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首页> 外文期刊>ISPRS International Journal of Geo-Information >A Novel Spatial-Temporal Voronoi Diagram-Based Heuristic Approach for Large-Scale Vehicle Routing Optimization with Time Constraints
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A Novel Spatial-Temporal Voronoi Diagram-Based Heuristic Approach for Large-Scale Vehicle Routing Optimization with Time Constraints

机译:基于时空Voronoi图的启发式新方法用于带时间约束的大规模车辆路径优化

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Vehicle routing optimization (VRO) designs the best routes to reduce travel cost, energy consumption, and carbon emission. Due to non-deterministic polynomial-time hard (NP-hard) complexity, many VROs involved in real-world applications require too much computing effort. Shortening computing time for VRO is a great challenge for state-of-the-art spatial optimization algorithms. From a spatial-temporal perspective, this paper presents a spatial-temporal Voronoi diagram-based heuristic approach for large-scale vehicle routing problems with time windows (VRPTW). Considering time constraints, a spatial-temporal Voronoi distance is derived from the spatial-temporal Voronoi diagram to find near neighbors in the space-time searching context. A Voronoi distance decay strategy that integrates a time warp operation is proposed to accelerate local search procedures. A spatial-temporal feature-guided search is developed to improve unpromising micro route structures. Experiments on VRPTW benchmarks and real-world instances are conducted to verify performance. The results demonstrate that the proposed approach is competitive with state-of-the-art heuristics and achieves high-quality solutions for large-scale instances of VRPTWs in a short time. This novel approach will contribute to spatial decision support community by developing an effective vehicle routing optimization method for large transportation applications in both public and private sectors.
机译:车辆路线优化(VRO)设计了最佳路线,以减少出行成本,能耗和碳排放。由于不确定的多项式时间硬性(NP-hard)复杂性,实际应用中涉及的许多VRO都需要大量的计算工作。缩短VRO的计算时间对于最新的空间优化算法是一个巨大的挑战。从时空的角度,本文提出了一种基于时空Voronoi图的启发式方法,用于带有时间窗(VRPTW)的大规模车辆路径问题。考虑时间限制,从时空沃罗诺伊图导出时空沃罗诺伊距离,以在时空搜索上下文中找到附近的邻居。提出了一种集成了时间扭曲操作的Voronoi距离衰减策略,以加速本地搜索过程。时空特征引导搜索的发展,以改善没有希望的微路线结构。进行了关于VRPTW基准测试和实际实例的实验,以验证性能。结果表明,所提出的方法与最新的启发式方法具有竞争性,并且可以在短时间内为VRPTW的大型实例提供高质量的解决方案。这种新颖的方法将通过为公共部门和私营部门的大型运输应用开发有效的车辆路线优化方法,为空间决策支持社区做出贡献。

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