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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Correspondence - 3-D ultrasonic strain imaging based on a linear scanning system
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Correspondence - 3-D ultrasonic strain imaging based on a linear scanning system

机译:对应-基于线性扫描系统的3-D超声波应变成像

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摘要

This paper introduces a 3-D strain imaging method based on a freehand linear scanning mode. We designed a linear sliding track with a position sensor and a height-adjustable holder to constrain the movement of an ultrasound probe in a freehand manner. When moving the probe along the sliding track, the corresponding positional measures for the probe are transmitted via a wireless communication module based on Bluetooth in real time. In a single examination, the probe is scanned in two sweeps in which the height of the probe is adjusted by the holder to collect the pre- and postcompression radio-frequency echoes, respectively. To generate a 3-D strain image, a volume cubic in which the voxels denote relative strains for tissues is defined according to the range of the two sweeps. With respect to the post-compression frames, several slices in the volume are determined and the pre-compression frames are re-sampled to precisely correspond to the post-compression frames. Thereby, a strain estimation method based on minimizing a cost function using dynamic programming is used to obtain the 2-D strain image for each pair of frames from the re-sampled pre-compression sweep and the post-compression sweep, respectively. A software system is developed for volume reconstruction, visualization, and measurement of the 3-D strain images. The experimental results show that high-quality 3-D strain images of phantom and human tissues can be generated by the proposed method, indicating that the proposed system can be applied for real clinical applications (e.g., musculoskeletal assessments).
机译:本文介绍了一种基于徒手线性扫描模式的3D应变成像方法。我们设计了带有位置传感器和可调节高度的支架的线性滑轨,以徒手方式限制超声探头的运动。当沿着滑道移动探针时,探针的相应位置测量值将通过基于蓝牙的无线通信模块实时传输。在一次检查中,将探头扫描两次,其中探头的高度由支架调整,以分别收集压缩前和压缩后的射频回波。为了生成3D应变图像,根据两次扫描的范围定义了一个立体体,其中体素表示组织的相对应变。关于压缩后帧,确定体积中的几个切片,并且对压缩前帧进行重新采样以精确地对应于压缩后帧。从而,基于使用动态编程使成本函数最小化的应变估计方法被用于分别从重采样前压缩扫描和后压缩扫描获得每对帧的2-D应变图像。开发了用于3D应变图像的体积重建,可视化和测量的软件系统。实验结果表明,通过所提出的方法可以生成高质量的幻影和人体组织的3D应变图像,表明所提出的系统可以应用于实际的临床应用(例如,肌肉骨骼评估)。

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