深水多波束测深仪海底探测的最大似然法

G. Yufit, E. Maillard, L. D. Pedersen
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引用次数: 2

摘要

海底探测的最大似然方法(MLM)可以大幅降低外波束的最小可接受信噪比,从而扩大深水多波束回声测深仪(MBES)应用的调查范围。在本讨论中,阵列以米尔斯交叉配置安装,发射阵列沿轨道定向,接收阵列跨轨道定向。统计量由振幅时间样本和接收阵列两半之间的相位差样本组成。转换到笛卡尔坐标允许获得相关矩阵的逆,从而获得两个子阵列输出的正态统计分布的表达式。按深度(或按深度和地表坡度)最大化这种分布,可以在范围或时间上找到底部响应的最佳位置。信号峰值的位置决定了范围的最佳估计,并给出了底部深度。MLM的实现使信噪比增益等于~3 -4 dB,条宽增加15%。MLM方法是通过Sea - 8150 MBES在南海深水试验中记录的数据来说明的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maximum Likelihood Approach to Bottom Detection in Deep Water MultiBeam Echo Sounders
The maximum likelihood method (MLM) of bottom detection allows substantial reduction in the minimum acceptable SNR in outer beams and, as a result, widening of the survey swath in deep water multi-beam echo sounder (MBES) applications. In this discussion, the arrays are installed in a Mills Cross configuration, with the transmit array oriented along-track and the receive array oriented across-track. The statistics consist of amplitude time samples and samples of phase differences between the two halves of the receive array. Transition to Cartesian coordinates allows for obtaining the inverse of the correlation matrix and, consequently, expression of the normal statistical distribution for the output of the two sub-arrays. Maximizing this distribution by depth (or by depth and surface slope) leads to finding the optimal position of bottom response in range or in time. The location of the signal peak determines the optimal estimate of range and gives bottom depth. Implementation of MLM gives the gain in SNR equal to ~3 -4 dB and up to a 15% increase in swath. The MLM approach is illustrated by data recorded in deep water in South China Sea during a trial of SeaBat 8150 MBES.
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