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Validation of quantitative attenuation and backscattering coefficient measurements by optical coherence tomography in the concentration-dependent and multiple scattering regime

机译:鉴定依赖性和多散射方案中光学相干断层扫描的定量衰减和反向散射系数测量的验证

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摘要

Optical coherence tomography (OCT) has the potential to quantitatively measure optical properties of tissue such as the attenuation coefficient and backscattering coefficient. However, to obtain reliable values for strong scattering tissues, accurate consideration of the effects of multiple scattering and the nonlinear relation between the scattering coefficient and scatterer concentration (concentration-dependent scattering) is required. We present a comprehensive model for the OCT signal in which we quantitatively account for both effects, as well as our system parameters (confocal point spread function and sensitivity roll-off). We verify our model with experimental data from controlled phantoms of monodisperse silica beads (scattering coefficients between 1 and 30  mm(−1) and scattering anisotropy between 0.4 and 0.9). The optical properties of the phantoms are calculated using Mie theory combined with the Percus–Yevick structure factor to account for concentration-dependent scattering. We demonstrate excellent agreement between the OCT attenuation and backscattering coefficient predicted by our model and experimentally derived values. We conclude that this model enables us to accurately model OCT-derived parameters (i.e., attenuation and backscattering coefficients) in the concentration-dependent and multiple scattering regime for spherical monodisperse samples
机译:光学相干断层扫描(OCT)具有定量地测量组织的光学性质,如衰减系数和后向散射系数的潜力。然而,为了获得可靠的值强散射的组织,需要的多重散射和散射系数和散射体的浓度(浓度依赖性散射)之间的非线性关系的影响精确考虑。我们提出了我们在其中定量解释这两种效应的OCT信号的综合模型,以及我们的系统参数(共聚焦点扩散函数和灵敏度滚降)。我们从单分散的二氧化硅珠控制幻影(散射1和毫米之间30系数(-1)和散射0.4和0.9之间各向异性)验证我们的实验数据模型。体模的光学性质使用Mie理论与Percus-Yevick结构因子,以考虑浓度依赖性散射组合来计算。我们证明我们的模型和实验得出的数值预测华侨城衰减和后向散射系数非常一致。我们得出结论,该模型使我们能够精确地模拟在浓度依赖性和多重散射政权OCT-导出的参数(即,衰减和反向散射系数)为球形单分散样品

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