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Quality-Related Fault Diagnosis Based on Improved PLS for Industrial Process

机译:基于改进PLS的工业过程质量相关故障诊断

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As a common method, partial least squares (PLS) is so important in the quality-related process monitoring. Nevertheless, PLS separates variables insufficiently, thus it cannot provide accurate results in quality-related process monitoring. To make up for this deficiency, in this paper, an improved PLS is described in detail which promotes the performance of PLS based on the coefficient matrix between input and output measurements. According to the detection results of IPLS, the contributions plots of the square of T statistics is calculated to judge the faulty variables of the fault. Taking the Tennessee Eastman (TE) process as a description, it verifies the effectiveness of IPLS in quality-related fault detection and fault diagnosis.
机译:作为一种常用方法,偏最小二乘(PLS)在与质量相关的过程监控中非常重要。但是,PLS不能充分分离变量,因此无法在与质量相关的过程监控中提供准确的结果。为了弥补这一不足,本文详细描述了一种改进的PLS,它基于输入和输出测量之间的系数矩阵来提高PLS的性能。根据IPLS的检测结果,计算出T统计量平方的贡献图,以判断故障的故障变量。以田纳西州伊士曼(TE)的流程为例,它验证了IPLS在与质量相关的故障检测和故障诊断中的有效性。

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