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Truncated Total Least Squares Method with a Practical Truncation Parameter Choice Scheme for Bioluminescence Tomography Inverse Problem

机译:截断的总最小二乘法与实用的截断参数选择方案的生物发光层析成像反问题。

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摘要

In bioluminescence tomography (BLT), reconstruction of internal bioluminescent source distribution from the surface optical signals is an ill-posed inverse problem. In real BLT experiment, apart from the measurement noise, the system errors caused by geometry mismatch, numerical discretization, and optical modeling approximations are also inevitable, which may lead to large errors in the reconstruction results. Most regularization techniques such as Tikhonov method only consider measurement noise, whereas the influences of system errors have not been investigated. In this paper, the truncated total least squares method (TTLS) is introduced into BLT reconstruction, in which both system errors and measurement noise are taken into account. Based on the modified generalized cross validation (MGCV) criterion and residual error minimization, a practical parameter-choice scheme referred to as improved GCV (IGCV) is proposed for TTLS. Numerical simulations with different noise levels and physical experiments demonstrate the effectiveness and potential of TTLS combined with IGCV for solving the BLT inverse problem.
机译:在生物发光层析成像(BLT)中,从表面光信号重建内部生物发光源分布是一个不适定的逆问题。在实际的BLT实验中,除了测量噪声外,由于几何形状不匹配,数值离散和光学建模近似所引起的系统误差也是不可避免的,这可能导致重建结果中的较大误差。大多数正则化技术(例如Tikhonov方法)仅考虑测量噪声,而尚未研究系统误差的影响。在本文中,将截短的总最小二乘法(TTLS)引入到BLT重构中,其中同时考虑了系统误差和测量噪声。基于改进的广义交叉验证(MGCV)准则和残差最小化,针对TTLS提出了一种实用的参数选择方案,称为改进的GCV(IGCV)。不同噪声水平的数值模拟和物理实验证明了TTLS与IGCV组合解决BLT反问题的有效性和潜力。

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