直接学习和间接学习预失真结构的比较

H. Paaso, A. Mämmelä
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引用次数: 104

摘要

通信系统中的功率放大器具有固有的非线性。数字预失真器可以补偿这些非线性效应。本文对直接学习和间接学习两种记忆多项式预失真器进行了比较。据我们所知,没有发表过类似的比较。这两种体系结构都是自调优控制的特殊情况。利用Matlab对预失真器进行了建模,分析了功率放大器的非线性效应及其数字补偿。仿真结果表明,该记忆多项式模型存在大振幅下的收敛问题和表示精度问题。我们观察到,补偿的结果不仅取决于频率,还取决于振幅。线性化的结果表明,直接学习架构在几乎所有情况下都能取得更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of direct learning and indirect learning predistortion architectures
Power amplifiers in a communication system are inherently nonlinear. Digital predistorters can compensate these nonlinearity effects. In this paper, two memory polynomial predistorters including direct and indirect learning architectures are compared with each other. To the best of our knowledge, no similar comparisons have been published. Both of these architectures are special cases of the self-tuning control. We have modeled predistorters and analysed nonlinear effects of a power amplifier and their digital compensation by using Matlab¿. Simulation results show that the memory polynomial model has convergence problems at large amplitudes and also problems of accuracy of representation. We observed that the results of the compensation depend also on the amplitude, not only on the frequency. The results of the linearisation show that the direct learning architecture achieves a better performance in almost all cases.
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