Tuning the structure and parameters of a neural network using an orthogonal simulated annealing algorithm

Pervasive Computing(2009)

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摘要
In this paper, an orthogonal simulated annealing algorithm (OSA) is applied to get an optimal network structure and parameters of a feedforward neural network at the same time. An orthogonal experimental design which based on OSA could efficiently generate large good candidate solutions by using a few computing cost. High performance of OSA-based method can be shown to efficiently obtain more accurate solution in prediction of the sunspot numbers problem, compare with other exited methods.
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关键词
neural nets,simulated annealing,feedforward neural network,optimal network structure,orthogonal simulated annealing algorithm,neural network,simulated annealing algorithm,experimental design,prediction algorithms,genetics,artificial neural networks,magnetics,tuning
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