390_electronics11152386 |
Cites_doi | 10.2197/ipsjtcva.4.53 10.1152/japplphysiol.01380.2006 10.1016/S1077-3142(03)00008-0 10.1007/11527923_41 10.1016/j.imavis.2008.11.008 10.1145/1656274.1656278 10.1007/978-3-642-04667-4_9 10.1007/3-540-36077-8_10 10.1109/TPAMI.2005.39 10.1002/aja.1001200104 10.1109/TSMCB.2009.2031091 10.1142/S0218001403002460 10. 1007/11744078_12 10.1007/978-3-642-01793-3_100 10.1016/j.patrec.2013.01.027 10.4218/etrij.11.1510.0068 10.1016/S0167-8655(00)00112-4 10.1016/j.patcog.2009.05.006 10.5244/C.23.113 10.1109/TSMC.1979.4310076 |
ContentType | Journal Article |
Copyright | Copyright © 2014 Hu Ng et al. COPYRIGHT 2014 John Wiley & Sons, Inc. Copyright © 2014 Hu Ng et al. Hu Ng et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Copyright © 2014 Hu Ng et al. 2014 |
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Gait representation using flow fields British Machine Vision Conference 2009 Dundee, UK BMVA Press 113.1 113.11 10.5244/C.23.113 – reference: Shakhnarovich G. Lee L. Darrell T. Integrated face and gait recognition from multiple views Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition December 2001 Hawaii, Hawaii, USA I439 I446 2-s2.0-0035683540 10.1109/CVPR.2001.990508 – volume: 4 start-page: 53 year: 2012 end-page: 62 ident: 5 article-title: The OU-ISIR gait database comprising the treadmill dataset – volume: 27 start-page: 1194 issue: 8 year: 2009 end-page: 1206 ident: 18 article-title: View-independent human motion classification using image-based reconstruction – reference: Bouchrika I. Nixon M. S. Exploratory factor analysis of gait recognition Proceedings of the 8th IEEE International Conference on Automatic Face and Gesture Recognition September 2008 1 6 2-s2.0-67650668009 10.1109/AFGR.2008.4813395 – reference: Schölkopf B. Burges C. Advances in Kernel Methods: Support Vector Learning 1999 Boston, Mass, USA MIT Press – reference: Gokcen I. Peng J. Yakhno T. Comparing linear discriminant analysis and support vector machines Advances in Information Systems 2002 2457 Berlin, Germany Springer 104 113 Lecture Notes in Computer Science 10.1007/3-540-36077-8_10 – reference: Yu S. Tan D. Tan T. A framework for evaluating the effect of view angle, clothing and carrying condition on gait recognition Proceedings of the18th International Conference on Pattern Recognition (ICPR '06) August 2006 Hong Kong 441 444 2-s2.0-34147109171 10.1109/ICPR.2006.67 – reference: Kusakunniran W. Wu Q. Li H. Zhang J. 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Snippet | This paper describes the acquisition setup and development of a new gait database, MMUGait. This database consists of 82 subjects walking under normal... |
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SubjectTerms | Algorithms Artificial Intelligence Biometrics Cameras Classification Databases as Topic Fitness equipment Gait Gait - physiology Humans Identification and classification Machine vision Methods Models, Theoretical Object recognition (Computers) Pattern recognition Pattern Recognition, Automated - methods Public access |
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Title | Development of Vision Based Multiview Gait Recognition System with MMUGait Database |
URI | https://search.emarefa.net/detail/BIM-1049384 https://dx.doi.org/10.1155/2014/376569 https://www.ncbi.nlm.nih.gov/pubmed/25143972 https://www.proquest.com/docview/1625136139 https://www.proquest.com/docview/1555627165 https://pubmed.ncbi.nlm.nih.gov/PMC3985318 https://doaj.org/article/603d6c8849f7474f84d45c6bcc81d5a7 |
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