A bi-level optimization approach for joint rack sequencing and storage assignment in robotic mobile fulfillment systems

被引:0
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作者
Xiang Shi
Fang Deng
Sai Lu
Yunfeng Fan
Lin Ma
Jie Chen
机构
[1] Beijing Institute of Technology,Key Laboratory of Intelligent Control and Decision of Complex Systems
[2] Beijing Institute of Technology Chongqing Innovation Center,undefined
[3] Zhejiang Cainiao Supply Chain Management Co.,undefined
[4] Ltd.,undefined
[5] Shanghai Research Institute for Intelligent Autonomous Systems,undefined
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关键词
rack scheduling; sequence decision; storage assignment; bi-level optimization; robotic mobile fulfillment system;
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摘要
This paper studies a novel rack scheduling problem with multiple types of multiple storage locations (RS-MTMS), which can decide the retrieval sequence of racks and assign each rack a storage location after visiting a picking station. A major challenge in RS-MTMS is that the storage assignment problem and the retrieval sequence decision are closely coupled. If the RS-MTMS is solved directly, the storage assignment scheme and the retrieval sequence of racks are generally generated separately, thus resulting in poor performance. To overcome this difficulty, we propose a bi-level optimization approach for jointly optimizing the storage assignment and retrieval sequence (BiJSR). In BiJSR, the storage assignment problem is solved by variable neighborhood search (VNS) in the upper-level optimization. Effective candidate modes are incorporated into VNS to improve solution quality and computational efficiency. The sequencing optimization is obtained in the lower-level according to the given storage location set. A transformation strategy with sufficient problem-specific knowledge is developed to identify the lower-level optimization as the traveling salesman problem and its variants. Then these identified problems are solved using the loop-based strategy. Experimental results show that the proposed BiJSR is more effective and efficient than the representative algorithms in solving the RS-MTMS problem.
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