DocumentCode :
630600
Title :
Convex optimal uncertainty quantification: Algorithms and a case study in energy storage placement for power grids
Author :
Shuo Han ; Topcu, Ufuk ; Molei Tao ; Owhadi, Houman ; Murray, Richard M.
Author_Institution :
Div. of Eng. & Appl. Sci., California Inst. of Technol., Pasadena, CA, USA
fYear :
2013
fDate :
17-19 June 2013
Firstpage :
1130
Lastpage :
1137
Abstract :
How does one evaluate the performance of a stochastic system in the absence of a perfect model (i.e. probability distribution)? We address this question under the framework of optimal uncertainty quantification (OUQ), which is an information-based approach for worst-case analysis of stochastic systems. We are able to generalize previous results and show that the OUQ problem can be solved using convex optimization when the function under evaluation can be expressed in a polytopic canonical form (PCF). We also propose iterative methods for scaling the convex formulation to larger systems. As an application, we study the problem of storage placement in power grids with renewable generation. Numerical simulation results for simple artificial examples as well as an example using the IEEE 14-bus test case with real wind generation data are presented to demonstrate the usage of OUQ analysis.
Keywords :
energy storage; iterative methods; power grids; probability; wind power; IEEE 14-bus test; OUQ; PCF; convex optimal uncertainty quantification; energy storage placement; iterative methods; numerical simulation; polytopic canonical form; power grids; probability distribution; renewable generation; stochastic system; wind generation data; worst-case analysis; Approximation methods; Cost function; Iterative methods; Power grids; Probability distribution; Uncertainty;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference (ACC), 2013
Conference_Location :
Washington, DC
ISSN :
0743-1619
Print_ISBN :
978-1-4799-0177-7
Type :
conf
DOI :
10.1109/ACC.2013.6579988
Filename :
6579988
Link To Document :
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