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      <dc:title>Multiobjective electric vehicle charging station locations in a city scale area: Malaga study case.</dc:title>
      <dc:creator>Cintrano López, Christian</dc:creator>
      <dc:creator>Toutouh-el-Alamin, Jamal</dc:creator>
      <dc:subject>Transporte - Aspectos ambientales</dc:subject>
      <dc:subject>Desarrollo sostenible</dc:subject>
      <dc:subject>Vehículos eléctricos</dc:subject>
      <dc:description>This article presents a multiobjective variation of the problem of locating electric vehicle charging stations (EVCS) in a city known as the Multiobjective Electric Vehicle Charging Stations Locations (MO-EVCS-L) problem. MO-EVCS-L considers two conflicting objectives: maximizing the quality of service of the charging station network and minimizing the deployment cost when installing different types of charging stations. Two multiobjective metaheuristics are proposed to address MO-EVCS-L: the Non-dominated Sorting Genetic Algorithm, version II (NSGA-II) and the Strength Pareto Evolutionary Algorithm, version 2 (SPEA2). The experimental analysis is performed on a real-world case study defined in Malaga, Spain, and it compares the proposed approaches with a baseline algorithm. Results show that the SPEA2 computes the most competitive solutions, even though both metaheuristics found an accurate set of solutions that provide different trade-offs between the quality of service and the installation costs.</dc:description>
      <dc:date>2023-09-15T10:44:34Z</dc:date>
      <dc:date>2023-09-15T10:44:34Z</dc:date>
      <dc:date>2022</dc:date>
      <dc:type>conference output</dc:type>
      <dc:identifier>https://hdl.handle.net/10630/27530</dc:identifier>
      <dc:language>eng</dc:language>
      <dc:relation>International Conference on the Applications of Evolutionary Computation (Part of EvoStar)</dc:relation>
      <dc:relation>Madrid</dc:relation>
      <dc:relation>2022</dc:relation>
      <dc:rights>open access</dc:rights>
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