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首页> 外文期刊>ifac papersonline >Robust Fault Detection and Diagnosis for Multiple-Model Systems with Uncertainties ★ ★ This work is supported in part by NSERC, AITF and China Scholarship Council Scholarship.
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Robust Fault Detection and Diagnosis for Multiple-Model Systems with Uncertainties ★ ★ This work is supported in part by NSERC, AITF and China Scholarship Council Scholarship.

机译:具有不确定性★ ★的多模型系统的鲁棒故障检测和诊断 这项工作得到了NSERC,AITF和中国国家留学基金委奖学金的部分支持。

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摘要

In this paper, a robust fault detection and diagnosis (FDD) method is proposed for multiple-model systems with modeling uncertainties. A compensation step is introduced to modify the mixed states and their variances obtained through the interacting multiple model (IMM) approximation and to solve the uncertainty problem. The degree of compensation is governed by a modification parameter determined by the orthogonality principle, which means that the estimation error calculated in the sub-filter using the true system models should be orthogonal to the residual error vector. To avoid over compensation in the unmatched models, a minimization procedure is used to derive the overall modification parameter. When the modification parameter is equal to one, the proposed method reduces to the IMM algorithm. An experiment is conducted through the ball and tube system to demonstrate the effectiveness of the proposed method.
机译:该文针对具有建模不确定性的多模型系统提出了一种鲁棒故障检测与诊断(FDD)方法。引入补偿步骤来修正通过交互多模型(IMM)近似得到的混合状态及其方差,并求解不确定性问题。补偿程度由正交性原理确定的修正参数控制,这意味着使用真实系统模型在子滤波器中计算的估计误差应与残差误差向量正交。为了避免在不匹配的模型中过度补偿,使用最小化过程来推导整体修正参数。当修正参数等于1时,所提方法简化为IMM算法。通过球管系统进行实验,以证明所提方法的有效性。

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