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A hybrid approach to nonconformance tracking and recovery

机译:不合格跟踪和恢复的混合方法

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摘要

The nonconformance diagnosis problem has been a major issue facing industry and academia over the years. Research has been carried out on technologies for different aspects of nonconformance diagnosis such as nonconformance monitoring, prediction, prevention, classification, tracking, and recovery. Despite these advances, nonconformance tracking and recovery still receive many concerns due to the fact that they are knowledge intensive and experience-based tasks, which in complex manufacturing environments can sometimes be beyond the capabilities of skilled operators and engineers. In addition, the existing systems for nonconformance tracking and recovery are usually special purpose systems. They lack the capabilities to migrate to new working domains. This paper proposes a generic intelligent nonconformance tracking and recovery (GINTR) system. In conjunction with computational intelligent techniques such as Artificial Neural Networks (ANN) and Genetic Algorithm (GA), the system identifies the root causes of a nonconformance and provides timely corrective actions. The drive towards designing such a system is motivated by the need to implement a generic base of system capabilities that is reliable, economical, scalable, and provides a stable foundation for migrating the system to different domains.
机译:多年来,不合格诊断问题一直是工业界和学术界面临的主要问题。已经针对不合格诊断的不同方面进行了技术研究,例如不合格监测,预测,预防,分类,跟踪和恢复。尽管取得了这些进步,但由于不合格跟踪和恢复是知识密集型和基于经验的任务,在复杂的制造环境中,有时它们超出了熟练操作员和工程师的能力,因此仍然引起许多关注。另外,用于不合格跟踪和恢复的现有系统通常是专用系统。他们缺乏迁移到新的工作域的功能。本文提出了一种通用的智能不合格跟踪与恢复(GINTR)系统。结合人工神经网络(ANN)和遗传算法(GA)等计算智能技术,该系统可以识别出不符合项的根本原因,并提供及时的纠正措施。设计这样的系统的动力是由实现可靠,经济,可扩展的系统功能的通用基础的需求所激发的,并且该基础为将系统迁移到不同的领域提供了稳定的基础。

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