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Gradient-Based Quantitative Image Reconstruction in Ultrasound-Modulated Optical Tomography: First Harmonic Measurement Type in a Linearised Diffusion Formulation

机译:超声调制光学层析成像中基于梯度的定量图像重建:线性扩散公式中的第一个谐波测量类型

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摘要

Ultrasound-modulated optical tomography is an emerging biomedical imaging modality which uses the spatially localised acoustically-driven modulation of coherent light as a probe of the structure and optical properties of biological tissues. In this work we begin by providing an overview of forward modelling methods, before deriving a linearised diffusion-style model which calculates the first-harmonic modulated flux measured on the boundary of a given domain. We derive and examine the correlation measurement density functions of the model which describe the sensitivity of the modality to perturbations in the optical parameters of interest. Finally, we employ said functions in the development of an adjoint-assisted gradient based image reconstruction method, which ameliorates the computational burden and memory requirements of a traditional Newton-based optimisation approach. We validate our work by performing reconstructions of optical absorption and scattering in two- and three-dimensions using simulated measurements with 1% proportional Gaussian noise, and demonstrate the successful recovery of the parameters to within 5% of their true values when the resolution of the ultrasound raster probing the domain is sufficient to delineate perturbing inclusions.
机译:超声调制光学断层扫描是一种新兴的生物医学成像方法,它使用相干光的空间局部声驱动调制作为生物组织的结构和光学特性的探针。在这项工作中,我们将首先概述前向建模方法,然后得出线性化扩散式模型,该模型计算在给定域边界上测得的第一谐波调制通量。我们推导并检验了模型的相关测量密度函数,该函数描述了模态对目标光学参数扰动的敏感性。最后,我们在基于辅助梯度的图像重建方法的开发中采用了上述功能,从而减轻了基于牛顿的传统优化方法的计算负担和存储需求。我们通过使用具有1%比例高斯噪声的模拟测量对二维和三维进行光学吸收和散射的重建来验证我们的工作,并证明当分辨率降低时,参数成功恢复到其真实值的5%以内。超声光栅探测该域足以描绘出扰动的包裹体。

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