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Leveraging Commercial High-Resolution Multispectral Satellite and Multibeam Sonar Data to Estimate Bathymetry: The Case Study of the Caribbean Sea

机译:利用商业高分辨率多光谱卫星和多波束声纳数据估算测深:以加勒比海为例

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The global coastal seascape offers a multitude of ecosystem functions and services to the natural and human-induced ecosystems. However, the current anthropogenic global warming above pre-industrial levels is inducing the degradation of seascape health with adverse impacts on biodiversity, economy, and societies. Bathymetric knowledge empowers our scientific, financial, and ecological understanding of the associated benefits, processes, and pressures to the coastal seascape. Here we leverage two commercial high-resolution multispectral satellite images of the Pleiades and two multibeam survey datasets to measure bathymetry in two zones (0–10 m and 10–30 m) in the tropical Anguilla and British Virgin Islands, northeast Caribbean. A methodological framework featuring a combination of an empirical linear transformation, cloud masking, sun-glint correction, and pseudo-invariant features allows spatially independent calibration and test of our satellite-derived bathymetry approach. The best R 2 and RMSE for training and validation vary between 0.44–0.56 and 1.39–1.76 m, respectively, while minimum vertical errors are less than 1 m in the depth ranges of 7.8–10 and 11.6–18.4 m for the two explored zones. Given available field data, the present methodology could provide simple, time-efficient, and accurate spatio-temporal satellite-derived bathymetry intelligence in scientific and commercial tasks i.e., navigation, coastal habitat mapping and resource management, and reducing natural hazards.
机译:全球沿海海景为自然生态系统和人为生态系统提供了多种生态系统功能和服务。然而,当前超过工业化之前水平的人为全球变暖正在导致海景健康的恶化,并对生物多样性,经济和社会产生不利影响。测深知识使我们对沿海海洋景观的相关收益,过程和压力有了科学,财务和生态上的了解。在这里,我们利用two宿星的两个商业高分辨率多光谱卫星图像和两个多波束调查数据集来测量东北安哥拉和英属维尔京群岛两个区域(0-10 m和10-30 m)的测深。一种方法框架,结合了经验线性变换,云遮罩,日照校正和伪不变特征,可以在空间上独立校准和测试我们的卫星测深法。用于训练和验证的最佳R 2和RMSE分别在0.44–0.56和1.39–1.76 m之间变化,而在两个勘探区的7.8–10和11.6–18.4 m的深度范围内最小垂直误差小于1 m 。给定可用的现场数据,本方法可以在科学和商业任务(即导航,沿海栖息地测绘和资源管理)中提供简单,省时和准确的时空卫星测深智能,并减少自然灾害。

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