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首页> 外文期刊>EURASIP journal on advances in signal processing >Fault diagnosis of Tennessee Eastman process using signal geometry matching technique
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Fault diagnosis of Tennessee Eastman process using signal geometry matching technique

机译:田纳西伊士曼过程故障诊断的信号几何匹配技术

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This article employs adaptive rank-order morphological filter to develop a pattern classification algorithm for fault diagnosis in benchmark chemical process: Tennessee Eastman process. Rank-order filtering possesses desirable properties of dealing with nonlinearities and preserving details in complex processes. Based on these benefits, the proposed algorithm achieves pattern matching through adopting one-dimensional adaptive rank-order morphological filter to process unrecognized signals under supervision of different standard signal patterns. The matching degree is characterized by the evaluation of error between standard signal and filter output signal. Initial parameter settings of the algorithm are subject to random choices and further tuned adaptively to make output approach standard signal as closely as possible. Data fusion technique is also utilized to combine diagnostic results from multiple sources. Different fault types in Tennessee Eastman process are studied to manifest the effectiveness and advantages of the proposed method. The results show that compared with many typical multivariate statistics based methods, the proposed algorithm performs better on the deterministic faults diagnosis.
机译:本文采用自适应秩序形态过滤器,开发了一种模式分类算法,用于基准化学过程中的故障诊断:田纳西·伊士曼过程。秩滤波具有在复杂过程中处理非线性和保留细节的理想属性。基于这些优点,提出的算法通过采用一维自适应秩阶形态学滤波器在不同标准信号模式的监督下处理无法识别的信号来实现模式匹配。匹配度的特征在于评估标准信号和滤波器输出信号之间的误差。该算法的初始参数设置可以随机选择,并进一步进行自适应调整,以使输出尽可能接近标准信号。数据融合技术还用于组合来自多个来源的诊断结果。研究了田纳西伊士曼过程中的不同断层类型,以证明该方法的有效性和优势。结果表明,与许多典型的基于多元统计的方法相比,该算法在确定性故障诊断中表现更好。

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