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首页> 外文期刊>Information Forensics and Security, IEEE Transactions on >Modulation Recognition in Continuous Phase Modulation Using Approximate Entropy
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Modulation Recognition in Continuous Phase Modulation Using Approximate Entropy

机译:近似熵的连续相位调制中的调制识别

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摘要

Modulation recognition finds its application in today's cognitive systems ranging from civilian to military installations. Existing modulation classification algorithms include classic likelihood approaches and feature-based approaches. In this study, approximate entropy, a nonlinear method to analyze a time series, is proposed as a unique characteristic of a modulation scheme. It is projected as a robust feature to identify signal parameters such as number of symbol levels, pulse lengths, and modulation indices of a continuous phase modulated (CPM) signal. The method is then extended to classify CPM signals with differing pulse shapes, which include raised cosine and Gaussian pulses with varying roll-off factors and bandwidth-time products, respectively. This approximate entropy feature-based approach results in high classification accuracies for a variety of signals and performs robustly even in the presence of synchronization errors and carrier phase offsets. Results are presented in the form of extensive simulations.
机译:调制识别在当今的认知系统中得到了应用,范围从民用到军事设施。现有的调制分类算法包括经典似然方法和基于特征的方法。在这项研究中,提出了近似熵(一种分析时间序列的非线性方法)作为调制方案的独特特征。它被认为是一种可靠的功能,可以识别信号参数,例如符号级别数,脉冲长度和连续相位调制(CPM)信号的调制指数。然后扩展该方法以对具有不同脉冲形状的CPM信号进行分类,其中包括分别具有变化的滚降因子和带宽-时间乘积的升余弦和高斯脉冲。这种基于近似熵特征的方法可为各种信号提供较高的分类精度,并且即使在存在同步错误和载波相位偏移的情况下,也能稳定运行。结果以广泛的模拟形式呈现。

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