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Accelerated Reconstruction for Identifying Image Regions Affected by Rigid Body Movement

机译:识别受刚体运动影响的图像区域的加速重建

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A bootstrap method for identifying image regions affected by rigid body movement has recently been proposed. The aim of the present investigation was to significantly decrease the computational requirements of this method, allowing it to be feasibly implemented on a clinical system. We devised a new method that utilizes tomographic reconstruction with coarser sampling. We hypothesized that we could then recover the spatial distribution of the variance by adopting a method inspired by super-resolution. This method ensured clear identification of regions corrupted by motion. We performed comparisons between the conventional bootstrap method and our accelerated method. We found that we could produce a similar coefficient of variation (CV) image and that variance due to motion was much larger than aliasing effects arising from the coarser sampling . Our implementation took advantage of the multicore architecture of a 16 core workstation (4 x Intel Xenon E5620). We demonstrated a 14 times reduction in the required computational resources. The total duration for processing took less than a typical scan time, thus we foresee that this method could be implemented in real time.
机译:最近提出了一种用于识别受刚体运动影响的图像区域的引导方法。目前调查的目的是显着降低该方法的计算要求,使其在临床系统上可公开实施。我们设计了一种新方法,利用断层切断重建与粗糙采样。我们假设我们可以通过采用由超分辨率启发的方法来恢复方差的空间分布。该方法确保了通过运动破坏的区域清楚地识别。我们在传统的引导方法和加速方法之间进行了比较。我们发现我们可以产生类似的变化系数(CV)图像,并且由于运动的运动引起的方差远大于粗糙采样产生的抗锯齿效应。我们的实现利用了16个核心工作站的多核体系结构(4 x Intel Xenon E5620)。我们展示了所需的计算资源减少14倍。处理的总持续时间花费少于典型的扫描时间,因此我们预见到该方法可以实时实现。

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