2022
DOI: 10.3390/land11112025
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The Shadow Effect on Surface Biophysical Variables Derived from Remote Sensing: A Review

Abstract: In remote sensing (RS), shadows play an important role, commonly affecting the quality of data recorded by remote sensors. It is, therefore, of the utmost importance to detect and model the shadow effect in RS data as well as the information that is obtained from them, particularly when the data are to be used in further environmental studies. Shadows can generally be categorized into four types based on their sources: cloud shadows, topographic shadows, urban shadows, and a combination of these. The main obje… Show more

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Cited by 14 publications
(3 citation statements)
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“…Topographic correction is an important step in processing remote sensing data that takes into account the varying elevation of terrain. The shadow effect from hills and mountains can cause errors in the data, which can affect the accuracy of the analysis [35,36]. The Illumination Condition and Rotation model algorithm is a widely used method for topographic correction [36,37].…”
Section: Discussionmentioning
confidence: 99%
“…Topographic correction is an important step in processing remote sensing data that takes into account the varying elevation of terrain. The shadow effect from hills and mountains can cause errors in the data, which can affect the accuracy of the analysis [35,36]. The Illumination Condition and Rotation model algorithm is a widely used method for topographic correction [36,37].…”
Section: Discussionmentioning
confidence: 99%
“…The photogrammetry software "Pix4D Mapper 4.7" was used to obtain average GSD values for each aerial survey as part of the orthomosaic building process. In computer vision technology and RS, every pixel matters, and shadows can affect colors and textures [44,[76][77][78]. To consider this factor, the take off time was used to obtain a retrospectively calculated value for shadow length.…”
Section: Aerial Surveys-critical Flight Conditionsmentioning
confidence: 99%
“…In studies focusing on understanding surface radiation distribution [15], biophysical variables [16], vegetation growth, solar energy utilization [17], glacier estimation [18], and related areas, the influence of hillshade becomes a crucial consideration. This calls for extensive and comprehensive attention, especially since hillshade has a significant influence on the spatial distribution of surface evapotranspiration [19], surface temperature [20], and soil moisture [16] in mountainous regions. Currently, a large number of radiation transfer models tailored to mountainous areas have been developed for quantitative estimation of the radiation transfer process [15], [21], [22].…”
Section: Introductionmentioning
confidence: 99%