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Characteristic functionals in imaging and image-quality assessment: tutorial

机译:成像和图像质量评估中的特征功能:教程

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Characteristic functionals are one of the main analytical tools used to quantify the statistical properties of random fields and generalized random fields. The viewpoint taken here is that a random field is the correct model for the ensemble of objects being imaged by a given imaging system. In modern digital imaging systems, random fields are not used to model the reconstructed images themselves since these are necessarily finite dimensional. After a brief introduction to the general theory of characteristic functionals, many examples relevant to imaging applications are presented. The propagation of characteristic functionals through both a binned and list-mode imaging system is also discussed. Methods for using characteristic functionals and image data to estimate population parameters and classify populations of objects are given. These methods are based on maximum likelihood and maximum a posteriori techniques in spaces generated by sampling the relevant characteristic functionals through the imaging operator. It is also shown how to calculate a Fisher information matrix in this space. These estimators and classifiers, and the Fisher information matrix, can then be used for image quality assessment of imaging systems. (C) 2016 Optical Society of America
机译:特征功能是用于量化随机字段和广义随机字段的统计属性的主要分析工具之一。此处的观点是,对于由给定成像系统成像的对象集合,随机场是正确的模型。在现代数字成像系统中,随机场不用于建模重建图像本身,因为这些图像必定是有限的。在简要介绍了特征功能的一般理论之后,提出了许多与成像应用有关的示例。还讨论了特征功能通过合并和列表模式成像系统的传播。给出了使用特征函数和图像数据来估计种群参数并对物体种群进行分类的方法。这些方法基于通过成像操作员对相关特征功能进行采样而生成的空间中的最大似然性和最大后验技术。还显示了如何在此空间中计算Fisher信息矩阵。然后,可以将这些估计器和分类器以及Fisher信息矩阵用于成像系统的图像质量评估。 (C)2016美国眼镜学会

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