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K-means clustering applied to vegetation indices for mapping cultivated areas using high-resolution Moroccan Mohammed
Abdellatif Moussaid1, Mohamed Bayad2, Yousra Gamoussi3
1Center for Sustainable Soil Sciences (C3S), College of Agriculture and Environmental Sciences (CAES), University Mohammed VI Polytechnic (UM6P), 660 Lot, Ben Guerir, 43150, Morocco. abdellatif.moussaid-ext@um6p.ma.
Abstract:
This study presents a pixel-based unsupervised classification approach for mapping cultivated land using high-resolution imagery from the Moroccan Mohammed VI satellite. The proposed method integrates the K-means clustering algorithm with spectral features derived from vegetation indices, particularly the Normalized Difference Vegetation Index (NDVI) and the Modified Normalized Difference Water Index (MNDWI), together with the Near-Infrared (NIR) band. The output is a classified map composed of three classes: background, bare soil, and crop-dominated areas. The method was evaluated over a 175-hectare agricultural region in northern Morocco and achieved a relative error of 1.41%, significantly outperforming NIR threshold-based classification (7.2% error), NDVI-based classification (6.95%), and standard K-means classification using spectral bands only (5.47%). The results demonstrate the effectiveness of combining vegetation indices with unsupervised clustering and highlight the potential of the high-resolution satellite imagery for field-scale agricultural mapping, precision irrigation support, and sustainable land management.
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