English

Recurrent Neural Networks for Modelling Gross Primary Production

Machine Learning 2024-09-30 v1

Abstract

Accurate quantification of Gross Primary Production (GPP) is crucial for understanding terrestrial carbon dynamics. It represents the largest atmosphere-to-land CO2_2 flux, especially significant for forests. Eddy Covariance (EC) measurements are widely used for ecosystem-scale GPP quantification but are globally sparse. In areas lacking local EC measurements, remote sensing (RS) data are typically utilised to estimate GPP after statistically relating them to in-situ data. Deep learning offers novel perspectives, and the potential of recurrent neural network architectures for estimating daily GPP remains underexplored. This study presents a comparative analysis of three architectures: Recurrent Neural Networks (RNNs), Gated Recurrent Units (GRUs), and Long-Short Term Memory (LSTMs). Our findings reveal comparable performance across all models for full-year and growing season predictions. Notably, LSTMs outperform in predicting climate-induced GPP extremes. Furthermore, our analysis highlights the importance of incorporating radiation and RS inputs (optical, temperature, and radar) for accurate GPP predictions, particularly during climate extremes.

Keywords

Cite

@article{arxiv.2404.12745,
  title  = {Recurrent Neural Networks for Modelling Gross Primary Production},
  author = {David Montero and Miguel D. Mahecha and Francesco Martinuzzi and César Aybar and Anne Klosterhalfen and Alexander Knohl and Franziska Koebsch and Jesús Anaya and Sebastian Wieneke},
  journal= {arXiv preprint arXiv:2404.12745},
  year   = {2024}
}

Comments

Accepted at IGARSS24

R2 v1 2026-06-28T15:59:36.612Z