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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Feasibility of Multiplane-Transmit Beamforming for Real-Time Volumetric Cardiac Imaging: A Simulation Study
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Feasibility of Multiplane-Transmit Beamforming for Real-Time Volumetric Cardiac Imaging: A Simulation Study

机译:多平面传输波束形成实时体积心脏成像的可行性:模拟研究

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摘要

Today's 3-D cardiac ultrasound imaging systems suffer from relatively low spatial and temporal resolution, limiting their applicability in daily clinical practice. To address this problem, 3-D diverging wave imaging with spatial coherent compounding (DWC) as well as 3-D multiline-transmit (MLT) imaging have recently been proposed. Currently, the former improves the temporal resolution significantly at the expense of image quality and the risk of introducing motion artifacts, whereas the latter only provides a moderate gain in volume rate but mostly preserves quality. In this paper, a new technique for real-time volumetric cardiac imaging is proposed by combining the strengths of both approaches. Hereto, multiple planar (i.e., 2-D) diverging waves are simultaneously transmitted in order to scan the 3-D volume, i.e., multiplane transmit (MPT) beamforming. The performance of a 3MPT imaging system was contrasted to that of a 3-D DWC system and that of a 3-D MLT system by computer simulations during both static and moving conditions of the target structures while operating at similar volume rate. It was demonstrated that for stationary targets, the 3MPT imaging system was competitive with both the 3-D DWC and 3-D MLT systems in terms of spatial resolution and sidelobe levels (i.e., image quality). However, for moving targets, the image quality quickly deteriorated for the 3-D DWC systems while it remained stable for the 3MPT system while operating at twice the volume rate of the 3-D-MLT system. The proposed MPT beamforming approach was thus demonstrated to be feasible and competitive to state-of-the-art methodologies.
机译:当今的3D心脏超声成像系统的空间和时间分辨率相对较低,限制了它们在日常临床实践中的适用性。为了解决这个问题,最近已经提出了具有空间相干复合(DWC)的3-D发散波成像以及3-D多线传输(MLT)成像。当前,前者以牺牲图像质量和引入运动伪像的风险为代价,大大提高了时间分辨率,而后者仅提供了适度的体积速率增益,但大部分保持了质量。本文结合两种方法的优点,提出了一种实时的实时心脏容积成像技术。到此为止,同时发射多个平面(即2-D)发散波以便扫描3-D体积,即多平面发射(MPT)波束形成。 3MPT成像系统的性能与3-D DWC系统和3-D MLT系统的性能通过在目标体积的静态和运动状态下以相似的体积速率运行时的计算机模拟进行了对比。事实证明,对于固定目标,在空间分辨率和旁瓣水平(即图像质量)方面,3MPT成像系统与3-D DWC和3-D MLT系统均具有竞争力。但是,对于运动目标,3-D DWC系统的图像质量迅速下降,而3MPT系统的图像质量却保持稳定,而其体积速率却是3-D-MLT系统的两倍。因此,所提出的MPT波束成形方法被证明是可行的,并且与最新方法具有竞争性。

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