Classifying Soil Type Using Radar Satellite Images
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Abstract
The growth of the crop is dependent on soil type, apart from atmospheric
and geo-location characteristics. As of now, there is no direct and costfree method to measure soil property or to classify soil type. In this
work, we proposed a machine learning model to classify soil type using Sentinel-1 satellite radar images. Further, the developed classifier
achieved 72.17% F1-score classifying sandy, free and clayish on a set
of 65003 data points collected over one year (from Oct 2018 to Sep 2019)
over 14 corn parcels near Ourique, Portugal.