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2
Pediatric Cardiac Shear Wave Elastography for Quantitative Assessment of Myocardial Stiffness: A Pilot Study in Healthy Controls.小儿心脏剪切波弹性成像用于心肌硬度的定量评估:健康对照的初步研究
Ultrasound Med Biol. 2016 Aug;42(8):1719-29. doi: 10.1016/j.ultrasmedbio.2016.03.009. Epub 2016 Apr 29.
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Fact or Artifact in Two-Dimensional Echocardiography: Avoiding Misdiagnosis and Missed Diagnosis.二维超声心动图中的事实与伪像:避免误诊和漏诊
J Am Soc Echocardiogr. 2016 May;29(5):381-91. doi: 10.1016/j.echo.2016.01.009. Epub 2016 Mar 9.
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Imaging Artifacts in Echocardiography.超声心动图中的成像伪像
Anesth Analg. 2016 Mar;122(3):633-646. doi: 10.1213/ANE.0000000000001085.
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Ultrafast Harmonic Coherent Compound (UHCC) Imaging for High Frame Rate Echocardiography and Shear-Wave Elastography.用于高帧率超声心动图和剪切波弹性成像的超快谐波相干复合(UHCC)成像
IEEE Trans Ultrason Ferroelectr Freq Control. 2016 Mar;63(3):420-31. doi: 10.1109/TUFFC.2016.2530408. Epub 2016 Feb 15.
6
High-Frame-Rate Echocardiography Using Coherent Compounding With Doppler-Based Motion-Compensation.基于相干复合和基于多普勒的运动补偿的高帧率超声心动图。
IEEE Trans Med Imaging. 2016 Jul;35(7):1647-57. doi: 10.1109/TMI.2016.2523346. Epub 2016 Feb 3.
7
Multi-transmit beam forming for fast cardiac imaging--experimental validation and in vivo application.多发射波束形成技术在快速心脏成像中的应用——实验验证与活体应用。
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9
High-contrast ultrafast imaging of the heart.心脏高对比度超快成像。
IEEE Trans Ultrason Ferroelectr Freq Control. 2014 Feb;61(2):288-301. doi: 10.1109/TUFFC.2014.6722614.
10
Improved Shear Wave Motion Detection Using Pulse-Inversion Harmonic Imaging With a Phased Array Transducer.使用相控阵换能器的脉冲反转谐波成像改进剪切波运动检测
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发射波束形成对经胸超声心动图中杂波水平的影响。

Effect of Transmit Beamforming on Clutter Levels in Transthoracic Echocardiography.

作者信息

Kakkad Vaibhav, LeFevre Melissa, Roy Choudhury Kingshuk, Kisslo Joseph, Trahey Gregg E

机构信息

1 Department of Biomedical Engineering, Duke University, Durham, NC, USA.

2 Department of Cardiology, Duke University Hospital, Durham, NC, USA.

出版信息

Ultrason Imaging. 2018 Jul;40(4):215-231. doi: 10.1177/0161734618770359. Epub 2018 Apr 21.

DOI:10.1177/0161734618770359
PMID:29683052
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6090539/
Abstract

Transmit beamforming has a strong impact on several factors that govern image quality, field-of-view, and frame-rate in ultrasound imaging. For cardiac applications, the visualization of fine structures and the ability to track their motion is equally important. Consequently, beamforming choices for echocardiography aim to optimize these trade-offs. Acoustic clutter can dramatically impact image quality and degrade the diagnostic value of cardiac ultrasound imaging. Clutter levels, however, are closely tied to the choice of beamforming configuration. This study aims to quantify the impact of transmit beamforming on clutter levels under in vivo conditions. The performance of focused as well as plane wave transmit configurations in fundamental and harmonic modes is evaluated under matched conditions. Contrast between the cardiac chambers and the interventricular septum is used as a surrogate for the level of clutter in a given imaging scenario. Under in vivo conditions, contrast was found to improve incrementally across the four beamforming configurations in the following order: fundamental-plane, fundamental-focused, harmonic-plane, and harmonic-focused. Using the fundamental-focused configuration as a reference, the harmonic-plane and harmonic-focused cases showed improvements in median contrast of 2.97 dB and 6.1 dB, respectively, while the fundamental-plane case showed a contrast deterioration of 1.23 dB. Contrast was also found to vary systematically as a function of imaging depth. Median contrast for the right ventricle (shallow chamber) was measured to be 2.96 dB lower than that in the left ventricle (deep chamber).

摘要

发射波束形成对超声成像中影响图像质量、视野和帧率的多个因素有很大影响。对于心脏应用,精细结构的可视化及其运动跟踪能力同样重要。因此,超声心动图的波束形成选择旨在优化这些权衡。声学杂波会显著影响图像质量并降低心脏超声成像的诊断价值。然而,杂波水平与波束形成配置的选择密切相关。本研究旨在量化体内条件下发射波束形成对杂波水平的影响。在匹配条件下评估了基波和谐波模式下聚焦和平板波发射配置的性能。在给定成像场景中,心脏腔室与室间隔之间的对比度用作杂波水平的替代指标。在体内条件下,发现对比度在四种波束形成配置中按以下顺序逐渐提高:基波 - 平板波、基波 - 聚焦波、谐波 - 平板波、谐波 - 聚焦波。以基波 - 聚焦配置为参考,谐波 - 平板波和谐波 - 聚焦波情况的中位数对比度分别提高了2.97 dB和6.1 dB,而基波 - 平板波情况的对比度下降了1.23 dB。还发现对比度随成像深度系统变化。测量右心室(浅腔室)的中位数对比度比左心室(深腔室)低2.96 dB。