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Image fusion based on estimation theory: Applied to PET/CT for radiotherapy

机译:基于估计理论的图像融合:应用于PET / CT放射治疗

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This paper reviewed three state-of-the-art image fusion methods that were developed based on the estimation theory and evaluated these methods in the fusion of PET/CT images for radiotherapy applications. These fusion methods were developed in a framework of maximum likelihood estimate and firstly introduced the expectation-maximization algorithm to image fusion at either pixel-level or feature-level. Some recent patents on similar image fusion approaches have been discussed. The estimation theory based methods were previously evaluated for the fusion of visual and infrared images, however, they have not been tested for fusion of medical images such as PET/CT images. In this study we demonstrated through experiments the potential applicability of the pixel-level fusion and region-level fusion approaches based on the EM algorithm for PET and CT image fusions. We have shown that the fused image might be useful for tumor target delineation and image-guided radiotherapy.
机译:本文回顾了基于估计理论开发的三种最先进的图像融合方法,并在用于放射治疗的PET / CT图像融合中对这些方法进行了评估。这些融合方法是在最大似然估计的框架内开发的,首先将期望最大化算法引入像素级或特征级的图像融合。已经讨论了一些关于类似图像融合方法的最新专利。先前已经评估了基于估计理论的方法对视觉和红外图像的融合,但是,尚未对它们进行医学图像(如PET / CT图像)融合的测试。在这项研究中,我们通过实验证明了基于EM算法的PET和CT图像融合的像素级融合和区域级融合方法的潜在适用性。我们已经表明,融合图像可能对肿瘤靶标勾画和图像引导放疗有用。

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