DocumentCode :
166227
Title :
HEp-2 cell images classification based on statistical texture analysis and fuzzy logic
Author :
Binti Jamil, Nur Farahim ; Faye, Ibrahima ; May, Zazilah
Author_Institution :
Electr. & Electron. Eng. Dept., Univ. Teknol. PETRONAS, Tronoh, Malaysia
fYear :
2014
fDate :
24-27 Sept. 2014
Firstpage :
524
Lastpage :
529
Abstract :
Autoimmune diseases occur when an inappropriate immune response takes place and produces autoantibodies to fight against human antigens. In order to detect autoimmune disease, a test, called indirect immunofluorescence (IIF) is carried out to identify antinuclear autoantibodies (ANA) in the HEp-2 cell. Current method of analyzing the results is inconsistent as it is limited to subjective factors such as experience and skill of the medical experts. Thus, there is a need for an automated recognition system to reduce the variability and increase the reliability of the test results. This paper proposes a pattern recognition algorithm consisting of statistical methods to extract seven textural features from the HEp-2 cell images followed by classification of staining patterns by using fuzzy logic. This method is applied to the data set of the ICPR 2012 contest. The textural features extracted are based on the first-order statistics and second-order statistics computed from grey level co-occurrence matrices (GLCM). The extracted features are then used as an input parameter to classify five staining patterns by using fuzzy logic. A working classification algorithm is developed and gives a mean accuracy of 84% out of 125 test images.
Keywords :
cellular biophysics; diseases; feature extraction; fuzzy logic; grey systems; image classification; image texture; matrix algebra; medical image processing; statistical analysis; ANA identification; GLCM; HEp-2 cell image classification; ICPR contest; IIF test; antinuclear autoantibody identification; autoimmune diseases; automated recognition system; first-order statistics; fuzzy logic; grey level co-occurrence matrices; human antigens; immune response; indirect immunofluorescence test; pattern recognition algorithm; second-order statistics; staining patterns classification; statistical texture analysis; subjective factors; textural feature extraction; Accuracy; Biomedical imaging; Diseases; Feature extraction; Fuzzy logic; Image segmentation; Pattern classification; Fuzzy logic; GLCM; first order statistics; staining patterns;
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.2014.6968493
Filename :
6968493
Link To Document :
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