Vision-based biometric authentication system using human gait analysis (Vision GaiA)

Gait refers to the particular way or manner of moving on foot. The gait of a person refers to the unique manner of his or her movement while walking. Recently, gait analysis has been examined for the purposes of biometrics and rehabilitation and is being researched further for identification and aut...

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Main Authors: Infante, Richo Paulo M., Salcedo, Gianne Lauren O., Tan, Ralph Gerard M.
Format: text
Language:English
Published: Animo Repository 2009
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Online Access:https://animorepository.dlsu.edu.ph/etd_bachelors/8667
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Institution: De La Salle University
Language: English
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spelling oai:animorepository.dlsu.edu.ph:etd_bachelors-93122021-08-26T05:59:27Z Vision-based biometric authentication system using human gait analysis (Vision GaiA) Infante, Richo Paulo M. Salcedo, Gianne Lauren O. Tan, Ralph Gerard M. Gait refers to the particular way or manner of moving on foot. The gait of a person refers to the unique manner of his or her movement while walking. Recently, gait analysis has been examined for the purposes of biometrics and rehabilitation and is being researched further for identification and authentication purposes. By studying gait analysis for authentication and identification, the percentage of raising the possibility of enormous security risks and threats is lessened. Using the video frame sequences obtained from a video camera, the Vision-Based Biometric Authentication System using Human Gait Analysis (Vision GaiA) extracts features that can be obtained from the walking person and uses them to authenticate the person by checking if his or her gait template exists in the database. To extract these features, the location of the walking person from the video frame sequence is first obtained by segmenting the foreground from the background and is binarized to obtain the binary silhouette. The gait features extracted are the aspect ratio of the silhouettes' bounding box, the height and width signal of the bounding box, the computed silhoutte centroid coordinates, and as well as the computed average frequency of the person's gait cycle. Authentication is done by applying Euclidean distance matching between the query gait data and the reference gait template of the person. Using nearest-neighbor rule, only the instance with the highest similarity value among the population of the reference gait template is considered. The highest similarity value is then compared with the optimal system threshold of 85.5%. This is set by the Equal Error Rate Test after computations of error rates generally yielding favorable authentication result of 8%. 2009-01-01T08:00:00Z text https://animorepository.dlsu.edu.ph/etd_bachelors/8667 Bachelor's Theses English Animo Repository Walking Pattern recognition systems Identification--Automation Biometric identification
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
language English
topic Walking
Pattern recognition systems
Identification--Automation
Biometric identification
spellingShingle Walking
Pattern recognition systems
Identification--Automation
Biometric identification
Infante, Richo Paulo M.
Salcedo, Gianne Lauren O.
Tan, Ralph Gerard M.
Vision-based biometric authentication system using human gait analysis (Vision GaiA)
description Gait refers to the particular way or manner of moving on foot. The gait of a person refers to the unique manner of his or her movement while walking. Recently, gait analysis has been examined for the purposes of biometrics and rehabilitation and is being researched further for identification and authentication purposes. By studying gait analysis for authentication and identification, the percentage of raising the possibility of enormous security risks and threats is lessened. Using the video frame sequences obtained from a video camera, the Vision-Based Biometric Authentication System using Human Gait Analysis (Vision GaiA) extracts features that can be obtained from the walking person and uses them to authenticate the person by checking if his or her gait template exists in the database. To extract these features, the location of the walking person from the video frame sequence is first obtained by segmenting the foreground from the background and is binarized to obtain the binary silhouette. The gait features extracted are the aspect ratio of the silhouettes' bounding box, the height and width signal of the bounding box, the computed silhoutte centroid coordinates, and as well as the computed average frequency of the person's gait cycle. Authentication is done by applying Euclidean distance matching between the query gait data and the reference gait template of the person. Using nearest-neighbor rule, only the instance with the highest similarity value among the population of the reference gait template is considered. The highest similarity value is then compared with the optimal system threshold of 85.5%. This is set by the Equal Error Rate Test after computations of error rates generally yielding favorable authentication result of 8%.
format text
author Infante, Richo Paulo M.
Salcedo, Gianne Lauren O.
Tan, Ralph Gerard M.
author_facet Infante, Richo Paulo M.
Salcedo, Gianne Lauren O.
Tan, Ralph Gerard M.
author_sort Infante, Richo Paulo M.
title Vision-based biometric authentication system using human gait analysis (Vision GaiA)
title_short Vision-based biometric authentication system using human gait analysis (Vision GaiA)
title_full Vision-based biometric authentication system using human gait analysis (Vision GaiA)
title_fullStr Vision-based biometric authentication system using human gait analysis (Vision GaiA)
title_full_unstemmed Vision-based biometric authentication system using human gait analysis (Vision GaiA)
title_sort vision-based biometric authentication system using human gait analysis (vision gaia)
publisher Animo Repository
publishDate 2009
url https://animorepository.dlsu.edu.ph/etd_bachelors/8667
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