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Metrics and Methods for Benchmarking of RF Transmitter Behavioral Models With Application to the Development of a Hybrid Memory Polynomial Model

机译:射频发射机行为模型基准测试的度量和方法及其在混合记忆多项式模型开发中的应用

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摘要

This paper presents a study of performance evaluation metrics for behavioral models of power amplifiers and transmitters. A novel normalized absolute mean spectrum error criterion is proposed as a performance evaluation metric along with a method for accurate benchmarking of behavioral models and their ability to predict the in-band response, static nonlinearity, and memory effects of the device under test. The proposed metric and method are validated with a study of different memory polynomial based models, focusing on the model accuracy, complexity, and identification robustness. This experimental validation highlights the robustness of the proposed metric and its ability to accurately quantify the performance of several behavioral models in predicting the static nonlinearity and memory effects of the device under test for several test conditions. In addition, the results of the comparative study between the memory polynomial models are used to propose a hybrid memory polynomial model. The superiority of the proposed model is assessed by comparing its performance to that of the studied memory polynomial models.
机译:本文介绍了功率放大器和发射器行为模型的性能评估指标。提出了一种新颖的归一化绝对平均频谱误差准则,作为性能评估指标,以及一种行为模型的准确基准测试方法以及它们预测被测设备的带内响应,静态非线性和存储效应的能力。通过研究基于内存多项式的不同模型来验证所提出的度量和方法,重点是模型的准确性,复杂性和识别鲁棒性。该实验验证突出了所提出度量的鲁棒性及其在预测几种测试条件下被测设备的静态非线性和记忆效应时准确量化几种行为模型性能的能力。此外,将记忆多项式模型之间的比较研究结果用于提出混合记忆多项式模型。通过将其性能与研究的记忆多项式模型进行比较,可以评估所提出模型的优越性。

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