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High-resolution global maps of yield potential with local relevance for targeted crop production improvement

  • Fernando Aramburu-Merlos,
  • Marloes P. van Loon,
  • Martin K. van Ittersum,
  • Patricio Grassini

摘要

Identifying untapped opportunities for crop production improvement in current cropland is crucial to guide food availability interventions. Here we integrated an agronomically robust bottom-up approach with machine learning to generate global maps of yield potential of high resolution (ca. 1 km2 at the Equator) and accuracy for maize, wheat and rice. These maps serve as a robust reference to benchmark farmers’ yields in the context of current cropping systems and water regimes and can help to identify areas with large room to increase crop yields.