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A shape reconstruction method for diffuse optical tomography using a transport model and level sets

机译:使用传输模型和水平集的漫射光学层析成像形状重构方法

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A two-step shape reconstruction method for diffuse optical tomography (DOT) is presented which uses adjoint fields and level sets. The propagation of near-infrared photons in tissue is modeled by the time-dependent linear transport equation, of which the absorption parameter has to be reconstructed from boundary measurements. In the shape reconstruction approach, it is assumed that the inhomogeneous background absorption parameter and the values inside the obstacles are (approximately) known, but that the number, sizes, shapes, and locations of these obstacles have to be reconstructed from the data. An additional difficulty arises due to the presence of so-called clear regions in the medium. The first step of the reconstruction scheme is a transport-backtransport (TBT) method which provides us with a low-contrast approximation to the sought objects. The second step uses this result as an initial guess for solving the shape reconstruction problem. A key point in this second step is the fusion of the 'level set technique' for representing the shapes of the reconstructed obstacles, and an 'adjoint-field technique' for solving the nonlinear inverse problem. Numerical experiments are presented which show that this novel method is able to recover one or more objects very fast and with good accuracy.
机译:提出了一种使用伴随场和水平集的扩散光学层析成像(DOT)的两步形状重构方法。近红外光子在组织中的传播通过与时间有关的线性传输方程建模,该方程的吸收参数必须从边界测量中重建。在形状重建方法中,假设(大约)已知不均匀的背景吸收参数和障碍物内部的值,但是必须从数据中重建这些障碍物的数量,大小,形状和位置。由于在介质中存在所谓的透明区域而引起了另外的困难。重建方案的第一步是反向传输(TBT)方法,该方法为我们提供了对寻找对象的低对比度近似。第二步将此结果用作解决形状重构问题的初步猜测。第二步的关键是融合了“水平集技术”和“伴随场技术”,“水平集技术”用于表示重构障碍物的形状,“伴随场技术”用于解决非线性逆问题。数值实验表明,该新方法能够非常快速且准确地恢复一个或多个物体。

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