A Quantum-Inspired Ant Colony Optimization Algorithm for Parking Lot Rental to Shared E-Scooter Services

Algorithms Pub Date : 2024-02-14 DOI:10.3390/a17020080
Antonella Nardin, Fabio D’Andreagiovanni
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Abstract

Electric scooter sharing mobility services have recently spread in major cities all around the world. However, the bad parking behavior of users has become a major source of issues, provoking accidents and compromising urban decorum of public areas. Reducing wild parking habits can be pursued by setting reserved parking spaces. In this work, we consider the problem faced by a municipality that hosts e-scooter sharing services and must choose which locations in its territory may be rented as reserved parking lots to sharing companies, with the aim of maximizing a return on renting and while taking into account spatial consideration and parking needs of local residents. Since this problem may result difficult to solve even for a state-of-the-art optimization software, we propose a hybrid metaheuristic solution algorithm combining a quantum-inspired ant colony optimization algorithm with an exact large neighborhood search. Results of computational tests considering realistic instances referring to the Italian capital city of Rome show the superior performance of the proposed hybrid metaheuristic.
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从停车场租赁到共享电动滑板车服务的量子启发蚁群优化算法
最近,电动滑板车共享出行服务已在全球各大城市普及。然而,用户的不良停车行为已成为问题的主要根源,不仅引发事故,还破坏了公共区域的城市风貌。可以通过设置预留停车位来减少乱停车的习惯。在这项工作中,我们考虑的问题是,一个提供电动摩托车共享服务的市政当局必须选择其境内的哪些地点作为预留停车场出租给共享公司,目的是在考虑到空间因素和当地居民的停车需求的情况下,实现出租回报最大化。由于这一问题即使是最先进的优化软件也很难解决,因此我们提出了一种混合元启发式求解算法,将量子启发蚁群优化算法与精确大邻域搜索相结合。针对意大利首都罗马的现实实例进行的计算测试结果表明,所提出的混合元启发式算法性能优越。
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