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Image and optical property reconstruction from noninvasive measurements of turbid media, in vitro and in vivo: A promising method for optical mammography.

机译:在体外和体内通过无创测量混浊介质来重建图像和光学特性:光学乳腺摄影的一种有前途的方法。

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摘要

Due to their multiple scattering, near infrared photons diffuse in human tissues providing interesting physiological information over relatively large volumes. By employing frequency-domain techniques along with a diffusion model for photon transport, one can separate contributions to light attenuation from absorption and scattering processes. Both the absorption and reduced scattering parameters are sensitive to physiological characteristics of tissues. I have employed the diffusion model, which assumes that tissue is homogeneous, to create an efficient reconstruction routine based on the back-projection technique to detect and locate inhomogeneities qualitatively.; Before my work in this field, researchers were uncertain whether the diffusion model would be valid for a medium containing inhomogeneities. I, along with a handful of other researchers demonstrated that the diffusion model is accurate enough to include well behaved heterogeneous tissue models in which a number of macroscopic objects of different size and shape are embedded in a homogeneous background medium. I have employed a fitting of the experimental data to the diffusion model to accurately reconstruct not only the position and size, but also the optical properties including the relative index of refraction, absorption and scattering coefficients of objects immersed in highly scattering media. In this thesis I describe a model for locating and characterizing optical inhomogeneities in a turbid medium. I will go on to discuss limits of the technique and present data collected in vivo from a 55 year old female subject with a malignant breast cancer that was detected and optically characterized by these techniques.
机译:由于它们的多重散射,近红外光子在人体组织中扩散,从而在相对较大的体积上提供了有趣的生理信息。通过采用频域技术以及用于光子传输的扩散模型,可以将吸收和散射过程对光衰减的贡献分开。吸收参数和减少的散射参数都对组织的生理特性敏感。我采用了假设组织是均匀的扩散模型,基于反投影技术创建了一个有效的重建程序,以定性检测和定位不均匀性。在我从事这一领域的工作之前,研究人员不确定扩散模型是否适用于包含不均匀性的介质。我以及其他一些研究人员证明,扩散模型足够精确,可以包括表现良好的异质组织模型,在该模型中,许多大小和形状不同的宏观物体被嵌入同质背景介质中。我将实验数据拟合到扩散模型中,不仅可以精确地重建位置和大小,还可以精确地重建光学特性,包括浸没在高度散射介质中的物体的相对折射率,吸收系数和散射系数。在这篇论文中,我描述了一种用于定位和表征混浊介质中光学不均匀性的模型。我将继续讨论该技术的局限性,并介绍从55岁的患有恶性乳腺癌的女性受试者体内检测得到的数据,并通过这些技术对其进行了光学检测。

著录项

  • 作者

    Walker, Scott Andrew.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Biophysics Medical.; Physics Optics.; Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 82 p.
  • 总页数 82
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学;光学;生物医学工程;
  • 关键词

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