Multibiometric system using fuzzy level set, and genetic and evolutionary feature extraction

This study presents a multimodal system that optimises and integrates the iris and face features based on fusion at the score level. The proposed multibiometric system has two novelties as compared with the previous work. First, the authors deploy a fuzzy C-means clustering with level set (FCMLS) me...

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Published inIET biometrics Vol. 4; no. 3; pp. 151 - 161
Main Authors Roy, Kaushik, Shelton, Joseph, O'Connor, Brian, Kamel, Mohamed S
Format Journal Article
LanguageEnglish
Published Stevenage The Institution of Engineering and Technology 01.09.2015
John Wiley & Sons, Inc
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Online AccessGet full text
ISSN2047-4938
2047-4946
2047-4946
DOI10.1049/iet-bmt.2014.0064

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Abstract This study presents a multimodal system that optimises and integrates the iris and face features based on fusion at the score level. The proposed multibiometric system has two novelties as compared with the previous work. First, the authors deploy a fuzzy C-means clustering with level set (FCMLS) method in an effort to localise the non-ideal iris images accurately. The FCMLS method incorporates the spatial information into the level set (LS)-based curve evolution approach and regularises the LS propagation locally. The proposed iris localisation scheme based on FCMLS avoids over-segmentation and performs well against blurred iris/sclera boundary. Second, genetic and evolutionary feature extraction (GEFE) is applied towards multimodal biometric recognition. GEFE uses genetic and evolutionary computation to evolve local binary pattern feature extractors to elicit distinctive features from the iris and facial images. Different weights for each modality are investigated to determine the significance of each modality. By using the FCMLS method to segment an iris image accurately, as well as using GEFE on a multibiometric dataset, the authors note improved performance of identification and verification accuracies over subjects on a unimodal dataset. More specifically, on the multimodal dataset of face and iris images, GEFE had an identification accuracy of 100%.
AbstractList This study presents a multimodal system that optimises and integrates the iris and face features based on fusion at the score level. The proposed multibiometric system has two novelties as compared with the previous work. First, the authors deploy a fuzzy C-means clustering with level set (FCMLS) method in an effort to localise the non-ideal iris images accurately. The FCMLS method incorporates the spatial information into the level set (LS)-based curve evolution approach and regularises the LS propagation locally. The proposed iris localisation scheme based on FCMLS avoids over-segmentation and performs well against blurred iris/sclera boundary. Second, genetic and evolutionary feature extraction (GEFE) is applied towards multimodal biometric recognition. GEFE uses genetic and evolutionary computation to evolve local binary pattern feature extractors to elicit distinctive features from the iris and facial images. Different weights for each modality are investigated to determine the significance of each modality. By using the FCMLS method to segment an iris image accurately, as well as using GEFE on a multibiometric dataset, the authors note improved performance of identification and verification accuracies over subjects on a unimodal dataset. More specifically, on the multimodal dataset of face and iris images, GEFE had an identification accuracy of 100%.
Author O'Connor, Brian
Kamel, Mohamed S
Roy, Kaushik
Shelton, Joseph
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10.1007/978-3-642-31298-4_3
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Issue 3
Keywords over-segmentation
fuzzy set theory
face features
local binary pattern feature extractors
FCMLS method
genetic computation
feature extraction
image segmentation
face recognition
nonideal iris images
iris localisation scheme
multimodal system
LS-based curve evolution approach
single modal biometric system
blurred iris-sclera boundary
multimodal biometric recognition
multimodal iris image datasets
fuzzy level set
fuzzy C-means clustering with level set method
genetic algorithms
genetic and evolutionary feature extraction
evolutionary computation
pattern clustering
multimodal face image datasets
iris features
LS propagation
feature extraction optimisation technique
iris recognition
GEFE
image recognition
Language English
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  doi: 10.1109/TCSVT.2003.818350
– ident: e_1_2_6_26_1
  doi: 10.1016/j.engappai.2010.06.014
– volume-title: Evolutionary computation: toward a new philosophy of machine intelligence
  year: 2000
  ident: e_1_2_6_18_1
– ident: e_1_2_6_10_1
  doi: 10.1007/978-3-642-01793-3_97
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Snippet This study presents a multimodal system that optimises and integrates the iris and face features based on fusion at the score level. The proposed...
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SubjectTerms Accuracy
Approximation
Biometrics
blurred iris‐sclera boundary
Cameras
Clustering
Datasets
Evolution
Evolutionary
Evolutionary computation
face features
face recognition
FCMLS method
Feature based
Feature extraction
feature extraction optimisation technique
Feature recognition
Feature selection
fuzzy C‐means clustering with level set method
fuzzy level set
fuzzy set theory
Fuzzy sets
GEFE
genetic algorithms
genetic and evolutionary feature extraction
genetic computation
Genetics
Image processing
image recognition
Image segmentation
iris features
iris localisation scheme
iris recognition
local binary pattern feature extractors
Localization
LS propagation
LS‐based curve evolution approach
multimodal biometric recognition
multimodal face image datasets
multimodal iris image datasets
multimodal system
Neural networks
nonideal iris images
over‐segmentation
pattern clustering
Pattern recognition
single modal biometric system
Spatial data
Wavelet transforms
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  providerName: Institution of Engineering and Technology
Title Multibiometric system using fuzzy level set, and genetic and evolutionary feature extraction
URI http://digital-library.theiet.org/content/journals/10.1049/iet-bmt.2014.0064
https://onlinelibrary.wiley.com/doi/abs/10.1049%2Fiet-bmt.2014.0064
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Volume 4
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