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Refractive errors and corrections for OCT images in an inflated lung phantom

机译:肺部幻影中OCT图像的屈光不正和校正

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Visualization and correct assessment of alveolar volume via intact lung imaging is important to study and assess respiratory mechanics. Optical Coherence Tomography (OCT), a real-time imaging technique based on near-infrared interferometry, can image several layers of distal alveoli in intact, ex vivo lung tissue. However optical effects associated with heterogeneity of lung tissue, including the refraction caused by air-tissue interfaces along alveoli and duct walls, and changes in speed of light as it travels through the tissue, result in inaccurate measurement of alveolar volume. Experimentally such errors have been difficult to analyze because of lack of ’ground truth,’ as the lung has a unique microstructure of liquid-coated thin walls surrounding relatively large airspaces, which is difficult to model with cellular foams. In addition, both lung and foams contain airspaces of highly irregular shape, further complicating quantitative measurement of optical artifacts and correction. To address this we have adapted the Bragg-Nye bubble raft, a crystalline two-dimensional arrangement of elements similar in geometry to alveoli (up to several hundred μm in diameter with thin walls) as an inflated lung phantom in order to understand, analyze and correct these errors. By applying exact optical ray tracing on OCT images of the bubble raft, the errors are predicted and corrected. The results are validated by imaging the bubble raft with OCT from one edge and with a charged coupled device (CCD) camera in transillumination from top, providing ground truth for the OCT.
机译:通过完整的肺部成像来可视化和正确评估肺泡容量对于研究和评估呼吸力学很重要。光学相干断层扫描(OCT)是一种基于近红外干涉术的实时成像技术,可以在完整的离体肺组织中对远端肺泡的几层进行成像。然而,与肺组织异质性相关的光学效应,包括沿肺泡和导管壁的空气组织界面引起的折射,以及光在穿过组织传播时的光速变化,都会导致肺泡体积的测量不准确。由于缺乏“地面真相”,因此在实验上难以分析此类错误,因为肺部具有围绕相对较大的空域的液体涂层薄壁的独特微观结构,很难用泡沫泡沫进行建模。另外,肺和泡沫都包含高度不规则形状的空间,这进一步使光学伪像的定量测量和校正变得复杂。为了解决这个问题,我们改编了Bragg-Nye气泡筏,这是一种二维二维排列的元素,其几何形状类似于肺泡(直径最大为数百μm,壁薄),作为充气的肺部体模,以便于理解,分析和更正这些错误。通过在气泡筏的OCT图像上应用精确的光线跟踪,可以预测和纠正错误。通过从一侧边缘用OCT以及从顶部透照的带电耦合器件(CCD)摄像机对气泡筏进行成像来验证结果,从而为OCT提供了地面真实性。

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