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A Neural Network Based Nonlinear Temporal-Spatial Noise Rejection System

机译:基于神经网络的非线性时空噪声抑制系统

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This paper proposes a nonlinear temporal-spatial noise rejection system on the basis of mapping neural networks. With the universe nonlinear mapping capability of these neural networks and related learning algorithms, the proposed system can offer better noise rejection performance than traditional methods in the case that the related unknown system is nonlinear or non-minimum phase and in the case that the length of the learning system does not fit the length of the unknown system. It can then serve as an alternative tool for many applications of noise rejection and this was confirmed by the simulations results.
机译:本文提出了一种基于映射神经网络的非线性时空噪声抑制系统。借助这些神经网络的宇宙非线性映射能力和相关的学习算法,在相关未知系统是非线性或非最小相位的情况下,以及在系统的长度不小的情况下,该系统可以提供比传统方法更好的噪声抑制性能。学习系统不适合未知系统的长度。然后,它可以用作许多噪声抑制应用的替代工具,仿真结果证实了这一点。

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