Title:
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Crossing the chasm: how to develop weather and climate models for next generation computers?
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Author:
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Lawrence, Bryan N.; Rezny, Mike; Budich, Reinhard; Bauer, Peter; Behrens, Jörg; Carter, Mick; Deconinck, Willem; Ford, Rupert; Maynard, Christopher; Mullerworth, Steven; Osuna, Carlos; Porter, Andrew; Serradell, Kim; Valcke, Sophie; Wedi, Nils; Wilson, Simon
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Other authors:
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Barcelona Supercomputing Center |
Abstract:
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Weather and climate models are complex pieces of software which include many individual components, each of which is evolving under pressure to exploit advances in computing to enhance some combination of a range of possible improvements (higher spatio-temporal resolution, increased fidelity in terms of resolved processes, more quantification of uncertainty, etc.). However, after many years of a relatively stable computing environment with little choice in processing architecture or programming paradigm (basically X86 processors using MPI for parallelism), the existing menu of processor choices includes significant diversity, and more is on the horizon. This computational diversity, coupled with ever increasing software complexity, leads to the very real possibility that weather and climate modelling will arrive at a chasm which will separate scientific aspiration from our ability to develop and/or rapidly adapt codes to the available hardware.
In this paper we review the hardware and software trends which are leading us towards this chasm, before describing current progress in addressing some of the tools which we may be able to use to bridge the chasm. This brief introduction to current tools and plans is followed by a discussion outlining the scientific requirements for quality model codes which have satisfactory performance and portability, while simultaneously supporting productive scientific evolution. We assert that the existing method of incremental model improvements employing small steps which adjust to the changing hardware environment is likely to be inadequate for crossing the chasm between aspiration and hardware at a satisfactory pace, in part because institutions cannot have all the relevant expertise in house. Instead, we outline a methodology based on large community efforts in engineering and standardisation, which will depend on identifying a taxonomy of key activities – perhaps based on existing efforts to develop domain-specific languages, identify common patterns in weather and climate codes, and develop community approaches to commonly needed tools and libraries – and then collaboratively building up those key components. Such a collaborative approach will depend on institutions, projects, and individuals adopting new interdependencies and ways of working. |
Abstract:
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This paper reports European research funded
by the following FW7 and H2020 research and innovation projects: IS-ENES2 under grant agreement 312979; ESCAPE under grant
agreement no. 671627; and ESIWACE under grant agreement 675191. The authors acknowledge useful conversations with
and input from Venkatramani Balaji, Terry Davies, Peter Fox, Rich Loft, Nigel Wood, and Andy Brown and the input of other participants at the “Crossing the Chasm” meeting, in particular Jean-Claude Andre, Joachim Biercamp, Antonio Cofiño, Marie-Alice Foujols, Sylvie Joussaume, Grenville Lister, Alastair
Mckinstry, Annette Osprey, Øyvind Seland, and Manuel Vega. |
Abstract:
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Peer Reviewed |
Subject(s):
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-Àrees temàtiques de la UPC::Energies -Climatology -Weather forecasting -Climate models -Weather models -Computing environment -Clima--Observacions |
Rights:
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Attribution-NonCommercial-NoDerivs 4.0 Spain
http://creativecommons.org/licenses/by-nc-nd/4.0/es/ |
Document type:
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Article - Published version Article |
Published by:
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European Geosciences Union
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