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Rapid estimation of bathymetry from multispectral imagery without in situ bathymetry data

机译:没有原位沐浴浴数据的多光谱图像快速估计沐浴物质

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摘要

Optimization-based semi-analytical methods (OSMs) and empirical methods (EMs) have been developed to derive bathymetry maps from satellite-based multispectral data of coral reefs, allowing for the management, monitoring, and protection of coral reefs. However, OSMs are often criticized due to the time-consuming requirements of iterative computations, yet they are praised for working without the need for in situ bathymetry data. EMs are praised for their time-saving characteristics and criticized for their need for in situ measurements. To estimate the water depth from multispectral data quickly without in situ bathymetry data, we provide a new EM that combines our previously developed OSM called the unmixing-based multispectral optimization process exemplar method (UMOPE) and an EM called Stumpfs ratio method (SRM). In the new method, reflectance values from a small number of sampled pixels and the corresponding water depths estimated by UMOPE are used to determine the regression parameters for SRM. Thus, SRM determines the upper limit of accuracy for the new method, and UMOPE determines the possibility of reaching the upper limit. The new method was evaluated using three types of imagery of Xisha Islands, namely, WorldView-2 imagery with three traditional visible bands (WV-2a), Landsat 8 imagery with four visible bands, and WV-2 imagery with six visible bands (WV-2b). The results show that the new method can perform as well as SRM for Landsat 8 data and WV-2b data with similar root mean square error values at different depths. The lack of a coastal band in WV-2a imagery may cause large errors for the new method in deep water regions, especially when the water-leaving reflectance is noise perturbed. We found that even though the depths estimated by UMOPE are not error free at different ranges of water depth, if the regression line between the depths estimated by UMOPE and the measured depths is near the 1:1 line, the new method can perform as well as SRM. The new method may facilitate the rapid estimation of bathymetry from free Landsat 8 data of optically shallow waters around the world without in situ bathymetry data. (C) 2019 Optical Society of America
机译:已经开发了基于优化的半分析方法(OSMS)和经验方法(EMS),以导出来自珊瑚礁的卫星的多光谱数据的沐浴般的MAPS,允许管理,监测和保护珊瑚礁。然而,由于迭代计算的耗时要求,OSM经常受到批评,但它们被称赞为工作而无需原位浴权数据。 EMS称赞他们节省时间的特点,并批评他们对原地测量的需求。为了估计来自多光谱数据的水深而没有原位浴权数据,我们提供了一个新的EM,它结合了我们以前开发的OSM称为解混的多光谱优化过程示例方法(UMOPE)和称为STUMPFS比率方法(SRM)的EM。在新方法中,使用Umope估计的少量采样像素和相应的水深的反射率值来确定SRM的回归参数。因此,SRM确定了新方法的准确性的上限,Umope确定了达到上限的可能性。新方法使用西沙群岛的三种类型的图像进行了评估,即WorldView-2图像,具有三个传统的可见乐队(WV-2A),Landsat 8图像,具有四个可见频段,以及带有六个可见频段的WV-2图像(WV -2b)。结果表明,新方法可以为Landsat 8数据和WV-2B数据执行,具有类似的根均线误差值的WV-2B数据。 WV-2A图像中缺乏沿海乐队可能对深水区的新方法造成大误差,特别是当留下留下的反射率是扰动的噪声时。我们发现即使umope估计的深度在不同的水深范围内没有错误,如果由Umope和测量深度估计的深度之间的回归线在1:1线附近,则新方法也可以执行作为srm。新方法可以促进从世界各地的光学浅水域的免费Landsat 8数据的快速估计,没有原位沐浴浴。 (c)2019年光学学会

著录项

  • 来源
    《Applied optics》 |2019年第27期|共14页
  • 作者单位

    Sun Yat Sen Univ Sch Geog &

    Planning Guangzhou 510275 Guangdong Peoples R China;

    Sun Yat Sen Univ Sch Geog &

    Planning Guangzhou 510275 Guangdong Peoples R China;

    Guangdong Res Inst Water Resources &

    Hydropower Guangzhou 510630 Guangdong Peoples R China;

    Sun Yat Sen Univ Sch Geog &

    Planning Guangzhou 510275 Guangdong Peoples R China;

    Sun Yat Sen Univ Sch Geog &

    Planning Guangzhou 510275 Guangdong Peoples R China;

    Sun Yat Sen Univ Sch Marine Sci Zhuhai 519000 Peoples R China;

    Jishou Univ Sch Civil Engn &

    Architecture Zhangjiajie 427000 Peoples R China;

    Guangdong Starcart Technol Co Ltd Guangzhou 510656 Guangdong Peoples R China;

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  • 正文语种 eng
  • 中图分类 应用;
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