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理论和实验评估微血管荧光透视仪:高分辨率感兴趣区域 X 射线成像仪。

A theoretical and experimental evaluation of the microangiographic fluoroscope: A high-resolution region-of-interest x-ray imager.

机构信息

Toshiba Stroke Research Center, University at Buffalo, State University of New York, Buffalo, New York 14214, USA.

出版信息

Med Phys. 2011 Jul;38(7):4112-26. doi: 10.1118/1.3599751.

Abstract

PURPOSE

The increasing need for better image quality and high spatial resolution for successful endovascular image-guided interventions (EIGIs) and the inherent limitations of the state-of-the-art detectors provide motivation to develop a detector system tailored to the specific, demanding requirements of neurointerventional applications.

METHOD

A microangiographic fluoroscope (MAF) was developed to serve as a high-resolution, region-of-interest (ROI) x-ray imaging detector in conjunction with large lower-resolution full field-of-view (FOV) state-of-the-art x-ray detectors. The newly developed MAF is an indirect x-ray imaging detector capable of providing real-time images (30 frames per second) with high-resolution, high sensitivity, no lag and low instrumentation noise. It consists of a CCD camera coupled to a Gen 2 dual-stage microchannel plate light image intensifier (LII) through a fiber-optic taper. A 300 microm thick CsI(T1) phosphor serving as the front end is coupled to the LII. The LII is the key component of the MAF and the large variable gain provided by it enables the MAF to operate as a quantum-noise-limited detector for both fluoroscopy and angiography.

RESULTS

The linear cascade model was used to predict the theoretical performance of the MAF, and the theoretical prediction showed close agreement with experimental findings. Linear system metrics such as MTF and DQE were used to gauge the detector performance up to 10 cycles/mm. The measured zero frequency DQE(0) was 0.55 for an RQA5 spectrum. A total of 21 stages were identified for the whole imaging chain and each stage was characterized individually.

CONCLUSIONS

The linear cascade model analysis provides insight into the imaging chain and may be useful for further development of the MAF detector. The preclinical testing of the prototype detector in animal procedures is showing encouraging results and points to the potential for significant impact on EIGIs when used in conjunction with a state-of-art flat panel detector (FPD).

摘要

目的

为了成功进行血管内图像引导介入治疗(EIGIs),需要更好的图像质量和更高的空间分辨率,而最先进的探测器存在固有局限性,这促使我们开发一种专门针对神经介入应用特定苛刻要求的探测器系统。

方法

开发了一种微血管荧光透视仪(MAF),作为一种高分辨率、感兴趣区域(ROI)X 射线成像探测器,与大型低分辨率全视野(FOV)最先进的 X 射线探测器结合使用。新开发的 MAF 是一种间接 X 射线成像探测器,能够提供实时图像(每秒 30 帧),具有高分辨率、高灵敏度、无滞后和低仪器噪声。它由一个 CCD 相机组成,通过光纤锥与第二代双级微通道板光图像增强器(LII)耦合。一个 300 微米厚的 CsI(T1)荧光体作为前端与 LII 耦合。LII 是 MAF 的关键组成部分,其提供的大可变增益使 MAF 能够作为量子噪声限制探测器用于透视和血管造影。

结果

使用线性级联模型来预测 MAF 的理论性能,理论预测与实验结果吻合良好。线性系统指标,如 MTF 和 DQE,用于评估高达 10 个周期/毫米的探测器性能。测量的零频率 DQE(0)对于 RQA5 光谱为 0.55。整个成像链共确定了 21 个阶段,每个阶段都单独进行了表征。

结论

线性级联模型分析提供了对成像链的深入了解,并且可能有助于进一步开发 MAF 探测器。原型探测器在动物程序中的临床前测试显示出令人鼓舞的结果,并指出当与最先进的平板探测器(FPD)结合使用时,可能对 EIGIs 产生重大影响。

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