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Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas

Saturation effects limit the application of vegetation indices (VIs) in dense vegetation areas. The possibility to mitigate them by adopting a negative soil adjustment factor X is addressed. Two leaf area index (LAI) data sets are analyzed using the Google Earth Engine (GEE) for validation. The firs...

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Autores principales: Zhen, Zhijun, Chen, Shengbo, Yin, Tiangang, Chavanon, Eric, Lauret, Nicolas, Guilleux, Jordan, Henke, Michael, Qin, Wenhan, Cao, Lisai, Li, Jian, Lu, Peng, Gastellu-Etchegorry, Jean-Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8002733/
https://www.ncbi.nlm.nih.gov/pubmed/33803032
http://dx.doi.org/10.3390/s21062115
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author Zhen, Zhijun
Chen, Shengbo
Yin, Tiangang
Chavanon, Eric
Lauret, Nicolas
Guilleux, Jordan
Henke, Michael
Qin, Wenhan
Cao, Lisai
Li, Jian
Lu, Peng
Gastellu-Etchegorry, Jean-Philippe
author_facet Zhen, Zhijun
Chen, Shengbo
Yin, Tiangang
Chavanon, Eric
Lauret, Nicolas
Guilleux, Jordan
Henke, Michael
Qin, Wenhan
Cao, Lisai
Li, Jian
Lu, Peng
Gastellu-Etchegorry, Jean-Philippe
author_sort Zhen, Zhijun
collection PubMed
description Saturation effects limit the application of vegetation indices (VIs) in dense vegetation areas. The possibility to mitigate them by adopting a negative soil adjustment factor X is addressed. Two leaf area index (LAI) data sets are analyzed using the Google Earth Engine (GEE) for validation. The first one is derived from observations of MODerate resolution Imaging Spectroradiometer (MODIS) from 16 April 2013, to 21 October 2020, in the Apiacás area. Its corresponding VIs are calculated from a combination of Sentinel-2 and Landsat-8 surface reflectance products. The second one is a global LAI dataset with VIs calculated from Landsat-5 surface reflectance products. A linear regression model is applied to both datasets to evaluate four VIs that are commonly used to estimate LAI: normalized difference vegetation index (NDVI), soil adjusted vegetation index (SAVI), transformed SAVI (TSAVI), and enhanced vegetation index (EVI). The optimal soil adjustment factor of SAVI for LAI estimation is determined using an exhaustive search. The Dickey-Fuller test indicates that the time series of LAI data are stable with a confidence level of 99%. The linear regression results stress significant saturation effects in all VIs. Finally, the exhaustive searching results show that a negative soil adjustment factor of SAVI can mitigate the SAVIs’ saturation in the Apiacás area (i.e., X = −0.148 for mean LAI = 5.35), and more generally in areas with large LAI values (e.g., X = −0.183 for mean LAI = 6.72). Our study further confirms that the lower boundary of the soil adjustment factor can be negative and that using a negative soil adjustment factor improves the computation of time series of LAI.
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spelling pubmed-80027332021-03-28 Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas Zhen, Zhijun Chen, Shengbo Yin, Tiangang Chavanon, Eric Lauret, Nicolas Guilleux, Jordan Henke, Michael Qin, Wenhan Cao, Lisai Li, Jian Lu, Peng Gastellu-Etchegorry, Jean-Philippe Sensors (Basel) Communication Saturation effects limit the application of vegetation indices (VIs) in dense vegetation areas. The possibility to mitigate them by adopting a negative soil adjustment factor X is addressed. Two leaf area index (LAI) data sets are analyzed using the Google Earth Engine (GEE) for validation. The first one is derived from observations of MODerate resolution Imaging Spectroradiometer (MODIS) from 16 April 2013, to 21 October 2020, in the Apiacás area. Its corresponding VIs are calculated from a combination of Sentinel-2 and Landsat-8 surface reflectance products. The second one is a global LAI dataset with VIs calculated from Landsat-5 surface reflectance products. A linear regression model is applied to both datasets to evaluate four VIs that are commonly used to estimate LAI: normalized difference vegetation index (NDVI), soil adjusted vegetation index (SAVI), transformed SAVI (TSAVI), and enhanced vegetation index (EVI). The optimal soil adjustment factor of SAVI for LAI estimation is determined using an exhaustive search. The Dickey-Fuller test indicates that the time series of LAI data are stable with a confidence level of 99%. The linear regression results stress significant saturation effects in all VIs. Finally, the exhaustive searching results show that a negative soil adjustment factor of SAVI can mitigate the SAVIs’ saturation in the Apiacás area (i.e., X = −0.148 for mean LAI = 5.35), and more generally in areas with large LAI values (e.g., X = −0.183 for mean LAI = 6.72). Our study further confirms that the lower boundary of the soil adjustment factor can be negative and that using a negative soil adjustment factor improves the computation of time series of LAI. MDPI 2021-03-17 /pmc/articles/PMC8002733/ /pubmed/33803032 http://dx.doi.org/10.3390/s21062115 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Zhen, Zhijun
Chen, Shengbo
Yin, Tiangang
Chavanon, Eric
Lauret, Nicolas
Guilleux, Jordan
Henke, Michael
Qin, Wenhan
Cao, Lisai
Li, Jian
Lu, Peng
Gastellu-Etchegorry, Jean-Philippe
Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas
title Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas
title_full Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas
title_fullStr Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas
title_full_unstemmed Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas
title_short Using the Negative Soil Adjustment Factor of Soil Adjusted Vegetation Index (SAVI) to Resist Saturation Effects and Estimate Leaf Area Index (LAI) in Dense Vegetation Areas
title_sort using the negative soil adjustment factor of soil adjusted vegetation index (savi) to resist saturation effects and estimate leaf area index (lai) in dense vegetation areas
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8002733/
https://www.ncbi.nlm.nih.gov/pubmed/33803032
http://dx.doi.org/10.3390/s21062115
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