DocumentCode :
3562958
Title :
A rotation invariant retina identification algorithm using tessellation-based spectral feature
Author :
Khakzar, Mahrokh ; Pourghassem, Hossein
Author_Institution :
Dept. of Electr. Eng., Islamic Azad Univ., Najafabad, Iran
fYear :
2014
Firstpage :
309
Lastpage :
314
Abstract :
In this paper, a rotation-invariant retina identification algorithm based on tessellation of frequency spectrum is developed. In this algorithm, the proposed tessellation scheme provides rotation invariant, multi resolution and optimized features with low computational for our retina identification algorithm. The proposed algorithm is structured in two parts namely feature extraction and decision making. First step is forming feature vectors by applying proposed tessellation scheme on frequency spectrum of vessel skeleton of retinal image. Then, a specific scenario is defined based on energy spectrum of vessels to identify each individual. Finally, Euclidean distance criterion is used to evaluate the accuracy of proposed tessellation scheme. Experimental results show that the proposed algorithm obtains the accuracy rate of 99.29 % in presence of rotation and multi resolution samples.
Keywords :
biomechanics; biomedical optical imaging; biometrics (access control); discrete Fourier transforms; eye; feature extraction; feature selection; medical image processing; Euclidean distance criterion; decision making; feature extraction; feature vector formation; frequency spectrum tessellation; multi resolution features; optimized features; retina identification algorithm; retinal image vessel skeleton; rotation invariant retina identification; tessellation scheme accuracy; tessellation-based spectral feature; vessel energy spectrum; Accuracy; Band-pass filters; Biomedical imaging; Blood vessels; Feature extraction; Image segmentation; Retina; energy spectrum; radial partitioning; retinal image; tessellation-based spectral feature;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Engineering (ICBME), 2014 21th Iranian Conference on
Print_ISBN :
978-1-4799-7417-7
Type :
conf
DOI :
10.1109/ICBME.2014.7043941
Filename :
7043941
Link To Document :
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