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Estimation of the dynamic volume of each lung via rapid limited-slice dynamic MRI

机译:通过快速限制切片动态MRI估计每个肺的动态体积

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Dynamic lung volumetric parameters are useful for clinical assessment of many thoracic disorders, given that respiration is a dynamic process. Estimation of such parameters based on imaging and analysis is an important goal to achieve if implementation in routine clinical practice is to become a reality. Compared to CT, dynamic thoracic MRI has several advantages including better soft tissue contrast, lack of ionizing radiation, and flexibility in selecting scanning planes. 4D dynamic MRI seems to be the best choice for some clinical applications, notwithstanding the major limitation of a long image acquisition time (~45 minutes). Therefore, approaches to acquire images and estimate volumetric parameters rapidly is highly desirable in dynamic MRI-based clinical applications. In this paper, we present a technique for estimating lung volumetric parameters from limited-slices dynamic thoracic MRI, greatly reducing the number of slices to be scanned and therefore also the time required for image acquisition. We demonstrate a relative RMS error of predicted lung volumes of less than 5% by utilizing only 5 sagittal MRI slices through each lung compared to the current full scan involving about 20 slices per lung. As such, this approach can lead to time-saving during scan acquisition and therefore increased patient comfort and convenience for practical real-world clinical applications. This may potentially also improve image quality and usability due to the reduction of patient motion, abnormal breathing patterns, etc. ensuing from improved patient comfort and scan duration.
机译:鉴于呼吸是一种动态过程,动态肺容量参数可用于许多胸疾病的临床评估。基于成像和分析的这些参数的估计是实现在常规临床实践中的实施是成为现实的重要目标。与CT相比,动态胸段MRI具有多种优点,包括更好的软组织对比,缺乏电离辐射,以及选择扫描平面的灵活性。 4D动态MRI似乎是某些临床应用的最佳选择,尽管存在长图像采集时间(〜45分钟)的主要限制。因此,在基于动态MRI的临床应用中,非常需要获取图像和估计体积参数的方法。在本文中,我们介绍了一种从有限切片动态胸段MRI估计肺容量参数的技术,大大减少了扫描的切片数,因此也是图像采集所需的时间。我们通过每肺通过每个肺部使用仅使用5个矢状MRI切片,涉及涉及每次肺部约20片的当前的全扫描,展示预测肺量的相对rms误差。因此,这种方法可能导致扫描采集期间节省时间,因此对实际的现实世界临床应用增加了患者的舒适性和便利性。由于患者运动,异常呼吸图案等降低,这可能还可以提高图像质量和可用性。随着改善的患者的舒适和扫描持续时间而导致的患者运动,异常呼吸模式等。

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