JOURNAL ARTICLE

EVALUATING MACHINE LEARNING MODELS FOR SOIL SALINITY ESTIMATION USING SATELLITE IMAGERY

Abstract

<p>Salinity is one of the most critical problems for agricultural lands. Soil salinity should be monitored with fast, economical and accurate data and methods. In this study, soil salinity was estimated using remote sensing data and machine learning algorithms, where fıve different methods were used, and the results were compared. As a study area, Alpu, Turkey has been selected. Within the scope of the study, on-site measurements were made in cultivation areas where there are different agricultural products such as beets, wheat, tomatoes, and corn in the district. The results show that machine learning algorithms and Planetscope images successfully determine soil salinity. Future studies will evaluate the methods by taking samples from different product classes and wet/arid lands.</p>

Keywords:
Soil salinity Salinity Environmental science Scope (computer science) Remote sensing Satellite imagery Arid Agriculture Satellite Agricultural engineering Machine learning Hydrology (agriculture) Soil science Computer science Soil water Geography Engineering Geology

Metrics

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Cited By
0.00
FWCI (Field Weighted Citation Impact)
29
Refs
0.15
Citation Normalized Percentile
Is in top 1%
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Topics

Soil Geostatistics and Mapping
Physical Sciences →  Environmental Science →  Environmental Engineering
Geochemistry and Geologic Mapping
Physical Sciences →  Computer Science →  Artificial Intelligence
Soil and Land Suitability Analysis
Physical Sciences →  Environmental Science →  Management, Monitoring, Policy and Law

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