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首页> 外文期刊>International journal of biomedical imaging >On the Usage of GPUs for Efficient Motion Estimation in Medical Image Sequences
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On the Usage of GPUs for Efficient Motion Estimation in Medical Image Sequences

机译:关于GPU在医学图像序列中进行有效运动估计的用途

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摘要

Images are ubiquitous in biomedical applications from basic research to clinical practice. With the rapid increase in resolution, dimensionality of the images and the need for real-time performance in many applications, computational requirements demand proper exploitation of multicore architectures. Towards this, GPU-specific implementations of image analysis algorithms are particularly promising. In this paper, we investigate the mapping of an enhanced motion estimation algorithm to novel GPU-specific architectures, the resulting challenges and benefits therein. Using a database of three-dimensional image sequences, we show that the mapping leads to substantial performance gains, up to a factor of 60, and can provide near-real-time experience. We also show how architectural peculiarities of these devices can be best exploited in the benefit of algorithms, most specifically for addressing the challenges related to their access patterns and different memory configurations. Finally, we evaluate the performance of the algorithm on three different GPU architectures and perform a comprehensive analysis of the results.
机译:从基础研究到临床实践,图像在生物医学应用中无处不在。随着分辨率,图像尺寸的快速提高以及在许多应用中对实时性能的需求,计算需求要求对多核体系结构进行适当的利用。为此,GPU特定的图像分析算法实现特别有前途。在本文中,我们研究了一种增强的运动估计算法到新颖的GPU特定体系结构的映射,以及由此带来的挑战和收益。使用三维图像序列的数据库,我们显示出映射可以带来可观的性能提升(高达60倍),并且可以提供近乎实时的体验。我们还展示了如何利用算法来最好地利用这些设备的体系结构特性,尤其是解决与它们的访问模式和不同内存配置有关的挑战。最后,我们评估该算法在三种不同GPU架构上的性能,并对结果进行全面分析。

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