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      Applying predictive models to study the ecological properties of urban ecosystems: A case study in Zürich, Switzerland

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          Collinearity: a review of methods to deal with it and a simulation study evaluating their performance

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            Climatologies at high resolution for the earth’s land surface areas

            High-resolution information on climatic conditions is essential to many applications in environmental and ecological sciences. Here we present the CHELSA (Climatologies at high resolution for the earth’s land surface areas) data of downscaled model output temperature and precipitation estimates of the ERA-Interim climatic reanalysis to a high resolution of 30 arc sec. The temperature algorithm is based on statistical downscaling of atmospheric temperatures. The precipitation algorithm incorporates orographic predictors including wind fields, valley exposition, and boundary layer height, with a subsequent bias correction. The resulting data consist of a monthly temperature and precipitation climatology for the years 1979–2013. We compare the data derived from the CHELSA algorithm with other standard gridded products and station data from the Global Historical Climate Network. We compare the performance of the new climatologies in species distribution modelling and show that we can increase the accuracy of species range predictions. We further show that CHELSA climatological data has a similar accuracy as other products for temperature, but that its predictions of precipitation patterns are better.
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              Assessing the accuracy of species distribution models: prevalence, kappa and the true skill statistic (TSS)

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                Author and article information

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                Journal
                Landscape and Urban Planning
                Landscape and Urban Planning
                Elsevier BV
                01692046
                October 2021
                October 2021
                : 214
                : 104137
                Article
                10.1016/j.landurbplan.2021.104137
                7f440cf0-fdb2-4509-9f7d-26a5766855cd
                © 2021

                https://www.elsevier.com/tdm/userlicense/1.0/

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

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