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Accelerated focused ultrasound imaging

机译:加速聚焦超声成像

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摘要

One of the most basic trade-offs in ultrasound imaging involves frame rate, depth, and number of lines. Achieving good spatial resolution and coverage requires a large number of lines, leading to decreases in frame rate. An even more serious imaging challenge occurs with imaging modes involving spatial compounding and 3-D/4-D imaging, which are severely limited by the slow speed of sound in tissue. The present work can overcome these traditional limitations, making ultrasound imaging many-fold faster. By emitting several beams at once, and by separating the resulting overlapped signals through spatial and temporal processing, spatial resolution and/or coverage can be increased by many-fold while leaving frame rates unaffected. The proposed approach can also be extended to imaging strategies that do not involve transmit beamforming, such as synthetic aperture imaging. Simulated and experimental results are presented where imaging speed is improved by up to 32-fold, with little impact on image quality. Object complexity has little impact on the method's performance, and data from biological systems can readily be handled. The present work may open the door to novel multiplexed and/or multidimensional protocols considered impractical today.
机译:超声成像中最基本的折衷之一涉及帧速率,深度和行数。要获得良好的空间分辨率和覆盖范围,需要使用大量的线,从而导致帧速率降低。涉及空间复合和3-D / 4-D成像的成像模式会面临更为严峻的成像挑战,而这些模式受组织中声音缓慢的影响而受到严重限制。当前的工作可以克服这些传统的局限性,使超声成像速度提高许多倍。通过一次发射几束光束,并通过空间和时间处理分离得到的重叠信号,可以将空间分辨率和/或覆盖范围提高很多倍,而不会影响帧速率。所提出的方法还可以扩展到不涉及发射波束成形的成像策略,例如合成孔径成像。给出了仿真和实验结果,其中成像速度提高了32倍,而对图像质量的影响很小。对象的复杂性对方法的性能影响不大,并且可以轻松处理生物系统中的数据。当前的工作可能为当今认为不切实际的新颖的多路复用和/或多维协议打开大门。

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