WxC-Bench: A Novel Dataset for Weather and Climate Downstream Tasks
Rajat Shinde, Christopher E. Phillips, Kumar Ankur, Aman Gupta, Simon, Pfreundschuh, Sujit Roy, Sheyenne Kirkland, Vishal Gaur, Amy Lin, Aditi, Sheshadri, Udaysankar Nair, Manil Maskey, Rahul Ramachandran

TL;DR
WxC-Bench is a comprehensive, multi-modal dataset designed to facilitate the development of AI models for diverse weather and climate analysis tasks across multiple atmospheric scales.
Contribution
The paper introduces WxC-Bench, a novel dataset of datasets tailored for machine learning applications in weather and climate research, covering various atmospheric phenomena and scales.
Findings
Baseline analysis demonstrates dataset utility for multiple tasks.
Dataset supports generalizable AI model development.
Publicly available on Hugging Face for community use.
Abstract
High-quality machine learning (ML)-ready datasets play a foundational role in developing new artificial intelligence (AI) models or fine-tuning existing models for scientific applications such as weather and climate analysis. Unfortunately, despite the growing development of new deep learning models for weather and climate, there is a scarcity of curated, pre-processed machine learning (ML)-ready datasets. Curating such high-quality datasets for developing new models is challenging particularly because the modality of the input data varies significantly for different downstream tasks addressing different atmospheric scales (spatial and temporal). Here we introduce WxC-Bench (Weather and Climate Bench), a multi-modal dataset designed to support the development of generalizable AI models for downstream use-cases in weather and climate research. WxC-Bench is designed as a dataset of…
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Taxonomy
TopicsHydrological Forecasting Using AI · Meteorological Phenomena and Simulations
MethodsGravity
