车辆路线优化和旅行推销员问题的定量模型和算法探索

Oskari Lähdeaho , Olli-Pekka Hilmola
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引用次数: 0

摘要

本研究介绍了使用电子表格求解器和 Python 编程语言的大型车辆路由问题优化模型,Python 编程语言可通过扩展显卡提高计算能力。利用电子表格工具和模型解决实际问题,接近最优是可行的,也是可以实现的。然而,通过图形处理和可视化提高额外计算能力的可用性,现已成为决策者和问题解决者的可行选择。本研究表明,决策者可以利用有限的高端优化工具解决车辆路线优化问题。本研究表明,即使只能使用有限的高端优化工具,管理者和决策者也可以使用车辆路线优化技术。
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An exploration of quantitative models and algorithms for vehicle routing optimization and traveling salesman problems

This study presents optimization models for large vehicle routing problems using a spreadsheet solver and Python programming language with extended graphic card boosting computing power. Near optimality is feasible and attainable with spreadsheet tools and models for solving real-life problems. However, increasing the availability of additional computing power through graphics processing and visualization is now a viable option for decision-makers and problem-solvers. This study shows that decision-makers can solve vehicle routing optimization problems with limited access to high-end optimization tools. This study shows managers and decision-makers can use vehicle routing optimization even with limited access to sophisticated optimization tools.

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