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Optimization on Emergency Resources Transportation Network Based on Bayes Risk Function: A Case Study

机译:基于贝叶斯风险功能的应急资源运输网络优化 - 以案例研究

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摘要

In order to coordinate the complex relationship between supplies distribution and path selection, some influential factors must be taken into account such as the insufficient remaining capacity of the road and uncertainty of travel time during supplies distribution and transportation. After the structure of emergency logistics network is analyzed, the travel time Bayes risk function of path and the total loss Bayes risk function of the disaster area are proposed. With the emergency supplies total transportation unit loss as the goal, an emergency logistics network optimization model under crowded conditions is established by the Bayes decision theory and solved by the improved ant colony algorithm. Then, a case of the model is validated to prove that the emergency logistics network optimization model is effective in congested conditions.
机译:为了协调物资分布和路径选择之间的复杂关系,必须考虑一些影响因素,例如道路的剩余容量不足,以及供应分销和运输期间旅行时间的不确定性。在分析应急物流网络的结构之后,提出了灾区的旅行时间贝叶斯风险障碍和灾区的总损失贝叶斯风险函数。随着应急供应总运输单位亏损作为目标,贝叶斯决策理论建立了紧急物流网络优化模型,并通过改进的蚁群算法解决了拥挤的条件。然后,验证了模型的情况,以证明应急物流网络优化模型在拥挤的条件下有效。

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