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A Graph-Based Ant Colony Optimization Approach for Process Planning

机译:基于图的工艺规划蚁群优化方法

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摘要

The complex process planning problem is modeled as a combinatorial optimization problem with constraints in this paper. An ant colony optimization (ACO) approach has been developed to deal with process planning problem by simultaneously considering activities such as sequencing operations, selecting manufacturing resources, and determining setup plans to achieve the optimal process plan. A weighted directed graph is conducted to describe the operations, precedence constraints between operations, and the possible visited path between operation nodes. A representation of process plan is described based on the weighted directed graph. Ant colony goes through the necessary nodes on the graph to achieve the optimal solution with the objective of minimizing total production costs (TPC). Two cases have been carried out to study the influence of various parameters of ACO on the system performance. Extensive comparative experiments have been conducted to demonstrate the feasibility and efficiency of the proposed approach.
机译:复杂的过程规划问题被建模为本文限制的组合优化问题。已经开发了一种蚁群优化(ACO)方法来通过同时考虑诸如测序操作,选择制造资源,确定设置计划来处理过程规划问题,以实现最佳过程计划。进行加权指向图以描述操作之间的操作,操作之间的优先约束,以及操作节点之间的可能访问的路径。基于加权定向图描述了过程计划的表示。蚁群通过图表上的必要节点来实现最佳解决方案,目的是最小化总生产成本(TPC)。已经进行了两种案例,以研究ACO各种参数对系统性能的影响。已经进行了广泛的比较实验以证明所提出的方法的可行性和效率。

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