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利用 GPU 加速三维光声断层成像技术对人体周围血管进行容积实时追踪。

Volumetric real-time tracking of peripheral human vasculature with GPU-accelerated three-dimensional optoacoustic tomography.

出版信息

IEEE Trans Med Imaging. 2013 Nov;32(11):2050-5. doi: 10.1109/TMI.2013.2272079. Epub 2013 Jul 3.

Abstract

Optoacoustic tomography provides a unique possibility for ultra-high-speed 3-D imaging by acquiring complete volumetric datasets from interrogation of tissue by a single nanosecond-duration laser pulse. Yet, similarly to ultrasound, optoacoustics is a time-resolved imaging method, thus, fast 3-D imaging implies real-time acquisition and processing of high speed data from hundreds of detectors simultaneously, which presents significant technological challenges. Herein we present a highly efficient graphical processing unit (GPU) framework for real-time reconstruction and visualization of 3-D tomographic optoacoustic data. By utilizing a newly developed 3-D optoacoustic scanner, which simultaneously acquires signals with a handheld 256-element spherical ultrasonic array system, we further demonstrate tracking of deep tissue human vasculature rendered at a rate of 10 volumetric frames per second. The flexibility provided by the handheld hardware design, combined with the real-time operation, makes the developed platform highly usable for both clinical imaging practice and small animal research applications.

摘要

光声断层扫描技术通过单次纳秒激光脉冲激发组织获取完整的容积数据集,为超高速度的 3D 成像提供了独特的可能性。然而,与超声类似,光声成像是一种时间分辨成像方法,因此,快速 3D 成像意味着需要实时采集和处理来自数百个探测器的高速数据,这带来了重大的技术挑战。在此,我们提出了一种用于实时重建和可视化 3D 断层光声数据的高效图形处理单元 (GPU) 框架。通过利用新开发的 3D 光声扫描仪,该扫描仪同时使用手持式 256 元件球形超声阵列系统获取信号,我们进一步演示了以每秒 10 个容积帧的速度对深部组织人血管进行跟踪。该硬件设计的灵活性与实时操作相结合,使得开发的平台非常适用于临床成像实践和小动物研究应用。

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