pyROM: A computational framework for reduced order modeling
Autor: | Shiv Meka, Vladimir Puzyrev, Mehdi Ghommem |
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Rok vydání: | 2019 |
Předmět: |
Speedup
General Computer Science Bokeh Discretization Computer science 02 engineering and technology Isogeometric analysis Python (programming language) 01 natural sciences Finite element method 010305 fluids & plasmas Theoretical Computer Science Visualization Dynamic problem Computer engineering Modeling and Simulation 0103 physical sciences 0202 electrical engineering electronic engineering information engineering 020201 artificial intelligence & image processing computer computer.programming_language |
Zdroj: | Journal of Computational Science. 30:157-173 |
ISSN: | 1877-7503 |
DOI: | 10.1016/j.jocs.2018.12.004 |
Popis: | Model reduction techniques reduce the overall complexity of dynamic systems and allow to speed up simulations of their behavior several orders of magnitude while retaining good accuracy. Despite being useful to obtain real-time simulations and apply control strategies, only few freely available software implementations of model reduction techniques have been reported in the literature. Furthermore, the use of these tools tends to be only for a limited range of dynamic problems, mostly related to fluid flows, and to deal with relatively small systems and datasets. In this paper, we build a portable, user-friendly, and open source computational framework, namely pyROM, implementing model reduction techniques in the Python programming language. This tool is designed to satisfy the needs of wide range of users to deploy model reduction for reproducing the dynamic response of high-dimensional models with good accuracy while achieving significant computational savings. The framework is designed in an object-oriented way to be easy to use and extend and employs visualization tools from various Python libraries such as Matplotlib, Mayavi, and Bokeh. Several numerical examples using modern spatial discretization methods such as the finite element method, the isogeometric analysis, the meshless point collocation method, and the generalized multiscale finite element method demonstrate the performance of the developed computational tool and the capabilities of model reduction methods to handle different engineering problems. |
Databáze: | OpenAIRE |
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