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Segmenting Extra Pulmonary Tuberculous Lesions in Computed Tomography Images Using Positron Emission Tomography Intensity Markers

机译:使用正电子发射断层扫描强度标记分割计算断层扫描图像中的额外肺结核病变

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Various studies have been conducted to expand the utilization of Combined Positron Emission Tomography and Computed Tomography (PET/CT) covering cases of infection and inflammation. PET images provide the functional activity of a lesion while CT images demonstrate the anatomical location. Hence, existence of infected lesions can be recognized in PET image but since the structural position can not be precisely defined on PET images, we need to retrieve this information from CT. We highlight localization of extra pulmonary tuberculosis infection using high activity points on PET image as references to extract regions of interest on CT image. Once PET and CT images have been registered, coordinates of the candidate points on PET are fed into seeded region growing algorithm to define the boundary of lesion on CT. The region growing process continues until a significant change in bilinear pixel values is reached. Results show that this algorithm, works well considering the limitations of seeded region growing algorithm.
机译:已经进行了各种研究,以扩大覆盖感染和炎症案例的综合正电子发射断层扫描和计算断层扫描(PET / CT)的利用。宠物图像提供病变的功能活性,而CT图像展示解剖位置。因此,可以在PET图像中识别感染病变的存在,但由于不能在PET图像上精确地定义结构位置,因此我们需要从CT中检索该信息。我们突出了使用宠物图像上的高活动点作为宠物图像的额外肺结核感染的本地化作为提取CT图像的感兴趣区域的参考。一旦登记了PET和CT图像,PET上的候选点的坐标被送入种子区域生长算法,以定义CT上病变的边界。该区域生长过程继续,直到达到双线性像素值的显着变化。结果表明,考虑到播种区生长算法的局限性,效果良好。

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