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A Modified Difference Hopfield Neural Network and its application

机译:修改差异Hovfield神经网络及其应用

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A modified difference Hopfield neural network is proposed to overcome the multiple local minimum problem of normal difference Hopfield neural network. On conditions that the modified Hopfield neural network works in a parallel mode and its interconnection weight matrix is negative, it has only one stable state, and the stable state can make its energy function reach to its only minimum. On the basis of the relation between the stability of the modified difference Hopfield network and its energy function's convergence, the modified Hopfield network is applied to solve LQ dynamic optimization control problems for time-varying systems. It can be constructed by building the equivalence between the energy function of the modified Hopfield network and the performance Index of controlled system. As a result, solving LQ dynamic optimization control problem is equivalent to operating associated modified difference Hopfield network from any initial state to the stable state that represents the desired optimal control vector. The simulation results agree well with theoretical analysis.
机译:建议修改差异Hopfield神经网络克服了正常差异Hovfield神经网络的多个局部最小问题。在改进的Hopfield神经网络在并联模式下工作的条件和其互连权重矩阵为负的条件下,它只有一个稳定状态,稳定状态可以使其能量功能达到其唯一最小值。基于修改差异Hopfield网络的稳定性与其能量函数的趋同之间的关系,应用了改进的Hopfield网络,解决了时变系统的LQ动态优化控制问题。它可以通过建立改进的Hopfield网络的能量函数与受控系统性能指标之间的等价来构造。结果,求解LQ动态优化控制问题等同于从任何初始状态到表示所需最优控制矢量的稳定状态的操作相关修改差异Hovfield网络。模拟结果与理论分析很好。

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