DocumentCode :
166046
Title :
Co-occurrence Matrix and statistical features as an approach for mass classification
Author :
Sharma, Jaibir ; Rai, J.K. ; Tewari, R.P.
Author_Institution :
Amity Sch. of Eng. & Technol., Amity Univ., Noida, India
fYear :
2014
fDate :
24-27 Sept. 2014
Firstpage :
2369
Lastpage :
2373
Abstract :
This paper presents a texture based approach for distinguishing mass from normal breast tissue in a mammogram. Identification of high probability area as mass is done on the basis of statistical features obtained from Gray-Level-Co-occurrence Matrix (GLCM) of mammogram image. The input mammogram is first pre-processed to remove the labeling artifacts and enhanced using adaptive histogram equalization. Unwanted details from the mammogram are excluded on the basis of block processing and histogram based features are extracted. Features based on GLCM are computed and analyzed to distinguish a suspicious mass from a non-mass region. Obtained results are promising in terms of correct classification. Contrast and energy measure from GLCM and mean, standard deviation and entropy helps to appropriately differentiate malign mass and normal tissue area.
Keywords :
feature extraction; image texture; mammography; matrix algebra; medical image processing; statistical analysis; GLCM; adaptive histogram equalization; block processing; co-occurrence matrix; contrast measure; energy measure; entropy; histogram based feature extraction; labeling artifacts; mammogram image; mass classification; mean; normal breast tissue; standard deviation; statistical features; texture based approach; Breast cancer; Entropy; Feature extraction; Histograms; Standards; Gray level co-occurrence matrix; image enhancement; mammogram; texture;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advances in Computing, Communications and Informatics (ICACCI, 2014 International Conference on
Conference_Location :
New Delhi
Print_ISBN :
978-1-4799-3078-4
Type :
conf
DOI :
10.1109/ICACCI.2014.6968364
Filename :
6968364
Link To Document :
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