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Improving diffuse optical tomography imaging with adaptive regularization method

机译:自适应正则化方法改善漫射光学层析成像

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摘要

Diffuse optical tomography (DOT) is to reconstruct the images of internal optical parameters distribution from boundary measurements. Due to the amount of available boundary measurements is less than the number of unknown optical parameters to be recovered, this inverse problem usually shows the ill-posed characteristics. This will result in the problem of low reconstruction image quality. In this paper, an adaptive regularization method based on the objective function values is proposed, which reduces the ill-posed characteristics in the inverse problem by selecting an appropriate regularization value at teach iteration. Results from computer simulations indicated that using this regularization technique, DOT imaging quality is improved effectively. Furthermore, using the regularization technique, the sensitivity to noise of the reconstructed images can be decreased greatly.
机译:漫射光学断层扫描(DOT)用于从边界测量中重建内部光学参数分布的图像。由于可用边界测量的数量少于要恢复的未知光学参数的数量,因此该反问题通常显示出不适定的特性。这将导致重建图像质量低的问题。本文提出了一种基于目标函数值的自适应正则化方法,该方法通过在示教迭代中选择合适的正则化值来减少反问题中的不适定特性。计算机仿真结果表明,使用这种正则化技术可以有效提高DOT成像质量。此外,使用正则化技术,可以大大降低重建图像对噪声的敏感度。

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