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Optical tomographic reconstruction in a complex head model using a priori region boundary information.

机译:使用先验区域边界信息在复杂头部模型中进行光学层析成像重建。

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In this paper we investigate the application of anatomical prior information to image reconstruction in optical tomography. We propose a two-stage reconstruction scheme. The first stage is a reconstruction into a low-dimensional region basis, obtained by segmentation of an image obtained by an independent imaging modality, into areas of distinct tissue types. The reconstruction into this basis recovers global averages of the optical tissue parameters of each region. The recovered distribution of region values provides the starting point for the second stage of the reconstruction into the spatially resolved final image basis. This second step recovers localized perturbations within the regions. The benefit of this method is the improved stability and faster convergence of the imaging process compared with a direct reconstruction into a spatially resolved basis. This is particularly important for the simultaneous reconstruction of absorption and scattering images, where ambiguities between the two parameters and the resulting problems of crosstalk require a good initial parameter distribution to ensure convergence of the reconstruction. We use a segmented brain model obtained from a magnetic resonance image as a test case to compare the performance of the two-stage reconstruction and the direct reconstruction from a flat prior, and show that the former achieves superior results in the recovery of localized absorption and scattering hot spots embedded in the background tissue.
机译:在本文中,我们研究了解剖先验信息在光学层析成像中的图像重建中的应用。我们提出了一个两阶段的重建方案。第一步是重建低维区域,将通过独立成像方式获得的图像分割成不同组织类型的区域。在此基础上的重建恢复了每个区域的光学组织参数的全局平均值。区域值的恢复分布为重构到空间分解的最终图像基础的第二阶段提供了起点。第二步恢复区域内的局部扰动。与直接重建为空间分辨基础相比,此方法的好处是提高了成像过程的稳定性并加快了收敛速度。这对于同时重建吸收和散射图像尤为重要,在该过程中,两个参数之间的歧义性以及由此产生的串扰问题需要良好的初始参数分布以确保重建的收敛性。我们使用从磁共振图像获得的分段脑模型作为测试用例,比较了两阶段重建和从平坦先验直接重建的性能,并表明前者在恢复局部吸收和恢复方面取得了优异的结果。散布在背景组织中的热点。

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