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This tutorial demonstrates how to map soil salinity distribution using machine learning and sentinel-2 imagery in Google Earth Engine. The process is divided into three main steps: 1. Estimating Soil Salinity Distribution: Soil salinity was initially estimated using a spectral index derived from sentinel-2 data. 2. Training Data Collection: Training datasets were created based on the calculated soil salinity index to support the modeling process. 3. Mapping with Machine Learning: A machine learning algorithm was employed to produce a comprehensive map of soil salinity distribution. ------------------------------------------------------------------------------------------------------------- Want to learn more about Google Earth Engine? See here: / @satelliteremotesensingandgis ------------------------------------------------------------------------------------------------------------- Join this channel to get access to Satellite Remote Sensing and GIS: URLL: / @satelliteremotesensingandgis ------------------------------------------------------------------------------------------------------------- Linkedin: / satellite-remote-sensing-and-gis-2bba07355 ------------------------------------------------------------------------------------------------------------- Here, you can find a bunch of videos exploring the efficiency of Google Earth Engine: / @satelliteremotesensingandgis ------------------------------------------------------------------------------------------------------------- #googleearthengine #soil #SatelliteRemoteSensingandGIS #salinity