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A New Approach to Evaluate and Reduce Uncertainty of Model-Based Biodiversity Projections for Conservation Policy FormulationBiodiversity projections with uncertainty estimates under different climate, land-use, and policy scenarios are essential to setting and achieving international targets to mitigate biodiversity loss. Evaluating and improving biodiversity predictions to better inform policy decisions remains a central conservation goal and challenge. A comprehensive strategy to evaluate and reduce uncertainty of model outputs against observed measurements and multiple models would help to produce more robust biodiversity predictions. We propose an approach that integrates biodiversity models and emerging remote sensing and in-situ data streams to evaluate and reduce uncertainty with the goal of improving policy-relevant biodiversity predictions. In this article, we describe a multivariate approach to directly and indirectly evaluate and constrain model uncertainty, demonstrate a proof of concept of this approach, embed the concept within the broader context of model evaluation and scenario analysis for conservation policy, and highlight lessons from other modeling communities.
Document ID
20210026291
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Bonnie J E Myers ORCID
(United States Geological Survey Reston, Virginia, United States)
Sarah R Weiskopf
(United States Geological Survey Reston, Virginia, United States)
Alexey N Shiklomanov
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Simon Ferrier
(Commonwealth Scientific and Industrial Research Organisation Canberra, Australian Capital Territory, Australia)
Ensheng Weng
(Columbia University New York, New York, United States)
Kimberly A Casey
(United States Geological Survey Reston, Virginia, United States)
Mike Harfoot
(World Conservation Monitoring Centre Cambridge, United Kingdom)
Stephen T Jackson
(University of Arizona Tucson, Arizona, United States)
Allison K Leidner
(National Aeronautics and Space Administration Washington D.C., District of Columbia, United States)
Timothy M Lenton
(University of Exeter Exeter, United Kingdom)
Gordon Luikart
(University of Montana Missoula, Montana, United States)
Hiroyuki Matsuda
(Yokohama National University Yokohama, Kanagawa, Japan)
Nathalie Pettorelli
(Zoological Society of London London, Camden, United Kingdom)
Isabel M D Rosa
(Bangor University Bangor, Gwynedd, United Kingdom)
Alex C Ruane
(Goddard Institute for Space Studies New York, New York, United States)
Gabriel B Senay
(United States Geological Survey Reston, Virginia, United States)
Shawn P Serbin ORCID
(Brookhaven National Laboratory Upton, New York, United States)
Derek P Tittensor
(World Conservation Monitoring Centre Cambridge, United Kingdom)
T Douglas Beard
(United States Geological Survey Reston, Virginia, United States)
Date Acquired
January 3, 2022
Publication Date
October 13, 2021
Publication Information
Publication: Bioscience
Publisher: American Institute of Biological Sciences / Oxford University Press
Volume: 71
Issue: 12
Issue Publication Date: December 1, 2021
ISSN: 0006-3568
e-ISSN: 1525-3244
Subject Category
Earth Resources And Remote Sensing
Funding Number(s)
WBS: 304029.01.24.01.11
CONTRACT_GRANT: NNH16AD121
CONTRACT_GRANT: DE-SC0012704
OTHER: RPG-2018-046
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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