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A Linear Prediction Based Estimation of Signal-to-Noise Ratio in AWGN Channel

机译:基于线性预测的AWGN信道信噪比估计

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摘要

Most signal-to-noise ratio (SNR) estimation techniques in digital communication channels derive the SNR estimates solely from samples of the received signal after the matched filter. They are based on symbol SNR and assume perfect synchronization and intersymbol interference (ISI)-free symbols. In severe channel distortion where ISI is significant, the performance of these estimators badly deteriorates. We propose an SNR estimator which can operate on data samples collected at the front-end of a receiver or at the input to the decision device. This will relax the restrictions over channel distortions and help extend the application of SNR estimators beyond system monitoring. The proposed estimator uses the characteristics of the second order moments of the additive white Gaussian noise digital communication channel and a linear predictor based on the modified-covariance algorithm in estimating the SNR value. The performance of the proposed technique is investigated and compared with other in-service SNR estimators in digital communication channels. The simulated performance is also compared to the Cramer-Rao bound as derived at the input of the decision circuit.
机译:数字通信信道中的大多数信噪比(SNR)估计技术仅从匹配滤波器之后的接收信号样本中得出SNR估计。它们基于符号SNR,并假定具有完美的同步和无符号间干扰(ISI)的符号。在ISI很大的严重信道失真中,这些估计器的性能会严重下降。我们提出了一种SNR估计器,该估计器可以对在接收机前端或决策设备的输入处收集的数据样本进行运算。这将放宽对信道失真的限制,并有助于将SNR估计器的应用范围扩展到系统监控之外。所提出的估计器利用加性高斯白噪声数字通信信道的二阶矩特性和基于改进协方差算法的线性预测器来估计SNR值。研究了所提出技术的性能,并将其与数字通信信道中的其他服务中SNR估计器进行了比较。还将模拟性能与决策电路输入处得出的Cramer-Rao界限进行比较。

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