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Limited Information Based Non-Additive Fault Detection and Diagnosis for CARIMA Model via Fuzzy Logic

机译:基于限量信息基于非加性故障检测和Carima模型的诊断通过模糊逻辑

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Controlled Auto-Regressive Integrated Moving Average (CARIMA) model based non-additive fault detection and diagnosis (FDD) for discrete system is proposed in this paper. A new estimate algorithm is developed to detect  non-additive faults via limited information. It is designed based on previous limited inputs and outputs of system and used to obtain residual signals responding to the non-additive fault. Furthermore, the fuzzy logic based decision-making scheme and related criterion are proposed to make the on-line detection for non-additive fault of discrete system. The simulation results indicate that the new approach can detect non-additive faults of discrete system.
机译:本文提出了基于控制的自动回归集成移动平均(CARIMA)非加性故障检测和诊断(FDD)。开发了一种新的估计算法来通过有限的信息检测非加性故障。它是根据先前有限的系统输入和输出设计的,并且用于获得响应非加性故障的残余信号。此外,提出了基于模糊的基于逻辑的决策方案和相关标准来对离散系统的非加底性故障进行在线检测。仿真结果表明,新方法可以检测离散系统的非加性故障。

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