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Spatial arrangement using deep reinforcement learning to minimise rearrangement in ship block stockyards

机译:利用深度加固学习的空间布置,最大限度地减少船舶块饲料群中的重新排列

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摘要

As the shipbuilding industry is an engineering-to-order industry, different types of products are manufactured according to customer requests, and each product goes through different processes and workshops. During the shipbuilding process, if the product is not able to go directly to the subsequent process due to physical constraints of workshop, it temporarily waits in a stockyard. Since the waiting process involves unpredictable circumstances, plans regarding time and space cannot be established in advance. Therefore, unnecessary movement often occurs when ship blocks enter or depart from the stockyard. In this study, a reinforcement learning approach was proposed to minimise rearrangement in such circumstances. For this purpose, an environment in which blocks are arranged and rearranged was defined. Rewards based on the simplified rules were logically defined, and simulation was performed for quantitative evaluation using the proposed reinforcement learning algorithm. This algorithm was verified using an example model derived from actual data from a shipyard. The method proposed in this study can be used not only to the arrangement problem of ship block stockyards but also to the various arrangement and allocation problems or logistics problems in the manufacturing industry.
机译:随着造船业是一种有待秩序的行业,根据客户要求制造不同类型的产品,每种产品都经过不同的流程和研讨会。在造船过程中,由于车间的物理限制,产品无法直接进入随后的过程,它暂时等待牲畜饲料。由于等待过程涉及不可预测的情况,因此无法提前建立关于时间和空间的计划。因此,当船块进入或离开牛排时,通常会发生不必要的运动。在这项研究中,提出了一种强化学习方法,以在这种情况下最小化重排。为此目的,定义了块被布置和重新排列的环境。基于简化规则的奖励是逻辑定义的,并且使用所提出的增强学习算法来执行用于定量评估的仿真。使用来自造船厂的实际数据的示例模型来验证该算法。本研究中提出的方法不仅可以用于船舶群体的排列问题,也可以用于制造业的各种安排和分配问题或物流问题。

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