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使用 62+62 行-列寻址阵列进行 4D 的快速 3D 速度估计。

Fast 3-D Velocity Estimation in 4-D Using a 62 + 62 Row-Column Addressed Array.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2021 Mar;68(3):608-623. doi: 10.1109/TUFFC.2020.3016991. Epub 2021 Feb 25.

Abstract

This article presents an imaging scheme capable of estimating the full 3-D velocity vector field in a volume using row-column addressed arrays (RCAs) at a high volume rate. A 62 + 62 RCA array is employed with an interleaved synthetic aperture sequence. It contains repeated emissions with rows and columns interleaved with B-mode emissions. The sequence contains 80 emissions in total and can provide continuous volumetric data at a volume rate above 125 Hz. A transverse oscillation cross correlation estimator determines all three velocity components. The approach is investigated using Field II simulations and measurements using a specially built 3-MHz 62 + 62 RCA array connected to the SARUS experimental scanner. Both the B-mode and flow sequences have a penetration depth of 14 cm when measured on a tissue-mimicking phantom (0.5-dB/[ [Formula: see text]] attenuation). Simulations of a parabolic flow in a 12-mm-diameter vessel at a depth of 30 mm, beam-to-flow angle of 90°, and xy-rotation of 45° gave a standard deviation (SD) of (3.3, 3.4, 0.4)% and bias of (-3.3, -3.9, -0.1)%, for ( v , v , and v ). Decreasing the beam-to-flow angle to 60° gave an SD of (8.9, 9.1, 0.8)% and bias of (-7.6, -9.5, -7.2)%, showing a slight increase. Measurements were carried out using a similar setup, and pulsing at 2 kHz yielded comparable results at 90° with an SD of (5.8, 5.5, 1.1)% and bias of (1.4, -6.4, 2.4)%. At 60°, the SD was (5.2, 4.7 1.2)% and bias (-4.6, 6.9, -7.4)%. Results from measurements across all tested settings showed a maximum SD of 6.8% and a maximum bias of 15.8% for a peak velocity of 10 cm/s. A tissue-mimicking phantom with a straight vessel was used to introduce clutter, tissue motion, and pulsating flow. The pulsating velocity magnitude was estimated across ten pulse periods and yielded an SD of 10.9%. The method was capable of estimating transverse flow components precisely but underestimated the flow with small beam-to-flow angles. The sequence provided continuous data in both time and space throughout the volume, allowing for retrospective analysis of the flow. Moreover, B-mode planes can be selected retrospectively anywhere in the volume. This shows that tensor velocity imaging (full 3-D volumetric vector flow imaging) can be estimated in 4-D ( x, y, z, and t ) using only 62 channels in receive, making 4-D volumetric imaging implementable on current scanner hardware.

摘要

本文提出了一种成像方案,能够使用行-列寻址阵列(RCA)以高体积速率估计体积内的全 3-D 速度矢量场。使用 62+62 RCA 阵列和交错合成孔径序列。它包含重复发射,行和列与 B 模式发射交错。该序列总共包含 80 次发射,可在 125Hz 以上的体积速率提供连续的体积数据。横向振荡互相关估计器确定所有三个速度分量。该方法使用 Field II 模拟和使用专门构建的 3MHz 62+62 RCA 阵列连接到 SARUS 实验扫描仪进行的测量进行了研究。在组织模拟体模上测量时,B 模式和流动序列的穿透深度均为 14cm(0.5-dB/[ [Formula: see text]]衰减)。在深度为 30mm、波束与流动角度为 90°且 xy 旋转为 45°的 12mm 直径血管中的抛物流的模拟中,标准偏差(SD)为(3.3、3.4、0.4)%,偏差为(-3.3、-3.9、-0.1)%,用于( v 、 v 、 v )。将波束与流动角度减小到 60°,则 SD 为(8.9、9.1、0.8)%,偏差为(7.6、9.5、7.2)%,略有增加。使用类似的设置进行了测量,在 2kHz 下脉冲产生的结果与 90°时相似,SD 为(5.8、5.5、1.1)%,偏差为(1.4、-6.4、2.4)%。在 60°时,SD 为(5.2、4.7、1.2)%,偏差为(-4.6、6.9、-7.4)%。在所有测试设置下的测量结果显示,在 10cm/s 的峰值速度下,最大 SD 为 6.8%,最大偏差为 15.8%。使用具有直血管的组织模拟体模引入了杂波、组织运动和脉动流。在十个脉冲周期内估计脉动速度幅度,得到的 SD 为 10.9%。该方法能够精确估计横向流动分量,但对于小的波束与流动角度,会低估流动。该序列在整个体积中提供了时间和空间上的连续数据,允许对流动进行回顾性分析。此外,可以在体积中的任何位置回顾性选择 B 模式平面。这表明可以使用仅在接收中使用 62 个通道在 4-D( x 、 y 、 z 和 t )中估计张量速度成像(全 3-D 体积矢量流成像),从而使 4-D 体积成像能够在当前的扫描仪硬件上实现。

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