流跟踪技术的比较:空间正交与相敏轴向解调与散斑跟踪

M.E. Anderson, L. Bohs, S. Gebhart
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引用次数: 0

摘要

空间正交和散斑跟踪都是将流速或组织运动速度的估计扩展到二维或三维的技术。作者在相似的实验条件下应用了这两种方法来评估和比较它们的性能。他们还描述了一种新的空间正交处理器,消除了在混合轴向-横向流动条件下轴向对齐的需要。该处理器避免了先前描述的轴向校准步骤中抖动产生的估计偏差,从而允许在不牺牲轴向分辨率的情况下跟踪流的非轴向分量。在作者的流动实验中,在空间正交和双波束散斑跟踪配置下,使用7.5 MHz线性阵列和改进的商用超声扫描仪,采用2:1并行接收处理,以m模式扫描几何形状捕获了射频回波数据。利用计算机控制的泵在无壁容器中建立层流。作者在波束-血管角度为60/声压角和90/声压角(即纯横向流动)的情况下,从该模型中捕获回波数据。这些数据被离线处理以估计流速剖面。通过积分计算这些剖面的体积流率。用二维散斑跟踪估计的平均体积流量与已知流量一致,真实横向流动的最大相对误差为7%,轴向-横向混合流动的最大相对误差为10%。空间正交的等效值分别为5%和15%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A comparison of flow tracking techniques: spatial quadrature with phase-sensitive axial demodulation versus speckle tracking
Spatial quadrature and speckle tracking are both techniques which extend the estimation of flow velocity or tissue motion velocity to two or three dimensions. The authors applied both under similar experimental conditions to assess and compare their performance. They also describe a new spatial quadrature processor that obviates the need for axial alignment under conditions of mixed axial-lateral flow. This processor avoids the estimate bias produced by jitter in the axial alignment step previously described, and thus allows the non-axial component(s) of flow to be tracked without sacrificing axial resolution. In the authors' flow experiment, summed radiofrequency echo data were captured in an M-mode scan geometry using 2:1 parallel receive processing in both spatial quadrature and two-beam speckle tracking configurations using a 7.5 MHz linear array and a modified commercial ultrasound scanner. Laminar flow was established in a wall-less vessel phantom using a computer-controlled pump. The authors captured echo data from this phantom at beam-vessel angles of 60/spl deg/ and 90/spl deg/ (i.e. pure lateral flow). These data were processed off-line to estimate flow velocity profiles. Volume flow rates were calculated from these profiles by integration. The mean volume flow rates estimated with 2-D speckle tracking agreed with the known flow rates with a maximum relative error of 7% for true lateral flow and 10% for mixed axial-lateral flow. The equivalent values for spatial quadrature were 5% and 15%.
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