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Tomographic image reconstruction from optical projections in light-diffusing media

机译:从光扩散介质中的光学投影重建层析图像

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The recent developments in light generation and detection techniques have opened new possibilities for optical medical imaging, tomography, and diagnosis at tissue penetration depths of similar to 10 cm. However, because light scattering and diffusion in biological tissue are rather strong, the reconstruction of object images from optical projections needs special attention. We describe a simple reconstruction method for diffuse optical imaging, based on a modified backprojection approach for medical tomography. Specifically, we have modified the standard backprojection method commonly used in x-ray tomographic imaging to include the effects of both the diffusion and the scattering of light and the associated nonlinearities in projection image formation. These modifications are based primarily on the deconvolution of the broadened image by a spatially variant point-spread function that is dependent on the scattering of light in tissue. The spatial dependence of the deconvolution and nonlinearity corrections for the curved propagating ray paths in heterogeneous tissue are handled semiempirically by coordinate transformations. We have applied this method to both theoretical and experimental projections taken by parallel- and fan-beam tomography geometries. The experimental objects were biomedical phantoms with multiple objects, including in vitro animal tissue. The overall results presented demonstrate that image-resolution improvements by nearly an order of magnitude can be obtained. We believe that the tomographic method presented here can provide a basis for rapid, real-time medical monitoring by the use of optical projections. It is expected that such optical tomography techniques can be combined with the optical tissue diagnosis methods based on spectroscopic molecular signatures to result in a versatile optical diagnosis and imaging technology. (C) 1997 Optical Society of America
机译:光产生和检测技术的最新发展为在大约10 cm的组织穿透深度进行光学医学成像,断层扫描和诊断开辟了新的可能性。但是,由于光在生物组织中的散射和扩散相当强,因此从光学投影中重建物体图像需要特别注意。我们描述了一种简单的重建方法,用于基于光学层析成像的改进的反投影方法的漫射光学成像。具体来说,我们已经修改了X射线断层扫描成像中常用的标准反投影方法,以包括光的扩散和散射以及投影图像形成中相关的非线性影响。这些修改主要基于通过空间变化的点扩展函数对加宽的图像进行反卷积,该点扩展函数取决于组织中光的散射。通过坐标变换半经验地处理异质组织中弯曲传播射线路径的反卷积和非线性校正的空间依赖性。我们已经将此方法应用于平行束和扇形束层析成像几何形状所进行的理论和实验预测。实验对象是具有多个对象的生物医学模型,包括体外动物组织。呈现的总体结果表明,可以将图像分辨率提高近一个数量级。我们相信,这里介绍的层析成像方法可以通过使用光学投影为快速,实时的医学监测提供基础。期望这样的光学断层摄影技术可以与基于光谱分子特征的光学组织诊断方法结合以产生通用的光学诊断和成像技术。 (C)1997年美国眼镜学会

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