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Constraint-Based Integration of Plan Tracking and Prognosis for Autonomous Production

机译:基于约束的自主生产计划跟踪和预后的整合

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Today's complex production systems allow to simultaneously build different products following individual production plans. Such plans may fail due to component faults or unforeseen behavior, resulting in flawed products. In this paper, we propose a method to integrate diagnosis with plan assessment to prevent plan failure, and to gain diagnostic information when needed. In our setting, plans are generated from a planner before being executed on the system. If the underlying system drifts due to component faults or unforeseen behavior, plans that are ready for execution or already being executed are uncertain to succeed or fail. Therefore, our approach tracks plan execution using probabilistic hierarchical constraint automata (PHCA) models of the system. This allows to explain past system behavior, such as observed discrepancies, while at the same time it can be used to predict a plan's remaining chance of success or failure. We propose a formulation of this combined diagnosis/assessment problem as a constraint optimization problem, and present a fast solution algorithm that estimates success or failure probabilities by considering only a limited number k of system trajectories.
机译:今天的复杂生产系统允许在各个生产计划后同时构建不同的产品。由于组件故障或不可预见的行为,这些计划可能会失败,导致产品有缺陷的产品。在本文中,我们提出了一种将诊断与计划评估集成的方法,以防止计划失败,并在需要时获得诊断信息。在我们的设置中,在在系统上执行之前,计划从计划程序生成。如果底层系统因组件故障或不可预见的行为而漂移,则准备执行或已经执行的计划不确定成功或失败。因此,我们的方法使用系统的概率分层约束自动机(PHCA)型号来追踪计划执行。这允许解释过去的系统行为,例如观察到的差异,同时它可以用来预测计划的成功或失败的剩余机会。我们提出了将该组合诊断/评估问题的制定作为约束优化问题,并呈现了一种快速解决算法,其通过考虑仅考虑系统轨迹的有限数量的k来估计成功或失效概率。

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