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Image Corruption Detection in Diffusion Tensor Imaging for Post-Processing and Real-Time Monitoring

机译:扩散张量成像中的图像腐败检测用于后处理和实时监控

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摘要

Due to the high sensitivity of diffusion tensor imaging (DTI) to physiological motion, clinical DTI scans often suffer a significant amount of artifacts. Tensor-fitting-based, post-processing outlier rejection is often used to reduce the influence of motion artifacts. Although it is an effective approach, when there are multiple corrupted data, this method may no longer correctly identify and reject the corrupted data. In this paper, we introduce a new criterion called “corrected Inter-Slice Intensity Discontinuity” (cISID) to detect motion-induced artifacts. We compared the performance of algorithms using cISID and other existing methods with regard to artifact detection. The experimental results show that the integration of cISID into fitting-based methods significantly improves the retrospective detection performance at post-processing analysis. The performance of the cISID criterion, if used alone, was inferior to the fitting-based methods, but cISID could effectively identify severely corrupted images with a rapid calculation time. In the second part of this paper, an outlier rejection scheme was implemented on a scanner for real-time monitoring of image quality and reacquisition of the corrupted data. The real-time monitoring, based on cISID and followed by post-processing, fitting-based outlier rejection, could provide a robust environment for routine DTI studies.
机译:由于扩散张量成像(DTI)对生理运动的高度敏感性,临床DTI扫描通常会遭受大量伪像。基于张量拟合的后处理异常值剔除通常用于减少运动伪影的影响。尽管这是一种有效的方法,但是当存在多个损坏的数据时,此方法可能不再正确地标识和拒绝损坏的数据。在本文中,我们引入了一种称为“校正的片间强度不连续性”(cISID)的新标准来检测运动引起的伪像。我们比较了使用cISID和其他现有方法进行伪像检测的算法性能。实验结果表明,将cISID集成到基于拟合的方法中可以显着提高后处理分析的追溯检测性能。如果单独使用cISID标准,其性能不如基于拟合的方法,但是cISID可以快速计算出有效识别严重损坏的图像的能力。在本文的第二部分中,在扫描仪上实施了离群值拒绝方案,以实时监控图像质量并重新获取损坏的数据。基于cISID的实时监控,然后进行后处理,基于拟合的离群值剔除,可以为常规DTI研究提供强大的环境。

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