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Using Fisher information to quantify uncertainty in environmental parameters estimated from correlated ambient noise

机译:使用Fisher信息量化根据相关环境噪声估算的环境参数的不确定性

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摘要

Efforts to characterize environmental parameters from ambient noise must contend with uncertainty introduced by stochastic fluctuations of the noise itself. This Letter calculates the Fisher information and Cramer-Rao bound of an unbiased correlated ambient noise parameter estimate. As an illustration, lower bounds on the error covariance of medium speed and attenuation parameters are obtained for a two-dimensional isotropic ambient noise scenario. The results demonstrate that an optimal sensor separation exists for obtaining the minimum error and the predictions are validated using simulated parameter inversions. The influences of record length, bandwidth, signal-to-noise, and spatial resolution are discussed.
机译:从环境噪声表征环境参数的努力必须与噪声本身的随机波动所带来的不确定性相抗衡。这封信计算无偏相关环境噪声参数估计值的Fisher信息和Cramer-Rao界。作为说明,对于二维各向同性环境噪声场景,获得了中速和衰减参数的误差协方差的下限。结果表明,存在用于获得最小误差的最佳传感器间距,并且使用模拟参数反演验证了预测。讨论了记录长度,带宽,信噪比和空间分辨率的影响。

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