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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Optimal UWB Waveform Design Based on Radial Basis Function Neural Networks
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Optimal UWB Waveform Design Based on Radial Basis Function Neural Networks

机译:基于径向基函数神经网络的UWB波形优化设计

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摘要

We present a novel ultra-wideband waveform design algorithm based on the radial basis function neural network in this paper. The simplified implementation of this scheme is also put forward. With the aid of our proposed spectrum pruning technique, the produced waveforms can match arbitrary spectrum emission mask much more closely under the regulatory spectral constraint. Moreover, by taking the nonideal response of realistic UWB antennas into waveform designing process, the emission pulses with predistortion can be generated to efficiently compensate for the nonideal UWB antenna property. Two realization structures have also been investigated. Consequently, degradation in frequency utilization caused by any nonideal antenna can be substantially eliminated, and hence the practical transmission performance can be significantly enhanced.
机译:本文提出了一种基于径向基函数神经网络的新型超宽带波形设计算法。还提出了该方案的简化实现。借助我们提出的频谱修剪技术,在调节频谱约束下,生成的波形可以更紧密地匹配任意频谱发射模板。此外,通过将实际UWB天线的非理想响应纳入波形设计过程,可以生成具有预失真的发射脉冲,以有效地补偿非理想UWB天线的性能。还研究了两种实现结构。因此,可以基本上消除由任何非理想天线引起的频率利用率的降低,因此可以显着提高实际的传输性能。

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