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High Performance GPU-Based Fourier Volume Rendering

机译:基于高性能GPU的傅立叶体绘制

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摘要

Fourier volume rendering (FVR) is a significant visualization technique that has been used widely in digital radiography. As a result of its 𝒪(N 2log⁡N) time complexity, it provides a faster alternative to spatial domain volume rendering algorithms that are 𝒪(N 3) computationally complex. Relying on the Fourier projection-slice theorem, this technique operates on the spectral representation of a 3D volume instead of processing its spatial representation to generate attenuation-only projections that look like X-ray radiographs. Due to the rapid evolution of its underlying architecture, the graphics processing unit (GPU) became an attractive competent platform that can deliver giant computational raw power compared to the central processing unit (CPU) on a per-dollar-basis. The introduction of the compute unified device architecture (CUDA) technology enables embarrassingly-parallel algorithms to run efficiently on CUDA-capable GPU architectures. In this work, a high performance GPU-accelerated implementation of the FVR pipeline on CUDA-enabled GPUs is presented. This proposed implementation can achieve a speed-up of 117x compared to a single-threaded hybrid implementation that uses the CPU and GPU together by taking advantage of executing the rendering pipeline entirely on recent GPU architectures.
机译:傅立叶体绘制(FVR)是一项重要的可视化技术,已广泛用于数字X射线照相术中。由于其&#x1d4aa;(N 2 log⁡N)时间的复杂性,它为&#x1d4aa;(N 3 < / sup>)。依靠傅立叶投影切片定理,此技术对3D体积的光谱表示进行操作,而不是对其空间表示进行处理以生成看起来像X射线射线照片的仅衰减投影。由于其基础架构的快速发展,与基于美元的中央处理器(CPU)相比,图形处理器(GPU)成为了一个引人入胜的出色平台,可以提供巨大的计算原始能力。计算统一设备架构(CUDA)技术的引入使令人尴尬的并行算法能够在支持CUDA的GPU架构上高效运行。在这项工作中,提出了在支持CUDA的GPU上FVR管道的高性能GPU加速实现。与同时使用CPU和GPU的单线程混合实现相比,该提议的实现可以实现117倍的加速,这是通过充分利用最新GPU架构上的渲染管线来实现的。

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