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ADM-Kenya/Farming-Systems

Domain:

agriculturegeospatial

Record type:

software
Creator:
ADM
Host:
# Farming Systems This Jupyter Notebook script is designed to classify irrigated and rainfed farming systems based on harmonics of the **Normalized Difference Vegetation Index (NDVI, the Land Surface Temperature (LST)** and the **evapotranspiration (ET)**, that work as predictors for a random forest classifier. The algorithm works on a spatial resolution of 10m and uses Sentinel-2 data over a time period of 3 years as input data. The final output classification is then valid for this 3-year time span. ### **Requirements** - System Requirements: Windows 10/11 64 bits, not tested on Linux. - At least 16GB of RAM. - Dependencies: defined in the environment file ### **Input** Format needs to geotiff and ESRI shapefile. - Study area: Shapefile of the Study Area. - Training data: Shapefile containing polygons for irrigated and rainfed cropland.