• The RBF network function approximation theory and method are introduced, and the method of nonlinear error correction of sensor is presented based on generalized regression neural network(GRNN).

    介绍了径向基函数网络函数逼近原理方法提出了一种基于广义回归神经网络(GRNN)的传感器非线性误差校正方法。

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  • Based on the learning characteristic of neural network and the function approximation ability of the wavelet, a new self tuning control algorithm is presented.

    依据非线性逼近能力神经网络学习特性,提出了种基于小波神经网络模型的自校正控制算法。

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  • This paper deals with the computational model for fuzzy reasoning neural network and its function approximation capability.

    研究模糊推理神经网络计算模型及其连续函数逼近能力

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  • The theoretical basis of ANN is function approximation, it USES a two - level feedforward neural network to approach arbitrary function to realize better power flow control.

    径向基函数神经网络理论基础函数逼近一个网络逼近任意函数,更好地进行潮流控制

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  • Due to its structural simplicity, the radial basis function (RBF) neural network has been widely used for approximation and classification.

    径向函数(RBF)神经网络结构简单广泛地用于非线性函数近似数据分类。

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  • This paper introduced a three layer BP neural network, and realized the approximation of a continuous function.

    构造一个BP神经网络实现了连续函数逼近

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  • Then the Neural Network PID control is realised in the model. This method makes full use of nonlinear function approximation of the Neural Network.

    这种方法充分利用神经网络非线性函数逼近能力,构造神经网络自整定PID控制器。

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  • RBF neural network is a kind of local approximation neural networks. In theory, it can approximate any continuous function if there is enough neuron.

    RBF神经网络局部逼近的神经网络理论上只要足够多的神经元,R BF神经网络可以任意精度逼近任意连续函数

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  • The network has the advantages of less hidden layers, simple operation and powerful function approximation capacity.

    网络具有运算简单函数逼近能力强特点

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  • In this paper, the function approximation of Gelenbe Neural Network (GNN) is discussed and it is proved that GNN can approximate any G-type polynomial by using constructional method.

    该文研究了G神经网络函数映射能力,给出了前馈g神经网络映射任意G多项式构造性证明

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  • Car used to enhance learning (Q learning), using neural network Q function approximation.

    小车采用加强学习(Qlearning),采用神经网络对Q函数逼近

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  • This paper introduces the radial basis function (RBF) network in the seismic data processing, and realizes the inserting data in seismic data processing with function approximation method.

    该文径向函数网络引入地震数据处理实现了函数逼近法地震数据的插值处理,实际地震数据处理中取得了较好的应用效果。

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  • For the problem that the input and output of real systems is a continuous process relative to time, this paper proposed a process neural network model for continuous function approximation.

    针对实际系统输入输出时间有关连续过程提出了一类用于连续过程逼近的过程神经元网络模型

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  • A new recurrent neural network based on B-spline function approximation is presented. The network can be easily trained and its training converges more quickly.

    提出一种新的基于基本样条逼近的循环神经网络网络易于训练且收敛速度快。

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  • A new recurrent neural network based on B-spline function approximation is presented. The network can be easily trained and its training converges more quickly.

    提出一种新的基于基本样条逼近的循环神经网络网络易于训练且收敛速度快。

    youdao

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