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Elastic property estimation using Ultrasound Assisted Optical Elastography through Remote Palpation-A simulation study

机译:使用超声辅助光学弹性成像通过远程触诊估算弹性性质-模拟研究

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摘要

We propose an effective elastography technique in which an acoustic radiation force is used for remote palpation to generate localized tissue displacements, which are directly correlated to localized variations of tissue stiffness and are measured using a light probe in the same direction of ultrasound propagation. The experimental geometry has provision to input light beam along the ultrasound propagation direction, and hence it can be prealigned to ensure proper interception of the focal region by the light beam. Tissue-mimicking phantoms with homogeneous and isotropic mechanical properties of normal and malignant breast tissue are considered for the study. Each phantom is insonified by a focusing ultrasound transducer (1 MHz). The focal volume of the transducer and the ultrasound radiation force in the region are estimated through solving acoustic wave propagation through medium assuming average acoustic properties. The forward elastography problem is solved for the region of insonification assuming the Lame's parameters and Poisson's ratio, under Dirichlet boundary conditions which gives a distribution of displacement vectors. The direction of displacement, though presented spatial variation, is predominantly towards the ultrasound propagation direction. Using Monte Carlo (MC) simulation we have traced the photons through the phantom and collected the photons arriving at the detector on the boundary of the object in the direction of ultrasound. The intensity correlations are then computed from detected photons. The intensity correlation function computed through MC simulation showed a modulation whose strength is found to be proportional to the amplitude of displacement and inversely related to the storage (elastic) modulus. It is observed that when the storage modulus in the focal region is increased the computed displacement magnitude, as indicated by the depth of modulation in the intensity autocorrelation, decreased and the trend is approximately exponential.
机译:我们提出了一种有效的弹性成像技术,其中将声辐射力用于远程触诊以生成局部组织位移,该位移与组织刚度的局部变化直接相关,并使用光探头在超声传播的相同方向上进行测量。实验几何结构具有沿超声传播方向输入光束的条件,因此可以预先对齐以确保光束正确聚焦在焦点区域上。具有正常和恶性乳腺组织均一且各向同性的机械特性的模仿组织的模型被考虑用于研究。每个体模均由聚焦超声换能器(1 MHz)发出声波。通过求解假设平均声学特性的声波在介质中的传播,可以估算出换能器的聚焦体积和该区域的超声辐射力。假设Lame参数和泊松比,在Dirichlet边界条件下给出位移矢量的分布,就可以解决声影区域的正向弹性成像问题。尽管存在空间变化,但位移方向主要朝向超声传播方向。使用蒙特卡洛(MC)模拟,我们已通过体模跟踪了光子,并收集了沿超声方向到达物体边界处的检测器的光子。然后根据检测到的光子计算强度相关性。通过MC模拟计算的强度相关函数显示出一种调制,该调制的强度与位移幅度成正比,与储能(弹性)模量成反比。可以看出,当焦点区域中的储能模量增加时,如强度自相关中的调制深度所指示的,所计算出的位移幅度将减小,并且趋势近似为指数。

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