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A Fissile Ripple Spreading Algorithm to Solve Time-Dependent Vehicle Routing Problem via Coevolutionary Path Optimization

机译:一种裂变纹波扩展算法,通过共轭路径优化解决时间依赖的车辆路由问题

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The time-dependent vehicle routing problems have lately received great attention for logistics companies due to their crucial roles in reducing the time and economic costs, as well as fuel consumption and carbon emissions. However, the dynamic routing environment and traffic congestions have made it challenging to make the actual travelling trajectory optimal during the delivery process. To overcome this challenge, this study proposed an unconventional path optimization approach, fissile ripple spreading algorithm (FRSA), which is based on the advanced structure of coevolutionary path optimization (CEPO). The objective of the proposed model is to minimize the travelling time and path length of the vehicle, which are the popular indicators in path optimization. Some significant factors usually ignored in other research are considered in this study, such as congestion evolution, routing environment dynamics, signal control, and the complicated correlation between delivery sequence and the shortest path. The effectiveness of the proposed approach was demonstrated well in two sets of simulated experiments. The results prove that the proposed FRSA can scientifically find out the optimal delivery trajectory in a single run via global research, effectively avoid traffic congestion, and decrease the total delivery costs. This finding paves a new way to explore a promising methodology for addressing the delivery sequence and the shortest path problems at the same time. This study can provide theoretical support for the practical application in logistics delivery.
机译:由于其在减少时间和经济成本以及燃料消耗和碳排放的关键作用,最终依赖的车辆路线问题最初得到了物流公司的巨大关注。然而,动态路由环境和交通拥堵使得在交付过程中使实际的行驶轨迹最佳地实现了挑战。为了克服这一挑战,本研究提出了一种非常规路径优化方法,裂变纹波扩展算法(FRSA),其基于共同路径优化(CEPO)的先进结构。所提出的模型的目的是最小化车辆的行进时间和路径长度,这是路径优化中的流行指标。在本研究中考虑了在其他研究中通常忽略的一些重要因素,例如拥塞演化,路由环境动态,信号控制和交付序列之间的复杂相关性和最短路径。在两组模拟实验中,拟议方法的有效性良好。结果证明,拟议的FRSA可以通过全球研究,科学地可以在一次运行中提供最佳输送轨迹,有效避免交通拥堵,并降低总递送成本。这一发现铺平了一种新的方法来探索有希望的方法来解决交付序列和同时最短的路径问题。本研究可以为物流交付中的实际应用提供理论支持。

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