Optimization of Water Resources Utilization by PSO-GA
The objective of this paper is to present an optimal model to address the water resources utilization of the Tao River basin in China. The Tao River water diversion project has been proposed to alleviate the problem of water shortages in Gansu Province in China. A multi reservoir system is under con...
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          | Published in | Water resources management Vol. 27; no. 10; pp. 3525 - 3540 | 
|---|---|
| Main Authors | , , , | 
| Format | Journal Article | 
| Language | English | 
| Published | 
        Dordrecht
          Springer Netherlands
    
        01.08.2013
     Springer Springer Nature B.V  | 
| Subjects | |
| Online Access | Get full text | 
| ISSN | 0920-4741 1573-1650  | 
| DOI | 10.1007/s11269-013-0362-8 | 
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| Abstract | The objective of this paper is to present an optimal model to address the water resources utilization of the Tao River basin in China. The Tao River water diversion project has been proposed to alleviate the problem of water shortages in Gansu Province in China. A multi reservoir system is under consideration with multiple objectives including water diversion, ecological water demand, irrigation, hydropower generation, industrial requirements, and domestic uses in the Tao River basin. A multi-objective model for the minimization of water shortages and the maximization of hydro-power production is proposed to manage the utilization of Tao River water resources. An adjustable PSO-GA (particle swarm optimization – genetic algorithm) hybrid algorithm is proposed that combines the strengths of PSO and GA to balance natural selection and good knowledge sharing to enable a robust and efficient search of the solution space. Two driving parameters are used in the adjustable hybrid model to optimize the performance of the PSO-GA hybrid algorithm by assigning a preference to either PSO or GA. The results show that the proposed hybrid algorithm can simultaneously obtain a promising solution and speed up the convergence. | 
    
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| AbstractList | The objective of this paper is to present an optimal model to address the water resources utilization of the Tao River basin in China. The Tao River water diversion project has been proposed to alleviate the problem of water shortages in Gansu Province in China. A multi reservoir system is under consideration with multiple objectives including water diversion, ecological water demand, irrigation, hydropower generation, industrial requirements, and domestic uses in the Tao River basin. A multi-objective model for the minimization of water shortages and the maximization of hydro-power production is proposed to manage the utilization of Tao River water resources. An adjustable PSO-GA (particle swarm optimization – genetic algorithm) hybrid algorithm is proposed that combines the strengths of PSO and GA to balance natural selection and good knowledge sharing to enable a robust and efficient search of the solution space. Two driving parameters are used in the adjustable hybrid model to optimize the performance of the PSO-GA hybrid algorithm by assigning a preference to either PSO or GA. The results show that the proposed hybrid algorithm can simultaneously obtain a promising solution and speed up the convergence. The objective of this paper is to present an optimal model to address the water resources utilization of the Tao River basin in China. The Tao River water diversion project has been proposed to alleviate the problem of water shortages in Gansu Province in China. A multi reservoir system is under consideration with multiple objectives including water diversion, ecological water demand, irrigation, hydropower generation, industrial requirements, and domestic uses in the Tao River basin. A multi-objective model for the minimization of water shortages and the maximization of hydro-power production is proposed to manage the utilization of Tao River water resources. An adjustable PSO-GA (particle swarm optimization - genetic algorithm) hybrid algorithm is proposed that combines the strengths of PSO and GA to balance natural selection and good knowledge sharing to enable a robust and efficient search of the solution space. Two driving parameters are used in the adjustable hybrid model to optimize the performance of the PSO-GA hybrid algorithm by assigning a preference to either PSO or GA. The results show that the proposed hybrid algorithm can simultaneously obtain a promising solution and speed up the convergence.[PUBLICATION ABSTRACT]  | 
    
| Author | Chang, Jian-xia Huang, Qiang Bai, Tao Yang, Da-wen  | 
    
| Author_xml | – sequence: 1 givenname: Jian-xia surname: Chang fullname: Chang, Jian-xia email: chxiang@xaut.edu.cn organization: Institute of Water Resources and Hydroelectric Power, Xi’an University of Technology – sequence: 2 givenname: Tao surname: Bai fullname: Bai, Tao organization: Institute of Water Resources and Hydroelectric Power, Xi’an University of Technology – sequence: 3 givenname: Qiang surname: Huang fullname: Huang, Qiang organization: Institute of Water Resources and Hydroelectric Power, Xi’an University of Technology – sequence: 4 givenname: Da-wen surname: Yang fullname: Yang, Da-wen organization: Institute of Water Resources and Hydroelectric Power, Xi’an University of Technology  | 
    
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| Keywords | Multi-objective optimization model PSO-GA Reservoir operation Water resources rivers algorithms models projects reservoirs surface water irrigation water resources optimization Multi-objective otimization model water resource management particles  | 
    
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| SubjectTerms | Adjustable Algorithms Atmospheric Sciences China Civil Engineering Climate change Driving ability Dynamic programming Earth and Environmental Science Earth Sciences Earth, ocean, space Environment Exact sciences and technology Freshwater Genetic algorithms Geotechnical Engineering & Applied Earth Sciences Hydroelectric power Hydrogeology Hydrology Hydrology. Hydrogeology Hydrology/Water Resources irrigation Irrigation water Linear programming Methods model validation natural selection Optimization Random variables Reservoirs River basins river water Rivers Runoff Shortages Studies Utilization Water demand Water diversion Water resources Water resources management Water shortages Water supply water utilization watersheds  | 
    
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| Title | Optimization of Water Resources Utilization by PSO-GA | 
    
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