首页> 外文会议>Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2011 IEEE >Impact of using different tissue classes on the accuracy of MR-based attenuation correction in PET-MRI
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Impact of using different tissue classes on the accuracy of MR-based attenuation correction in PET-MRI

机译:在PET-MRI中使用不同组织类别对基于MR的衰减校正的准确性的影响

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Diagnosis , staging and treatment of disease depends on the morphological and functional information obtained from multimodality molecular imaging systems. The combination of functional and morphological information is now routinely performed to overcome the limitations of each individual modality. Attenuation of photons in the object under study is one of the main limitations of quantitative PET imaging. Attenuation correction plays a pivotal role in PET imaging. However, the availability of CT data on hybrid PET/CT scanners made it possible to build an accurate attenuation map. One of the well-known methods for generation of the attenuation map on PE/MRI systems is MR-based attenuation correction (MRAC) where image segmentation is used to classify MRI into several classes corresponding to different attenuation factors. In this study we investigate the effect of using different numbers of classes for the generation of attenuation maps on the accuracy of attenuation correction of PET data. The study was carried out using simulations of the XCAT phantom and 10 clinical studies. For the later, CT and PET images of 10 patients were used with CT-based attenuation correction assumed as reference. MRI was classified into different classes to produce two, three and four-class attenuation maps using the ITK library. The relative error showed that the lower number of classes will increase the global error over 8%. The elimination of bony structures from the attenuation map will cause a local error over 3%. In clinical studies, SUV
机译:疾病的诊断,分期和治疗取决于从多模态分子成像系统获得的形态和功能信息。现在常规执行功能和形态信息的组合,以克服每种单独模式的局限性。研究对象的光子衰减是定量PET成像的主要限制之一。衰减校正在PET成像中起关键作用。但是,混合PET / CT扫描仪上CT数据的可用性使建立精确的衰减图成为可能。在PE / MRI系统上生成衰减图的一种众所周知的方法是基于MR的衰减校正(MRAC),其中使用图像分割将MRI分为与不同衰减因子相对应的几类。在这项研究中,我们调查了使用不同数量的类别生成衰减图对PET数据的衰减校正精度的影响。该研究是使用XCAT体模的模拟和10项临床研究进行的。稍后,将10例患者的CT和PET图像与假定基于CT的衰减校正一起使用。使用ITK库将MRI分为不同的类别,以生成两级,三级和四级衰减图。相对误差表明,较低的类数会使全局误差增加8%以上。从衰减图中消除骨结构将导致局部误差超过3%。在临床研究中,SUV

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