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Multicarrier Power Amplifier Linearization Based on Artificial Intelligent Methods

机译:基于人工智能方法的多载波功率放大器线性化

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摘要

This paper presents two new intelligent methods to linearize the Multi-Carrier Power Amplifiers (MCPA). One of the them is based on the Neuro-Fuzzy controller while the other uses two small neural networks as a polar predistorter. Neuro-Fuzzy controllers are not model based, and hence, have ability to control the nonlinear systems with undetermined parameters. Both methods are adaptive, low complex, and can be implemented in base-band part of the communication systems. The performance of the linearizers is obtained via simulation. The simulation is performed for three different scenarios; namely, a multi-carrier amplifier for GSM with four channels, a CDMA amplifier and a multi-carrier amplifier with two tones. The simulation results show that Neuro-Fuzzy Controller (NFC) and Neural Network Polar Predistorter (NNPP) have higher efficiencies so that reduce IMD3 by more than 42 and 32 dB, respectively. The practical implementation aspects of these methods are also discussed in this paper.
机译:本文提出了两种使多载波功率放大器(MCPA)线性化的新智能方法。其中一个基于Neuro-Fuzzy控制器,而另一个则使用两个小型神经网络作为极性预失真器。 Neuro-Fuzzy控制器不是基于模型的,因此具有控制参数不确定的非线性系统的能力。两种方法都是自适应的,低复杂度的,并且可以在通信系统的基带部分中实现。线性化器的性能通过仿真获得。仿真是针对三种不同的情况执行的;即,具有四个信道的GSM多载波放大器,CDMA放大器和具有两个音调的多载波放大器。仿真结果表明,神经模糊控制器(NFC)和神经网络极性预失真器(NNPP)具有更高的效率,从而分别将IMD3降低了42和32 dB以上。本文还讨论了这些方法的实际实现方面。

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