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Embarrassingly Parallel Acceleration of Global Tractography via Dynamic Domain Partitioning

机译:通过动态域划分以令人尴尬的方式并行进行全球笔迹学加速

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摘要

Global tractography estimates brain connectivity by organizing signal-generating fiber segments in an optimal configuration that best describes the measured diffusion-weighted data, promising better stability than local greedy methods with respect to imaging noise. However, global tractography is computationally very demanding and requires computation times that are often prohibitive for clinical applications. We present here a reformulation of the global tractography algorithm for fast parallel implementation amendable to acceleration using multi-core CPUs and general-purpose GPUs. Our method is motivated by the key observation that each fiber segment is affected by a limited spatial neighborhood. In other words, a fiber segment is influenced only by the fiber segments that are (or can potentially be) connected to its two ends and also by the diffusion-weighted signal in its proximity. This observation makes it possible to parallelize the Markov chain Monte Carlo (MCMC) algorithm used in the global tractography algorithm so that concurrent updating of independent fiber segments can be carried out. Experiments show that the proposed algorithm can significantly speed up global tractography, while at the same time maintain or even improve tractography performance.
机译:全局束线描记法通过以最佳配置来组织产生信号的纤维段来最佳地描述大脑的连通性,这种最优配置可以最好地描述所测得的扩散加权数据,就成像噪声而言,比局部贪婪方法具有更好的稳定性。但是,全局束线照相术在计算上要求很高,并且需要的计算时间通常对于临床应用是禁止的。我们在这里提出了用于快速并行实现的全局束线描记术算法的重新表述,可修正为使用多核CPU和通用GPU进行加速。我们的方法是受到关键观察的启发,即每个光纤段都受到有限空间邻域的影响。换句话说,光纤段仅受到(或潜在地)连接到其两端的光纤段的影响,并且还受到其附近的扩散加权信号的影响。该观察使得可以并行化在全局射线照相术算法中使用的马尔可夫链蒙特卡罗(MCMC)算法,从而可以执行独立光纤段的同时更新。实验表明,提出的算法可以显着加快整体超声检查的速度,同时可以保持甚至改善超声检查的性能。

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