4.7 Article

A Hybrid Dynamical-Statistical Downscaling Technique. Part I: Development and Validation of the Technique

Journal

JOURNAL OF CLIMATE
Volume 28, Issue 12, Pages 4597-4617

Publisher

AMER METEOROLOGICAL SOC
DOI: 10.1175/JCLI-D-14-00196.1

Keywords

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Funding

  1. City of Los Angeles
  2. U.S. Department of Energy as part of the American Recovery and Reinvestment Act
  3. National Science Foundation [EF-1065863]
  4. Southwest Climate Science Center
  5. Direct For Biological Sciences
  6. Emerging Frontiers [1065853] Funding Source: National Science Foundation

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In this study (Part I), the mid-twenty-first-century surface air temperature increase in the entire CMIP5 ensemble is downscaled to very high resolution (2 km) over the Los Angeles region, using a new hybrid dynamical-statistical technique. This technique combines the ability of dynamical downscaling to capture finescale dynamics with the computational savings of a statistical model to downscale multiple GCMs. First, dynamical downscaling is applied to five GCMs. Guided by an understanding of the underlying local dynamics, a simple statistical model is built relating the GCM input and the dynamically downscaled output. This statistical model is used to approximate the warming patterns of the remaining GCMs, as if they had been dynamically downscaled. The full 32-member ensemble allows for robust estimates of the most likely warming and uncertainty resulting from intermodel differences. The warming averaged over the region has an ensemble mean of 2.3 degrees C, with a 95% confidence interval ranging from 1.0 degrees to 3.6 degrees C. Inland and high elevation areas warm more than coastal areas year round, and by as much as 60% in the summer months. A comparison to other common statistical downscaling techniques shows that the hybrid method produces similar regional-mean warming outcomes but demonstrates considerable improvement in capturing the spatial details. Additionally, this hybrid technique incorporates an understanding of the physical mechanisms shaping the region's warming patterns, enhancing the credibility of the final results.

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