Title :
Hydrologic modeling methodology
Author :
Wissinger, Frank ; Shankar, Raji ; Restrepo, Jose
Author_Institution :
Florida Atlantic Univ., Boca Raton, FL, USA
fDate :
March 31 2014-April 3 2014
Abstract :
Complex hydrological models are employed to mimic real world behavior and, if integrated with other hydrological complex models from different domains, may lead to a new powerful hydrological model that will provide answers to ever more sophisticated queries. However, integration will be a slow process since each hydrological model may be self-contained, with different timescales and simulation speeds. Electronic Design Automation (EDA) methodologies have evolved for chip design for precisely such situations, but in a different domain. Integration of hydrological models can benefit with such EDA techniques; there, however, is also an added advantage. A complete detailed model can take days to simulate and yield useful information to the end user. However, trading off precision in some sub models with overall system response time may be acceptable, thus returning useful information much sooner. We will present methodology, model, and simulation results for a hydrologic model that is based on concepts, languages, and tools used in EDA. This results in multiple models that can trade-off precision with response time. We hope this helps open many new lines of inquiries and potential practical uses.
Keywords :
electronic design automation; EDA methodologies; chip design; complex hydrological model; electronic design automation; hydrologic modeling methodology; real world behavior; Atmospheric modeling; Computational modeling; Equations; Frequency modulation; Mathematical model; Monitoring; Ports (Computers); Electronic Design Automation (EDA) methodologies; Hydrological Modeling; SystemC-AMS;
Conference_Titel :
Systems Conference (SysCon), 2014 8th Annual IEEE
Conference_Location :
Ottawa, ON
Print_ISBN :
978-1-4799-2087-7
DOI :
10.1109/SysCon.2014.6819299