UP Baguio Research and Publications

DIFFERENTIAL EVOLUTION - SIMULATED ANNEALING (DESA) ALGORITHM FOR FITTING AUTOREGRESSIVE MODELS TO DATA

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dc.contributor.author Addawe, Rizavel C.
dc.contributor.author Magadia, Joselito C.
dc.date.accessioned 2019-09-27T00:13:50Z
dc.date.available 2019-09-27T00:13:50Z
dc.date.issued 2014-06
dc.identifier.citation Paper presented in OPTI 2014 An International Conference on Engineering and Applied Sciences Optimization, Kos Island, Greece, 4-6, June 2014 en_US
dc.identifier.uri http://dspace.upb.edu.ph/jspui/handle/123456789/70
dc.description.abstract In this paper, we propose Differential Evolution - Simulated Annealing (DESA), a hybrid optimization algorithm for fitting autoregressive models to data. The addition of a new strategy based on parabolic estimation to Differential Evolution (DE) algorithm and the incorporation of the Simulated Annealing (SA) algorithm for a selection strategy makes DESA a robust optimization algorithm. The proposed hybrid algorithm obtained acceptable solutions particularly for AR(1) processes with unknown drift and additive outliers. Experiments on the parameter estimation of autoregressive models showed that the proposed hybrid algorithm, DESA has shown reliability in finding global minimum of the reference problem sets. Moreover, we compared the performance of DESA algorithm with those of DE, SA, maximum likelihood estimator (MLE) and ordinary least squares (OLS) on the fitting problem. Simulation results have shown that the proposed algorithm, DESA, provides MSE lower than those of MLE and/or OLS for almost all situations. Using 10-minute average wind speed data, DESA also obtained a better model fit on the actual series. en_US
dc.language.iso en en_US
dc.subject Differential Evolution en_US
dc.subject Simulated Annealing en_US
dc.subject Hybrid Optimization Algorithm en_US
dc.subject Autoregressive Process en_US
dc.subject AR(1) Model en_US
dc.subject Maximum Likelihood Estimation en_US
dc.title DIFFERENTIAL EVOLUTION - SIMULATED ANNEALING (DESA) ALGORITHM FOR FITTING AUTOREGRESSIVE MODELS TO DATA en_US
dc.type Presentation en_US


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