Our primary objective of this paper was to extend a previously published 2-D coupled subsample tracking algorithm for 3-D 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 3-D coupled subsample speckle tracking method. The performance of the proposed GPU implementation was tested using a tissue-mimicking phantom and in vivo breast ultrasound data. The performance of this 3-D subsample tracking algorithm was compared with the conventional 3-D quadratic subsample estimation algorithm. On the basis of these evaluations, we concluded that the GPU implementation of this 3-D subsample estimation algorithm can provide high-quality strain data (i.e., high correlation between the predeformation and the motion-compensated postdeformation radio frequency echo data and high contrast-to-noise ratio strain images), as compared with the conventional 3-D quadratic subsample algorithm. Using the GPU implementation of the 3-D speckle tracking algorithm, volumetric strain data can be achieved relatively fast (approximately 20 s per volume [2.5 cm Ã2.5 cm Ã2.5 cm]).
A GPU-Accelerated 3-D Coupled Subsample Estimation Algorithm for Volumetric Breast Strain Elastography.
一种用于体积乳腺应变弹性成像的GPU加速3D耦合子样本估计算法
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作者:Peng Bo, Wang Yuqi, Hall Timothy J, Jiang Jingfeng
| 期刊: | IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control | 影响因子: | 3.700 |
| 时间: | 2017 | 起止号: | 2017 Apr;64(4):694-705 |
| doi: | 10.1109/TUFFC.2017.2661821 | ||
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