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An examination of the ARX as a residual generator for damage detection

机译:检查作为残余​​发电机的ARX以进行损坏检测

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Residuals that capture the difference between anticipated behavior and actual observations are often used to identify damage. Wanting to control the influence of unmeasured disturbances and noise in residuals, it is common to generate reference signals using feedback from measured outputs. Since there is much flexibility in the gains a wide range of models that react differently to changes are possible. This paper examines two questions: 1) how damage residuals generated by different closed loop models relate to each other and 2) how to rank the expected efficiency of alternative models. On the first question examination shows that the residuals from any model can be viewed as sums of filtered open loop residuals where the filter coefficients depend on the model structure but not on the damage. On the second item a general procedure based on Bayesian decision-making is proposed to quantify the economical benefit in adopting a specific autoregressive model.
机译:捕获预期行为与实际观察结果之间差异的残差通常用于识别损坏。为了控制残差中无法测量的干扰和噪声的影响,通常使用来自测量输出的反馈来生成参考信号。由于增益具有很大的灵活性,因此有可能对变化做出不同反应的各种模型。本文研究了两个问题:1)由不同闭环模型产生的损伤残差如何相互关联; 2)如何对替代模型的预期效率进行排名。在第一个问题上,检验表明,任何模型的残差都可以视为滤波后的开环残差之和,其中滤波器系数取决于模型结构,而不取决于损坏。在第二项上,提出了一种基于贝叶斯决策的通用程序,以量化采用特定自回归模型时的经济利益。

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