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Distributed SNR Estimation With Power Constrained Signaling Over Gaussian Multiple-Access Channels

机译:高斯多路访问信道上功率受限信令的分布式SNR估计

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摘要

A sensor network is used for distributed signal-to-noise ratio (SNR) estimation in a single-time snapshot. Sensors observe a signal embedded in noise, and each observation is phase modulated using a constant-modulus scheme and transmitted over a Gaussian multiple-access channel to a fusion center. At the fusion center, the mean and variance are estimated jointly, using an asymptotically minimum-variance estimator. It is shown that this joint estimator decouples into simple individual estimators of the mean and the variance. The constant-modulus phase modulation scheme ensures a fixed transmit power, robust estimation across several sensing noise distributions, as well as an SNR estimate that requires a single set of transmissions from the sensors to the fusion center. The estimators are evaluated in terms of asymptotic variance, which are then used to evaluate the performance of the SNR estimator with Gaussian and Cauchy sensing noise distributions in the cases of total transmit power constraint as well as a per-sensor power constraint. For each sensing noise distribution, the optimal phase transmission parameters are also determined. The asymptotic relative efficiency of the estimators is evaluated. It is shown that among the noise distributions considered, the estimators are asymptotically efficient only when the noise distribution is Gaussian. Simulation results corroborate analytical results.
机译:传感器网络用于一次性快照中的分布式信噪比(SNR)估计。传感器观察嵌入在噪声中的信号,并且每个观察都使用恒模方案进行相位调制,并通过高斯多路访问信道传输到融合中心。在融合中心,使用渐近最小方差估算器共同估算均值和方差。结果表明,该联合估计量解耦为均值和方差的简单个体估计量。恒定模数相位调制方案可确保固定的发射功率,跨多个感测噪声分布的鲁棒估计以及需要从传感器到融合中心的单组传输的SNR估计。在渐近方差方面评估估计器,然后在总发射功率约束以及每个传感器功率约束的情况下,将其用于评估具有高斯和柯西感应噪声分布的SNR估计器的性能。对于每个感测噪声分布,还确定了最佳的相位传输参数。估计量的渐近相对效率。结果表明,在所考虑的噪声分布中,只有当噪声分布为高斯分布时,估计量才是渐近有效的。仿真结果证实了分析结果。

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