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Observational constraints reduce model spread but not uncertainty in global wetland methane emission estimates

Kuang‐Yu Chang; William J. Riley; Nathan Collier; Gavin McNicol; Etienne Fluet‐Chouinard; Sara H. Knox; Kyle B. Delwiche; Robert B. Jackson; Benjamin Poulter; Marielle Saunois; Naveen Chandra; Nicola Gedney; Misa Ishizawa; Akihiko Ito; Fortunat Joos; Thomas Kleinen; Federico Maggi; Joe McNorton; Joe R. Melton; Paul Miller; Yosuke Niwa; Chiara Pasut; Prabir K. Patra; Changhui Peng; Sushi Peng; Arjo Segers; Hanqin Tian; Aki Tsuruta; Yuanzhi Yao; Yi Yin; Wenxin Zhang; Zhen Zhang; Qing Zhu; Qiuan Zhu; Qianlai Zhuang
Global Change Biology · Vol. 29, Issue 15 · pp. 4298-4312 · 2023

Abstract

The recent rise in atmospheric methane (CH 4 ) concentrations accelerates climate change and offsets mitigation efforts. Although wetlands are the largest natural CH 4 source, estimates of global wetland CH 4 emissions vary widely among approaches taken by bottom‐up (BU) process‐based biogeochemical models and top‐down (TD) atmospheric inversion methods. Here, we integrate in situ measurements, multi‐model ensembles, and a machine learning upscaling product into the International Land Model Benchmarking system to examine the relationship between wetland CH 4 emission estimates and model performance. We find that using better‐performing models identified by observational constraints reduces the spread of wetland CH 4 emission estimates by 62% and 39% for BU‐ and TD‐based approaches, respectively. However, global BU and TD CH 4 emission estimate discrepancies increased by about 15% (from 31 to 36 TgCH 4 year −1 ) when the top 20% models were used, although we consider this result moderately uncertain given the unevenly distributed global observations. Our analyses demonstrate that model performance ranking is subject to benchmark selection due to large inter‐site variability, highlighting the importance of expanding coverage of benchmark sites to diverse environmental conditions. We encourage future development of wetland CH 4 models to move beyond static benchmarking and focus on evaluating site‐specific and ecosystem‐specific variabilities inferred from observations.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2023-08-01
Publication Year2023
Volume29
Issue15
Pages4298-4312
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.16755
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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