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Interactive segmentation of white-matter fibers using a multi-subject atlas

机译:使用多主题图集对白质纤维进行交互式分割

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We present a fast algorithm for automatic segmentation of white matter fibers from tractography datasets based on a multi-subject bundle atlas. We describe a sequential version of the algorithm that runs on a desktop computer CPU, as well as a highly parallel version that uses a Graphics Processing Unit (GPU) as an accelerator. Our sequential implementation runs 270 times faster than a C++/Python implementation of a previous algorithm based on the same segmentation method, and 21 times faster than a highly optimized C version of the same previous algorithm. Our parallelized implementation exploits the multiple computation units and memory hierarchy of the GPU to further speed up the algorithm by a factor of 30 with respect to our sequential code. As a result, the time to segment a subject dataset of 800,000 fibers is reduced from more than 2.5 hours in the Python/C++ code, to less than one second in the GPU version.
机译:我们提出了一种基于多对象束图集的从物镜数据集中自动分割白质纤维的快速算法。我们描述了在台式计算机CPU上运行的算法的顺序版本,以及使用图形处理单元(GPU)作为加速器的高度并行版本。我们的顺序实现比基于相同分割方法的先前算法的C ++ / Python实现快270倍,比高度优化的相同先前算法的C版本快21倍。我们的并行实现利用GPU的多个计算单元和内存层次结构,以相对于我们的顺序代码进一步将算法加快了30倍。结果,分割80万根光纤的主题数据集的时间从Python / C ++代码中的2.5个小时以上减少到GPU版本中的不到1秒钟。

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