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首页> 外文期刊>Ultrasound in Medicine and Biology >GPU-BASED MINIMUM VARIANCE BEAMFORMER FOR SYNTHETIC APERTURE IMAGING OF THE EYE
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GPU-BASED MINIMUM VARIANCE BEAMFORMER FOR SYNTHETIC APERTURE IMAGING OF THE EYE

机译:基于GPU的最小方差波束形成器,用于眼睛的合成孔径成像

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摘要

Minimum variance (MV) beamforming has emerged as an adaptive apodization approach to bolster the quality of images generated from synthetic aperture ultrasound imaging methods that are based on unfocused transmission principles. In this article, we describe a new high-speed, pixel-based MV beamforming framework for synthetic aperture imaging to form entire frames of adaptively apodized images at real-time throughputs and document its performance in swine eye imaging case examples. Our framework is based on parallel computing principles, and its real-time operational feasibility was realized on a six-GPU (graphics processing unit) platform with 3,072 computing cores. This framework was used to form images with synthetic aperture imaging data acquired from swine eyes (based on virtual point-source emissions). Results indicate that MV-apodized image formation with video-range processing throughput (>20 fps) can be realized for practical aperture sizes (128 channels) and frames with lambda/2 pixel spacing. Also, in a corneal wound detection experiment, MV-apodized images generated using our framework revealed apparent contrast enhancement of the wound site (10.8 dB with respect to synthetic aperture images formed with fixed apodization). These findings indicate that GPU-based MV beamforming can, in real time, potentially enhance image quality when performing synthetic aperture imaging that uses unfocused firings. (C) 2015 World Federation for Ultrasound in Medicine & Biology.
机译:最小方差(MV)波束成形已成为一种自适应变迹方法,可增强从基于非聚焦传输原理的合成孔径超声成像方法生成的图像质量。在本文中,我们描述了一种用于合成孔径成像的新型基于像素的高速MV波束形成框架,以实时吞吐量形成自适应切趾图像的整个帧,并记录了其在猪眼成像案例中的性能。我们的框架基于并行计算原理,其实时操作可行性是在具有3072个计算核心的六GPU(图形处理单元)平台上实现的。使用此框架来形成具有从猪眼获得的合成孔径成像数据的图像(基于虚拟点源发射)。结果表明,对于实际的孔径大小(128通道)和具有λ/ 2像素间距的帧,可以实现具有视频范围处理吞吐量(> 20 fps)的MV切趾图像形成。同样,在角膜伤口检测实验中,使用我们的框架生成的MV切趾图像显示出伤口部位的明显对比度增强(相对于固定切趾形成的合成孔径图像而言为10.8 dB)。这些发现表明,基于GPU的MV​​波束成形可以实时地执行使用未聚焦发射的合成孔径成像时提高图像质量。 (C)2015年世界医学和生物学超声联合会。

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