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Multiple-Antenna Emitters Identification Based on a Memoryless Power Amplifier Model

机译:基于无记忆功率放大器模型的多天线发射器识别

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摘要

Power amplifier (PA) nonlinearity is typically unique at the radio frequency (RF) front-end for particular emitters. It can play a crucial role in the application of specific emitter identification (SEI). In this paper, under the Multi-Input Multi-Output (MIMO) multipath communication scenario, two data-aided approaches are proposed to identify multi-antenna emitters using PA nonlinearity. Built upon a memoryless polynomial model, the first approach formulates a linear least square (LLS) problem and presents the closed-form solution of nonlinear coefficients in a MIMO system by means of singular value decomposition (SVD) operation. Another alternative approach estimates nonlinear coefficients of each individual PA through nonlinear least square (NLS) solved by the regularized Gauss–Newton iterative scheme. Moreover, there are some practical discussions of our proposed approaches about the mismatch of the order of PA model and the rank-deficient condition. Finally, the average misclassification rate is derived based on the minimum error probability (MEP) criterion, and the proposed approaches are validated to be effective through extensively numerical simulations.
机译:功率放大器(PA)的非线性通常在特定发射器的射频(RF)前端处是独特的。它在特定发射器标识(SEI)的应用中可以发挥至关重要的作用。在多输入多输出(MIMO)多路径通信的情况下,本文提出了两种数据辅助方法,以利用PA非线性识别多天线发射器。在无记忆多项式模型的基础上,第一种方法制定了线性最小二乘(LLS)问题,并通过奇异值分解(SVD)操作提出了MIMO系统中非线性系数的闭式解。另一种替代方法是通过正则化的高斯-牛顿迭代方案求解的非线性最小二乘法(NLS)估算每个独立PA的非线性系数。此外,对于我们提出的关于PA模型的阶次不匹配和秩不足条件的方法,有一些实际的讨论。最后,基于最小错误概率(MEP)准则得出平均错误分类率,并通过广泛的数值模拟验证了所提方法的有效性。

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