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Towards evolutionary optimisation for high resolution bathymetry from SideScan sonars

机译:从侧斯佩斯·索纳尔的高分辨率沐浴浴进化优化

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The main objective of this paper is to use genetic algorithms in order to improve the quality of the bathymetry derived from sidescan raw data. The optimisation sequence starts with inverse modelling of the phase data, which uniquely corresponds to the characteristics of the coupled system of the sidescan vehicle and the seafloor terrain. These phase data are then compared with phase data actually collected by the sonar, to produce a correlation coefficient as an objective function. Simulation results are reported for the algorithm showing robust convergence towards the optimum value of the objective function. The results indicate that this new approach can be used to avoid difficulties widely encountered during forward processing of phase data to derive bathymetry.
机译:本文的主要目的是使用遗传算法,以提高患有SideScan原始数据的沐浴碱的质量。优化序列以相位数据的反向建模开始,该相位数据唯一对应于侧义车辆和海底地形的耦合系统的特性。然后将这些相位数据与由声纳实际收集的相位数据进行比较,以产生与目标函数的相关系数。据报道了仿真结果,算法显示了朝向目标函数的最佳值的稳健收敛性。结果表明,这种新方法可用于避免在向前加工期间遇到的困难,以导出碱基测量。

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