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      Predictive distribution modeling of Swertia bimaculata in Darjeeling-Sikkim Eastern Himalaya using MaxEnt: current and future scenarios

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      Ecological Processes
      Springer Science and Business Media LLC

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          Abstract

          Background

          As global temperatures continue to rise, species distribution modeling is a suitable tool for identifying rare and endangered species most at risk of extinction, along with tracking shifting geographical range.

          Methods

          The present study investigates the potential distribution of Swertia bimaculata in the Darjeeling-Sikkim region of Eastern Himalaya in current and future climate scenarios of GFDL-CM3 (Geophysical Fluid Dynamics Laboratory-Climate Model 3) for the year 2050 and year 2070 through MaxEnt presence data modeling. Two sets of variables were used for modeling current scenario. The models were evaluated using AUC (area under the curve) values and TSS (true skill statistic).

          Results

          Habitat assessment of the species shows low and sporadic distribution within the study area. A significant decrease is observed in the possible range of the species in the future climate scenario with the habitat decreasing from 869.48 to 0 km 2. Resultant maps from the modeling process show significant upward shifting of the species range along the altitudinal gradient. Still, results should be taken with caution given the low number of occurrences used in the modeling.

          Conclusions

          The results thus highlight the vulnerability of the species towards extinction in the near future.

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          Most cited references61

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          Maximum entropy modeling of species geographic distributions

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            Very high resolution interpolated climate surfaces for global land areas

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              • Abstract: not found
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              Modeling of species distributions with Maxent: new extensions and a comprehensive evaluation

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Ecological Processes
                Ecol Process
                Springer Science and Business Media LLC
                2192-1709
                December 2021
                April 23 2021
                December 2021
                : 10
                : 1
                Article
                10.1186/s13717-021-00294-5
                d631715e-b2e4-4499-91f3-b384c23a0ef7
                © 2021

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

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

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