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基于扩展卡尔曼滤波和降阶建模的并发热疗估计方案。

Concurrent hyperthermia estimation schemes based on extended Kalman filtering and reduced-order modelling.

作者信息

Potocki J K, Tharp H S

机构信息

Electrical and Computer Engineering Department, University of Arizona, Tucson 85721.

出版信息

Int J Hyperthermia. 1993 Nov-Dec;9(6):849-65. doi: 10.3109/02656739309034987.

Abstract

The success of treating cancerous tissue with heat depends on the temperature elevation, the amount of tissue elevated to that temperature, and the length of time that the tissue temperature is elevated. In clinical situations the temperature of most of the treated tissue volume is unknown, because only a small number of temperature sensors can be inserted into the tissue. A state space model based on a finite difference approximation of the bioheat transfer equation (BHTE) is developed for identification purposes. A full-order extended Kalman filter (EKF) is designed to estimate both the unknown blood perfusion parameters and the temperature at unmeasured locations. Two reduced-order estimators are designed as computationally less intensive alternatives to the full-order EKF. Simulation results show that the success of the estimation scheme depends strongly on the number and location of the temperature sensors. Superior results occur when a temperature sensor exists in each unknown blood perfusion zone, and the number of sensors is at least as large as the number of unknown perfusion zones. Unacceptable results occur when there are more unknown perfusion parameters than temperature sensors, or when the sensors are placed in locations that do not sample the unknown perfusion information.

摘要

利用热疗治疗癌组织的成功与否取决于温度升高幅度、升温至该温度的组织量以及组织温度升高的持续时间。在临床情况下,大部分被治疗组织体积的温度是未知的,因为只能将少量温度传感器插入组织中。为了进行识别,基于生物热传递方程(BHTE)的有限差分近似开发了一种状态空间模型。设计了一种全阶扩展卡尔曼滤波器(EKF)来估计未知的血液灌注参数以及未测量位置的温度。设计了两种降阶估计器作为计算强度低于全阶EKF的替代方案。仿真结果表明,估计方案的成功很大程度上取决于温度传感器的数量和位置。当每个未知血液灌注区域都存在一个温度传感器且传感器数量至少与未知灌注区域数量一样多时,会得到较好的结果。当未知灌注参数比温度传感器多时,或者当传感器放置在无法采集未知灌注信息的位置时,会得到不可接受的结果。

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