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A preliminary study of image reconstruction from low-dose data in dedicated breast CT

机译:专用乳腺CT低剂量数据图像重建的初步研究

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Interest exists in developing tomosynthesis machines and dedicated CT scanners for providing 3D images of breasts. Prototypes of dedicated breast CT scanners have been built and are under evaluation. In these scanners, analytic algorithms such as FDK are currently used for image reconstruction, which generally require data collected at a large number of views over a circular-scanning configuration. Imaging dose to patients is an important concern in breast CT. The current breast CT is designed to deliver about the same total imaging dose as that of a typical two-view mammography exam. This limited total exposure is distributed over a large number of views, thus resulting low-SNR data and noisy images. As breast-tissue contrast is relatively low, high noise level in images can render the tissue-contrast-based diagnosis difficult. Results from both academia and industry in developing iterative algorithms for image reconstruction from diagnostic CT data seem to indicate that they may yield images of higher quality than FDK from low-SNR data. In this work, we have investigated optimization-based iterative algorithms for image reconstruction from low-SNR data in breast CT. We have acquired both physical phantom and patient data for evaluating the utility of breast CT scanner. We formulated the reconstruction problem as a constrained minimization of the image total variation (TV), and used algorithms based upon the ASD-POCS scheme to solve the optimization problem. Using the algorithms developed, we reconstructed images from the phantom and patient data. Because the FDK algorithm is currently used clinically for image reconstruction in breast CT, images reconstructed with the proposed algorithms are compared with those obtained with the FDK algorithm. Results of these studies suggest that optimization-based algorithms may potentially improve image quality over the FDK algorithm for low-SNR breast-CT data.
机译:人们对开发断层合成机和专用的CT扫描仪以提供乳房的3D图像感兴趣。专用乳房CT扫描仪的原型已经建立并正在评估中。在这些扫描仪中,诸如FDK之类的解析算法目前用于图像重建,该算法通常需要通过循环扫描配置以大量视图收集数据。对患者的影像剂量是乳房CT的重要考虑因素。当前的乳腺CT设计为可提供与典型的两次X线乳房摄影术检查相同的总成像剂量。这种有限的总曝光量分布在大量视图上,因此产生了低SNR数据和嘈杂的图像。由于乳房组织的对比度相对较低,因此图像中的高噪声水平可能使基于组织对比度的诊断变得困难。学术界和工业界都在开发用于从诊断CT数据重建图像的迭代算法的结果似乎表明,从低SNR数据中,它们可能比FDK产生更高质量的图像。在这项工作中,我们研究了基于优化的迭代算法,用于从乳腺CT中的低SNR数据重建图像。我们已经获取了体模和患者数据,以评估乳腺CT扫描仪的实用性。我们将重建问题表述为图像总变化(TV)的约束最小化,并使用基于ASD-POCS方案的算法来解决优化问题。使用开发的算法,我们从幻像和患者数据中重建了图像。由于FDK算法目前在临床上用于乳腺CT图像重建,因此将使用本文提出的算法重建的图像与使用FDK算法获得的图像进行比较。这些研究结果表明,针对低SNR乳腺CT数据的基于FDK算法的优化算法可能会改善图像质量。

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