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      Guidelines for Studying Diverse Types of Compound Weather and Climate Events

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          The ERA5 Global Reanalysis

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            Receiver operating characteristic curve in diagnostic test assessment.

            The performance of a diagnostic test in the case of a binary predictor can be evaluated using the measures of sensitivity and specificity. However, in many instances, we encounter predictors that are measured on a continuous or ordinal scale. In such cases, it is desirable to assess performance of a diagnostic test over the range of possible cutpoints for the predictor variable. This is achieved by a receiver operating characteristic (ROC) curve that includes all the possible decision thresholds from a diagnostic test result. In this brief report, we discuss the salient features of the ROC curve, as well as discuss and interpret the area under the ROC curve, and its utility in comparing two different tests or predictor variables of interest.
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              Climate variation explains a third of global crop yield variability

              Many studies have examined the role of mean climate change in agriculture, but an understanding of the influence of inter-annual climate variations on crop yields in different regions remains elusive. We use detailed crop statistics time series for ~13,500 political units to examine how recent climate variability led to variations in maize, rice, wheat and soybean crop yields worldwide. While some areas show no significant influence of climate variability, in substantial areas of the global breadbaskets, >60% of the yield variability can be explained by climate variability. Globally, climate variability accounts for roughly a third (~32–39%) of the observed yield variability. Our study uniquely illustrates spatial patterns in the relationship between climate variability and crop yield variability, highlighting where variations in temperature, precipitation or their interaction explain yield variability. We discuss key drivers for the observed variations to target further research and policy interventions geared towards buffering future crop production from climate variability.
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                Author and article information

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                Journal
                Earth's Future
                Earth's Future
                American Geophysical Union (AGU)
                2328-4277
                2328-4277
                November 2021
                November 10 2021
                November 2021
                : 9
                : 11
                Affiliations
                [1 ]Department of Computational Hydrosystems Helmholtz Centre for Environmental Research—UFZ Leipzig Germany
                [2 ]Department of Meteorology University of Reading Reading UK
                [3 ]Department of Civil and Environmental Engineering Politecnico di Milano Milano Italy
                [4 ]School of Civil Engineering and Geosciences Newcastle University Newcastle upon Tyne UK
                [5 ]Institute for Environmental Studies Vrije Universiteit Amsterdam Amsterdam The Netherlands
                [6 ]Institute for Atmospheric and Climate Science ETH Zurich Zurich Switzerland
                [7 ]Instituto Dom Luiz (IDL) Faculdade de Ciências Universidade de Lisboa Lisboa Portugal
                [8 ]Research Center for Statistics University of Geneva Geneva Switzerland
                [9 ]Department of Biogeochemical Integration Max Planck Institute for Biogeochemistry Jena Germany
                [10 ]University of Belgrade and Center for Participatory Science Institute for Medical Research Belgrade Serbia
                [11 ]Department of Economic Sciences University of Salento Lecce Italy
                [12 ]Geography Loughborough University Loughborough UK
                [13 ]Centre for Geographical Studies and Associated Laboratory TERRA Institute of Geography and Spatial Planning Universidade de Lisboa Lisboa Portugal
                [14 ]Institute of Meteorology and Climate Research Karlsruhe Institute of Technology Karlsruhe Germany
                [15 ]Faculty of Civil Engineering and Geosciences Delft University of Technology Delft The Netherlands
                [16 ]Oeschger Centre for Climate Change Research and Institute of Geography University of Bern Bern Switzerland
                [17 ]School of Mathematical Sciences Queensland University of Technology Brisbane QL Australia
                [18 ]Royal Netherlands Meteorological Institute (KNMI) De Bilt The Netherlands
                [19 ]Department of Infrastructure Engineering Faculty of Engineering and Information Technology The University of Melbourne Melbourne VIC Australia
                [20 ]State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry Institute of Atmospheric Physics Chinese Academy of Sciences Beijing China
                [21 ]Climate and Environmental Physics University of Bern Bern Switzerland
                [22 ]Oeschger Centre for Climate Change Research University of Bern Bern Switzerland
                Article
                10.1029/2021EF002340
                6572983e-7d25-4326-8ab7-5d670613c776
                © 2021

                http://creativecommons.org/licenses/by-nc/4.0/

                http://doi.wiley.com/10.1002/tdm_license_1.1

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