An Effective CUDA Parallelization of Projection in Iterative Tomography Reconstruction

نویسندگان

  • Lizhe Xie
  • Yining Hu
  • Bin Yan
  • Lin Wang
  • Benqiang Yang
  • Wenyuan Liu
  • Libo Zhang
  • Limin Luo
  • Huazhong Shu
  • Yang Chen
  • Qinghui Zhang
چکیده

Projection and back-projection are the most computationally intensive parts in Computed Tomography (CT) reconstruction, and are essential to acceleration of CT reconstruction algorithms. Compared to back-projection, parallelization efficiency in projection is highly limited by racing condition and thread unsynchronization. In this paper, a strategy of Fixed Sampling Number Projection (FSNP) is proposed to ensure the operation synchronization in the ray-driven projection with Graphical Processing Unit (GPU). Texture fetching is also used utilized to further accelerate the interpolations in both projection and back-projection. We validate the performance of this FSNP approach using both simulated and real cone-beam CT data. Experimental results show that compare to the conventional approach, the proposed FSNP method together with texture fetching is 10~16 times faster than the conventional approach based on global memory, and thus leads to more efficient iterative algorithm in CT reconstruction.

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عنوان ژورنال:

دوره 10  شماره 

صفحات  -

تاریخ انتشار 2015