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首页> 外文期刊>IEEE journal of selected topics in quantum electronics >Accurate measurement of total attenuation coefficient of thin tissue with optical coherence tomography
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Accurate measurement of total attenuation coefficient of thin tissue with optical coherence tomography

机译:光学相干断层扫描的薄组织总衰减系数的精确测量

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摘要

Noninvasive accurate measurements of tissue optical properties are needed for many diagnostic and therapeutic applications. Optical coherence tomography (OCT) recently proposed for high-resolution imaging in tissue can potentially be applied for accurate, noninvasive, and high-resolution measurement of tissue total attenuation coefficient. However, confocal function (dependence of OCT sensitivity on the distance of probed site from the focal plane of the objective lens) and multiple scattering substantially limit the accuracy of the measurement with the OCT technique. We studied the influence of the confocal function and multiple scattering on the accuracy of the measurement and proposed methods that provide measurement of the total attenuation coefficient with a significantly reduced systematic error. Experiments were performed in tissue phantoms and porcine and human skin in vitro and in vivo. Our data indicate that the tissue total attenuation coefficient can noninvasively be measured in vivo with the accuracy of 5%-10% in the range from 0.5 to 17 mm-1 and about 20% in the range up to 40 mm-1. These results suggest that the proper correction of the OCT-based measurement for the confocal function and multiple scattering provides absolute values of tissue total attenuation coefficient with high accuracy and resolution that may not be achievable by other optical techniques in vivo.
机译:许多诊断和治疗应用需要非侵入性精确测量组织光学性质。最近提出用于组织中的高分辨率成像的光学相干断层扫描(OCT)可能适用于精确,非侵入性和高分辨率测量组织总衰减系数。然而,共聚焦功能(OCT对来自物镜的焦平面的探测部位对探测部位的距离)和多个散射基本上利用OCT技术的测量精度限制。我们研究了共聚焦功能的影响和多次散射对测量的准确性和提出的方法,提供了对总衰减系数的测量,具有显着减少的系统误差。在体外和体内在组织幽灵和猪和人体皮肤中进行实验。我们的数据表明,组织总衰减系数可以在体内无侵入地测量,精度为5%-10%,范围为0.5至17 mm-1和约20%,在高达40mm-1的范围内。这些结果表明,基于OCT基测量的共聚焦功能和多个散射的正确校正提供了组织总衰减系数的绝对值,具有高精度和分辨率,其可能无法通过体内其他光学技术来实现。

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