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Automatic anatomy recognition in whole-body PET/CT images

机译:全身PET / CT图像中的自动解剖识别

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Purpose: Whole-body positron emission tomography/computed tomography (PET/CT) has become a standard method of imaging patients with various disease conditions, especially cancer. Body-wide accurate quantification of disease burden in PET/CT images is important for characterizing lesions, staging disease, prognosticating patient outcome, planning treatment, and evaluating disease response to therapeutic interventions. However, body-wide anatomy recognition in PET/CT is a critical first step for accurately and automatically quantifying disease body-wide, body-region-wise, and organwise. This latter process, however, has remained a challenge due to the lower quality of the anatomic information portrayed in the CT component of this imaging modality and the paucity of anatomic details in the PET component. In this paper, the authors demonstrate the adaptation of a recently developed automatic anatomy recognition (AAR) methodology [Udupa et al., "Body-wide hierarchical fuzzy modeling, recognition, and delineation of anatomy in medical images," Med. Image Anal. 18, 752-771 (2014)] to PET/CT images. Their goal was to test what level of object localization accuracy can be achieved on PET/CT compared to that achieved on diagnostic CT images.
机译:目的:全身正电子发射断层扫描/计算机断层扫描(PET / CT)已成为对各种疾病,尤其是癌症患者进行成像的标准方法。对PET / CT图像进行全身范围的疾病负担的准确量化对于表征病变,分期疾病,预测患者预后,计划治疗以及评估疾病对治疗干预的反应非常重要。然而,PET / CT的全身解剖学识别是准确,自动地在全身,身体区域和器官范围量化疾病的关键的第一步。然而,由于在该成像模态的CT组件中描绘的解剖信息的质量较低以及在PET组件中缺乏解剖细节,后一种方法仍然是一个挑战。在本文中,作者展示了最近开发的自动解剖结构识别(AAR)方法的改编[Udupa等人,“医学图像中的人体分层模糊建模,识别和轮廓描述”。图像肛门。 18,752-771(2014)]转换为PET / CT图像。他们的目标是测试与诊断CT图像相比,PET / CT可以达到什么水平的物体定位精度。

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