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Memory models for behavioral modeling and digital predistortion of envelope tracking power amplifiers

机译:包络跟踪功率放大器的行为建模和数字预失真存储模型

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New advanced Envelope Tracking (ET) techniques can provide RF (Radio Frequency) transmitters with high-efficiency Power Amplifiers (PM). On the other hand, system complexity substantially increases, requiring more advanced PA models for the representation and compensation of ET PA distortion effects. In this context, this paper proposes some solutions for behavioral modeling and digital predistortion of ET PAs. The adopted modeling strategy consists in including the modulated supply voltage as an additional independent model variable to define more accurate behavioral models capable of an increased accuracy when applied to model and compensate ET PAs. The new model variable is included in a polynomial model with memory whose nonlinear structure is derived from a binomial power series, whence the name of Memory Binomial Model (MBM). Another modeling approach is subsequently proposed, where the Cann model for static PA AM/AM nonlinearities is extended to model both AM/AM and AM/PM dynamic distortion occurring in ET PAs. The Extended Cann model includes an MBM structure for modeling dynamic AM/PM distortion effects. Both modeling approaches are tested on measured data-sets acquired using an ET measurement set-up including a commercial PA from RFMD and an envelope modulator designed using a commercial IC from Texas Instruments. The measured results showed that the proposed models could obtain a better modeling and predistortion performance when applied to ET PAs, with respect to the Memory Polynomial Model, here considered as a reference to represent the state-of-the-art of PA modeling and digital predistortion. (C) 2015 Elsevier B.V. All rights reserved.
机译:新的先进信封跟踪(ET)技术可以为RF(射频)发射机提供高效的功率放大器(PM)。另一方面,系统复杂度大大增加,需要更高级的PA模型来表示和补偿ET PA失真效应。在这种情况下,本文为ET PA的行为建模和数字预失真提出了一些解决方案。所采用的建模策略包括将调制电源电压作为附加的独立模型变量,以定义更准确的行为模型,这些行为模型在应用于ET PA建模和补偿时能够提高准确性。新的模型变量包含在带有内存的多项式模型中,该内存的非线性结构是从二项式幂级数得出的,因此称为内存二项式模型(MBM)。随后提出了另一种建模方法,其中扩展了用于静态PA AM / AM非线性的Cann模型以对ET PA中发生的AM / AM和AM / PM动态失真进行建模。 Extended Cann模型包括一个MBM结构,用于对动态AM / PM失真效果进行建模。两种建模方法都在使用ET测量设置获取的测量数据集上进行了测试,这些测量设置包括RFMD的商用PA和使用Texas Instruments的商用IC设计的包络调制器。测量结果表明,相对于记忆多项式模型,本文提出的模型在应用于ET PA时可以获得更好的建模和预失真性能,这里被认为是代表PA建模和数字化的最新技术预失真。 (C)2015 Elsevier B.V.保留所有权利。

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