DocumentCode :
595300
Title :
Combining local and global correlation for texture description
Author :
Xiaopeng Hong ; Guoying Zhao ; Pietikainen, Matti ; Xilin Chen
Author_Institution :
Dept. of Comput. Sci. & Eng., Univ. of Oulu, Oulu, Finland
fYear :
2012
fDate :
11-15 Nov. 2012
Firstpage :
2756
Lastpage :
2759
Abstract :
Local Binary Patterns (LBPs) and Covariance Matrices (CovMs) are two popular kinds of texture descriptors. However, local correlation brought by LBPs and global correlation brought by CovMs could not be directly combined to achieve enhanced discriminative power. This paper develops a powerful descriptor, named COV-LBP. Firstly, we propose a variant of LBPs on Euclidean space, named the LBP Difference feature (LBPD), which can be used to calculate any statistical image description. LBPD reflects how far one LBP lies from the LBP mean of a given image. It is simple, descriptive, rotation invariant, and computationally efficient. Secondly, by applying LBPD in multiple commonly used elementary features mapped from the original image, we provide a bank of discriminative features optional for CovMs. Consequently the information of LBPs and CovMs are embedded in a unified COV-LBP descriptor. Experimental results show that COV-LBP achieves promising performance on the public texture classification databases.
Keywords :
correlation methods; covariance matrices; embedded systems; image classification; image texture; statistical analysis; visual databases; COV-LBP descriptor; CovMs; Euclidean space; LBP difference feature; LBP mean; LBPD; covariance matrices; discriminative feature bank; discriminative power; elementary feature mapping; global correlation; local binary patterns; local correlation; public texture classification database; rotation invariant; statistical image description; texture description; Correlation; Databases; Histograms; Kernel; Lighting; Robustness; Vectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition (ICPR), 2012 21st International Conference on
Conference_Location :
Tsukuba
ISSN :
1051-4651
Print_ISBN :
978-1-4673-2216-4
Type :
conf
Filename :
6460736
Link To Document :
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