带有运动补偿的3-D高帧率成像(3-D HFR With MoCo):一种实验评估

Sebastien Salles;François Varray;Damien Garcia;Hervé Liebgott;Barbara Nicolas
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引用次数: 0

摘要

提高三维高帧率超声心动图的图像质量已成为一个重要的研究热点。散波技术已经在三维超声成像中显示出有希望的结果。然而,在超声传输之间由大的组织位移引起的相位延迟会使复合过程恶化。运动补偿(MoCo)方法已被引入并集成到二维和三维模拟超声体积的合成过程中。在这里,我们提出研究MoCo方法在不同场景下的影响,包括几种三维发散波策略和虚拟源的配置。首先,我们建议根据不同的场景形式化虚拟源的放置。然后,在Field II的数值模拟和自制旋转体的体外实验中对所提出的方法进行了验证。通过估计噪声对比度(CNR)和对比度(CR)对这九种方法进行定量比较。结果证实,MoCo增加了每个病例的CNR和CR。MoCo算法在体外平均使CNR/CR分别提高${\mathcal {C}}$ 3.2/8.4 dB和${\mathcal {C}}$ 1.4/1.8 dB。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3-D High Frame Rate Imaging With Motion Compensation (3-D HFR With MoCo): An Experimental Evaluation
Improving the image quality of 3D high-frame-rate (HFR) echocardiography has become an important research focus. Diverging Waves techniques have already shown promising results in 3D ultrasound imaging. However, phase delays induced by large tissue displacements between ultrasound transmission can deteriorate the compounding process. Motion compensation (MoCo) approaches have been introduced and integrated into the compounding process in 2-D and in 3-D simulated ultrasound volume. Here, we propose to investigate the influence of the MoCo approach on different scenarios, including several 3-D diverging wave strategies and configurations of virtual sources. First, we proposed to formalize the placement of virtual sources according to different scenarios. Then the proposed method has been tested on numerical simulations using Field II, and in vitro experimentations with a homemade rotating phantom. The nine approaches were compared quantitatively by estimating the contrast to noise (CNR) and contrast ratio (CR). The results confirmed that MoCo increased the CNR and CR for each case. On average, the MoCo algorithm increased the CNR/CR by ${\mathcal {C}}$ 3.2/8.4 dB in silico, and of ${\mathcal {C}}$ 1.4/1.8 dB in vitro, respectively.
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