Improving fault diagnosis accuracy by automatic test set modification

Luca Amati, C. Bolchini, F. Salice, F. Franzoso
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引用次数: 8

Abstract

Fault diagnosis is the task of identifying a faulty component in a complex system using data collecting from a test section. Diagnostic resolution, that is the ability to discriminate a faulty component in a set of possible candidates, is a property that the system model must expose to provide accuracy and robustness in the diagnosis. Such a property depends on the selection of an appropriate test set capable to provide a unique interpretation of the test outcomes. In this paper a quantitative metric for the evaluation of diagnostic resolution of a test set is proposed, together with an algorithm for the minimal extension of a given test set in order to provide a complete discrimination of failures affecting a system, to be used as a support for analysts during the definition of a testing framework.
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通过自动修改测试集,提高故障诊断的准确性
故障诊断是使用从测试部分收集的数据来识别复杂系统中的故障部件的任务。诊断分辨率,即在一组可能的候选组件中区分有故障组件的能力,是系统模型必须公开的属性,以便在诊断中提供准确性和鲁棒性。这种特性取决于选择适当的测试集,该测试集能够提供对测试结果的唯一解释。本文提出了一种评估测试集诊断分辨率的定量度量,以及一种给定测试集的最小扩展算法,以提供影响系统的故障的完全区分,作为分析人员在定义测试框架期间的支持。
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