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使用合成孔径聚焦技术增强滤波延迟相乘求和波束形成图像中的景深。

Depth-of-field enhancement in Filtered-Delay Multiply and Sum beamformed images using Synthetic Aperture Focusing.

作者信息

Matrone Giulia, Savoia Alessandro Stuart, Caliano Giosuè, Magenes Giovanni

机构信息

Dipartimento di Ingegneria Industriale e dell'Informazione, Università degli Studi di Pavia, Pavia, Italy.

Dipartimento di Ingegneria, Università degli Studi Roma Tre, Rome, Italy.

出版信息

Ultrasonics. 2017 Mar;75:216-225. doi: 10.1016/j.ultras.2016.11.022. Epub 2016 Nov 28.

DOI:10.1016/j.ultras.2016.11.022
PMID:28011340
Abstract

The Synthetic Aperture Focusing (SAF) technique makes it possible to achieve a higher and more uniform quality of ultrasound images throughout depth, as if both transmit and receive dynamic focusing were applied. In this work we combine a particular implementation of SAF, called Synthetic Transmit Aperture (STA) technique, in which a single element in turn transmits and all the array elements receive the ultrasound wave, with the Filtered-Delay Multiply and Sum (F-DMAS) non-linear beamforming algorithm that we presented in a previous paper. We show that using F-DMAS, which is based on a measure of backscattered signal spatial correlation, B-mode images have a higher contrast resolution but suffer from a loss of brightness away from the transmit focus, when a classical scan with receive-only dynamic focusing is performed. On the other hand, when synthetic transmit focusing is achieved by implementing STA, such a loss is compensated for and a higher depth of field is obtained, as signal coherence improves. A drawback of SAF/STA however is the reduced signal-to-noise ratio, due to single-element transmission; in the paper we also analyze how this influences F-DMAS images. Finally, a preliminary investigation on the use of the classical monostatic SAF technique with F-DMAS beamforming is also carried out to evaluate its potential performances.

摘要

合成孔径聚焦(SAF)技术能够在整个深度范围内实现更高且更均匀的超声图像质量,就好像同时应用了发射和接收动态聚焦一样。在这项工作中,我们将一种特殊的SAF实现方式,即合成发射孔径(STA)技术(其中单个元件依次发射,所有阵列元件接收超声波)与我们在之前一篇论文中提出的滤波延迟相乘求和(F-DMAS)非线性波束形成算法相结合。我们表明,使用基于反向散射信号空间相关性测量的F-DMAS算法时,在进行仅接收动态聚焦的传统扫描时,B模式图像具有更高的对比度分辨率,但在远离发射焦点处会出现亮度损失。另一方面,当通过实施STA实现合成发射聚焦时,这种损失会得到补偿,并且由于信号相干性提高,可获得更高的景深。然而,SAF/STA的一个缺点是由于单元素传输导致信噪比降低;在本文中,我们还分析了这对F-DMAS图像的影响。最后,还对使用传统单基地SAF技术与F-DMAS波束形成进行了初步研究,以评估其潜在性能。

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