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Nonlinear control system using learning Petri network
Authors:Masanao Ohbayashi  Kotaro Hirasawa  Singo Sakai  Jinglu Hu
Abstract:According to recent understanding of brain science, it is suggested that there is a distribution of functions in the brain, which means that different neurons are activated depending on which sort of sensory information the brain receives. We have already developed a learning network with a function distribution which is called the Learning Petri Network (LPN) and have shown that this network could learn nonlinear and discontinuous mappings which the Neural Network (NN) cannot. In this paper, a more realistic application which has dynamic characteristics is studied. From simulation results of a nonlinear crane control system using LPN controller, it is clarified that the control performance of LPN controller is superior to that of NN controller. © 2000 Scripta Technica, Electr Eng Jpn, 131(3): 58‐69, 2000
Keywords:neural network  learning Petri network  function distribution  optimization  nonlinear control
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