FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION
This study presents a framework for gray texture classification based on the fusion of wavelet and curvelet features. The two main frequency domain transformations Discrete Wavelet Transform (DWT) and Discrete Curvelet Transform (DCT) are analyzed. The features are extracted from the DWT and DCT dec...
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ICT Academy of Tamil Nadu
2014-05-01
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doaj-2d488f2241fd425cb60de1cafa5375f62020-11-25T01:17:56ZengICT Academy of Tamil NaduICTACT Journal on Image and Video Processing0976-90990976-91022014-05-0144805811FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATIONM. Santhanalakshmi0K. Nirmala1Department of Computer Applications, Manonmaniam Sundaranar University, IndiaDepartment of Computer Science, Quaid-e-Millath Government College for Women, IndiaThis study presents a framework for gray texture classification based on the fusion of wavelet and curvelet features. The two main frequency domain transformations Discrete Wavelet Transform (DWT) and Discrete Curvelet Transform (DCT) are analyzed. The features are extracted from the DWT and DCT decomposed image separately and their performance is evaluated independently. Then feature fusion technique is applied to increase the classification accuracy of the proposed approach. Brodatz texture images are used for this study. The results show that, only two texture images D105 and D106 are misclassified by the fusion approach and 99.74% classification accuracy is obtained.http://ictactjournals.in/paper/IJIVP_Paper_2-805_811.pdfTexture ClassificationWavelet TransformCurvelet TransformNearest Neighbor ClassifierBrodatz Album |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M. Santhanalakshmi K. Nirmala |
spellingShingle |
M. Santhanalakshmi K. Nirmala FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION ICTACT Journal on Image and Video Processing Texture Classification Wavelet Transform Curvelet Transform Nearest Neighbor Classifier Brodatz Album |
author_facet |
M. Santhanalakshmi K. Nirmala |
author_sort |
M. Santhanalakshmi |
title |
FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION |
title_short |
FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION |
title_full |
FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION |
title_fullStr |
FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION |
title_full_unstemmed |
FUSION OF WAVELET AND CURVELET COEFFICIENTS FOR GRAY TEXTURE CLASSIFICATION |
title_sort |
fusion of wavelet and curvelet coefficients for gray texture classification |
publisher |
ICT Academy of Tamil Nadu |
series |
ICTACT Journal on Image and Video Processing |
issn |
0976-9099 0976-9102 |
publishDate |
2014-05-01 |
description |
This study presents a framework for gray texture classification based on the fusion of wavelet and curvelet features. The two main frequency domain transformations Discrete Wavelet Transform (DWT) and Discrete Curvelet Transform (DCT) are analyzed. The features are extracted from the DWT and DCT decomposed image separately and their performance is evaluated independently. Then feature fusion technique is applied to increase the classification accuracy of the proposed approach. Brodatz texture images are used for this study. The results show that, only two texture images D105 and D106 are misclassified by the fusion approach and 99.74% classification accuracy is obtained. |
topic |
Texture Classification Wavelet Transform Curvelet Transform Nearest Neighbor Classifier Brodatz Album |
url |
http://ictactjournals.in/paper/IJIVP_Paper_2-805_811.pdf |
work_keys_str_mv |
AT msanthanalakshmi fusionofwaveletandcurveletcoefficientsforgraytextureclassification AT knirmala fusionofwaveletandcurveletcoefficientsforgraytextureclassification |
_version_ |
1725144877831815168 |