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An Agent-Based Approach to Modeling Yard Cranes at Seaport Container Terminals

机译:一种基于代理的船舶终端建模码头的方法

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Due to environmental concerns, terminal operators at seaport container terminals are increasingly looking to reduce the time a truck spends at the terminal to complete a transaction. For terminals that stack their containers, the solution may seem obvious: add more yard cranes to reduce trucks' wait time in the yard. However, the high cost of these cranes often prohibits terminal operators from freely buying more. Another reason is because there is no clear understanding of how the yard cranes' availability and service strategy affect truck turn time. This study introduces an agent-based approach to model yard cranes for the analysis of truck turn time with respect to service strategy. It is accomplished by modeling the cranes as utility-maximizing agents. This study has identified a set of utility functions that properly capture the essential decision making process of crane operators in choosing the next truck to provide service to. The agent-based model is implemented using NetLogo, a cross-platform multi-agent programmable modeling environment. Simulation results show that the distance-based service strategy produces the best results in terms of average waiting time and the maximum waiting time of any truck.
机译:由于环境问题,海港集装箱码头的终端运营商越来越多地期望减少卡车在终端花费以完成交易的时间。对于堆叠其容器的终端,解决方案可能看起来很明显:增加更多院子起重机以减少卡车的等待时间。然而,这些起重机的高成本通常禁止终端运营商自由购买更多。另一个原因是因为没有明确了解院子里的起重机的可用性和服务策略如何影响卡车转向时间。本研究介绍了一种基于代理的方法来模拟围场起重机,用于对服务策略进行分析。它是通过将起重机建模为公用事业最大化剂来实现的。本研究确定了一组实用功能,可妥善捕获起重机运营商在选择下一辆卡车提供服务时的基本决策过程。基于代理的模型使用NetLogo,跨平台多代理可编程建模环境实现。仿真结果表明,基于距离的服务策略在平均等待时间和任何卡车的最大等待时间内产生最佳结果。

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