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Human Identity Verification Using Multispectral Palmprint Fusion
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作者 Dakshina Ranjan Kisku Ajita Rattani +2 位作者 Phalguni Gupta jamuna kanta sing C. Jinshong Hwang 《Journal of Signal and Information Processing》 2012年第2期263-273,共11页
This paper presents an intra-modal fusion environment to integrate multiple raw palm images at low level. Fusion of palmprint instances is performed by wavelet transform and decomposition. To capture the palm characte... This paper presents an intra-modal fusion environment to integrate multiple raw palm images at low level. Fusion of palmprint instances is performed by wavelet transform and decomposition. To capture the palm characteristics, the fused image is convolved with Gabor wavelet transform. The Gabor wavelet based feature representation reflects very high dimensional space. To reduce the high dimensionality, ant colony optimization algorithm is applied to consider only relevant, distinctive and reduced feature set from Gabor responses. Finally, the reduced set of features is trained with support vector machines and accomplished user recognition tasks. For evaluation, CASIA multispectral palmprint database is used. The experimental results reveal that the system is robust and encouraging while variations of classifiers are used. 展开更多
关键词 PALMPRINT Verification MULTISPECTRAL Image FUSION GABOR Wavelet Filters ANT COLONY Optimization Support Vector Machines
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Multimodal Belief Fusion for Face and Ear Biometrics 被引量:2
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作者 Dakshina Ranjan KISKU Phalguni GUPTA +1 位作者 Hunny MEHROTRA jamuna kanta sing 《Intelligent Information Management》 2009年第3期166-171,共6页
This paper proposes a multimodal biometric system through Gaussian Mixture Model (GMM) for face and ear biometrics with belief fusion of the estimated scores characterized by Gabor responses and the proposed fusion is... This paper proposes a multimodal biometric system through Gaussian Mixture Model (GMM) for face and ear biometrics with belief fusion of the estimated scores characterized by Gabor responses and the proposed fusion is accomplished by Dempster-Shafer (DS) decision theory. Face and ear images are convolved with Gabor wavelet filters to extracts spatially enhanced Gabor facial features and Gabor ear features. Further, GMM is applied to the high-dimensional Gabor face and Gabor ear responses separately for quantitive measurements. Expectation Maximization (EM) algorithm is used to estimate density parameters in GMM. This produces two sets of feature vectors which are then fused using Dempster-Shafer theory. Experiments are conducted on two multimodal databases, namely, IIT Kanpur database and virtual database. Former contains face and ear images of 400 individuals while later consist of both images of 17 subjects taken from BANCA face database and TUM ear database. It is found that use of Gabor wavelet filters along with GMM and DS theory can provide robust and efficient multimodal fusion strategy. 展开更多
关键词 MULTIMODAL BIOMETRICS GABOR wavelet filter gaussian mixture model BELIEF theory FACE EAR
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