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使用修正的并行重采样实现可变形体数据集的高效海量计算。

Efficient Massive Computing for Deformable Volume Data Using Revised Parallel Resampling.

机构信息

Division of Computer Engineering, Hansung University, Seoul 02876, Korea.

出版信息

Sensors (Basel). 2022 Aug 20;22(16):6276. doi: 10.3390/s22166276.

Abstract

In this paper, we propose an improved parallel resampling technique. Parallel resampling is a deformable object generation method based on volume data applied to medical simulations. Existing parallel resampling is not suitable for massive computing, because the number of samplings is high and floating-point precision problems may occur. This study addresses these problems to obtain improved user latency when performing medical simulations. Specifically, instead of interpolating values after volume sampling, the efficiency is improved by performing volume sampling after coordinate interpolation. Next, the floating-point error in the calculation of the sampling position is described, and the advantage of barycentric interpolation using a reference point is discussed. The experimental results showed a significant improvement over the existing method. Volume data comprising more than 600 images used in clinical practice were deformed and rendered at interactive speed. In an Internet of Everything environment, medical imaging systems are an important application, and simulation image generation is also valuable in the overall system. Through the proposed method, the performance of the whole system can be improved.

摘要

在本文中,我们提出了一种改进的并行重采样技术。并行重采样是一种基于体数据的可变形物体生成方法,应用于医学模拟。现有的并行重采样不适合大规模计算,因为采样数量高,可能会出现浮点数精度问题。本研究解决了这些问题,以在进行医学模拟时获得改进的用户延迟。具体来说,不是在体积采样后进行插值,而是通过在坐标插值后进行体积采样来提高效率。接下来,描述了采样位置计算中的浮点数误差,并讨论了使用参考点的重心插值的优势。实验结果表明,与现有方法相比有显著的改进。对临床实践中使用的超过 600 张图像的体积数据进行了变形和交互式渲染。在万物互联的环境中,医学成像系统是一个重要的应用,而模拟图像生成在整个系统中也很有价值。通过所提出的方法,可以提高整个系统的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4bd/9413836/d7be7a7fbca7/sensors-22-06276-g001.jpg

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