DocumentCode :
3290407
Title :
The Scheduling of Flexible Manufacturing System Based on RBF Neural Network
Author :
Yu, Lianqing ; Zhang, Zhiming ; Mei, Shunqi
Author_Institution :
Sch. of Mech. & Electr. Eng., Wuhan Univ. of Sci. & Eng., Wuhan, China
fYear :
2009
fDate :
16-17 May 2009
Firstpage :
678
Lastpage :
681
Abstract :
Improving the procedure management for flexible manufacturing system (FMS) is still one of the main topics in present industries. In this paper, a radial basis function neural network (RBF-NN) model is proposed to schedule jobs in a general FMS. First, a FMS and the problem are described. Then, a RBF-NN is presented; the iterative training algorithm employs the gradient algorithm to minimize a function that measures the difference between the network output and the desired one. Finally, according to some scheduling rules the ideal configuration of the RBF-NN that is used for the criterion of mean tardiness is figured out. The ideal configuration of the RBF-NN has 8 input nodes, 17 nodes in the hidden layer, and 13 nodes in the output layer. Simulation results show that the combinations are the optimal strategies.
Keywords :
flexible manufacturing systems; gradient methods; job shop scheduling; radial basis function networks; RBF neural network; flexible manufacturing system; gradient algorithm; iterative training algorithm; mean tardiness; procedure management; radial basis function neural network; scheduling; Flexible manufacturing systems; Iterative algorithms; Job shop scheduling; Least squares approximation; Manufacturing industries; Manufacturing processes; Manufacturing systems; Mathematical model; Neural networks; Radial basis function networks; flexible manufacturing system; neural network; radial basis function; scheduling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Circuits, Communications and Systems, 2009. PACCS '09. Pacific-Asia Conference on
Conference_Location :
Chengdu
Print_ISBN :
978-0-7695-3614-9
Type :
conf
DOI :
10.1109/PACCS.2009.137
Filename :
5232416
Link To Document :
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