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在具有挑战性的光照条件下进行远程湿度感应的光谱指数选择方法。

Spectral index selection method for remote moisture sensing under challenging illumination conditions.

机构信息

Department of Physics, Durham University, Durham, DH1 3LE, UK.

Precision Optics Laboratory, Durham University, Sedgefield, TS21 3FB, UK.

出版信息

Sci Rep. 2022 Aug 25;12(1):14555. doi: 10.1038/s41598-022-18801-9.

Abstract

Remote sensing using passive solar illumination in the Short-Wave Infrared spectrum is exposed to strong intensity variation in the spectral bands due to atmospheric changing conditions and spectral absorption. More robust spectral analysis methods, insensitive to these effects, are increasingly required to improve the accuracy of the data analysis in the field and extend the use of the system to "non ideal" illumination condition. A computational hyperspectral image analysis method (named HIAM) for deriving optimal reflectance indices for use in remote sensing of soil moisture content is detailed and demonstrated. Using histogram analysis of hyperspectral images of wet and dry soil, contrast ratios and wavelength pairings were tested to find a suitable spectral index to recover soil moisture content. Measurements of local soil samples under laboratory and field conditions have been used to demonstrate the robustness of the index to varying lighting conditions, while publicly available databases have been used to test across a selection of soil classes. In both cases, the moisture was recovered with RMS error better than 5%. As the method is independent of material type, this method has the potential to also be applied across a variety of biological and man-made samples.

摘要

利用被动太阳光照在短波红外光谱中进行遥感会受到大气变化条件和光谱吸收的影响,导致光谱带中的强度发生强烈变化。为了提高现场数据分析的准确性,并将系统扩展到“非理想”照明条件,越来越需要更稳健、对这些影响不敏感的光谱分析方法。详细介绍并演示了一种用于推导用于遥感土壤水分的最佳反射率指数的计算高光谱图像分析方法(命名为 HIAM)。通过对湿土和干土高光谱图像的直方图分析,测试了对比度比和波长对,以找到合适的光谱指数来恢复土壤水分含量。实验室和现场条件下的局部土壤样本测量用于证明该指数对不同光照条件的稳健性,同时还使用公共可用数据库测试了一系列土壤类别。在这两种情况下,水分的恢复误差均小于 5%。由于该方法不依赖于材料类型,因此该方法有可能也适用于各种生物和人造样本。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e2da/9411502/53baf9cb9931/41598_2022_18801_Fig1_HTML.jpg

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