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Non-Data-Aided Symbol Rate Estimation of Linearly Modulated Signals

机译:线性调制信号的非数据辅助符号率估计

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The estimation of the symbol rate of a linearly modulated signal is addressed, with special focus on low signal-to-noise ratio (SNR) scenarios. This problem finds application in automatic modulation classification and signal monitoring. A maximum-likelihood (ML) approach is adopted to derive practical estimators, exploiting information on the cyclostationarity of the modulated signal as well as knowledge of the received signaling pulse shape. The structure of the ML estimator suggests a two-step estimation procedure, whereby an initial coarse search determines first a neighborhood from which a subsequent fine search yields the final symbol rate estimate. Links between the ML approach and previous results from the literature in symbol rate estimation are established as well. The proposed scheme is applicable even for small excess bandwidths, at the cost of a higher complexity with respect to simpler estimators known to fail under such conditions.
机译:解决了线性调制信号的符号率估计问题,特别关注低信噪比(SNR)方案。该问题在自动调制分类和信号监视中得到应用。采用最大似然(ML)方法来推导实际的估计量,它利用有关调制信号的循环平稳性的信息以及接收到的信号脉冲形状的知识。 ML估计器的结构建议采用两步估计程序,由此初始粗略搜索首先确定一个邻域,随后的精细搜索将从该邻域产生最终符号率估计。机器学习方法与文献中符号率估计的先前结果之间也建立了联系。相对于已知的在这种情况下失败的简单估计器,所提出的方案甚至适用于较小的多余带宽,但以更高的复杂性为代价。

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