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A GPU-accelerated 3D Coupled Sub-sample Estimation Algorithm for Volumetric Breast Strain Elastography

机译:用于体积乳房应变弹性成像的GPU加速3D耦合子样本估计算法

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摘要

Our primary objective of this work was to extend a previously published 2D coupled sub-sample tracking algorithm for 3D speckle tracking in the framework of ultrasound breast strain elastography. In order to overcome heavy computational cost, we investigated the use of a graphic processing unit (GPU) to accelerate the 3D coupled sub-sample speckle tracking method. The performance of the proposed GPU implementation was tested using a tissue-mimicking (TM) phantom and in vivo breast ultrasound data. The performance of this 3D sub-sample tracking algorithm was compared with the conventional 3D quadratic sub-sample estimation algorithm. On the basis of these evaluations, we concluded that the GPU implementation of this 3D sub-sample estimation algorithm can provide high-quality strain data (i.e. high correlation between the pre- and the motion-compensated post-deformation RF echo data and high contrast-to-noise ratio strain images), as compared to the conventional 3D quadratic sub-sample algorithm. Using the GPU implementation of the 3D speckle tracking algorithm, volumetric strain data can be achieved relatively fast (approximately 20 seconds per volume [2.5 cm × 2.5 cm × 2.5 cm]).
机译:我们这项工作的主要目的是扩展先前发布的2D耦合子样本跟踪算法,以在超声乳房应变弹性成像的框架内进行3D斑点跟踪。为了克服沉重的计算成本,我们研究了使用图形处理单元(GPU)来加速3D耦合子样本斑点跟踪方法的过程。使用组织模仿(TM)体模和体内乳房超声数据测试了提出的GPU实施的性能。将此3D子样本跟踪算法的性能与常规3D二次子样本估计算法进行了比较。根据这些评估,我们得出结论,此3D子样本估计算法的GPU实现可以提供高质量的应变数据(即,变形前后的RF回波数据和运动补偿后的RF回波数据之间的相关性很高,并且对比度高噪声比应变图像),与传统的3D二次子采样算法相比。使用3D斑点跟踪算法的GPU实现,可以相对快速地获得体积应变数据(每体积[2.5 cm×2.5 cm×2.5 cm]大约20秒)。

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