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August 17, 2025Environments0 citationsOpen Access

Remote Sensing-Based Mapping of Soil Health Descriptors Across Cyprus

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IVIoannis VarvarisZPZampela PittakiGTGeorge Themistokleous

Key Points

  • Soil health descriptors predict risks like degradation and salinization in Cyprus, supporting better land use.
  • Key soil properties were mapped using machine learning based on satellite indicators, resulting in national-scale outputs.
  • Analysis employed remote sensing to create high-resolution maps for organic carbon, pH, and nutrients across Cyprus.
  • Applications include prioritizing conservation zones, aiding evidence-based management, with potential for extensive soil policy implementation.

Abstract

Accurate and spatially detailed soil information is essential for supporting sustainable land use planning, particularly in data-scarce regions such as Cyprus, where soil degradation risks are intensified by land fragmentation, water scarcity, and climate change pressure. This study aimed to generate national-scale predictive maps of key soil health descriptors by integrating satellite-based indicators with a recently released geo-referenced soil dataset. A machine learning model was applied to estimate a suite of soil properties, including organic carbon, pH, texture fractions, macronutrients, and electrical conductivity. The resulting maps reflect spatial patterns consistent with previous studies focused on Cyprus and provide high resolution insights into degradation processes, such as organic carbon loss, and salinization risk. These outputs provide added value for identifying priority zones for soil conservation and evidence-based land management planning. While predictive uncertainty is greater in areas lacking ground reference data, particularly in the northeastern part of the island, the modeling framework demonstrates strong potential for a national-scale soil health assessment. The outcomes are directly relevant to ongoing soil policy developments, including the forthcoming Soil Monitoring Law, and provide spatial prediction models and indicator maps that support the assessment and mitigation of soil degradation.

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Cite This Study

Varvaris et al. (2025) studied this question.

synapsesocial.com/papers/68af431bad7bf08b1ead1900https://doi.org/10.3390/environments12080283
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