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Application of neural waveform predistortion to experimental TWT data

机译:神经波形预失真在实验TWT数据中的应用

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An evaluation is made of the predistorter's achievable performance using HPA (high-power amplifier) models matched to experimental TWT data. How the neural net capability for inverse modeling, and then as predistorter, is related to the various TWTs that must be fitted is discussed. A supervised neural net is used with one internal neuron and no more than 10 internal unit, and the backpropagation algorithm for the learning process. The results related to TWT data obtained confirm the performances achievable with the generic TWT model: an average gain of 3 dB for the 64-QAM and an average gain of 5.5 dB for the 256-QAM systems, with respect to a baseband predistorter.
机译:使用与实验TWT数据匹配的HPA(高功率放大器)模型对预失真器可实现的性能进行评估。讨论了用于逆建模(然后作为预失真器)的神经网络功能如何与必须拟合的各种TWT相关联。一个监督神经网络与一个内部神经元和不超过10个内部单元一起使用,并采用反向传播算法进行学习。与获得的TWT数据相关的结果证实了通用TWT模型可实现的性能:相对于基带预失真器,64-QAM的平均增益为3 dB,而256-QAM系统的平均增益为5.5 dB。

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