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Development of a Wireless and Near Real-Time 3D Ultrasound Strain Imaging System

机译:无线和近实时3D超声应变成像系统的开发

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Ultrasound elastography is an important medical imaging tool for characterization of lesions. In this paper, we present a wireless and near real-time 3D ultrasound strain imaging system. It uses a 3D translating device to control a commercial linear ultrasound transducer to collect pre-compression and post-compression radio-frequency (RF) echo signal frames. The RF frames are wirelessly transferred to a high-performance server via a local area network (LAN). A dynamic programming strain estimation algorithm is implemented with the compute unified device architecture (CUDA) on the graphic processing unit (GPU) in the server to calculate the strain image after receiving a pre-compression RF frame and a post-compression RF frame at the same position. Each strain image is inserted into a strain volume which can be rendered in near real-time. We take full advantage of the translating device to precisely control the probe movement and compression. The GPU-based parallel computing techniques are designed to reduce the computation time. Phantom and in vivo experimental results demonstrate that our system can generate strain volumes with good quality and display an incrementally reconstructed volume image in near real-time.
机译:超声弹性成像是表征病变特征的重要医学成像工具。在本文中,我们提出了一种无线和近实时的3D超声应变成像系统。它使用3D转换设备控制商用线性超声换能器,以收集压缩前和压缩后的射频(RF)回波信号帧。 RF帧通过局域网(LAN)无线传输到高性能服务器。在服务器中的图形处理单元(GPU)上使用计算统一设备体系结构(CUDA)实现动态编程应变估计算法,以在接收到压缩前RF帧和压缩后RF帧后计算应变图像。相同的位置。将每个应变图像插入一个应变体积中,该应变体积可以近实时地呈现。我们充分利用平移设备来精确控制探头的移动和压缩。基于GPU的并行计算技术旨在减少计算时间。幻影和体内实验结果表明,我们的系统可以生成高质量的应变体积,并以近实时的方式显示增量重建的体积图像。

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