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Semi-blind algorithms for automatic classification of digital modulation schemes

机译:用于数字调制方案自动分类的半盲算法

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摘要

The problem of automatic classification of digital communication modulation schemes is considered in this work. Firstly, the maximum likelihood (ML) classifier for classifying phase-amplitude modulated schemes in coherent environment is presented. It is well known that the ML classifier requires the knowledge of the signal-to-noise ratio (SNR) and has a higher computational complexity. To relax the first requirement, we introduce a novel idea to estimate the SNR and this gives rise to a novel estimated ML (EsML) classifier. After which, in an attempt to reduce the computational complexity of the EML and EsML classifiers, we propose a simplified minimum distance (MD) classifier. The performance of these classifiers are compared against each other's under the ideal channel condition as well as under a channel condition with an unknown carrier phase offset. In the second part of the paper, we adapt a closed form blind source separation (BSS) algorithm for rectifying the carrier phase offset prior to the actual classification procedures. (C) 2007 Elsevier Inc. All rights reserved.
机译:在这项工作中考虑了数字通信调制方案的自动分类问题。首先,提出了一种在相干环境下对相位幅度调制方案进行分类的最大似然分类器。众所周知,ML分类器需要了解信噪比(SNR),并且具有较高的计算复杂度。为了放松第一个要求,我们引入了一种新颖的想法来估计SNR,这产生了一种新颖的估计ML(EsML)分类器。之后,为了降低EML和EsML分类器的计算复杂度,我们提出了一种简化的最小距离(MD)分类器。将这些分类器的性能在理想信道条件下以及在载波相位偏移未知的信道条件下相互比较。在本文的第二部分中,我们采用了一种封闭形式的盲源分离(BSS)算法,以在实际分类程序之前纠正载波相位偏移。 (C)2007 Elsevier Inc.保留所有权利。

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