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Improved Crop Residue Cover Estimates from Satelite Images by Coupling Residue and Water Spectral Indices.

, , , , and . IGARSS, page 5425-5428. IEEE, (2018)

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Atmospheric correction of Landsat ETM+ land surface imagery. II. Validation and applications., , , , , , and . IEEE Trans. Geoscience and Remote Sensing, 40 (12): 2736-2746 (2002)Leaf relative water content estimated from leaf reflectance and transmittance., , and . IGARSS, page 7168-7171. IEEE, (2016)Landsat-8 and Worldview-3 Data for Assessing Crop Residue Cover., , , , , and . IGARSS, page 3844-3847. IEEE, (2018)Leaf Water Status from Lab Estimates of VIS-NIR Reflectance and Transmittance., , and . IGARSS, page 5948-5951. IEEE, (2018)Solar Induced Fluorescence and Reflectance Sensing Techniques for Monitoring Nitrogen Utilization in Corn., , , and . IGARSS, page 2267-2270. IEEE, (2006)Diurnal and Seasonal Variations in Chlorophyll Fluorescence Associated with Photosynthesis at Leaf and Canopy Scales., , , , , , , , and . Remote Sensing, 11 (5): 488 (2019)Mapping Crop Residue by Combining Landsat and WorldView-3 Satellite Imagery., , , , , and . Remote Sensing, 11 (16): 1857 (2019)A visible band index for remote sensing leaf chlorophyll content at the canopy scale., , , , , and . Int. J. Applied Earth Observation and Geoinformation, (2013)Acquisition of NIR-Green-Blue Digital Photographs from Unmanned Aircraft for Crop Monitoring., , , , , and . Remote Sensing, 2 (1): 290-305 (2010)Mapping Crop Residue and Tillage Intensity Using WorldView-3 Satellite Shortwave Infrared Residue Indices., , , , , and . Remote Sensing, 10 (10): 1657 (2018)