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Multi-Objective Air-Conditioning Control Considering Fuzzy Parameters Using Immune Clonal Selection Programming
112
Citations
15
References
2012
Year
EngineeringFuzzy ModelingEnergy EfficiencyFuzzy Control SystemSmart SystemsSystems EngineeringSmart EnergyFuzzy OptimizationInternet Of ThingsEnergy Demand ManagementFuzzy LogicEnergy PredictionEvolutionary ProgrammingSmart GridAerospace EngineeringEnergy ManagementRobust Fuzzy ProgrammingSmart Home EnvironmentDemand Response
Smart home integrates disaster protection, medical care, entertainment and energy-saving systems, making the living environment more secure and comfortable. This paper investigates the demand response achieved by the “smart energy management system” in a smart home environment, and aims to obtain the optimal temperature scheduling for air-conditioning according to the day-ahead electricity price and outdoor temperature forecasts. Because the retail electricity price and temperature are predicted 24 h in advance and there exists uncertainty, the predicted retail electricity prices and temperatures are modeled by the fuzzy set. The immune clonal selection programming is employed to determine the day-ahead 24-h temperature schedule for air-conditioning. The electricity expense is hence minimized while comfort is still retained. The simulation result shows the applicability of the proposed method.
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