Simultaneous imaging of tissue motion and flow velocity using 2D phase-coupled speckle tracking

Y. Wan, Dalong Liu, E. Ebbini
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引用次数: 7

Abstract

We introduce a new method for simultaneous imaging of tissue motion and flow with subsample accuracy in both axial and lateral directions. The method utilizes a phase-coupled 2D speckle tracking approach, which employs the true 2D complex cross correlation to find subpixel displacements in both axial and lateral directions. We have also modified the imaging sequence on a Sonix RP scanner to allow high frame rate 2D data collection in a limited field of view covering the region of interest (M2D-mode). Together with the robust 2D speckle tracking method, M2D imaging allows for capturing the full dynamics of the flow and wall/tissue motion, even when the flow is primarily in the lateral direction (with respect to the imaging beam). The fine vector displacement estimates in both axial and lateral directions are shown to allow for smooth and contiguous strain and shear strain calculations with minimal filtering. The quality of the displacement and strain fields is demonstrated by experimental results from a flow phantom (ATS Model 524) and in vivo images of the carotid artery in a healthy volunteer. The results clearly demonstrate the feasibility of simultaneous imaging of the vector flow field and the wall/tissue motion and the corresponding strains at high spatial and temporal sampling. This may provide an essential tool in modeling the fluid-solid interactions between the blood and blood vessel, a key challenge in vascular biomechanics.
利用二维相位耦合散斑跟踪同时成像组织运动和流速
我们介绍了一种新的方法,同时成像的组织运动和流动与亚样本精度在轴向和横向。该方法采用相耦合的二维散斑跟踪方法,利用真正的二维复相互关系在轴向和横向上寻找亚像素位移。我们还修改了Sonix RP扫描仪上的成像序列,以允许在覆盖感兴趣区域的有限视场内(m2d模式)进行高帧率2D数据收集。与强大的2D散斑跟踪方法一起,M2D成像允许捕获流动和壁/组织运动的完整动态,即使流动主要是在横向方向(相对于成像光束)。在轴向和横向的精细矢量位移估计显示,允许平滑和连续应变和剪切应变计算与最小的过滤。位移场和应变场的质量通过流动模体(ATS 524型)的实验结果和健康志愿者颈动脉的活体图像得到了证明。结果清楚地表明,在高时空采样条件下,矢量流场与壁/组织运动及相应应变同时成像是可行的。这可能为模拟血液和血管之间的流体-固体相互作用提供了一个重要的工具,这是血管生物力学的一个关键挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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