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A virtual clinical trial using projection-based nodule insertion to determine radiologist reader performance in lung cancer screening CT

机译:使用基于投影的结节插入来确定放射科医生阅读器在肺癌筛查CT中的表现的虚拟临床试验

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Task-based image quality assessment using model observers is promising to provide an efficient, quantitative, and objective approach to CT dose optimization. Before this approach can be reliably used in practice, its correlation with radiologist performance for the same clinical task needs to be established. Determining human observer performance for a well-defined clinical task, however, has always been a challenge due to the tremendous amount of efforts needed to collect a large number of positive cases. To overcome this challenge, we developed an accurate projection-based insertion technique. In this study, we present a virtual clinical trial using this tool and a low-dose simulation tool to determine radiologist performance on lung-nodule detection as a function of radiation dose, nodule type, nodule size, and reconstruction methods. The lesion insertion and low-dose simulation tools together were demonstrated to provide flexibility to generate realistically-appearing clinical cases under well-defined conditions. The reader performance data obtained in this virtual clinical trial can be used as the basis to develop model observers for lung nodule detection, as well as for dose and protocol optimization in lung cancer screening CT.
机译:使用模型观察者的基于任务的图像质量评估有望为CT剂量优化提供一种有效,定量和客观的方法。在此方法可以可靠地实际应用之前,需要确定其与放射科医生针对同一临床任务的表现之间的相关性。然而,由于需要收集大量阳性病例的大量工作,因此要确定人类观察者完成明确的临床任务的表现一直是一个挑战。为了克服这一挑战,我们开发了一种基于投影的精确插入技术。在这项研究中,我们提出了使用此工具和低剂量模拟工具进行的虚拟临床试验,以确定放射线医师在肺结节检测中的表现与辐射剂量,结节类型,结节大小和重建方法的关系。病灶插入和低剂量模拟工具一起被证明可以在确定的条件下灵活地产生逼真的临床病例。在该虚拟临床试验中获得的阅读器性能数据可以用作开发模型观察者以进行肺结节检测以及肺癌筛查CT剂量和方案优化的基础。

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