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首页> 外文期刊>Applied Sciences >Effect of Ultrafast Imaging on Shear Wave Visualization and Characterization: An Experimental and Computational Study in a Pediatric Ventricular Model
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Effect of Ultrafast Imaging on Shear Wave Visualization and Characterization: An Experimental and Computational Study in a Pediatric Ventricular Model

机译:超快成像对剪切波的可视化和表征的影响:小儿心室模型的实验和计算研究。

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Plane wave imaging in Shear Wave Elastography (SWE) captures shear wave propagation in real-time at ultrafast frame rates. To assess the capability of this technique in accurately visualizing the underlying shear wave mechanics, this work presents a multiphysics modeling approach providing access to the true biomechanical wave propagation behind the virtual image. This methodology was applied to a pediatric ventricular model, a setting shown to induce complex shear wave propagation due to geometry. Phantom experiments are conducted in support of the simulations. The model revealed that plane wave imaging altered the visualization of the shear wave pattern in the time (broadened front and negatively biased velocity estimates) and frequency domain (shifted and/or decreased signal frequency content). Furthermore, coherent plane wave compounding (effective frame rate of 2.3 kHz) altered the visual appearance of shear wave dispersion in both the experiment and model. This mainly affected stiffness characterization based on group speed, whereas phase velocity analysis provided a more accurate and robust stiffness estimate independent of the use of the compounding technique. This paper thus presents a versatile and flexible simulation environment to identify potential pitfalls in accurately capturing shear wave propagation in dispersive settings.
机译:剪切波弹性成像(SWE)中的平面波成像可以超快的帧速率实时捕获剪切波传播。为了评估此技术准确地可视化潜在的剪切波力学的能力,这项工作提出了一种多物理场建模方法,提供了访问虚拟图像背后真实的生物力学波传播的途径。将该方法应用于儿科心室模型,该设置显示由于几何形状会引起复杂的剪切波传播。进行模拟实验以支持模拟。该模型显示,平面波成像在时间(扩大的前速度估计和负偏速度估计)和频域(偏移和/或降低的信号频率内容)中改变了剪切波模式的可视化。此外,相干平面波复合(有效帧频为2.3 kHz)在实验和模型中都改变了剪切波色散的视觉外观。这主要影响了基于组速度的刚度表征,而相速度分析则提供了更精确,更可靠的刚度估算,而与复合技术的使用无关。因此,本文提出了一种灵活的通用仿真环境,可以识别在色散设置下准确捕获剪切波传播的潜在陷阱。

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