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Optimal localization of a seafloor transponder in shallow water using acoustic ranging and GPS observations

机译:利用声波测距和GPS观测值在浅水中对海底应答器进行最佳定位

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This study utilized circular and straight-line survey patterns for acoustic ranging to determine the position of a seafloor transponder and mean sound speed of the water column. To reduce the considerable computational burden and eliminate the risk of arriving at a local minimum on least-squares inversion, the position of a seafloor transponder was estimated by utilizing optimization approaches. Based on the implicit function theorem, the Jacobian for this inverse problem was derived to investigate the constraints of employing circular and straight-line survey patterns to estimate the position of a transponder. Both cases, with and without knowledge of the vertical sound speed profile, were considered. A transponder positioning experiment was conducted at sea to collect acoustic and GPS observations. With significant uncertainties inherent in GPS measurements and the use of a commercial acoustic transponder not designed for precise ranging, experimental results indicate that the transponder position can be estimated accurately on the order of decimeters. Moreover, the mean sound speed of the water column estimated by the proposed optimization scheme is in agreement with that derived from conductivity, temperature, and density (CTD) measurements.
机译:这项研究利用圆形和直线调查模式进行声学测距,以确定海底应答器的位置和水柱的平均声速。为了减少可观的计算负担并消除在最小二乘反演中达到局部最小值的风险,通过使用优化方法来估算海底应答器的位置。基于隐函数定理,推导了该反问题的雅可比矩阵,以研究采用圆形和直线测量模式来估计应答器位置的约束条件。考虑和不考虑垂直声速分布的两种情况。在海上进行了应答器定位实验,以收集声学和GPS观测值。由于GPS测量存在固有的重大不确定性,并且使用的不是为精确测距而设计的商用声频应答器,实验结果表明,可以精确地以分米为单位估算应答器的位置。此外,通过提出的优化方案估算的水柱平均声速与从电导率,温度和密度(CTD)测量得出的声速一致。

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