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A maximum bathymetric depth model to simulate satellite photon-counting lidar performance

机译:模拟卫星光子计数激光雷达性能的最大碱度深度模型

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摘要

With the development of photon-counting sensors, spaceborne photon-counting lidars have shown many advantages in mapping underwater topography. Although a space based lidar is normally a profiling system, the depth penetration and the vertical accuracy achieved with a bathymetric lidar is superior to imagery (that only provides relative depths). Therefore, many satellite derived bathymetry products use both active/passive spaceborne data to achieve spatial coverage as well as absolute depth measurements. Compared with shipborne and airborne bathymetric systems, satellite derived bathymetry data can have a global coverage, especially covering some remote areas where airborne/shipborne systems are hard or very expensive to reach. In this paper, a theoretical model is proposed to quantitatively analyze the maximum bathymetric depth of a satellite photon-counting lidar, which considers the system parameters, environmental effects, and the constraint of the SNR (signal to noise ratio). System parameters of ICESat-2 (Ice, Cloud, and land Elevation Satellite-2) as well as the MODIS (Moderate-resolution Imaging Spectroradiometer) and NCEP (National Centers for Environmental Prediction) datasets are used to provide systematic and environmental inputs to the model, and the ICESat-2 actual bathymetric data are used to verify the maximum depth estimated by the proposed model. In six different sites with different water qualities, solar angles and wind speeds, the theoretical maximum bathymetric depths agree well with the actually achieved ICESat-2 lidar depths, in terms of MAE (mean absolute error) of 0.50 m and the RMSE (root mean square error) of 0.60 m. The errors in all study areas are within 14% of the corresponding maximum depths. Additionally, the non-linear response of a photon-counting lidar, independent parameter impacts on the theoretical model, and the errors in the experimental process were quantitatively analyzed. In the future, this theoretical model can be used to evaluate the maximum bathymetric depth for a bathymetry investigation when applying system parameters and environmental parameters. In addition, it can be used to optimize the hardware parameters of a photon-counting lidar in its early design process.
机译:随着光子计数传感器的发展,总是在映射水下形貌方面已经示出了许多优点。尽管基于空间的激光雷达通常是分析系统,但是用浴约定激光雷达实现的深度渗透和垂直精度优于图像(仅提供相对深度)。因此,许多卫星衍生的沐浴族产品使用主动/被动星生数据来实现空间覆盖以及绝对深度测量。与船载和空气传播的浴权系统相比,卫星衍生的沐浴浴数据可以具有全球覆盖,特别是覆盖空气/船载系统难以到达的一些偏远地区。在本文中,提出了理论模型来定量分析卫星光子计数激光器的最大碱基深度,其认为系统参数,环境效应和SNR(信号与噪声比)的约束。 ICESAT-2(ICE,云和陆地海拔卫星-2)以及MODIS(适度分辨率成像光谱仪)和NCEP(环境预测的国家中心)数据集的系统参数用于为此提供系统和环境投入模型,ICESAT-2实际碱基数据用于验证所提出的模型估计的最大深度。在具有不同水质的六种不同的网站中,太阳角和风速,理论上的最大碱度深度与实际上达到的ICESAT-2激光雷达深度吻合良好,因为MAE(平均绝对误差)为0.50米和RMSE(根均值方误差0.60米。所有研究区的错误占相应最大深度的14%。另外,定量地分析了光子计数激光雷达的非线性响应,对理论模型的独立参数影响以及实验过程中的误差。在未来,该理论模型可用于在应用系统参数和环境参数时评估沐浴族调查的最大碱度深度。此外,它可以用于优化早期设计过程中光子计数激光器的硬件参数。

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  • 作者单位

    Wuhan Univ Sch Elect Informat Wuhan 430072 Peoples R China;

    Nanjing Normal Univ Coll Marine Sci & Engn Nanjing 210023 Peoples R China;

    Wuhan Univ Sch Elect Informat Wuhan 430072 Peoples R China|Univ New South Wales Sch Sci Sino Australian Res Consortium Coastal Management Canberra ACT 2610 Australia;

    Wuhan Univ State Key Lab Informat Engn Surveying Mapping & R Wuhan 430072 Peoples R China;

    Wuhan Univ Sch Elect Informat Wuhan 430072 Peoples R China;

    Univ New South Wales Sch Sci Sino Australian Res Consortium Coastal Management Canberra ACT 2610 Australia;

    Wuhan Univ Sch Elect Informat Wuhan 430072 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photon-counting lidar; Bathymetry; ICESat-2; Maximum bathymetric depth;

    机译:光子计数延迟延伸;沐浴浴;ICESAT-2;最大碱度深度;
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