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与离散散射体相关的回波统计:基于物理方法的教程。

Echo statistics associated with discrete scatterers: A tutorial on physics-based methods.

作者信息

Stanton Timothy K, Lee Wu-Jung, Baik Kyungmin

机构信息

Department of Applied Ocean Physics and Engineering, Woods Hole Oceanographic Institution, Mail Stop #11, Woods Hole, Massachusetts 02543, USA.

Applied Physics Laboratory, University of Washington, 1013 Northeast 40th Street, Seattle, Washington 98105, USA.

出版信息

J Acoust Soc Am. 2018 Dec;144(6):3124. doi: 10.1121/1.5052255.

Abstract

When a beam emitted from an active monostatic sensor system sweeps across a volume, the echoes from scatterers present will fluctuate from ping to ping due to various interference phenomena and statistical processes. Observations of these fluctuations can be used, in combination with models, to infer properties of the scatterers such as numerical density. Modeling the fluctuations can also help predict system performance and associated uncertainties in expected echoes. This tutorial focuses on "physics-based statistics," which is a predictive form of modeling the fluctuations. The modeling is based principally on the physics of the scattering by individual scatterers, addition of echoes from randomized multiple scatterers, system effects involving the beampattern and signal type, and signal theory including matched filter processing. Some consideration is also given to environment-specific effects such as the presence of boundaries and heterogeneities in the medium. Although the modeling was inspired by applications of sonar in the field of underwater acoustics, the material is presented in a general form, and involving only scalar fields. Therefore, it is broadly applicable to other areas such as medical ultrasound, non-destructive acoustic testing, in-air acoustics, as well as radar and lasers.

摘要

当有源单基地传感器系统发射的波束扫过一个体积区域时,由于各种干扰现象和统计过程,存在的散射体的回波在每次脉冲发射之间会发生波动。对这些波动的观测可以与模型相结合,用于推断散射体的特性,如数密度。对波动进行建模还可以帮助预测系统性能以及预期回波中的相关不确定性。本教程重点介绍“基于物理的统计”,这是一种对波动进行建模的预测形式。该建模主要基于单个散射体的散射物理、来自随机多个散射体的回波相加、涉及波束方向图和信号类型的系统效应以及包括匹配滤波器处理在内的信号理论。还会考虑一些特定于环境的效应,例如介质中边界和不均匀性的存在。尽管该建模的灵感来自于水下声学领域的声纳应用,但材料以通用形式呈现,并且仅涉及标量场。因此,它广泛适用于其他领域,如医学超声检查、无损声学检测、空气声学以及雷达和激光。

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