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Accelerating image reconstruction in three-dimensional optoacoustic tomography on graphics processing units

机译:图形处理单元上三维光声断层扫描中的图像重建

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Purpose: Optoacoustic tomography (OAT) is inherently a three-dimensional (3D) inverse problem. However, most studies of OAT image reconstruction still employ two-dimensional imaging models. One important reason is because 3D image reconstruction is computationally burdensome. The aim of this work is to accelerate existing image reconstruction algorithms for 3D OAT by use of parallel programming techniques. Methods: Parallelization strategies are proposed to accelerate a filtered backprojection (FBP) algorithm and two different pairs of projection/backprojection operations that correspond to two different numerical imaging models. The algorithms are designed to fully exploit the parallel computing power of graphics processing units (GPUs). In order to evaluate the parallelization strategies for the projection/backprojection pairs, an iterative image reconstruction algorithm is implemented. Computer simulation and experimental studies are conducted to investigate the computational efficiency and numerical accuracy of the developed algorithms. Results: The GPU implementations improve the computational efficiency by factors of 1000, 125, and 250 for the FBP algorithm and the two pairs of projection/backprojection operators, respectively. Accurate images are reconstructed by use of the FBP and iterative image reconstruction algorithms from both computer-simulated and experimental data. Conclusions: Parallelization strategies for 3D OAT image reconstruction are proposed for the first time. These GPU-based implementations significantly reduce the computational time for 3D image reconstruction, complementing our earlier work on 3D OAT iterative image reconstruction. ? 2013 American Association of Physicists in Medicine.
机译:目的:光声断层扫描(OAT)固有地是一个三维(3D)逆问题。然而,大多数关于燕麦图像重建的研究仍然采用二维成像模型。一个重要原因是因为3D图像重建是计算的繁重。这项工作的目的是通过使用并行编程技术来加速3D燕麦的现有图像重建算法。方法:提出了并行化策略,以加速滤波后反射(FBP)算法和两对不同对应于两个不同数值成像模型的投影/反投影操作。该算法旨在充分利用图形处理单元(GPU)的并行计算能力。为了评估投影/反向分析对的并行化策略,实现了一种迭代图像重建算法。进行计算机仿真和实验研究,以研究开发算法的计算效率和数值准确性。结果:GPU实现以5000,125和250的因素为FBP算法和两对投影/反调运算符提高计算效率。通过使用来自计算机模拟和实验数据的FBP和迭代图像重建算法来重建精确的图像。结论:第一次提出了3D燕麦图像重建的并行化策略。基于GPU的实现显着降低了3D图像重建的计算时间,补充了我们在3D OAT迭代图像重建的早期工作。还是2013年美国物理学家的医学协会。

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