机器人应用的加工时间优化

M. Muradi, R. Wanka
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引用次数: 0

摘要

这项研究工作包括使用启发式算法来自动生成加工时间优化机器人程序,用于汽车工业的制造过程。为此,我们实现了一种基于多父重组和邻接交叉的遗传算法。通过将任务根据其相对于机器人工作空间的位置划分为普通任务和固定任务,引入了重新分配突变来优化负载平衡。通过将启发式算法应用于测试问题,将其与精确求解器进行比较。最后,将该方法应用于汽车密封领域的实际业务问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Processing Time Optimization for Robot Applications
This research work includes the use of heuristic algorithms to automatically generate processing time optimized robot programs for manufacturing processes in the automotive industry. For this, we've implemented a genetic algorithm with multi-parent recombination and adjacency-based crossover. A reallocation mutation is also introduced to optimize the load balancing by classifying tasks into common and fixed tasks depending on their location relative to the robots' workspace. The heuristic is compared to an exact solver by applying it to a test problem. Lastly, the methodology is also applied to a real business problem in the area of vehicle sealing.
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