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New Motion Correction Models for Automatic Identification of Renal Transplant Rejection

机译:用于自动识别肾移植排斥反应的新运动校正模型

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摘要

Acute rejection is the most common reason of graft failure after kidney transplantation and early detection is crucial to survive the transplanted kidney function. In this paper, we introduce a new approach for the automatic classification of normal and acute rejection transplants from Dynamic Contrast Enhanced Magnetic Resonance Imaging (DCE-MRI). The proposed algorithm consists of three main steps; the first step isolates the kidney from the surrounding anatomical structures. In the second step, new motion correction models are employed to account for both the global and local motion of the kidney due to patient moving and breathing. Finally, the perfusion curves that show the transportation of the contrast agent into the tissue are obtained from the kidney and used in the classification of normal and acute rejection transplants. In this paper, we will focus on the second and third steps and the first step is shown in detail in [1].
机译:急性排斥反应是肾脏移植后移植失败的最常见原因,早期发现对于存活移植肾功能至关重要。在本文中,我们介绍了一种通过动态对比增强磁共振成像(DCE-MRI)对正常和急性排斥反应移植物进行自动分类的新方法。所提出的算法包括三个主要步骤:第一步是将肾脏与周围的解剖结构隔离。第二步,采用新的运动校正模型来说明由于患者移动和呼吸而导致的肾脏整体运动和局部运动。最后,从肾脏获得显示造影剂向组织内运输的灌注曲线,并将其用于正常和急性排斥移植的分类。在本文中,我们将专注于第二步和第三步,第一步在[1]中有详细说明。

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