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Papers

CropGym: a Reinforcement Learning Environment for Crop Management

2021-04-09 · Hiske Overweg, Herman N. C. Berghuijs, Ioannis N. Athanasiadis

Nitrogen fertilizers have a detrimental effect on the environment, which can be reduced by optimizing fertilizer management strategies. We implement an OpenAI Gym environment where a reinforcement learning agent can learn fertilization management policies using process-based crop growth models and identify policies with reduced environmental impact. In our environment, an agent trained with the Proximal Policy Optimization algorithm is more successful at reducing environmental impacts than the other baseline agents we present.

📄 PDF Abstract BibTeX arXiv:2104.04326

Code (2)

BigDataWUR/crop-gym 공식 구현
Intelligent-Reliable-Autonomous-Systems/WOFOSTGym pytorch

Tasks

ManagementOpenAI Gymreinforcement-learningReinforcement LearningReinforcement Learning (RL)

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