Robust QAM modulation classification via moment matrices

H. Hadinejad-Mahram, A. Hero
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引用次数: 9

Abstract

We discuss a method for classification of digitally modulated signals based on performing subspace decomposition on a positive definite matrix of higher order moments of the received signals. Specifically, we specialize a general approach originally introduced for detection and classification of noise contaminated patterns to the case of digitally modulated signals such as M-ary PSK and QAM. We consider two different classifiers: one that provides only satisfactory performance for high signal-to-noise ratio, and one that performs also well in the low SNR regime. The former has the additional advantage of being invariant to both unknown phase angle (rotation) and signal amplitude, and can be used for all QAM signal constellations (including M-ary PSK), whereas the latter is only used for discrimination of M-ary PSK signals. Using simulation, we analyze the performance of the proposed classifier for transmission over the additive white Gaussian noise channel and both coherent and non-coherent reception. Moreover, the robustness of the classifier against mismatched noise modeling is discussed.
基于矩矩阵的稳健QAM调制分类
讨论了一种基于对接收信号的高阶矩正定矩阵进行子空间分解的数字调制信号分类方法。具体而言,我们将最初引入的用于检测和分类噪声污染模式的一般方法专门用于数字调制信号(如m - mary PSK和QAM)的情况。我们考虑了两种不同的分类器:一种只在高信噪比下提供令人满意的性能,另一种在低信噪比下也表现良好。前者具有对未知相位角(旋转)和信号幅度不变的额外优点,可用于所有QAM信号星座(包括M-ary PSK),而后者仅用于M-ary PSK信号的识别。通过仿真,我们分析了所提出的分类器在加性高斯白噪声信道上的传输性能以及相干和非相干接收的性能。此外,还讨论了分类器对不匹配噪声建模的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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