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Process integration, data management, and visualization framework for subsurface sciences
Author(s) -
Karen Schuchardt,
G D Black,
Jared Chase,
Todd Elsethagen,
Liping Sun
Publication year - 2007
Publication title -
journal of physics conference series
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.21
H-Index - 85
eISSN - 1742-6596
pISSN - 1742-6588
DOI - 10.1088/1742-6596/78/1/012064
Subject(s) - workflow , computer science , scripting language , visualization , workflow management system , process (computing) , extensibility , software engineering , flexibility (engineering) , workflow technology , data science , process mining , process modeling , data management , data visualization , distributed computing , data mining , database , work in process , business process management , programming language , engineering , business process , operations management , mathematics , statistics
Applying subsurface simulation codes to understand heterogeneous flow and transport problems is a complex process potentially involving multiple models, multiple scales, and spanning multiple scientific disciplines. A typical end-to-end process involves many tools, scripts and data sources usually shared only though informal channels. Additionally, the process contains many sub-processes that are repeated frequently and could be automated and shared. Finally, keeping records of the models, processes, and correlation between inputs and outputs is currently manual, time consuming and error prone. We are developing a software framework that integrates a workflow execution environment, shared data repository, and analysis and visualization tools to support development and use of new hybrid subsurface simulation codes. We are taking advantage of recent advances in scientific process automation using the Kepler system and advances in data services based on content management. Extensibility and flexibility are key underlying design considerations to support the constantly changing set of tools, scripts, and models available. We describe the architecture and components of this system with early examples of applying it to a continuum subsurface model.

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