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IMPROVING ESTIMATION PERFORMANCE OF SOFTSENSORS THROUGH TWO-STAGE SUBSPACE IDENTIFICATION

机译:通过双阶段子空间识别提高软卷囊的估计性能

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Softsensors or virtual sensors are among the key technologies in industry, because important variables such as product quality are not always measured on-line. Therefore, to reduce off-specification products and enhance productivity, the development of an accurate softsensor is crucial. In the present work, two-stage subspace identification (SSID) is proposed to develop highly accurate softsensors that can take into account the influence of unmeasured disturbances on estimated key variables. The two-stage SSID procedure is as follows: 1) identify a state space model by using measured input and output variables, 2) estimate unmeasured disturbance variables from residual variables, and 3) identify a state space model to estimate key variables from the estimated disturbance variables and the other measured input variables. The proposed two-stage SSID can estimate unmeasured disturbances without the assumptions that the conventional Kalman filtering technique must make. Thus it can outperform the Kalman filtering technique when innovations are not Gaussian white noises or the characteristics of disturbances do not stay constant with time. The superiority of the proposed method over the conventional method is demonstrated through a numerical example.
机译:软损坏或虚拟传感器是工业中的关键技术之一,因为产品质量等重要变量并不总是在线测量。因此,为了减少低规范产品并提高生产率,精确的软卷迷的发展至关重要。在本作工作中,提出了两阶段子空间识别(SSID)以开发高度精确的软增值,可以考虑对估计的关键变量对未测量的扰动的影响。两阶段SSID过程如下:1)通过使用测量的输入和输出变量来识别状态空间模型,2)估计来自残差变量的未测量的干扰变量,以及3)识别估计估计键变量的状态空间模型干扰变量和其他测量的输入变量。所提出的两阶段SSID可以估计未测量的干扰,而无需传统的卡尔曼滤波技术必须制造。因此,当创新不是高斯白噪声或干扰的特征时,它可以优于卡尔曼滤波技术,或者干扰的特征不随时间保持不变。通过数值示例对所提出的方法的优越性通过传统方法进行说明。

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