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Neural node, a netowrk and a chaotic annealing optimization method for the network

机译:神经节点,网络和该网络的混沌退火优化方法

摘要

The present invention is a node for a network that combines a Hopfield and Tank type neuron, having a sigmoid type transfer function, with a nonmonotonic neuron, having a transfer function such as a parabolic transfer function, to produce a neural node with a deterministic chaotic response suitable for quickly and globally solving optimizatioin problems and avoiding local minima. The node can be included in a completely connected single layer network. The Hopfield neuron operates continuously while the nonmonotonic neuron operates periodically to prevent the network from getting stuck in a local optimum solution. The node can also be included in a local area architecture where local areas can be linked together in a hierarchy of nonmonotonic neurons.
机译:本发明是一种用于网络的节点,该网络将具有S形类型传递函数的Hopfield和Tank型神经元与具有诸如抛物线传递函数的传递函数的非单调神经元相结合,以产生具有确定性混沌的神经节点。适用于快速,全局解决优化问题并避免局部最小值的响应。该节点可以包含在完全连接的单层网络中。 Hopfield神经元连续运行,而非单调神经元定期运行,以防止网络陷入局部最优解中。该节点也可以包含在局部区域体系结构中,其中局部区域可以在非单调神经元的层次结构中链接在一起。

著录项

  • 公开/公告号US5134685A

    专利类型

  • 公开/公告日1992-07-28

    原文格式PDF

  • 申请/专利权人 WESTINGHOUSE ELECTRIC CORP.;

    申请/专利号US19900475507

  • 发明设计人 DAVID ROSENBLUTH;

    申请日1990-02-06

  • 分类号G06F15/00;

  • 国家 US

  • 入库时间 2022-08-22 05:22:31

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