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Iterative Reconstruction for X-Ray Computed Tomography using Prior-Image Induced Nonlocal Regularization

机译:X射线计算机断层扫描的迭代重建使用先验图像诱导的非局部正则化

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摘要

Repeated x-ray computed tomography (CT) scans are often required in several specific applications such as perfusion imaging, image-guided biopsy needle, image-guided intervention, and radiotherapy with noticeable benefits. However, the associated cumulative radiation dose significantly increases as comparison with that used in the conventional CT scan, which has raised major concerns in patients. In this study, to realize radiation dose reduction by reducing the x-ray tube current and exposure time (mAs) in repeated CT scans, we propose a prior-image induced nonlocal (PINL) regularization for statistical iterative reconstruction via the penalized weighted least-squares (PWLS) criteria, which we refer to as “PWLS-PINL”. Specifically, the PINL regularization utilizes the redundant information in the prior image and the weighted least-squares term considers a data-dependent variance estimation, aiming to improve current low-dose image quality. Subsequently, a modified iterative successive over-relaxation algorithm is adopted to optimize the associative objective function. Experimental results on both phantom and patient data show that the present PWLS-PINL method can achieve promising gains over the other existing methods in terms of the noise reduction, low-contrast object detection and edge detail preservation.
机译:在一些特定的应用中,例如灌注成像,图像引导的活检针,图像引导的干预以及放射治疗,在明显的益处中通常需要重复的X射线计算机断层扫描(CT)扫描。但是,与常规CT扫描相比,相关的累积辐射剂量显着增加,这引起了患者的极大关注。在这项研究中,为了通过减少重复CT扫描中的X射线管电流和曝光时间(mAs)来实现辐射剂量的减少,我们提出了先验图像诱导的非局部(PINL)正则化,用于通过加权加权最小二乘法进行统计迭代重建平方(PWLS)标准,我们称为“ PWLS-PINL”。具体而言,PINL正则化利用先前图像中的冗余信息,而加权最小二乘项考虑了与数据有关的方差估计,旨在提高当前的低剂量图像质量。随后,采用改进的迭代连续过松弛算法来优化关联目标函数。在幻像和患者数据上的实验结果表明,在降噪,低对比度目标检测和边缘细节保留方面,当前的PWLS-PINL方法可以比其他现有方法获得有希望的收益。

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