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Exploiting Flow Dynamics for Superresolution in Contrast-Enhanced Ultrasound

机译:利用流动动力学获得超分辨率的超声造影

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摘要

Ultrasound (US) localization microscopy offers new radiation-free diagnostic tools for vascular imaging deep within the tissue. Sequential localization of echoes returned from inert microbubbles (MBs) with low concentration within the blood-stream reveals the vasculature with capillary resolution. Despite its high spatial resolution, low MB concentrations dictate the acquisition of tens of thousands of images, over the course of several seconds to tens of seconds, to produce a single superresolved image. Such long acquisition times and stringent constraints on MB concentration are undesirable in many clinical scenarios. To address these restrictions, sparsity-based approaches have recently been developed. These methods reduce the total acquisition time dramatically, while maintaining good spatial resolution in settings with considerable MB overlap. Here, we further improve the spatial resolution and visual vascular reconstruction quality of sparsity-based superresolution US imaging from low-frame rate acquisitions, by exploiting the inherent flow of MBs and utilize their motion kinematics. We also provide quantitative measurements of MB velocities and show that our approach achieves higher MB recall rate than the state-of-the-art techniques, while increasing contrast agents concentration. Our method relies on simultaneous tracking and sparsity-based detection of individual MBs in a frame-by-frame manner, and as such, may be suitable for real-time implementation. The effectiveness of the proposed approach is demonstrated on both simulations and an in vivo contrast-enhanced human prostate scan, acquired with a clinically approved scanner operating at a 10-Hz frame rate.
机译:超声(US)定位显微镜为组织内深处的血管成像提供了新的无辐射诊断工具。从血流中低浓度的惰性微气泡(MBs)返回的回声的顺序定位显示具有毛细血管分辨率的脉管系统。尽管具有高空间分辨率,但低MB浓度要求在几秒钟到几十秒的时间内采集成千上万张图像,以生成单个超分辨图像。如此长的采集时间和对MB浓度的严格限制在许多临床情况下都是不希望的。为了解决这些限制,最近开发了基于稀疏性的方法。这些方法可显着减少总采集时间,同时在具有大量MB重叠的设置中保持良好的空间分辨率。在这里,我们通过利用MB的固有流并利用它们的运动学特性,从低帧率采集中进一步提高了基于稀疏性的超分辨率US成像的空间分辨率和视觉血管重建质量。我们还提供了MB速度的定量测量结果,并表明我们的方法在提高造影剂浓度的同时,还实现了比最新技术更高的MB召回率。我们的方法依赖于以逐帧方式同时跟踪和基于稀疏性检测单个MB,因此,它可能适用于实时实施。在模拟和体内对比增强的人类前列腺扫描中均证明了所提出方法的有效性,该扫描是通过临床认可的以10 Hz帧频运行的扫描仪进行的。

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