Breast Cancer Detection and classification Using Artificial Neural Networks

被引:8
|
作者
Hamad, Yousif A. [1 ]
Simonov, Konstantin [2 ]
Naeem, Mohammad B. [3 ]
机构
[1] Siberian Fed Univ, Inst Space & Informat Sci, Krasnoyarsk, Russia
[2] Russian Acad Sci, Siberian Branch, Inst Computat Modeling, Krasnoyarsk, Russia
[3] Al Maaref Univ Coll, Dept Comp Sci, Ramadi, Iraq
关键词
Image processing; Breast Tumors; Noise Reduction DWT; PNN-RBF; Contour initialization; TISSUE;
D O I
10.1109/AiCIS.2018.00022
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Image processing techniques play an important role in the diagnostics and detection of diseases and monitoring the patients having these diseases. Breast Cancer detection of medical images is one of the most important elements of this field. Because of low contrast and ambiguous the structure of the tumor cells in breast images, it is still a challenging task to automatically segment the breast tumors. Our method presents an innovative approach to the diagnosis of breast tumor incorporates with some noise removal functions, followed by improvement features and gain better characteristics of medical images for a right diagnosis using balance contrast enhancement techniques (BCET). The results of second stage is subjected to image segmentation using Fuzzy c-Means (FCM) clustering method and Thresholding method to segment the out boundaries of the breast and to locate the Breast Tumor boundaries (shape, area, spatial sizes, etc.) in the images. The third stage feature extraction using Discrete Wavelet Transform (DWI). Finally the artificial neural network will be used to classify the stage of Breast Tumor that is benign, malignant or normal. The early detection of Breast tumor will improves the chances of survival for the patient Probabilistic Neural Network (PNN) with radial basis function will be employed to implement an automated breast tumor classification. The simulated results shown that classifier and segmentation algorithm provides better accuracy than previous method. Proper segmentation is mandatory for efficient feature extraction and classification.
引用
收藏
页码:51 / 57
页数:7
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