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Downscaling

98 papers · page 4 of 4 · BibTeX for this topic

  • On the Extrapolation of Generative Adversarial Networks for downscaling precipitation extremes in warmer climates

    Neelesh Rampal, Peter B. Gibson, Steven Sherwood, Gab Abramowitz · Sep 2024

    While deep-learning downscaling algorithms can generate fine-scale climate projections cost-effectively, it is still unclear how well they will extrapolate to unobserved climates. We assess the... more

    GANs Precipitation Daily

  • Machine Learning Framework for High-Resolution Air Temperature Downscaling Using LiDAR-Derived Urban Morphological Features

    Fatemeh Chajaei, Hossein Bagheri · Sep 2024

    Climate models lack the necessary resolution for urban climate studies, requiring computationally intensive processes to estimate high resolution air temperatures. In contrast, Data-driven approaches... more

    Classical ML

  • Downscaling Neural Network for Coastal Simulations

    Zhi-Song Liu, Markus Büttner, Matthew Scarborough, Eirik Valseth, Vadym Aizinger, Bernhard Kainz et al. · Aug 2024

    Learning the fine-scale details of a coastal ocean simulation from a coarse representation is a challenging task. For real-world applications, high-resolution simulations are necessary to advance... more

    Extremes Benchmarks & datasets

  • Generative Diffusion Model-based Downscaling of Observed Sea Surface Height over Kuroshio Extension since 2000

    Qiuchang Han, Xingliang Jiang, Yang Zhao, Xudong Wang, Zhijin Li, Renhe Zhang · Aug 2024

    Satellite altimetry has been widely utilized to monitor global sea surface dynamics, enabling investigation of upper ocean variability from basin-scale to localized eddy ranges. However, the sparse... more

    Diffusion & flow matching

  • Rapid Statistical-Physical Adversarial Downscaling Reveals Bangladesh's Rising Rainfall Risk in a Warming Climate

    Anamitra Saha, Sai Ravela · Aug 2024

    In Bangladesh, a nation vulnerable to climate change, accurately quantifying the risk of extreme weather events is crucial for planning effective adaptation and mitigation strategies. Downscaling... more

    Precipitation Extremes Daily

  • MambaDS: Near-Surface Meteorological Field Downscaling with Topography Constrained Selective State Space Modeling

    Zili Liu, Hao Chen, Lei Bai, Wenyuan Li, Wanli Ouyang, Zhengxia Zou, Zhenwei Shi · Aug 2024

    In an era of frequent extreme weather and global warming, obtaining precise, fine-grained near-surface weather forecasts is increasingly essential for human activities. Downscaling (DS), a crucial... more

  • Super Resolution for Renewable Energy Resource Data With Wind From Reanalysis Data and Application to Ukraine

    Brandon N. Benton, Grant Buster, Pavlo Pinchuk, Andrew Glaws, Ryan N. King, Galen Maclaurin et al. · Jul 2024

    With a potentially increasing share of the electricity grid relying on wind to provide generating capacity and energy, there is an expanding global need for historically accurate, spatiotemporally... more

    GANs Energy Sub-hourly Hourly

  • Evaluating the transferability potential of deep learning models for climate downscaling

    Ayush Prasad, Paula Harder, Qidong Yang, Prasanna Sattegeri, Daniela Szwarcman, Campbell Watson et al. · Jul 2024

    Climate downscaling, the process of generating high-resolution climate data from low-resolution simulations, is essential for understanding and adapting to climate change at regional and local... more

    Transformers Neural operators CNN / U-Net