scholarly journals A Graph-Based Ant Colony Optimization Approach for Process Planning

2014 ◽  
Vol 2014 ◽  
pp. 1-11 ◽  
Author(s):  
JinFeng Wang ◽  
XiaoLiang Fan ◽  
Shuting Wan

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.

2014 ◽  
Vol 978 ◽  
pp. 209-212
Author(s):  
Jin Feng Wang ◽  
Kai Yu Chu ◽  
Qing Yu Wang

An ant colony optimization (ACO) approach has been developed to deal with process planning problem to achieve the optimal process plan. A disjunctive weighted directed graph is conducted to describe the operations, precedence constraints between operations, and the possible visited path between operation nodes. A represent of process plan is described based on the disjunctive 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). Extensive comparative experiments have been carried out to demonstrate the feasibility and efficiency of the proposed approach.


2014 ◽  
Vol 2014 ◽  
pp. 1-15 ◽  
Author(s):  
JinFeng Wang ◽  
XiaoLiang Fan ◽  
Haimin Ding

Computer-aided process planning (CAPP) is an important interface between computer-aided design (CAD) and computer-aided manufacturing (CAM) in computer-integrated manufacturing environments (CIMs). In this paper, process planning problem is described based on a weighted graph, and an ant colony optimization (ACO) approach is improved to deal with it effectively. The weighted graph consists of nodes, directed arcs, and undirected arcs, which denote operations, precedence constraints among operation, and the possible visited path among operations, respectively. Ant colony goes through the necessary nodes on the graph to achieve the optimal solution with the objective of minimizing total production costs (TPCs). A pheromone updating strategy proposed in this paper is incorporated in the standard ACO, which includes Global Update Rule and Local Update Rule. A simple method by controlling the repeated number of the same process plans is designed to avoid the local convergence. A case has been carried out to study the influence of various parameters of ACO on the system performance. Extensive comparative experiments have been carried out to validate the feasibility and efficiency of the proposed approach.


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