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基于 FPGA 单端存储接口输入接收器的无比较器 PET 数据采集系统。

Comparator-less PET data acquisition system using single-ended memory interface input receivers of FPGA.

机构信息

Department of Nuclear Medicine, Seoul National University College of Medicine, Seoul 03080, Korea. Institute of Radiation Medicine, Medical Research Center, Seoul National University College of Medicine, Seoul 03080, Korea. Department of Biomedical Sciences, Seoul National University College of Medicine, Seoul 03080, Korea.

出版信息

Phys Med Biol. 2020 Aug 11;65(15):155007. doi: 10.1088/1361-6560/ab8689.

DOI:10.1088/1361-6560/ab8689
PMID:32244244
Abstract

In this study, we propose a linear field-programmable gate array (FPGA)-based charge measurement method by combining a charge-to-time converter (QTC) with a single-ended memory interface (SeMI) input receiver. The QTC automatically converts the input charge into a dual-slope pulse, which has a width proportional to the input charge. Dual-slope pulses are directly digitized by the FPGA input/output (I/O) buffers configured with SeMI input receivers. A proof-of-concept comparator-less QTC/SeMI data acquisition (DAQ) system, consisting of 132 energy and 33 timing channels, was developed and applied to a prototype brain-dedicated positron emission tomography (PET) scanner. The PET scanner consisted of 14 sectors, each containing 2 × 1 block detectors, and each block detector yielded four energy signals and one timing signal. Because a single QTC/SeMI DAQ system can receive signals from up to eight sectors, two QTC/SeMI DAQ systems connected using high-speed gigabit transceivers were used to acquire data from the PET scanner. All crystals in the PET block detectors, consisting of dual-layer stacked lutetium oxyorthosilicate (LSO) scintillation crystal and silicon photomultiplier arrays, were clearly resolved in the flood maps with an excellent energy resolution. The PET images of hot-rod, cylindrical, and two-dimensional Hoffman brain phantoms were also acquired using the prototype PET scanner and two QTC/SeMI DAQ systems.

摘要

在这项研究中,我们提出了一种基于线性现场可编程门阵列(FPGA)的电荷测量方法,该方法将电荷到时间转换器(QTC)与单端存储器接口(SeMI)输入接收器相结合。QTC 自动将输入电荷转换为双斜率脉冲,其宽度与输入电荷成正比。双斜率脉冲由配置有 SeMI 输入接收器的 FPGA 输入/输出(I/O)缓冲区直接数字化。开发了一个由 132 个能量和 33 个定时通道组成的无比较器 QTC/SeMI 数据采集(DAQ)系统,并将其应用于原型脑专用正电子发射断层扫描(PET)扫描仪。该 PET 扫描仪由 14 个扇区组成,每个扇区包含 2×1 块探测器,每个块探测器产生四个能量信号和一个定时信号。由于单个 QTC/SeMI DAQ 系统最多可以接收来自八个扇区的信号,因此使用两个连接高速千兆收发器的 QTC/SeMI DAQ 系统从 PET 扫描仪获取数据。在洪水图中,使用原型 PET 扫描仪和两个 QTC/SeMI DAQ 系统可以清晰地分辨出由双层堆叠的硅酸镥氧(LSO)闪烁晶体和硅光电倍增管阵列组成的 PET 块探测器中的所有晶体,并且具有出色的能量分辨率。还使用原型 PET 扫描仪和两个 QTC/SeMI DAQ 系统获取了热棒、圆柱形和二维 Hoffman 脑幻影的 PET 图像。

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