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A Variable Granularity Optimization Approach for Task Decomposition

机译:任务分解的可变粒度优化方法

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In recent years, task decomposition has drawn great attention in the equipment maintenance field. However, many investigations are qualitative, which are hard to execute due to the uneven and irregular resource distribution. To solve this problem, a novel variable granularity method is proposed, which develops a quantitative strategy for a task decomposition issue. First, an initial decomposition is operated based on the maintenance technology and internal structure. Then, three quantitative models are formulated to optimize the task set, which is recursively decomposed until the result satisfies the thresholds of granularity, coupling and equilibrium. Finally, a real experiment is analyzed to validate the effectiveness of the proposed method.
机译:近年来,任务分解在设备维护领域引起了极大的关注。但是,许多调查是定性的,由于资源分配不均和不规则,难以执行。为了解决这个问题,提出了一种新颖的可变粒度方法,该方法为任务分解问题开发了一种定量策略。首先,基于维护技术和内部结构进行初始分解。然后,建立了三个定量模型来优化任务集,然后递归分解直到结果满足粒度,耦合和平衡的阈值。最后,通过实际实验分析,验证了所提方法的有效性。

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