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三维合成孔径聚焦的精确飞行时间计算。

Precise time-of-flight calculation for 3-D synthetic aperture focusing.

机构信息

Center for Fast Ultrasound Imaging, DTU Elektro, Technical University of Denmark, Lyngby, Denmark.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2009 Sep;56(9):1880-7. doi: 10.1109/TUFFC.2009.1264.

Abstract

Conventional linear arrays can be used for 3-D ultrasound imaging by moving the array in the elevation direction and stacking the planes in a volume. The point-spread function is larger in the elevation plane, because the aperture is smaller and has a fixed elevation focus. Resolution improvements in elevation can be achieved by applying synthetic aperture focusing to the beamformed-in-plane RF data. The proposed method uses a virtual source placed at the elevation focus for postbeamforming. This has previously been done in 2 steps, in-plane focusing followed by synthetic aperture postfocusing in elevation, due to lack of a simple expression for the exact time of flight. This paper presents a new single step method for calculating the time of flight for a 3-D case using a linear array. The new method is more flexible and is able to beamform a fewer number of points much more efficiently. The method is evaluated using both simulated data and phantom measurements using the RASMUS experimental scanner. Computational cost of the method is higher than the 2-step method for a full volume beamforming, but it allows for a reduction of an order-of-magnitude if 3 planes are used for real-time visualization. In addition, the need for a temporary storage of beamformed data is removed.

摘要

传统的线性阵列可通过在高程方向上移动阵列并在体积中堆叠平面来用于 3-D 超声成像。由于孔径较小且具有固定的高程焦点,因此在高程平面中的点扩散函数较大。通过对波束成形的 RF 数据进行合成孔径聚焦,可以实现高程分辨率的提高。所提出的方法使用位于高程焦点的虚拟源进行后波束成形。由于缺乏用于飞行时间的简单表达式,以前在 2 个步骤中完成了此操作,即平面内聚焦,然后在高程中进行合成孔径后聚焦。本文提出了一种新的单步方法,用于使用线性阵列计算 3-D 情况下的飞行时间。新方法更灵活,能够更有效地对更少的点进行波束形成。该方法使用 RASMUS 实验扫描仪的模拟数据和体模测量进行了评估。对于完整体积的波束形成,该方法的计算成本高于 2 步方法,但是如果使用 3 个平面进行实时可视化,则可以减少一个数量级。此外,无需临时存储波束形成的数据。

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