论文标题

3D医学图像中的视觉搜索模型观察者

Foveated Model Observers for Visual Search in 3D Medical Images

论文作者

Lago, Miguel A., Abbey, Craig K., Eckstein, Miguel P.

论文摘要

模型观察者在预测与临床相关的检测任务中预测人类观察者表现方面有着悠久的历史。新的3D图像模式提供了更多信号信息,但大大增加了要仔细检查的搜索空间。在这里,我们将标准的线性模型观察者(理想观察者,与眼过滤器的非备用匹配的过滤器和各种版本的通道式酒店模型)与3d 1/f $^{2.8} $过滤的噪声图像中的人类绩效搜索,并评估了其与更传统的已知位置已知的确切检测任务和2D搜索的关系。我们研究了两种不同的信号类型,它们的可检测性远离固定点(视觉周围)。我们表明,3D搜索对人类绩效的影响与视觉外围的信号可检测性相互作用。在视觉周围难以检测的信号的检测性能在3D搜索中很大恶化,但在3D位置中尚未确切地知道和2D搜索。标准模型观察者无法预测3D搜索和信号类型之间的相互作用。提议的通道式酒店模型(FOVEATED搜索模型)的拟议扩展,该模型以减少固定点的空间细节来处理图像,通过眼动探索图像,以及跨切片的滚动可以成功预测人类中观察到的相互作用,也可以在3D搜索中的错误类型中观察到的相互作用。这些发现共同凸显了需要使用3D搜索进行图像质量评估的模型观察者的需求。

Model observers have a long history of success in predicting human observer performance in clinically-relevant detection tasks. New 3D image modalities provide more signal information but vastly increase the search space to be scrutinized. Here, we compared standard linear model observers (ideal observers, non-pre-whitening matched filter with eye filter, and various versions of Channelized Hotelling models) to human performance searching in 3D 1/f$^{2.8}$ filtered noise images and assessed its relationship to the more traditional location known exactly detection tasks and 2D search. We investigated two different signal types that vary in their detectability away from the point of fixation (visual periphery). We show that the influence of 3D search on human performance interacts with the signal's detectability in the visual periphery. Detection performance for signals difficult to detect in the visual periphery deteriorates greatly in 3D search but not in 3D location known exactly and 2D search. Standard model observers do not predict the interaction between 3D search and signal type. A proposed extension of the Channelized Hotelling model (foveated search model) that processes the image with reduced spatial detail away from the point of fixation, explores the image through eye movements, and scrolls across slices can successfully predict the interaction observed in humans and also the types of errors in 3D search. Together, the findings highlight the need for foveated model observers for image quality evaluation with 3D search.

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