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Research on a Task Planning Method for Multi-Ship Cooperative Driving 被引量:4
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作者 CHEN Yaojie XIANG Shanshan CHEN Feixiang 《Journal of Shanghai Jiaotong university(Science)》 EI 2019年第2期233-242,共10页
A new method for a cooperative multi-task allocation problem(CMTAP) is proposed in this paper,taking into account the multi-ship, multi-target, multi-task and multi-constraint characteristics in a multi-ship cooperati... A new method for a cooperative multi-task allocation problem(CMTAP) is proposed in this paper,taking into account the multi-ship, multi-target, multi-task and multi-constraint characteristics in a multi-ship cooperative driving(MCD) system. On the basis of the general CMTAP model, an MCD task assignment model is established. Furthermore, a genetic ant colony hybrid algorithm(GACHA) is proposed for this model using constraints, including timing constraints, multi-ship collaboration constraints and ship capacity constraints. This algorithm uses a genetic algorithm(GA) based on a task sequence, while the crossover and mutation operators are based on similar tasks. In order to reduce the dependence of the GA on the initial population, an ant colony algorithm(ACA) is used to produce the initial population. In order to meet the environmental constraints of ship navigation, the results of the task allocation and path planning are combined to generate an MCD task planning scheme. The results of a simulated experiment using simulated data show that the proposed method can make the assignment more optimized on the basis of satisfying the task assignment constraints and the ship navigation environment constraints. Moreover, the experimental results using real data also indicate that the proposed method can find the optimal solution rapidly, and thus improve the task allocation efficiency. 展开更多
关键词 multi-ship cooperative task allocation path planning MULTI-TASK multi-objective genetic ant colony hybrid algorithm(GACHA)
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多目标协同下的即时配送路径优化
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作者 凌帅 杨娟 +1 位作者 孙鹏 贾宁 《交通运输工程与信息学报》 2025年第4期123-137,共15页
【背景】近几年网络外卖送餐服务快速发展,虽然有效地满足了居民日益增长的需求,但也提升了人们对送餐速度和价格的期待,从而给配送员带来了更大的压力。【目标】通过优化即时配送路径,缓解配送员的疲劳工作现象,同时提高顾客的满意度,... 【背景】近几年网络外卖送餐服务快速发展,虽然有效地满足了居民日益增长的需求,但也提升了人们对送餐速度和价格的期待,从而给配送员带来了更大的压力。【目标】通过优化即时配送路径,缓解配送员的疲劳工作现象,同时提高顾客的满意度,降低配送成本,以期在配送员、顾客、成本等多个方面取得平衡。【方法】在包含配送员疲劳度、路径成本以及客户满意度的多目标协同框架下,考虑配送员权利和安全,以及送餐软时间窗约束,构建即时配送路径规划模型,并提出一种基于协同进化思想的多目标协同优化遗传算法(MOCGA)来求解。【数据】利用Grubhub所提供的实际外卖送餐数据创建不同规模的算例,并对其性能进行全面的对比和验证。【结果】MOCGA算法所得到的解在质量上优于文献中常用的NSGA-II算法和单目标遗传算法,同时在收敛性和多样性方面均表现出良好的性能。 展开更多
关键词 公路运输 多目标协同优化遗传算法 配送员权益与安全 即时配送 车辆路径规划
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