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Performance Enhancement of Pharmacokinetic Diffuse Fluorescence Tomography by Use of Adaptive Extended Kalman Filtering

机译:通过使用自适应扩展卡尔曼滤波,药代动力学漫射荧光断层扫描性能提高

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Due to both the physiological and morphological differences in the vascularization between healthy and diseased tissues, pharmacokinetic diffuse fluorescence tomography (DFT) can provide contrast-enhanced and comprehensive information for tumor diagnosis and staging. In this regime, the extended Kalman filtering (EKF) based method shows numerous advantages including accurate modeling, online estimation of multiparameters, and universal applicability to any optical fluorophore. Nevertheless the performance of the conventional EKF highly hinges on the exact and inaccessible prior knowledge about the initial values. To address the above issues, an adaptive-EKF scheme is proposed based on a two-compartmental model for the enhancement, which utilizes a variable forgetting-factor to compensate the inaccuracy of the initial states and emphasize the effect of the current data. It is demonstrated using two-dimensional simulative investigations on a circular domain that the proposed adaptive-EKF can obtain preferable estimation of the pharmacokinetic-rates to the conventional-EKF and the enhanced-EKF in terms of quantitativeness, noise robustness, and initialization independence. Further three-dimensional numerical experiments on a digital mouse model validate the efficacy of the method as applied in realistic biological systems.
机译:由于健康和患病组织之间的血管化的生理和形态学差异,药代动力学弥漫性荧光断层扫描(DFT)可以提供肿瘤诊断和分期的对比度和综合信息。在该制度中,基于扩展的卡尔曼滤波(EKF)的方法显示了许多优点,包括准确建模,多级数仪的在线估计,以及对任何光学荧光团的通用适用性。然而,传统EKF的性能高度铰链对初始值的确切和无法进入的先验知识。为了解决上述问题,提出了一种基于一个用于增强模型的Adaptive-EKF方案,它利用可变忘记因子来补偿初始状态的不准确性并强调当前数据的效果。在循环结构域上的二维模拟研究证明了所提出的Adaptive-EKF可以在定量,噪声稳健性和初始化独立方面获得对常规-EKF和增强的eKF的药代动力学率的优选估计。在数字小鼠模型上的其他三维数值实验验证了在现实生物系统中应用的方法的功效。

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