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Adaptation of a clustered lumpy background model for task-based image quality assessment in x-ray phase-contrast mammography

机译:适用于x射线相衬乳腺摄影中基于任务的图像质量评估的聚集块状背景模型

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摘要

>Purpose: Since the introduction of clinical x-ray phase-contrast mammography (PCM), a technique that exploits refractive-index variations to create edge enhancement at tissue boundaries, a number of optimization studies employing physical image-quality metrics have been performed. Ideally, task-based assessment of PCM would have been conducted with human readers. These studies have been limited, however, in part due to the large parameter-space of PCM system configurations and the difficulty of employing expert readers for large-scale studies. It has been proposed that numerical observers can be used to approximate the statistical performance of human readers, thus enabling the study of task-based performance over a large parameter-space.>Methods: Methods are presented for task-based image quality assessment of PCM images with a numerical observer, the most significant of which is an adapted lumpy background from the conventional mammography literature that accounts for the unique wavefield propagation physics of PCM image formation and will be used with a numerical observer to assess image quality. These methods are demonstrated by performing a PCM task-based image quality study using a numerical observer. This study employs a signal-known-exactly, background-known-statistically Bayesian ideal observer method to assess the detectability of a calcification object in PCM images when the anode spot size and calcification diameter are varied.>Results: The first realistic model for the structured background in PCM images has been introduced. A numerical study demonstrating the use of this background model has compared PCM and conventional mammography detection of calcification objects. The study data confirm the strong PCM calcification detectability dependence on anode spot size. These data can be used to balance the trade-off between enhanced image quality and the potential for motion artifacts that comes with use of a reduced spot size and increased exposure time.>Conclusions: A method has been presented for the incorporation of structured breast background data into task-based numerical observer assessment of PCM images. The method adapts conventional background simulation techniques to the wavefield propagation physics necessary for PCM imaging. This method is demonstrated with a simple detection task.
机译:>目的:自从引入临床X射线相衬乳房X线照相术(PCM)以来,该技术利用折射率变化在组织边界处产生边缘增强作用,因此许多采用物理图像的优化研究质量指标已执行。理想情况下,将由人类读者对PCM进行基于任务的评估。但是,这些研究受到了限制,部分原因是PCM系统配置的参数空间很大,并且难以聘请专业读者进行大规模研究。有人提出可以使用数值观察器来近似人类读者的统计性能,从而能够研究在较大参数空间上基于任务的性能。>方法:数值观察器对PCM图像进行基于图像的质量评估,其中最重要的是来自传统乳腺摄影文献的经过修改的块状背景,这说明了PCM图像形成的独特波场传播物理学,并将与数值观察器一起使用来评估图像质量。通过使用数字观察器执行基于PCM任务的图像质量研究,证明了这些方法。这项研究采用了信号准确,背景已知,统计上的贝叶斯理想观察者方法来评估当阳极斑点大小和钙化直径变化时,PCM图像中钙化物体的可检测性。>结果:引入了用于PCM图像中结构化背景的第一个现实模型。一项证明使用此背景模型的数值研究已经比较了PCM和常规乳腺X线摄影对钙化对象的检测。研究数据证实了较强的PCM钙化可检测性与阳极斑点大小有关。这些数据可用于在提高图像质量和使用减小的光斑大小和增加曝光时间而带来的运动伪影之间进行权衡。>结论:已经提出了一种方法将结构化的乳房背景数据合并到基于任务的PCM图像数字观察器评估中。该方法使传统的背景模拟技术适应PCM成像所需的波场传播物理学。通过简单的检测任务演示了此方法。

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