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RF interference reduction for simultaneous digital PET/MR using an FPGA-based, optimized spatial and temporal clocking distribution

机译:使用基于FPGA的优化空间和时间时钟分配功能,可同时进行数字PET / MR的射频干扰降低

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Positron Emission Tomography (PET) combined with Magnetic Resonance Imaging (MRI) as a hybrid imaging modality is about to become the next-generation imaging technique in the field of molecular imaging. The integration of PET detectors into an MR-gantry enabling simultaneous acquisitions with unaffected performance of PET and MRI is challenging, as PET detectors need to be unaffected by the MR operation, RF-silent (low RF emission) and compact. Especially the RF silence of a fully digital PET detector is demanding, as the digital detection and data acquisition architecture may produce electromagnetic (EM) field emission which can result in noise artifacts in MR images. The RF fields emitted by PET detectors, which may be coupled into the MRI RF coil, are therefore unwanted and are from an MRI point of view disturbances considered as noise. A conventional way to overcome RF emission is to use thick RF shielding which however leads to MR image artifacts due to eddy currents distorting the MR image. In this paper, we present investigations of novel interference reduction techniques which were implemented by solely modifying firmware designs used in FPGAs of our MR-compatible PET modules used in the PET Insert Hyperion-IID while keeping the entire hardware untouched. The principles apply on a more fundamental level namely the EM field coupling mechanism to the RF receive coil. We propose to reduce the coupling by shifting the clocking frequencies and by applying clock phase patterns of the PET sensors, leading to an optimization of the EM field emission with the aim for as little as possible RF shielding. The initial results presented in this paper demonstrate how our flexible PET architecture can be used to reduce the noise coupled into the MRI receive chain. Measurements performed with our near-field scanner in the lab and with the MRI confirm, that the frequency shifting approach can be applied to successfully reduce the noise coupled into the MRI receive- chain. Least noise was measured at the Larmor frequency with the PET sensors clocked at 160MHz and 100 MHz.
机译:正电子发射断层扫描(PET)结合磁共振成像(MRI)作为混合成像方式将成为分子成像领域的下一代成像技术。将PET检测器集成到MR机架中以实现不影响PET和MRI性能的同时采集具有挑战性,因为PET检测器需要不受MR操作,RF静音(低RF发射)和紧凑型的影响。尤其是,全数字PET检测器的射频静音要求很高,因为数字检测和数据采集体系结构可能会产生电磁(EM)场发射,这会导致MR图像中出现噪声伪像。因此,可能耦合到MRI RF线圈中的PET检测器发出的RF场是不需要的,并且从MRI的角度来看,它们被认为是噪声。克服RF发射的常规方法是使用厚的RF屏蔽,但是由于涡流使MR图像失真,这会导致MR图像伪像。在本文中,我们对新型干扰减少技术进行了研究,这些技术是通过仅修改我们用于PET插入Hyperion-II D 的MR兼容PET模块的FPGA中使用的固件设计而实现的,硬件未受影响。该原理在更基本的层面上适用,即EM场耦合机制与RF接收线圈。我们建议通过改变时钟频率并应用PET传感器的时钟相位模式来减少耦合,从而实现EM场发射的优化,目的是尽可能减少RF屏蔽。本文介绍的初步结果证明了如何使用我们的灵活PET架构来减少耦合到MRI接收链中的噪声。使用我们实验室中的近场扫描仪和MRI进行的测量证实,可以采用频移方法来成功减少耦合到MRI接收链中的噪声。最小噪声是在拉莫尔频率下测量的,PET传感器的时钟频率为160MHz和100MHz。

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