AI Article Synopsis

  • High-resolution climate projections are essential for local adaptation strategies amidst climate change, utilizing data from global circulation models (GCMs).
  • Current GCM simulations are limited by coarse resolution, biases, and uncertainty, necessitating advanced techniques for local applicability.
  • The study employs a statistical downscaling method called BCCAQ to enhance climate data resolution to 10 km, reducing biases and providing more accurate daily projections based on 16 CMIP6 GCMs under different emission scenarios.

Article Abstract

High-resolution climate model projections for a range of emission scenarios are needed for designing regional and local adaptation strategies and planning in the context of climate change. To this end, the future climate simulations of global circulation models (GCMs) are the main sources of critical information. However, these simulations are not only coarse in resolution but also associated with biases and high uncertainty. To make the simulations useful for impact modeling at regional and local level, we utilized the bias correction constructed analogues with quantile mapping reordering (BCCAQ) statistical downscaling technique to produce a 10 km spatial resolution climate change projections database based on 16 CMIP6 GCMs under three emission scenarios (SSP2-4.5, SSP3-7.0, and SSP5-8.5). The downscaling strategy was evaluated using a perfect sibling approach and detailed results are presented by taking two contrasting (the worst and best performing models) GCMs as a showcase. The evaluation results demonstrate that the downscaling approach substantially reduced model biases and generated higher resolution daily data compared to the original GCM outputs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10338452PMC
http://dx.doi.org/10.1038/s41597-023-02337-2DOI Listing

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