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Reconstruction based fault prognosis for continuous processes

机译:基于重构的连续过程故障预测

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In this paper, a multivariate fault prognosis approach for continuous processes with hidden faults is proposed based on statistical process monitoring methods and multivariate time series prediction. It is assumed that the fault is a slowly time-varying autocorrelated process and can be completely reconstructed. Fault magnitude is estimated first via reconstruction, then predicted by a vector AR model with wavelet based denoising. Given the fault direction, a new index is proposed to detect the fault, which integrates fault detection and prognosis together. Case studies on a continuous stirred tank reactor and the Tennessee Eastman process demonstrate the effectiveness of the proposed approaches.
机译:本文提出了一种基于统计过程监控方法和多元时间序列预测的连续故障隐患多过程故障预测方法。假定故障是一个缓慢的时变自相关过程,可以完全重建。首先通过重建来估计故障量,然后通过具有基于小波的降噪的矢量AR模型进行预测。在给出故障方向的前提下,提出了一种新的故障检测指标,将故障检测与故障预测结合在一起。对连续搅拌釜反应器和田纳西伊士曼过程的案例研究证明了所提出方法的有效性。

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