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The effect of spatial resolution on radiometric and geometric performances of a UAV-mounted hyperspectral 2D imager

机译:空间分辨率对无人机安装的高光谱2D成像仪的辐射和几何性能的影响

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摘要

The effect of spatial resolution on the radiometric and geometric performances of hyperspectral sensors is an essential issue in remote sensing that urgently needs to be investigated, especially for low-altitude remote sensing principles and applications. Using an unmanned aerial vehicle (UAV)-mounted miniature hyperspectral 2D imager (Cubert UHD 185) system, a series of hyperspectral images of several reflectance targets (5%, 20%, 30%, 40%, 60% and 65%) were imaged in hovering flight at various spatial resolutions (ground sampling distances (GSDs)) from 1.2 cm to 4.8 cm, with intervals of 0.4 cm, which correspond to flight altitudes from 30 m to 120 m in increments of 10 m. Subsequently, the effect of spatial resolution on radiometric and geometric performances was evaluated in terms of the change in reflectance and geometric recognition ability of the shape of targets at visible to near-infrared wavelengths. This paper provides a set of methods for assessing the effect of spatial resolution on radiometric and geometric performance, including a radiative transfer model simulation for imaging quality performance, the geometric recognition loss degree (GRLD) for measuring image geometry recognition ability, and a trend projection analysis for developing continuous distribution images of radiometric and geometric performances. The results show that when the size of the target is not less than 50 (row) x 50 (column) pixels in a Cubert hyperspectral image, the absolute error (AE) and the root mean square error (RMSE) of the reflectances of its central pixel are both less than 0.05. Additionally, as the spatial resolution decreased, the AEs of the target reflectances in visible bands increased and then stabilized, and those in the red-edge band and near-infrared bands first increased slowly and then decreased rapidly because an increasing number of pixels were influenced by the surrounding area; thus, the shapes of the spectral curves of the sample area became increasingly similar to those of the surrounding area. This study provides a guide for selecting an appropriate spatial resolution for UAV remote sensing to improve operational efficiency. The reflectance and geometric quantitative losses at different spatial resolutions are conducive to parameter inversion in quantitative remote sensing and spatial resolution transformation and enrich the knowledge of low-altitude UAV hyperspectral remote sensing.
机译:空间分辨率对高光谱传感器辐射和几何性能的影响是遥感中的一个基本问题,迫切需要研究,特别是对于低空遥感原理和应用。使用无人飞行器(UAV)安装的微型高光谱2D成像仪(Cubert UHD 185)系统,获得了多个反射目标(5%,20%,30%,40%,60%和65%)的一系列高光谱图像。以1.2 cm至4.8 cm的各种空间分辨率(地面采样距离(GSD))在悬停飞行中成像,间隔为0.4 cm,对应于30 m至120 m的飞行高度,以10 m为增量。随后,根据目标形状在可见光到近红外波长的反射率和几何识别能力的变化,评估了空间分辨率对辐射测量和几何性能的影响。本文提供了一套评估空间分辨率对辐射和几何性能影响的方法,包括用于成像质量性能的辐射传递模型仿真,用于测量图像几何识别能力的几何识别损失度(GRLD)以及趋势投影分析以开发具有辐射和几何性能的连续分布图像。结果表明,当目标尺寸在Cubert高光谱图像中不小于50(行)×50(列)像素时,其反射率的绝对误差(AE)和均方根误差(RMSE)中心像素均小于0.05。此外,随着空间分辨率的降低,可见波段目标反射率的AE会增加然后稳定,而红边波段和近红外波段的目标反射率的AE会先缓慢上升然后迅速下降,因为像素数量的增加受到影响在周边地区;因此,样品区域的光谱曲线的形状变得与周围区域的光谱曲线的形状越来越相似。这项研究为选择适合无人机遥感的空间分辨率以提高运营效率提供了指导。不同空间分辨率下的反射率和几何定量损失有利于定量遥感和空间分辨率转换中的参数反演,丰富了低空无人机高光谱遥感的知识。

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