首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Application of Cost Matrices and Cost Curves to Enhance Diagnostic Health Management Metrics for Gas Turbine Engines
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Application of Cost Matrices and Cost Curves to Enhance Diagnostic Health Management Metrics for Gas Turbine Engines

机译:成本矩阵和成本曲线的应用增强燃气涡轮发动机的诊断健康管理指标

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摘要

Statistically based metrics, incorporating operating costs, for gas turbine engine diagnostic systems are required to evaluate competing products fairly and to establish a convincing business case. Diagnostic algorithm validation often includes engine testing with implanted faults. The implantation rate is rarely, if ever, representative of the true fault occurrence rate and the sample size is very small. Costs related to diagnostic outcomes have a significant effect on the utility of a given algorithm and need to be incorporated into the assessment. Techniques for assessing diagnostics are drawn from the literature and modified for application to gas turbine applications. The techniques are modified with computational experiments and the application demonstrated through examples. New techniques are compared to the traditional methods and the advantages presented. A technique is presented to convert a confusion matrix with a non-representative fault distribution to one representative of the expected distribution. The small sample size associated with fault implantation studies requires a confidence interval on the results to provide valid comparisons and a method for calculating confidence intervals, including on zero entries, is presented. Receiver operating characteristic (ROC) curves evaluate diagnostic system performance across a range of threshold settings. This allows an algorithm's ability to be assessed over a range of possible usage. Cost curves are analogous to ROC curves but offer several advantages. The techniques for applying cost curves to diagnostic algorithms are presented and their advantages over ROC curves are outlined. This paper provides techniques for more informed comparison of diagnostic algorithms, possibly preventing incorrect assessment due to small sample sizes.
机译:燃气轮机诊断系统需要基于统计的度量标准(包括运营成本)来公平地评估竞争产品并建立令人信服的商业案例。诊断算法验证通常包括对带有植入故障的发动机进行测试。植入率很少(如果有的话)代表真实的故障发生率,并且样本量很小。与诊断结果相关的成本对给定算法的实用性具有重大影响,需要将其纳入评估中。用于评估诊断的技术是从文献中得出的,经过修改后可应用于燃气轮机。通过计算实验对技术进行了修改,并通过示例演示了该应用程序。将新技术与传统方法进行比较,并给出了优点。提出了一种将具有非代表性故障分布的混淆矩阵转换为预期分布的一个代表的技术。与断层植入研究相关的小样本需要对结果置信区间以提供有效的比较,并提出了一种计算置信区间的方法,包括零项。接收器工作特性(ROC)曲线可在一系列阈值设置范围内评估诊断系统的性能。这允许在可能的使用范围内评估算法的能力。成本曲线类似于ROC曲线,但具有多个优点。介绍了将成本曲线应用于诊断算法的技术,并概述了其相对于ROC曲线的优势。本文提供了用于更明智地比较诊断算法的技术,可以防止由于样本量小而导致的不正确评估。

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