Diagnosis Model Based Neutral-network in Galactophore Cancer Cell Identification
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R736.3 TP183

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    Abstract:

    To the classified problem of the Galactophore Cancer Cell Identification, the paper researched the classified mechanism and optimized parameter for more-layer radial basis function (RBF) network, adopted the method of gradient descent with momentum and adaptive learned backpropagation, constructed the two-model of the Galactophore Cancer Cell Identification based on BP Neural-Network and RBF Network. Classified principle based on RBF Neural network was also discussed, and the method for data processing was studied. RBF network has more advantage, such as fault tolerance, nonlinear mapping, etc.. Experiment results show that, on the model based RBF Neural Network, performance is steady, training time is short and classified results are good.

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刘琼苏 何离庆.基于人工种经网络的乳腺癌诊断模型[J].重庆大学学报,2003,26(4):70~72

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  • Received:
  • Revised:November 14,2002
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