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Interpolation Kernels for Synthetic Aperture Sonar Along-Track Motion Estimation

机译:用于合成孔径声纳的插值核沿轨道运动估计

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The formation of high-resolution synthetic aperture sonar (SAS) imagery requires accurate estimates of the sensor's trajectory. This is frequently accomplished using the displaced phase center antenna technique, which utilizes cross correlation of the signals received on successive pings. Accurate estimates of the sensor's ping-to-ping advance are then made by measuring the along-track spatial coherence of the scattered field. Unbiased advance-per-ping estimates require an accurate model for the spatial coherence of the scattered field. This model may be found by the application of the van Cittert-Zernike theorem to the problem of pulsed active sonar systems. In this paper, it is shown that the spatial coherence for a typical high-frequency SAS collection geometry is well approximated by a Gaussian whose width is proportional to the sensor's element size. Gaussian and quadratic along-track interpolation kernel performances are compared for a pair of at sea data collections. A relative image quality metric, based on image contrast, is defined to quantitatively assess the performance of the pair of interpolation kernels. In both tests, the use of an along-track estimator is shown to provide improved image quality. Also in both tests, the performance of the Gaussian kernel exceeds that of the quadratic kernel.
机译:高分辨率合成孔径声纳(SAS)图像的形成需要精确的传感器轨迹估计。这通常是使用位移的相位中心天线技术实现的,该技术利用在连续凸缘上接收的信号的互相关。然后通过测量散射场的沿轨道空间相干来进行传感器的ping到ping前进的精确估计。非偏见的预先按Ping估计需要一种准确的模型,用于分散场的空间相干性。该模型可以通过将van Cittert-Zernike定理应用于脉冲有源声纳系统的问题来找到。在本文中,示出了典型的高频SAS集合几何形状的空间相干性,其宽度与传感器元素尺寸成比例的高斯近似。将高斯和二次沿着轨道的插值内核性能进行比较,以一对在海上数据收集。基于图像对比度的相对图像质量度量被定义为定量评估该对插值核的性能。在两个测试中,示出了沿轨道估计器的使用来提供改进的图像质量。同样在两个测试中,高斯内核的性能超过了二次内核的性能。

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