- By:
- Massoud, Elias C; Collier, Nathaniel O; Sharma, Bharat D; Kumar, Jitendra ; Hoffman, Forrest M
- Page Number:
- 4351-4356
- Volume:
- 1
- Book Title:
- 2024 IEEE International Conference on Big Data (BigData)
- Publication Date:
- March 12, 2026
- Publisher Location:
- IEEE, New Jersey, United States of America
- Conference Name:
- 2024 IEEE International Conference on Big Data (IEEE BigData 2024)
- Conference Location:
- Washington DC, District of Columbia, United States of America
- Conference Sponsor:
- Institute of Electrical and Electronics Engineers
- View DOI Listing:
- https://doi.org/10.1109/BigData62323.2024.10825207
Abstract
When simulating vegetation dynamics, photosynthesis accounts for a large fraction of the computational cost in most Earth System Models (ESMs). This is largely since photosynthesis is represented as a system of nonlinear equations, and the solution requires the use of an initial guess followed by many iterations of the numerical solver to obtain a solution. We use machine learning (ML) to replicate the response surface of the model’s numerical solver to improve the choice of initial guess, therefore requiring fewer iterations to obtain a final solution. We implemented this test on the leaf-level calculations as well as at the canopy scale, and for both we observed fewer iterations of the photosynthesis solver when a ML-based initial guess was implemented. The model tested here is the Energy Exascale Earth System Model - Land Model (ELM). The ML-based algorithms used here are trained on simulations from the model itself and used only to improve the initial guess for the solver; therefore, the model maintains its own set of physics to obtain the final solution. This work shows novel ways to utilize ML-based methods to improve the performance of numerical solvers in ESMs.