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Fuzzy neural network based on rectangle functions and its application

机译:基于矩形函数的模糊神经网络及其应用

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Fuzzy neural network (FNN) based on rectangle functions is constructed by partitioning input space into many disjoint hyper-cubes with the same size. FNN is constant in each of the hyper-cubes. If and only if an input sample drops into a hyper-cube would the corresponding sample be memorized through coding. Moreover, FNN can generate fuzzy rules automatically. For the control of a nonlinear system, a theorem about static error shows that static error can be decreased for small enough partition of the input space. Simulation example shows that result is satisfactory.
机译:通过将输入空间划分为许多大小相同的不相交的超立方体,构造了基于矩形函数的模糊神经网络。在每个超立方体中,FNN都是恒定的。当且仅当输入样本落入超立方体时,才会通过编码存储对应的样本。而且,FNN可以自动生成模糊规则。对于非线性系统的控制,关于静态误差的定理表明,对于输入空间足够小的分区,可以减小静态误差。仿真实例表明结果令人满意。

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