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A Novel Evolutionary Feedforward Neural Network with Artificial Immunology

A Novel Evolutionary Feedforward Neural Network with Artificial Immunology
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摘要 A hybrid algorithm to design the multi layer feedforward neural network was proposed. Evolutionary programming is used to design the network that makes the training process tending to global optima. Artificial immunology combined with simulated annealing algorithm is used to specify the initial weight vectors, therefore improves the probabiligy of training algorithm to converge to global optima. The applications of the neural network in the modulation style recognition of analog modulated rader signals demonstrate the good performance of the network. A hybrid algorithm to design the multi layer feedforward neural network was proposed. Evolutionary programming is used to design the network that makes the training process tending to global optima. Artificial immunology combined with simulated annealing algorithm is used to specify the initial weight vectors, therefore improves the probabiligy of training algorithm to converge to global optima. The applications of the neural network in the modulation style recognition of analog modulated rader signals demonstrate the good performance of the network.
出处 《Journal of Shanghai Jiaotong university(Science)》 EI 2003年第1期40-42,共3页 上海交通大学学报(英文版)
关键词 前馈神经网络 人工智能 人工免疫学 进化算法 feedforward neural networks evolutionary programming artificial immunology
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