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首页> 外文期刊>Physics in medicine and biology. >Joint estimation of activity and attenuation for PET using pragmatic MR-based prior: application to clinical TOF PET/MR whole-body data for FDG and non-FDG tracers
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Joint estimation of activity and attenuation for PET using pragmatic MR-based prior: application to clinical TOF PET/MR whole-body data for FDG and non-FDG tracers

机译:使用基于务语MR的先驱的宠物活动和衰减的联合估计:申请申请FDG和非FDG示踪剂的临床TOF PET / MR全身数据

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摘要

Accurate and robust attenuation correction remains challenging in hybrid PET/MR particularly for torsos because it is difficult to segment bones, lungs and internal air in MR images. Additionally, MR suffers from susceptibility artifacts when a metallic implant is present. Recently, joint estimation (JE) of activity and attenuation based on PET data, also known as maximum likelihood reconstruction of activity and attenuation, has gained considerable interest because of (1) its promise to address the challenges in MR-based attenuation correction (MRAC), and (2) recent advances in time-of-flight (TOF) technology, which is known to be the key to the success of JE. In this paper, we implement a JE algorithm using an MR-based prior and evaluate the algorithm using whole-body PET/MR patient data, for both FDG and non-FDG tracers, acquired from GE SIGNA PET/MR scanners with TOF capability. The weight of the MR-based prior is spatially modulated, based on MR signal strength, to control the balance between MRAC and JE. Large prior weights are used in strong MR signal regions such as soft tissue and fat (i.e. MR tissue classification with a high degree of certainty) and small weights are used in low MR signal regions (i.e. MR tissue classification with a low degree of certainty). The MR-based prior is pragmatic in the sense that it is convex and does not require training or population statistics while exploiting synergies between MRAC and JE. We demonstrate the JE algorithm has the potential to improve the robustness and accuracy of MRAC by recovering the attenuation of metallic implants, internal air and some bones and by better delineating lung boundaries, not only for FDG but also for more specific non-FDG tracers such as Ga-68-DOTATOC and F-18-Fluoride.
机译:精确且稳健的衰减校正在混合宠物/ MR特别适用于躯干,因为它难以在MR图像中分段骨骼,肺和内部空气。另外,当存在金属植入物时,MR患有易感性伪影。最近,基于宠物数据的活动和衰减的联合估计(JE)也称为最大似然重建活动和衰减,因此(1)其承诺解决了基于先生的衰减修正(MRAC)的挑战(MRAC (2)最近的飞行时间(TOF)技术的进步,已知是JE成功的关键。在本文中,我们使用基于MR的先生来实现JE算法,并使用全身PET / MR患者数据,用于FDG和非FDG示踪剂,从GE Signa PET / MR扫描仪获得具有TOF能力的FDG和非FDG示踪剂。基于MR的先生的产品的重量基于MR信号强度来控制MRAC和JE之间的平衡。在强MR信号区域中使用大的先前重量,例如软组织和脂肪(即具有高度确定性的MR组织分类)和小重量在低MR信号区域(即,具有低确定性的组织分类MR组织分类) 。基于先生的先前是务实的意义,即它被凸起,不需要培训或人口统计,同时利用MRAC和JE之间的协同作用。我们展示了JE算法有可能通过恢复金属植入物,内部空气和一些骨骼的衰减以及更好地描绘肺边界来提高MRAC的鲁棒性和准确性,不仅适用于FDG,还可以用于更具体的非FDG示踪剂作为GA-68-丁香和F-18氟化物。

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