Article citationsMore>>
Golub, T., Slonim, D., Tamayo, P., Huard, C., Gaasenbeek, M., Mesirov, J., Coller, H., Loh, M., Downing, J., Caligiuri, M., Bloomfield, C. and Lander, E. (2012) Molecular Classification of Cancer: Class Discovery and Class Prediction by Gene Expression Monitoring. Science, 286, 531-537.
http://dx.doi.org/10.1126/science.286.5439.531
has been cited by the following article:
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TITLE:
Classification Using Two Layer Neural Network Back Propagation Algorithm
AUTHORS:
K. A. Mohamed Junaid
KEYWORDS:
Breast Cancer, Back Propagation, Neural Network, Mammogram, Sonography
JOURNAL NAME:
Circuits and Systems,
Vol.7 No.8,
June
6,
2016
ABSTRACT: Worldwide breast cancer is the most common form of cancer death occurring in 12.6% of women. This paper presents a cost effective approach to classify the normal, malignant and benign tumor using two layer neural network back propagation algorithm. Back propagation algorithm is used to train the neural network. Parallelization techniques speed up the computation process and as a result two layer neural networks outperform the previous work in terms of accuracy. Breast cancer tumor database used for the testing purpose is from the CIA machine learning repository. The highest accuracy of 97.12% is achieved using the two layer neural network back propagation algorithm.
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