Detection and classification of masses in mammograms using ICA

Detection and classification of masses in mammograms using ICA

EnglishPaperback / softbackPrint on demand
García-Manso, A.
LAP Lambert Academic Publishing
EAN: 9783659452048
Print on demand
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Detailed information

This work is focused on the detection and classification of masses in mammograms. The masses are one of the main indicators of the existence of breast cancer, malignant or benign. For this, here has been developed a detection and classification system of masses in mammograms. This system consists of a set of artificial intelligence techniques such as feature extraction (Principal Component Analysis, PCA, and Independent Component Analysis, ICA) and pattern classification using neural networks (Multilayer Perceptron) and SVM classifiers. The detection and classification of lesions in mammograms is an extremely hard task because of the large variability that the lesions may have, despite being of the same type. In addition, there is the variability that the mammograms may present depending on the breast tissue predominant in the breast and its distribution. Often, this may cause that cancer might appear obscured, masked by the surrounding breast tissue which makes it very difficult to detect.
EAN 9783659452048
ISBN 3659452041
Binding Paperback / softback
Publisher LAP Lambert Academic Publishing
Pages 176
Language English
Dimensions 220 x 150
Authors García-Manso, A.; García-Orellana, C. J.