2022
DOI: 10.3390/rs14122849
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Estimation of Canopy Structure of Field Crops Using Sentinel-2 Bands with Vegetation Indices and Machine Learning Algorithms

Abstract: Leaf angle distribution (LAD), or the leaf mean tilt angle (MTA) capturing its central value, is used to quantify the direction of the leaf surface in a canopy and is one of the most important canopy structuraltraits. Combined with the other important structure parameter, leaf area index (LAI), LAD determines the light interception of a crop canopy. However, unlike LAI, only few studies have addressed the direct retrieval of LAD or MTA from remote sensing data. Recently, it has been shown that the red edge is … Show more

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Cited by 10 publications
(5 citation statements)
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“…This observation is consistent with the significant role played by red-edge channels in remote sensing studies. The red-edge region contains valuable information about chlorophyll content, canopy and leaf structure, and composition, providing critical insights into plant health, growth parameters, and physiological processes 37 .…”
Section: Discussionmentioning
confidence: 99%
“…This observation is consistent with the significant role played by red-edge channels in remote sensing studies. The red-edge region contains valuable information about chlorophyll content, canopy and leaf structure, and composition, providing critical insights into plant health, growth parameters, and physiological processes 37 .…”
Section: Discussionmentioning
confidence: 99%
“…This includes leaf area, often measured by the leaf area index (LAI), as well as leaf inclination, often measured by leaf angle distribution (LAD), average leaf angle (ALA) or mean tilt angle (MTA). New technologies allow for the quantification of these parameters by combining satellite data and machine learning algorithms (Zou et al 2022). Additionally, multi-scale data has been combined to measure fractional cover of green vegetation from UAV's and satellites (Riihimäki et al 2019).…”
Section: Spatial Variation Affecting Remote Sensing Signal Interpreta...mentioning
confidence: 99%
“…In particular, optical satellite images have gained widespread usage in SOC prediction. For example, previous studies have predicted soil properties using reflectance bands and vegetation indices [28,29]. In addition, synthetic aperture radar (SAR) has been used for vegetation species mapping [30] and SOC content remote sensing inversion [31], relying on its ability to penetrate the surface, as it is unaffected by clouds and rain.…”
Section: Introductionmentioning
confidence: 99%