130+ ps Coincident Time Resolution With 20-mm Crystal Length Using 28-nm Xilinx FPGA

IF 4.6 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Fei Wang;Jiawen Zhou;Ziyi Weng;Chao Cai;Qingguo Xie
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引用次数: 0

Abstract

The coincidence time resolution (CTR) is of paramount importance in positron emission tomography (PET) as it can directly determine the imaging resolution. In this article, a 130+ ps CTR with 20-mm crystal length is achieved using AMD FPGA platform. Three steps are proposed to achieve a high CTR. First, a low-noise amplifier (LNA) is used on fast output signals that are used for time sampling. This can equivalently lower the configured threshold for leading edge discriminator and therefore further mitigate the time walk effect. Second, a new time-to-digital converter (TDC) architecture that achieves less than 1-LSB integral nonlinearity (INL) and differential nonlinearity (DNL) without any calibration tricks are introduced. This TDC can yield salient INL performance, which can deliver consistent performance in time sampling and hence better CTR. Last but not least, a resource-efficient energy characterization method is proposed. This approach utilizes only one TDC chain to sample all trigger times for pulse reconstruction. This not only saves up to 75% chain resources but also minimizes sampling errors due to heterogeneity properties when involving multiple TDC chains. A prototype using 28-nm Kintex 7 FPGA is implemented and 130+ ps CTR is achieved.
130+ ps同步时间分辨率,晶体长度20mm,采用28nm Xilinx FPGA
在正电子发射断层扫描(PET)中,符合时间分辨率(CTR)是至关重要的,因为它直接决定了成像分辨率。本文利用AMD FPGA平台实现了一个晶体长度为20mm的130+ ps的CTR。提出了实现高点击率的三个步骤。首先,在用于时间采样的快速输出信号上使用低噪声放大器(LNA)。这可以等效地降低前缘鉴别器的配置阈值,从而进一步减轻时间行走效应。其次,介绍了一种新的时间-数字转换器(TDC)架构,该架构可实现小于1 lsb的积分非线性(INL)和微分非线性(DNL),无需任何校准技巧。这种TDC可以产生显著的INL性能,从而可以在时间采样中提供一致的性能,从而获得更好的CTR。最后,提出了一种资源高效的能量表征方法。该方法仅利用一个TDC链对脉冲重建的所有触发时间进行采样。这不仅节省了高达75%的链资源,而且在涉及多个TDC链时,还将由于异质性而导致的抽样误差降至最低。采用28nm Kintex 7 FPGA实现了一个原型,并实现了130+ ps的CTR。
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来源期刊
IEEE Transactions on Radiation and Plasma Medical Sciences
IEEE Transactions on Radiation and Plasma Medical Sciences RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
8.00
自引率
18.20%
发文量
109
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