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A Survey on Robust Deadlock Control Policies for Automated Manufacturing Systems With Unreliable Resources

机译:具有不可靠资源的自动化制造系统强大的死锁控制策略调查

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Deadlock is a rather undesirable case in automated manufacturing systems (AMSs). The appearance of deadlock can cause the partial or total stagnation of a system. So far, a large number of deadlock control policies have been developed; nevertheless, the majority are dependent on the assumption that allocated resources cannot break down. In the real world, an AMS consists of a set of concurrent production routes that share and compete for a limited number of resources, such as automated material/component handling devices, buffers, robots, and machines. Resource failures occur unexpectedly. If reasonable control does not exist, a simple resource failure can lead an entire system to stagnation, which can cause enormous economic loss. Therefore, researchers have gradually paid attention to AMSs allowing resource failures in recent years. In this paper, we focus on reviewing and comparing various robust supervisory control policies from the perspective of their structural complexity, behavioral permissiveness, and computational complexity. Some potential future directions are explored. This paper provides a reference source of robust supervisory control of AMSs for researchers and practitioners in this area. Note to Practitioners-In automated manufacturing systems (AMSs), resource failures are common. Their occurrences can lead a system to stagnation, which can cause unnecessary downtime and bring vast economic loss for enterprises. To resolve such stagnation issues, a great number of robust supervisory control policies have been proposed for AMSs with unreliable resources. These policies guarantee that a controlled system can continue to progress without deadlock and blocking states even if some unreliable resources fail to work. By a thorough review of existing robust supervisory control policies for AMSs with unreliable resources, this paper compares and analyzes these policies in terms of their structural complexity, behavioral permissiveness, and computational complexity. The goal of this paper is to provide a reference source in the area to help researchers and practitioners choose a suitable method for solving industrial application problems that are subject to resource failures.
机译:死锁是自动制造系统(AMSS)中的一个相当不良的案例。死锁的外观可能导致系统的部分或总停滞。到目前为止,已经开发了大量的死锁控制政策;尽管如此,大多数人依赖于分配资源无法分解的假设。在现实世界中,AMS由一系列并发生产路线组成,该路由共享并竞争有限数量的资源,例如自动材料/组件处理设备,缓冲区,机器人和机器。资源失败意外发生。如果不存在合理的控制,则简单的资源故障可以引导整个系统停滞,这可能导致巨大的经济损失。因此,研究人员近年来逐渐关注允许资源失败的AMSS。在本文中,我们专注于从结构复杂性,行为允许和计算复杂性的角度审查和比较各种强大的监督控制政策。探索了一些潜在的未来方向。本文为该领域的研究人员和从业者提供了对AMSS的强大监督控制的参考来源。注意从业者 - 在自动制造系统(AMS)中,资源失败很常见。他们的出现可以使系统停滞,这可能会导致不必要的停机时间,为企业带来巨大的经济损失。为了解决此类停滞问题,已为具有不可靠的资源的AMSS提出了大量的强大监督控制政策。这些策略保证了,即使某些不可靠的资源未能工作,控制系统也可以继续进展而不会陷入僵局和阻止状态。通过对具有不可靠的资源的AMSS的现有强大的监督控制政策进行彻底审查,本文比较和分析了这些政策,在其结构复杂性,行为允许和计算复杂性方面进行了分析。本文的目标是提供该地区的参考来源,以帮助研究人员和从业者选择合适的方法来解决受资源失败的工业应用问题。

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