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The Estimated Signal Parameter Detector: Incorporating Signal Parameter Statistics Into the Signal Processor

机译:估计信号参数检测器:将信号参数统计信息整合到信号处理器中

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摘要

Acoustic propagation through a time-varying and spatially varying environment can produce variations in the received signal over multiple observations, possibly degrading receiver performance. This paper presents a signal processing structure that utilizes knowledge of received signal statistics to recoup lost performance. Recent research has shown that received signal parameter statistics can be calculated using Monte Carlo simulation and knowledge of ocean environment properties and processes. The processor possesses an estimator–correlator structure, and is referred to in this paper as the estimated signal parameter detector (ESPD). To demonstrate ESPD performance, the derivation is implemented to distinguish between monotone sinusoids with Gaussian-distributed amplitudes with identical means but different variances, embedded in zero-mean white Gaussian noise. In general, the amplitude distributions can possess any form and the noise distribution must belong to a general class of probability density functions (pdfs). The present assumptions allow for analytical results, and performance of the ESPD is seen to depend upon the signal-to-noise ratio (SNR) as well as the difference between the amplitude variances. Larger SNR and greater difference in amplitude variance result in better receiver performance, eventually leading to an asymptotic performance bound prediction.
机译:在时变和空间变化的环境中传播声音会在多次观察中产生接收信号的变化,从而可能会降低接收器的性能。本文提出了一种信号处理结构,该结构利用接收到的信号统计信息来弥补丢失的性能。最近的研究表明,可以使用蒙特卡洛模拟以及对海洋环境特性和过程的了解来计算接收信号参数的统计数据。该处理器具有估计器-相关器结构,在本文中称为估计信号参数检测器(ESPD)。为了证明ESPD的性能,需要进行推导来区分具有高斯分布幅度的单调正弦曲线,其均值相同但方差相同,并且嵌入零均值高斯白噪声中。通常,振幅分布可以具有任何形式,并且噪声分布必须属于概率密度函数(pdfs)的一般类别。目前的假设可以得出分析结果,并且ESPD的性能取决于信噪比(SNR)以及幅度变化之间的差异。较大的SNR和较大的幅度变化差异会导致更好的接收器性能,最终导致渐近性能边界预测。

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