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On a data-model assimilation method to inverse wave-dominated beach bathymetry using heterogeneous video-derived observations

机译:基于数据异化的反浪主导海滩测深的数据模型同化方法

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摘要

A data-model assimilation method is presented that can combine heterogeneous remotely sensed video observations to inverse wave-dominated beach bathymetry. The ability of our method is assessed using synthetic cases from a laboratory experiment. For relatively flat beach profiles, good bathymetry inversion can be obtained with a small number (O(1)) of observations and a simple Gaussian-type background error matrix. For more complex barred-beach profiles, localisation of the background error matrix is crucial to depth inversion and the required number of observations is increased (O(10)). In the latter situation, both relevant location of observations and the corresponding localisation length scales can be properly defined without the knowledge of the local bathymetry, resulting in accurate bathymetry inversion, which is a major asset for practical applications. Our method also allows shifting between several sources of bathymetry proxy as well as overlapping which provides flexibility in data management. Multi-1D reconstruction can also be performed to estimate complex 3D beach morphologies. Our study therefore suggests that high-performing time-efficient nearshore bathymetry inversion can be achieved using a limited set of heterogeneous video-derived observations.
机译:提出了一种数据模型同化方法,该方法可以将异类遥感视频观测与反波为主的海滩测深相结合。我们的方法的能力是通过实验室实验中的综合案例评估的。对于相对平坦的海滩剖面,可以通过少量(O(1))观测值和简单的高斯型背景误差矩阵获得良好的测深法。对于更复杂的禁止海滩剖面,背景误差矩阵的定位对于深度反演至关重要,并且所需的观测次数会增加(O(10))。在后一种情况下,可以在不了解局部测深的情况下正确定义观测值的相关位置和相应的定位长度尺度,从而获得准确的测深法倒置,这是实际应用的主要资产。我们的方法还允许在多个测深代理之间进行切换以及重叠,从而在数据管理中提供了灵活性。还可以执行多1D重建以估计复杂的3D海滩形态。因此,我们的研究表明,使用一组有限的异类视频观测资料,可以实现高效的时效近海测深法。

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