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Truck-drone team logistics: A heuristic approach to multi-drop route planning

机译:卡车 - 无人团团队物流:一种多滴路线规划的启发式方法

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摘要

Recently there have been significant developments and applications in the field of unmanned aerial vehicles (UAVs). In a few years, these applications will be fully integrated into our lives. The practical application and use of UAVs presents several problems that are of a different nature to the specific technology of the components involved. Among them, the most relevant problem deriving from the use of UAVs in logistics distribution tasks is the so-called "last mile" delivery.In the present work, we focus on the resolution of the truck-drone team logistics problem. The problems of tandem routing have a complex structure and have only been partially addressed in the scientific literature. The use of UAVs raises a series of restrictions and considerations that did not appear previously in routing problems; most notably, aspects such as the limited power-life of batteries used by the UAVs and the determination of rendezvous points where they are replaced by fully-charged new batteries. These difficulties have until now limited the mathematical formulation of truck-drone routing problems and their resolution to mainly small-size cases.To overcome these limitations we propose an iterated greedy heuristic based on the iterative process of destruction and reconstruction of solutions. This process is orchestrated by a global optimization scheme using a simulated annealing (SA) algorithm. We test our approach in a large set of instances of different sizes taken from literature. The obtained results are quite promising, even for large-size scenarios.
机译:最近,无人驾驶飞行器(无人机)领域存在显着的发展和应用。在几年内,这些申请将完全融入我们的生活中。无人机的实际应用和使用呈现了几个问题,对所涉及的组件的特定技术具有不同的性质。其中,从物流分配任务中使用无人机的最相关的问题是所谓的“最后一英里”送货。在目前的工作中,我们专注于卡车 - 无人团团队物流问题的解决方案。串联路由的问题具有复杂的结构,并且仅在科学文献中部分地解决了。 UAVS的使用提出了一系列限制和注意事项,这些限制性并未出现在路由问题中;最值得注意的是,无人机使用的电池的有限电力寿命等方面以及通过完全充电的新电池代替它们的集合点的测定。这些困难直到现在限制了卡车 - 无人机路由问题的数学制定及其分辨率主要是小小的情况。为了克服这些限制,我们提出了一种基于解决解决方案的迭代过程的迭代贪婪启发式。该过程由使用模拟退火(SA)算法通过全局优化方案进行策划。我们在从文学中取得的一大尺寸实例中的方法测试我们的方法。即使对于大型情景,所获得的结果也非常有希望。

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