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Evaluation of Multiclass Model Observers in PET LROC Studies

机译:在PET LROC研究中评估多类模型观察者

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摘要

A localization ROC (LROC) study was conducted to evaluate nonprewhitening matched-filter (NPW) and channelized NPW (CNPW) versions of a multiclass model observer as predictors of human tumor-detection performance with PET images. Target localization is explicitly performed by these model observers. Tumors were placed in the liver, lungs, and background soft tissue of a mathematical phantom, and the data simulation modeled a full-3D acquisition mode. Reconstructions were performed with the FORE+AWOSEM algorithm. The LROC study measured observer performance with 2D images consisting of either coronal, sagittal, or transverse views of the same set of cases. Versions of the CNPW observer based on two previously published difference-of-Gaussian channel models demonstrated good quantitative agreement with human observers. One interpretation of these results treats the CNPW observer as a channelized Hotelling observer with implicit internal noise.
机译:进行了本地化ROC(LROC)研究,以评估多类模型观察器的非预增白匹配过滤器(NPW)和通道化NPW(CNPW)版本,以预测PET图像对人类肿瘤的检测性能。目标定位是由这些模型观察者明确执行的。将肿瘤放置在数学模型的肝脏,肺部和背景软组织中,并且数据模拟为全3D采集模式建模。使用FORE + AWOSEM算法进行重建。 LROC研究使用由同一组病例的冠状,矢状或横断面图组成的2D图像来测量观察者的表现。基于两个先前发布的高斯差异通道模型的CNPW观察者版本与人类观察者表现出良好的定量一致性。对这些结果的一种解释将CNPW观测器视为具有隐式内部噪声的通道化Hotelling观测器。

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