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首页> 外文期刊>Physics in medicine and biology. >DQS advisor: A visual interface and knowledge-based system to balance dose, quality, and reconstruction speed in iterative CT reconstruction with application to NLM-regularization
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DQS advisor: A visual interface and knowledge-based system to balance dose, quality, and reconstruction speed in iterative CT reconstruction with application to NLM-regularization

机译:DQS顾问:一个可视界面和基于知识的系统,可在迭代CT重建中平衡剂量,质量和重建速度,并将其应用于NLM正则化

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Motivated by growing concerns with regards to the x-ray dose delivered to the patient, low-dose computed tomography (CT) has gained substantial interest in recent years. However, achieving high-quality CT reconstructions from the limited projection data collected at reduced x-ray radiation is challenging, and iterative algorithms have been shown to perform much better than conventional analytical schemes in these cases. A problem with iterative methods in general is that they require users to set many parameters, and if set incorrectly high reconstruction time and/or low image quality are likely consequences. Since the interactions among parameters can be complex and thus effective settings can be difficult to identify for a given scanning scenario, these choices are often left to a highly-experienced human expert. To help alleviate this problem, we devise a computer-based assistant for this purpose, called dose, quality and speed (DQS)-advisor. It allows users to balance the three most important CT metrics - DQS - by ways of an intuitive visual interface. Using a known gold-standard, the system uses the ant-colony optimization algorithm to generate the most effective parameter settings for a comprehensive set of DQS configurations. A visual interface then presents the numerical outcome of this optimization, while a matrix display allows users to compare the corresponding images. The interface allows users to intuitively trade-off GPU-enabled reconstruction speed with quality and dose, while the system picks the associated parameter settings automatically. Further, once the knowledge has been generated, it can be used to correctly set the parameters for any new CT scan taken at similar scenarios.
机译:由于对输送给患者的X射线剂量越来越关注,因此低剂量计算机断层扫描(CT)近年来引起了广泛关注。但是,从减少的X射线辐射收集的有限投影数据中获得高质量的CT重建具有挑战性,并且在这些情况下,迭代算法的性能比常规分析方案好得多。通常,迭代方法的问题在于,它们需要用户设置许多参数,如果设置不正确,可能会导致重建时间长和/或图像质量低。由于参数之间的相互作用可能很复杂,因此对于给定的扫描方案可能很难识别有效的设置,因此这些选择通常留给经验丰富的人类专家。为帮助减轻此问题,我们为此目的设计了一个基于计算机的助手,称为剂量,质量和速度(DQS)顾问。它允许用户通过直观的视觉界面来平衡三个最重要的CT指标DQS。该系统使用已知的黄金标准,使用蚁群优化算法为一组全面的DQS配置生成最有效的参数设置。然后,可视界面显示了此优化的数值结果,而矩阵显示则允许用户比较相应的图像。该界面允许用户直观地权衡质量和剂量支持GPU的重建速度,而系统会自动选择相关的参数设置。此外,一旦生成了知识,就可以将其用于为在类似情况下进行的任何新CT扫描正确设置参数。

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