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Wildfire precursors show complementary predictability in different timescales

Author

Listed:
  • Yuquan Qu

    (Institute of Bio- and Geosciences: Agrosphere (IBG-3), Forschungszentrum Jülich GmbH)

  • Diego G. Miralles

    (Ghent University)

  • Sander Veraverbeke

    (Vrije Universiteit Amsterdam)

  • Harry Vereecken

    (Institute of Bio- and Geosciences: Agrosphere (IBG-3), Forschungszentrum Jülich GmbH)

  • Carsten Montzka

    (Institute of Bio- and Geosciences: Agrosphere (IBG-3), Forschungszentrum Jülich GmbH)

Abstract

In most of the world, conditions conducive to wildfires are becoming more prevalent. Net carbon emissions from wildfires contribute to a positive climate feedback that needs to be monitored, quantified, and predicted. Here we use a causal inference approach to evaluate the influence of top-down weather and bottom-up fuel precursors on wildfires. The top-down dominance on wildfires is more widespread than bottom-up dominance, accounting for 73.3% and 26.7% of regions, respectively. The top-down precursors dominate in the tropical rainforests, mid-latitudes, and eastern Siberian boreal forests. The bottom-up precursors dominate in North American and European boreal forests, and African and Australian savannahs. Our study identifies areas where wildfires are governed by fuel conditions and hence where fuel management practices may be more effective. Moreover, our study also highlights that top-down and bottom-up precursors show complementary wildfire predictability across timescales. Seasonal or interannual predictions are feasible in regions where bottom-up precursors dominate.

Suggested Citation

  • Yuquan Qu & Diego G. Miralles & Sander Veraverbeke & Harry Vereecken & Carsten Montzka, 2023. "Wildfire precursors show complementary predictability in different timescales," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-42597-5
    DOI: 10.1038/s41467-023-42597-5
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    1. Wolfgang Buermann & Matthias Forkel & Michael O’Sullivan & Stephen Sitch & Pierre Friedlingstein & Vanessa Haverd & Atul K. Jain & Etsushi Kato & Markus Kautz & Sebastian Lienert & Danica Lombardozzi , 2018. "Widespread seasonal compensation effects of spring warming on northern plant productivity," Nature, Nature, vol. 562(7725), pages 110-114, October.
    2. Yamin Qing & Shuo Wang & Brian C. Ancell & Zong-Liang Yang, 2022. "Accelerating flash droughts induced by the joint influence of soil moisture depletion and atmospheric aridity," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    3. Yoo-Geun Ham & Jeong-Hwan Kim & Jing-Jia Luo, 2019. "Deep learning for multi-year ENSO forecasts," Nature, Nature, vol. 573(7775), pages 568-572, September.
    4. Andrew D. King & Andy J. Pitman & Benjamin J. Henley & Anna M. Ukkola & Josephine R. Brown, 2020. "The role of climate variability in Australian drought," Nature Climate Change, Nature, vol. 10(3), pages 177-179, March.
    5. Michelle C. Mack & M. Syndonia Bret-Harte & Teresa N. Hollingsworth & Randi R. Jandt & Edward A. G. Schuur & Gaius R. Shaver & David L. Verbyla, 2011. "Carbon loss from an unprecedented Arctic tundra wildfire," Nature, Nature, vol. 475(7357), pages 489-492, July.
    6. Xu Lian & Shilong Piao & Anping Chen & Kai Wang & Xiangyi Li & Wolfgang Buermann & Chris Huntingford & Josep Peñuelas & Hao Xu & Ranga B. Myneni, 2021. "Seasonal biological carryover dominates northern vegetation growth," Nature Communications, Nature, vol. 12(1), pages 1-10, December.
    7. Kaustubh Thirumalai & Pedro N. DiNezio & Yuko Okumura & Clara Deser, 2017. "Extreme temperatures in Southeast Asia caused by El Niño and worsened by global warming," Nature Communications, Nature, vol. 8(1), pages 1-8, August.
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