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动态多流形投影算法在统计过程监测中的应用
引用本文:郭金玉,王 霞.动态多流形投影算法在统计过程监测中的应用[J].河北科技大学学报,2022,43(1):11-18.
作者姓名:郭金玉  王 霞
作者单位:沈阳化工大学信息工程学院,辽宁沈阳 110142
基金项目:国家自然科学基金(61673279); 辽宁省教育厅科学研究项目(LJ2019007)
摘    要:为了解决工业数据的序列相关性以及数据的全局和局部结构在某些异常状态下的变化问题,通过"时滞偏移"方法将动态行为纳入多流形投影(multi-manifold projections,MMP)模型,提出一种动态多流形投影算法(dynamic multi-manifold projections,DMMP)在统计过程监测中的...

关 键 词:自动控制其他学科  统计过程监测  全局图  局部图  时滞偏移  动态多流形投影
收稿时间:2021/11/22 0:00:00
修稿时间:2021/12/23 0:00:00

Application of dynamic multi-manifold projections algorithmin statistical process monitoring
GUO Jinyu,WANG Xia.Application of dynamic multi-manifold projections algorithmin statistical process monitoring[J].Journal of Hebei University of Science and Technology,2022,43(1):11-18.
Authors:GUO Jinyu  WANG Xia
Abstract:To solve the problem of serial correlation of industrial data and the changes of global and local structure of data in some abnormal states,the "time lag migration" method was used to incorporate dynamic behavior into the multi-manifold projections(MMP) model,and an application scheme of dynamic multi-manifold projections(DMMP) algorithm in statistical process monitoring was proposed.Firstly,time-lag variables were added to the original sample data to make it dynamic.Secondly,the global and local structure information was obtained by solving the global graph maximum and local graph minimum separately.A unified framework,i.e.global graph maximum and local graph minimum,was constructed to extract meaningful low-dimensional representations for high-dimensional dynamic data.Finally,the fault detection was performed by comparing the statistics with control limits.The feasibility and effectiveness of the monitoring scheme based on DMMP was verified by the Tennessee-Eastman process.The simulation results show that the overall performance of DMMP is better than those of some traditional preserving global or local feature algorithms.The new algorithm solves the problem of incomplete acquisition of time-dependent data information in traditional algorithms,and provides a reference for improving the performance of traditional algorithms in fault detection of dynamic industrial process.
Keywords:other disciplines of automatic control technology  statistical process monitoring  global graph  local graph  time lag migration  dynamic multi-manifold projections
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