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An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model

Soil salinity has been a major factor affecting agricultural production in the Keriya Oasis. It has a destructive effect on soil fertility and could destroy the soil structure of local land. Therefore, the timely monitoring of salt-affected areas is crucial to prevent land degradation and sustainabl...

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Autores principales: Muhetaer, Nuerbiye, Nurmemet, Ilyas, Abulaiti, Adilai, Xiao, Sentian, Zhao, Jing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9570864/
https://www.ncbi.nlm.nih.gov/pubmed/36236324
http://dx.doi.org/10.3390/s22197226
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author Muhetaer, Nuerbiye
Nurmemet, Ilyas
Abulaiti, Adilai
Xiao, Sentian
Zhao, Jing
author_facet Muhetaer, Nuerbiye
Nurmemet, Ilyas
Abulaiti, Adilai
Xiao, Sentian
Zhao, Jing
author_sort Muhetaer, Nuerbiye
collection PubMed
description Soil salinity has been a major factor affecting agricultural production in the Keriya Oasis. It has a destructive effect on soil fertility and could destroy the soil structure of local land. Therefore, the timely monitoring of salt-affected areas is crucial to prevent land degradation and sustainable soil management. In this study, a typical salinized area in the Keriya Oasis was selected as a study area. Using Landsat 8 OLI optical data and ALOS PALSAR-2 SAR data, the optical remote sensing indexes NDVI, SAVI, NDSI, SI, were combined with the optimal radar polarized target decomposition feature component (VanZyl_vol_g) on the basis of feature space theory in order to construct an optical-radar two-dimensional feature space. The optical-radar salinity detection index (ORSDI) model was constructed to inverse the distribution of soil salinity in Keriya Oasis. The prediction ability of the ORSDI model was validated by a test on 40 measured salinity values. The test results show that the ORSDI model is highly correlated with soil surface salinity. The index ORSDI(3) (R(2) = 0.656) shows the highest correlation, and it is followed by indexes ORSDI(1) (R(2) = 0.642), ORSDI(4) (R(2) = 0.628), and ORSDI(2) (R(2) = 0.631). The results demonstrated the potential of the ORSDI model in the inversion of soil salinization in arid and semi-arid areas.
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spelling pubmed-95708642022-10-17 An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model Muhetaer, Nuerbiye Nurmemet, Ilyas Abulaiti, Adilai Xiao, Sentian Zhao, Jing Sensors (Basel) Article Soil salinity has been a major factor affecting agricultural production in the Keriya Oasis. It has a destructive effect on soil fertility and could destroy the soil structure of local land. Therefore, the timely monitoring of salt-affected areas is crucial to prevent land degradation and sustainable soil management. In this study, a typical salinized area in the Keriya Oasis was selected as a study area. Using Landsat 8 OLI optical data and ALOS PALSAR-2 SAR data, the optical remote sensing indexes NDVI, SAVI, NDSI, SI, were combined with the optimal radar polarized target decomposition feature component (VanZyl_vol_g) on the basis of feature space theory in order to construct an optical-radar two-dimensional feature space. The optical-radar salinity detection index (ORSDI) model was constructed to inverse the distribution of soil salinity in Keriya Oasis. The prediction ability of the ORSDI model was validated by a test on 40 measured salinity values. The test results show that the ORSDI model is highly correlated with soil surface salinity. The index ORSDI(3) (R(2) = 0.656) shows the highest correlation, and it is followed by indexes ORSDI(1) (R(2) = 0.642), ORSDI(4) (R(2) = 0.628), and ORSDI(2) (R(2) = 0.631). The results demonstrated the potential of the ORSDI model in the inversion of soil salinization in arid and semi-arid areas. MDPI 2022-09-23 /pmc/articles/PMC9570864/ /pubmed/36236324 http://dx.doi.org/10.3390/s22197226 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Muhetaer, Nuerbiye
Nurmemet, Ilyas
Abulaiti, Adilai
Xiao, Sentian
Zhao, Jing
An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model
title An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model
title_full An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model
title_fullStr An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model
title_full_unstemmed An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model
title_short An Efficient Approach for Inverting the Soil Salinity in Keriya Oasis, Northwestern China, Based on the Optical-Radar Feature-Space Model
title_sort efficient approach for inverting the soil salinity in keriya oasis, northwestern china, based on the optical-radar feature-space model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9570864/
https://www.ncbi.nlm.nih.gov/pubmed/36236324
http://dx.doi.org/10.3390/s22197226
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