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3D automated lymphoma segmentation in PET images based on cellular automata

机译:基于细胞自动机的PET图像中的3D自动淋巴瘤分割

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Positron Emission Tomography imaging (PET) has today become a valuable tool in oncology. The accurate definition of the tumor volume on PET images is a critical step. State-of-the-art methods are based on adaptative thresholding and usually require user interaction. Their performances are hampered by the low contrast, low spatial resolution, and low signal to noise ratios of PET images. In this paper, we investigate an automated segmentation approach based on a cellular automata algorithm (CA). The method's performance is evaluated against manual delineation on PET images obtained from clinical data. Our method obtains encouraging results as compared to standard interactive PET segmentation algorithms.
机译:正电子发射断层扫描成像(PET)如今已成为肿瘤学中的重要工具。在PET图像上准确定义肿瘤体积是至关重要的一步。最先进的方法基于自适应阈值,通常需要用户交互。 PET图像的低对比度,低空间分辨率和低信噪比阻碍了它们的性能。在本文中,我们研究了基于细胞自动机算法(CA)的自动分割方法。根据从临床数据获得的PET图像上的手动描绘,评估了该方法的性能。与标准交互式PET分割算法相比,我们的方法获得了令人鼓舞的结果。

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