首页> 外文会议>Physics of Medical Imaging pt.2; Progress in Biomedical Optics and Imaging; vol.7 no.28 >Light Transport in Trabecular Bone: Monte Carlo Simulation Based on 3D Triangle Meshes
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Light Transport in Trabecular Bone: Monte Carlo Simulation Based on 3D Triangle Meshes

机译:骨小梁中的光传输:基于3D三角形网格的Monte Carlo模拟

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Light transport in trabecular bone is not well understood despite its clinical interest. Recent experimental studies on optical bone biopsy are lacking models that relate their measurements to the underlying morphology and thus to tissue condition. Laser surgery can also benefit from a better understanding of energy distribution in cancellous bone. A Monte Carlo (MC) simulation environment, able to efficiently compute complex geometries and account for refraction and reflection on tissue boundaries has been developed to provide the missing insight. The geometry description is based on a 3D triangle mesh organised in a bounding-volume hierarchy. This efficient structure allows a fast photon-surface intersection test, ensuring a sufficient number of photon paths and thus a good signal-to-noise ratio. The simulation program has been validated against well-known problems of refractive optics and turbid media. This new tool has been applied to a set of numerical phantoms indicating that morphology may have a fundamental impact on long-range light transport. The simulation environment has also been used on high-resolution models of trabecular bone, based on micro-CT scans. Calculation of time resolved signals in transmission and reflectance geometries has been demonstrated, paving the way to numerical evaluation of new minimally invasive diagnostic techniques, and offering a link to evaluation of Optical Coherence Tomography (OCT) in complex heterogeneous geometries. Preliminary experimental results in support of the mentioned effects are presented.
机译:尽管其在临床上引起了人们的兴趣,但人们对小梁骨中的光传输仍知之甚少。缺乏光学骨活检的最新实验研究,缺乏将其测量结果与基础形态以及组织状况相关联的模型。激光手术还可以受益于对松质骨中能量分布的更好理解。已开发出能够有效计算复杂几何形状并解释组织边界上的折射和反射的Monte Carlo(MC)仿真环境,以提供缺失的见解。几何描述基于组织在边界体积层次结构中的3D三角形网格。这种高效的结构允许进行快速的光子-表面相交测试,从而确保足够数量的光子路径,从而确保良好的信噪比。该模拟程序已针对折射光学器件和混浊介质的已知问题进行了验证。此新工具已应用于一组数字体模,表明体形可能对远距离光传输产生根本性影响。基于微CT扫描,仿真环境也已用于小梁骨的高分辨率模型。已经证明了透射和反射几何中时间分辨信号的计算,为新的微创诊断技术的数值评估铺平了道路,并为复杂异质几何中光学相干断层扫描(OCT)的评估提供了链接。提出了支持上述效果的初步实验结果。

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