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Reliability and Robustness Assessment of Diagnostic Systems From Warranty Data

机译:保修数据诊断系统的可靠性和鲁棒性评估

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Diagnostic systems are software-intensive built-in-test systems, which detect, isolate and indicate the failures of prime systems. The use of diagnostic systems reduces the losses due to the failures of prime systems and facilitates the subsequent correct repairs. Therefore, they have found extensive applications in industry. Without loss of generality, this paper utilizes the on-board diagnostic systems of automobiles as an illustrative example. A failed diagnostic system generates αor β error. α error incurs unnecessary warranty costs to manufacturers, whileβerror causes potential losses to customers. Therefore, the reliability and robustness of diagnostic systems are important to both manufacturers and customers. This paper presents a method for assessing the reliability and robustness of the diagnostic systems by using warranty data. We present the definitions of robustness and reliability of the diagnostic systems, and the formulae for estimating α,βand reliability. To utilize warranty data for assessment, we describe the two-dimensional (time-in-service and mileage) warranty censoring mechanism, model the reliability function of the prime systems, and devise warranty data mining strategies. The impact of α error on warranty cost is evaluated. Fault tree analyses for α and βerrors are performed to identify the ways for reliability and robustness improvement. The method is applied to assess the reliability and robustness of an automobile on-board diagnostic system.
机译:诊断系统是软件密集型内置测试系统,其检测,隔离和指示素数的故障。使用诊断系统由于原始系统的故障而降低了损耗,并有利于随后的正确维修。因此,他们在工业中发现了广泛的应用。本文不损失一般性,利用汽车车载诊断系统作为说明性示例。失败的诊断系统生成αβ误差。 α错误会引发不必要的制造商的保修费用,而童藏对客户造成潜在的损失。因此,诊断系统的可靠性和稳健性对厂商和客户都很重要。本文介绍了一种通过使用保修数据来评估诊断系统的可靠性和鲁棒性的方法。我们介绍了诊断系统的稳健性和可靠性的定义,以及用于估计α,β和可靠性的公式。要利用评估保修数据,我们描述了二维(役和里程)保修审查机制,模型素材系统的可靠性函数,以及设计保修数据挖掘策略。评估α误差对保修费用的影响。进行α和βErrors的故障树分析以确定可靠性和鲁棒性改善的方式。应用该方法以评估汽车车载诊断系统的可靠性和鲁棒性。

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