DocumentCode :
3498721
Title :
A novel neural network inspired from Neuroendocrine-Immune System
Author :
Liu Bao ; Wang Junhong ; Qu Huachao
Author_Institution :
Inf. & Control Eng. Coll., China Univ. of Pet., Dongying, China
fYear :
2011
fDate :
July 31 2011-Aug. 5 2011
Firstpage :
2382
Lastpage :
2386
Abstract :
Inspired by the modulation mechanism of Neuroendocrine-Immune System (NEIs), this paper presents a novel structure of artificial neural network named NEI-NN as well as its evolutionary method. The NEI-NN includes two parts, i.e. positive sub-network (PSN) and negative sub-network (NSN). The increased and decreased secretion functions of hormone are designed as the neuron functions of PSN and NSN, respectively. In order to make the novel neural network learn quickly, we redesign the novel neuron, which is different from those of conventional neural networks. Besides the normal input signals, two control signals are also considered in the proposed solution. One control signal is the enable/disable signal, and the other one is the slope control signal. The former can modify the structure of NEI-NN, and the later can regulate the evolutionary speed of NEI-NN. The NEI-NN can obtain the optimized network structure during the evolutionary process of weights. We chooses a second order with delay model to examine the performance of novel neural network. The experiment results show that the optimized structure and learning speed of NEI-NN are better than the conventional neural network.
Keywords :
evolutionary computation; modulation; neural nets; artificial neural network; evolutionary process; modulation mechanism; negative subnetwork; neuroendocrine-immune system; positive subnetwork; secretion function; Biochemistry; Biological neural networks; Endocrine system; Immune system; Indexes; Modulation; Neurons;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks (IJCNN), The 2011 International Joint Conference on
Conference_Location :
San Jose, CA
ISSN :
2161-4393
Print_ISBN :
978-1-4244-9635-8
Type :
conf
DOI :
10.1109/IJCNN.2011.6033527
Filename :
6033527
Link To Document :
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