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首页> 外文期刊>Computer Modeling in Engineering & Sciences >A Joint Delay-and-Sum and Fourier Beamforming Method for High Frame Rate Ultrasound Imaging
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A Joint Delay-and-Sum and Fourier Beamforming Method for High Frame Rate Ultrasound Imaging

机译:高帧速率超声成像的联合延迟和傅立叶波束形成方法

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摘要

Frame rate is an important metric for ultrasound imaging systems, and high frame rates (HFR) benefit moving-target imaging. One common way to obtain HFR imaging is to transmit a plane wave. Delay-and-sum (DAS) beamformer is a conventional beamforming algorithm, which is simple and has been widely implemented in clinical application. Fourier beamforming is an alternative method for HFR imaging and has high levels of imaging efficiency, imaging speed, and good temporal dynamic characteristics. Nevertheless, the resolution and contrast performance of HFR imaging based on DAS or Fourier beamforming are insufficient due to the single plane wave transmission. To address this problem, a joint DAS and Fourier beamforming method is introduced in this study. The proposed method considers the different distributions of sidelobes in DAS imaging and Fourier imaging and combines the angular spectrum and DAS to reconstruct ultrasound images. The proposed method is evaluated on simulation and experimental phantom datasets to compare its performance with DAS and Fourier beamforming methods. Results demonstrate that the proposed method improves image effective dynamic range and resolution while also retaining a high frame rate of the ultrasound imaging systems. The proposed method improves the effective dynamic range along axial and lateral directions by 10 dB, compared to standard DAS and Fourier beamforming.
机译:帧速率是超声成像系统的重要指标,高帧速率(HFR)益处移动目标成像。获得HFR成像的一种常见方法是传输平面波。延迟和和(DAS)波束形成器是一种传统的波束形成算法,其简单且已在临床应用中广泛实现。傅里叶波束形成是HFR成像的替代方法,具有高水平的成像效率,成像速度和良好的时间动态特性。然而,由于单个平面波传输,基于DAS或傅里叶波束形成的HFR成像的分辨率和对比性能不足。为了解决这个问题,在本研究中介绍了联合DAS和傅里叶波束形成方法。该方法考虑DAS成像和傅里叶成像中的不同分布,并结合了角频谱和DA来重建超声图像。在仿真和实验幻像数据集上评估所提出的方法,以比较其与DAS和傅立叶形成波束形成方法的性能。结果表明,该方法改善了图像有效动态范围和分辨率,同时还保持超声成像系统的高帧速率。与标准DAS和傅立叶形成相比,所提出的方法通过1​​0dB沿轴向和横向方向提高了有效动态范围。

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