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 in | IET biometrics Vol. 4; no. 3; pp. 151 - 161 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Stevenage
The Institution of Engineering and Technology
01.09.2015
John Wiley & Sons, Inc |
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Online Access | Get full text |
ISSN | 2047-4938 2047-4946 2047-4946 |
DOI | 10.1049/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%. |
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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 |
Author_xml | – sequence: 1 givenname: Kaushik surname: Roy fullname: Roy, Kaushik email: kaushik_encs@yahoo.ca organization: 1Department of Computer Science, North Carolina A&T State University, Greensboro, NC, USA – sequence: 2 givenname: Joseph surname: Shelton fullname: Shelton, Joseph organization: 1Department of Computer Science, North Carolina A&T State University, Greensboro, NC, USA – sequence: 3 givenname: Brian surname: O'Connor fullname: O'Connor, Brian organization: 1Department of Computer Science, North Carolina A&T State University, Greensboro, NC, USA – sequence: 4 givenname: Mohamed S surname: Kamel fullname: Kamel, Mohamed S organization: 2Pattern Analysis and Machine Intelligence Research Group, University of Waterloo, ON, Canada |
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CitedBy_id | crossref_primary_10_1007_s11831_018_9257_4 crossref_primary_10_1016_j_eswa_2017_12_035 crossref_primary_10_1080_19393555_2021_1974130 crossref_primary_10_1016_j_asoc_2023_110412 crossref_primary_10_1007_s41870_021_00618_w crossref_primary_10_1007_s10489_019_01579_1 crossref_primary_10_1007_s11277_021_09075_x crossref_primary_10_1007_s11042_018_6005_6 |
Cites_doi | 10.7763/IJMLC.2014.V4.416 10.1016/j.eswa.2011.02.155 10.1109/ISIMP.2001.925384 10.1007/3-540-44887-X_93 10.1007/978-3-642-31298-4_3 10.1007/978-3-642-33564-8_71 10.1016/j.compbiomed.2010.10.007 10.1109/ICIP.2010.5653680 10.1109/TIP.2010.2044957 10.1007/978-1-4471-4402-1_12 10.1016/S0262-8856(97)00070-X 10.1007/11608288_21 10.1109/TPAMI.2002.1017623 10.1007/11608288_76 10.1007/978-3-540-74549-5_19 10.1007/3-540-32498-4_1 10.1016/j.optlaseng.2010.09.011 10.1016/j.compmedimag.2005.10.001 10.1109/SECon.2012.6197069 10.1109/TCSVT.2003.818350 10.1016/j.engappai.2010.06.014 10.1007/978-3-642-01793-3_97 |
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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 |
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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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