Functional convergence of biosphere–atmosphere interactions in response to meteorological conditions

Author:

Krich ChristopherORCID,Migliavacca MircoORCID,Miralles Diego G.ORCID,Kraemer GuidoORCID,El-Madany Tarek S.ORCID,Reichstein Markus,Runge JakobORCID,Mahecha Miguel D.ORCID

Abstract

Abstract. Understanding the dependencies of the terrestrial carbon and water cycle with meteorological conditions is a prerequisite to anticipate their behaviour under climate change conditions. However, terrestrial ecosystems and the atmosphere interact via a multitude of variables across temporal and spatial scales. Additionally these interactions might differ among vegetation types or climatic regions. Today, novel algorithms aim to disentangle the causal structure behind such interactions from empirical data. The estimated causal structures can be interpreted as networks, where nodes represent relevant meteorological variables or land-surface fluxes and the links represent the dependencies among them (possibly including time lags and link strength). Here we derived causal networks for different seasons at 119 eddy covariance flux tower observations in the FLUXNET network. We show that the networks of biosphere–atmosphere interactions are strongly shaped by meteorological conditions. For example, we find that temperate and high-latitude ecosystems during peak productivity exhibit biosphere–atmosphere interaction networks very similar to tropical forests. In times of anomalous conditions like droughts though, both ecosystems behave more like typical Mediterranean ecosystems during their dry season. Our results demonstrate that ecosystems from different climate zones or vegetation types have similar biosphere–atmosphere interactions if their meteorological conditions are similar. We anticipate our analysis to foster the use of network approaches, as they allow for a more comprehensive understanding of the state of ecosystem functioning. Long-term or even irreversible changes in network structure are rare and thus can be indicators of fundamental functional ecosystem shifts.

Publisher

Copernicus GmbH

Subject

Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Discovering causal relations and equations from data;Physics Reports;2023-12

2. Hourly water-carbon interactions modulate decadal water-use efficiency trends inferred from ecosystem-scale measurements;Agricultural and Forest Meteorology;2022-11

3. Causal Inference in Non-linear Time-series using Deep Networks and Knockoff Counterfactuals;2021 20th IEEE International Conference on Machine Learning and Applications (ICMLA);2021-12

4. Anomaly Attribution of Multivariate Time Series using Counterfactual Reasoning;2021 20th IEEE International Conference on Machine Learning and Applications (ICMLA);2021-12

5. The three major axes of terrestrial ecosystem function;Nature;2021-09-22

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