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基于聚類-約束滿足算法的鋼管入庫優化決策模型

Optimization model of steel tube location decision based on clustering and constraint satisfaction algorithm

  • 摘要: 針對鋼管入庫優化決策問題,建立了問題的約束滿足優化模型,并通過對垛高和鋼管堆放規則的分析,提出了基于聚類和約束滿足技術的兩階段求解算法.算法在第一階段采用聚類的方式對待入庫的鋼管按照多重屬性進行分組;在第二階段利用約束滿足技術對于每組鋼管分別指派垛位及其在垛位上的具體位置,并通過約束傳播動態縮減問題的搜索空間.最后將算法與經典的BFD (best fit deceasing)算法進行實驗結果對比.實驗結果表明,算法能夠在保證倒垛次數最小的前提下,有效減少垛位數并具有良好的垛位利用率,模型及算法可行、有效.

     

    Abstract: A constraint satisfaction optimization model was presented to deal with the optimization decision problem about the steel tube location. Through the analysis of stack height and the piling rules of steel tubes, a two-stage algorithm was given based on clustering and constraint satisfaction technology. In the first stage, steel tubes to be put into storage are grouped by clustering-based approach according to their multiple attributes. In the second stage, by using constraint satisfaction technology, the specific location of steel tubes in each group is assigned, and the search space of the problem is dynamically shrunk through constraint propagation. Finally, this algorithm was compared with the classical BFD (best fit deceasing) algorithm through experiments. Experimental results demonstrate that, in the premise of minimizing stacking operations, the algorithm can effectively reduce the quantity of stacks and achieve a well-performed utilization rate of stacks. And thus the results verify the feasibility and effectiveness of the model and algorithm.

     

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