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High-Speed GPU-Based Fully Three-Dimensional Diffuse Optical Tomographic System

机译:基于高速GPU的全三维漫射光学层析成像系统

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摘要

We have developed a graphics processor unit (GPU-) based high-speed fully 3D system for diffuse optical tomography (DOT). The reduction in execution time of 3D DOT algorithm, a severely ill-posed problem, is made possible through the use of (1) an algorithmic improvement that uses Broyden approach for updating the Jacobian matrix and thereby updating the parameter matrix and (2) the multinode multithreaded GPU and CUDA (Compute Unified Device Architecture) software architecture. Two different GPU implementations of DOT programs are developed in this study: (1) conventional C language program augmented by GPU CUDA and CULA routines (C GPU), (2) MATLAB program supported by MATLAB parallel computing toolkit for GPU (MATLAB GPU). The computation time of the algorithm on host CPU and the GPU system is presented for C and Matlab implementations. The forward computation uses finite element method (FEM) and the problem domain is discretized into 14610, 30823, and 66514 tetrahedralelements.The reconstruction time, so achieved for one iteration of the DOTreconstruction for 14610 elements, is0.52 seconds for a C based GPU program for 2-plane measurements. The corresponding MATLAB based GPU program took 0.86 seconds. The maximum number ofreconstructed frames so achieved is2 frames per second.
机译:我们已经开发了基于图形处理器单元(GPU-)的高速全3D系统,用于漫射光学层析成像(DOT)。通过使用(1)使用Broyden方法更新Jacobian矩阵并由此更新参数矩阵的算法改进,可以减少3D DOT算法(严重不适的问题)的执行时间。多节点多线程GPU和CUDA(计算统一设备架构)软件架构。在本研究中,开发了两种不同的DOT程序GPU实现:(1)由GPU CUDA和CULA例程(C GPU)增强的常规C语言程序;(2)由GPU的MATLAB并行计算工具套件(MATLAB GPU)支持的MATLAB程序。针对C和Matlab实现,介绍了在主机CPU和GPU系统上算法的计算时间。正向计算使用有限元方法(FEM),并且问题域离散为14610、30823和66514四面体元素。重建时间,因此实现了DOT的一次迭代对14610元素的重建是基于C的GPU程序进行2平面测量需要0.52秒。相应的基于MATLAB的GPU程序耗时0.86秒。最大数量这样获得的重建帧是每秒2帧。

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