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An Oriented Convergent Mutation Operator for Solving a Scalable Convergent Demand Responsive Transport Problem

机译:一个定向的收敛突变算子,用于解决可扩展的收敛需求响应性运输问题

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This paper presents a method for solving the convergence demand responsive transport problem, by using a stochastic approach based on a steady state genetic algorithm for enumerating a set of optimizing sprawling spanning trees, which constitute the best solutions to this problem. Specifically designed to speed up the convergence to optimal solutions, we introduce an oriented convergent mutation operator, allowing multi-objective considerations. So this solution lays the first stakes for considering real-time solving of such a problem. Led by computer science and geography laboratories, this study is provided with a set of experimental results evaluating the approach.
机译:本文通过使用基于稳态遗传算法的随机方法枚举了一组优化庞大的树木来解决了响应响应式运输问题的方法,这构成了对该问题的最佳解决方案来解决响应响应性响应性响应性响应性传输问题的方法。专门设计用于加速汇聚到最佳解决方案,我们引入了面向导向的会聚突变算子,允许多目标考虑。因此,该解决方案奠定了首次赌注,以考虑对这种问题的实时解决。由计算机科学和地理实验室领导,本研究提供了一套实验结果,评估了这种方法。

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