使用门控光子计数器的超快三维聚焦 X 射线发光计算机断层扫描。

Q4 Business, Management and Accounting
Yile Fang, Michael C Lun, Yibing Zhang, Jeffrey N Anker, Ge Wang, Changqing Li
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引用次数: 0

摘要

X 射线发光计算机断层扫描(XLCT)是一种混合分子成像模式,结合了 X 射线成像(高空间分辨率)和光学成像(对示踪纳米磷的高灵敏度)的优点。基于窄 X 射线束的 XLCT 成像已显示出高空间分辨率成像的前景,但缓慢的采集速度限制了其在体内成像中的应用。在之前的研究中,我们引入了连续扫描方案来取代选择性激发方案,以提高成像速度。在连续扫描方案下,限制扫描速度的主要因素是每个间隔位置的数据采集时间。在这项工作中,我们使用了门控光子计数器(SR400,斯坦福研究系统公司)来取代高速示波器(MDO3104,泰克公司)获取测量数据。门控光子计数器只计算每个测量间隔中的光子峰值,而示波器则记录整个波形,包括背景噪声数据和光子峰值数据。光子计数器记录的数据更少,却不会丢失任何相关信息,因此非常适合超快速三维(3D)成像。我们已经建立了两种类型的 XLCT 成像系统原型,并进行了单目标和多目标三维模型实验。结果验证了我们提出的基于光子计数器的系统的可行性以及 XLCT 在合理时间内的良好三维成像能力,与基于示波器的 XLCT 系统相比,扫描时间缩短了 14 倍。现在,每个横截面的总扫描时间缩短到 27 秒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Super-Fast Three-Dimensional Focused X-ray Luminescence Computed Tomography with a Gated Photon Counter.

X-ray luminescence computed tomography (XLCT) is a hybrid molecular imaging modality combining the merits of both x-ray imaging (high spatial resolution) and optical imaging (high sensitivity to tracer nanophosphors). Narrow x-ray beam based XLCT imaging has shown promise for high spatial resolution imaging, but the slow acquisition speed limits its applications for in vivo imaging. We introduced a continuous scanning scheme to replace the selective excitation scheme to improve imaging speed in a previous study. Under the continuous scanning scheme, the main factor that limits the scanning speed is the data acquisition time at each interval position. In this work, we have used a gated photon counter (SR400, Stanford Research Systems) to replace the high-speed oscilloscope (MDO3104, Tektronix) to acquire measurement data. The gated photon counter only counts the photon peaks in each measurement interval, while the oscilloscope records the entire waveform including both background noise data and photon peak data. The photon counter records much less data without losing any relevant information, which makes it ideal for super-fast three-dimensional (3D) imaging. We have built prototype XLCT imaging systems of both types and performed both single target and multiple target phantom experiments in 3D. The results have verified the feasibility of our proposed photon counter based system and good 3D imaging capabilities of XLCT within a reasonable time, yielding a 14 times faster scanning time compared with the oscilloscope based XLCT system. Now, the total scan time is reduced to 27 seconds per transverse section.

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来源期刊
International Journal of Business and Systems Research
International Journal of Business and Systems Research Business, Management and Accounting-Management Information Systems
CiteScore
1.50
自引率
0.00%
发文量
82
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