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Spectrally resolved bioluminescence tomography with adaptive finite element analysis: methodology and simulation.

机译:具有自适应有限元分析的光谱分辨生物发光层析成像:方法和模拟。

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摘要

As a molecular imaging technique, bioluminescence tomography (BLT) with its highly sensitive detection and facile operation can significantly reveal molecular and cellular information in vivo at the whole-body small animal level. However, because of complex photon transportation in biological tissue and boundary detection data with high noise, bioluminescent sources in deeper positions generally cannot be localized. In our previous work, we used achromatic or monochromatic measurements and an a priori permissible source region strategy to develop a multilevel adaptive finite-element algorithm. In this paper, we propose a spectrally solved tomographic algorithm with a posteriori permissible source region selection. Multispectral measurements, and anatomical and optical information first deal with the nonuniqueness of BLT and constrain the possible solution of source reconstruction. The use of adaptive mesh refinement and permissible source region based on a posteriori measures not only avoids the dimension disaster arising from the multispectral measured data but also reduces the ill-posedness of BLT and therefore improves the reconstruction quality. Reconsideration of the optimization method and related modifications further enhance reconstruction robustness and efficiency. We also incorporate into the method some improvements for reducing computational burdens. Finally, using a whole-body virtual mouse phantom, we demonstrate the capability of the proposed BLT algorithm to reconstruct accurately bioluminescent sources in deeper positions. In terms of optical property errors and two sources of discernment in deeper positions, this BLT algorithm represents the unique predominance for BLT reconstruction.
机译:作为一种分子成像技术,生物发光断层扫描(BLT)具有高度灵敏的检测和简便的操作,可以在全身小型动物水平上显着揭示体内的分子和细胞信息。但是,由于生物组织中复杂的光子传输和具有高噪声的边界检测数据,通常无法定位较深位置的生物发光源。在我们以前的工作中,我们使用消色差或单色测量和先验可允许的源区域策略来开发多级自适应有限元算法。在本文中,我们提出了一种具有后验可允许源区域选择的光谱解析层析成像算法。多光谱测量以及解剖学和光学信息首先处理BLT的不唯一性,并限制了光源重建的可能解决方案。基于后验方法的自适应网格细化和可允许的源区域的使用,不仅避免了由多光谱测量数据引起的尺寸灾难,而且减少了BLT的不适,从而提高了重建质量。重新考虑优化方法和相关修改将进一步提高重建的鲁棒性和效率。我们还将方法中的某些改进用于减少计算负担。最后,使用全身虚拟鼠标幻像,我们演示了所提出的BLT算法在较深位置精确重建生物发光源的能力。在光学特性误差和更深位置的两个辨别力方面,此BLT算法代表了BLT重建的独特优势。

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