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THE RESEARCH OF PROCESS MONITORING BASED ON DATA FUSION THEORY

机译:基于数据融合理论的过程监测研究

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摘要

This paper explores the multisensor process monitoring system which sampling is synchronous and transmission delay is less than one sampling period; A new process monitoring algorithm is put forward through introducing recursive least square estimate and combing the multisensor data fusion theory with the traditional process monitoring technology based on principle components analysis. Firstly, the paper analyzes the existing questions about the traditional process monitoring methods based on measurement in detail; secondly, in single sensor case it extends the analysis founded on measurement matrix to that based on state estimate value matrix by using least square estimate. So it can filter the measurement noise effectively. Afterwards it proposes that it can fuse the measurement of every sensor which gets to central processor step by step through using recursive least square estimate in multisensor case; finally, we can use the principle components analysis to realize real-time monitoring for complex process. The proposed method can improve the accuracy and enforceable ability of process monitoring technology effectively, and reduce false alarm. Computer simulations show the validity of the proposed method.
机译:本文探讨了多传感器过程监控系统,采样是同步和传输延迟的比例小于一个采样周期;基于原理分析分析,通过引入递归最小二乘估计和梳理多传感器数据融合理论的新流程监测算法。首先,本文分析了关于详细测量的传统过程监测方法的现有问题;其次,在单个传感器外壳中,它通过使用最小二乘估计来扩展到基于状态估计值矩阵的测量矩阵上的分析。因此,它可以有效地过滤测量噪声。之后,它提出它可以融合每个传感器的测量,通过在多传感器案例中使用递归最小二乘估计来逐步到达中央处理器;最后,我们可以使用原理分量分析来实现复杂过程的实时监控。该方法可以有效地提高过程监测技术的准确性和可执行能力,并减少误报。计算机模拟显示了该方法的有效性。

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