Evaluation of stochastic reservoir operation optimization models |
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Authors: | Alcigeimes B Celeste Max Billib |
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Institution: | aInstitute of Water Resources Management, Hydrology and Agricultural Hydraulic Engineering, Leibniz University of Hanover, Appelstr. 9A, 30167 Hanover, Germany |
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Abstract: | This paper investigates the performance of seven stochastic models used to define optimal reservoir operating policies. The models are based on implicit (ISO) and explicit stochastic optimization (ESO) as well as on the parameterization–simulation–optimization (PSO) approach. The ISO models include multiple regression, two-dimensional surface modeling and a neuro-fuzzy strategy. The ESO model is the well-known and widely used stochastic dynamic programming (SDP) technique. The PSO models comprise a variant of the standard operating policy (SOP), reservoir zoning, and a two-dimensional hedging rule. The models are applied to the operation of a single reservoir damming an intermittent river in northeastern Brazil. The standard operating policy is also included in the comparison and operational results provided by deterministic optimization based on perfect forecasts are used as a benchmark. In general, the ISO and PSO models performed better than SDP and the SOP. In addition, the proposed ISO-based surface modeling procedure and the PSO-based two-dimensional hedging rule showed superior overall performance as compared with the neuro-fuzzy approach. |
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Keywords: | Reservoir operation Implicit stochastic optimization Parameterization– simulation– optimization |
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