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Image Quality Evaluation Study of an RF-Penetrable Brain PET Insert: A Phantom Assessment Toward Clinical Translation

机译:射频穿透性大脑PET插入物的图像质量评估研究:对临床翻译的幻影评估

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This work presents imaging studies from a brain dedicated radio frequency (RF)-penetrable PET insert compatible with clinical whole-body MRI systems. The brain dedicated PET system is composed of 16 detector modules. Each module employs an array of 3.2 x 3.2 x 20 mm3 LYSO crystal elements which are 1-1 coupled to arrays of silicon photomultipliers (SiPM). Front-end electronics multiplex the output of 128 pixels to 16 vertical-cavity surface-emitting lasers (VCSEL). The VSCELs generate unique optical output patterns per pixel which are passed via fiber optics to an external DAQ. To achieve RF-penetrability of the body coil RF excitation signal and maintain MRI compatibility, the modules in the assembled system are electrically isolated from the MRI and spaced with 1 mm gaps for the RF fields to enter. The PET system has an internal diameter of 32 cm which is reduced to 28 cm due to the addition of a very thin phased array receive coil. Two phantoms were imaged using the brain dedicated PET system: a custom 3D printed resolution phantom, and the Hoffman brain phantom. The resolution phantom had hot rods with diameters of 5.2 mm, 4.2 mm, 3.2 mm, and 2.8 mm, and a single cold rod region with rods of 4.2 mm diameters. For a gold standard, images from a GE Signa system were acquired and compared to the results of the dedicated brain PET insert. In comparison, the dedicated brain PET system was able to visualize the smallest hot rod feature (2.8 mm) whereas the GE Signa system was not and showed much better resolution and contrast for all rods, including the 4.2 mm diameter cold rod pattern. However, the Hoffman brain phantom scan was of higher quality in the GE system most likely due to the application of accurate image corrections (e.g. random, scatter, attenuation, and deadtime correction). Future work will focus on the inclusion of image correction in the processing workflow of the dedicated brain PET system to realize the benefit from its higher intrinsic spatial resolution.
机译:这项工作从与临床全身MRI系统兼容的大脑专用射频(RF)穿透性PET插入物中进行成像研究。大脑专用的PET系统由16个检测器模块组成。每个模块采用3.2 x 3.2 x 20 mm的阵列 3 1-1耦合到硅光电倍增管(SiPM)阵列的LYSO晶体元件。前端电子设备将128个像素的输出多路复用到16个垂直腔表面发射激光器(VCSEL)。 VSCEL每像素生成唯一的光学输出图案,然后通过光纤将其输出到外部DAQ。为了实现体线圈RF激励信号的RF穿透性并保持MRI兼容性,已组装系统中的模块与MRI电隔离,并以1 mm的间隙隔开,以使RF场进入。 PET系统的内径为32厘米,由于增加了非常薄的相控阵接收线圈,因此内径减小到28厘米。使用大脑专用的PET系统对两个幻像进行成像:定制的3D打印分辨率幻像和霍夫曼脑幻像。分辨率模型具有直径为5.2 mm,4.2 mm,3.2 mm和2.8 mm的热棒,以及具有4.2 mm直径的棒的单个冷棒区域。对于黄金标准,从GE Signa系统获取图像并将其与专用脑部PET插入物的结果进行比较。相比之下,专用的大脑PET系统能够可视化最小的热棒特征(2.8毫米),而GE Signa系统却不能,并且对所有棒(包括4.2毫米直径的冷棒图案)都显示出更好的分辨率和对比度。但是,霍夫曼脑部幻像扫描在GE系统中具有较高的质量,这很可能是由于应用了精确的图像校正(例如随机,散射,衰减和停滞时间校正)所致。未来的工作将集中在将图像校正包含在专用大脑PET系统的处理工作流程中,以从其更高的固有空间分辨率中受益。

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