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多种建模方法在热疗估计中的应用:减少模型不匹配的影响。

Application of multiple modelling to hyperthermia estimation: reducing the effects of model mismatch.

作者信息

Potocki J K, Tharp H S

机构信息

Electrical and Computer Engineering Department, University of Arizona, Tucson 86721.

出版信息

Int J Hyperthermia. 1993 Jul-Aug;9(4):599-611. doi: 10.3109/02656739309005055.

Abstract

Multiple model estimation is a viable technique for dealing with the spatial perfusion model mismatch associated with hyperthermia dosimetry. Using multiple models, spatial discrimination can be obtained without increasing the number of unknown perfusion zones. Two multiple model estimators based on the extended Kalman filter (EKF) are designed and compared with two EKFs based on single models having greater perfusion zone segmentation. Results given here indicate that multiple modelling is advantageous when the number of thermal sensors is insufficient for convergence of single model estimators having greater perfusion zone segmentation. In situations where sufficient measured outputs exist for greater unknown perfusion parameter estimation, the multiple model estimators and the single model estimators yield equivalent results.

摘要

多模型估计是一种可行的技术,用于处理与热剂量测定相关的空间灌注模型不匹配问题。使用多个模型,可以在不增加未知灌注区域数量的情况下获得空间分辨率。设计了两种基于扩展卡尔曼滤波器(EKF)的多模型估计器,并与两种基于具有更大灌注区分割的单模型的EKF进行了比较。这里给出的结果表明,当热传感器的数量不足以使具有更大灌注区分割的单模型估计器收敛时,多模型建模是有利的。在存在足够的测量输出以进行更大的未知灌注参数估计的情况下,多模型估计器和单模型估计器产生等效的结果。

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