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新型微血管造影系统的广义调制传递函数和量子检测效率研究

Study of the Generalized MTF and DQE for a New Microangiographic System.

作者信息

Kyprianou Iacovos S, Rudin Stephen, Bednarek Daniel R, Hoffmann Kenneth R

机构信息

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

出版信息

Proc SPIE Int Soc Opt Eng. 2004 May 6;5368:349-360. doi: 10.1117/12.533512.

Abstract

We study the properties of a new microangiographic system, consisting of a Region of Interest (ROI) microangiographic detector, x-ray source, and patient. The study was performed under conditions intended for clinical procedures such as neurological diagnostic angiograms as well as treatments of intracranial aneurysms, and vessel-stenoses. The study was performed in two steps; first a uniform head equivalent phantom was used as a "filter". This allowed us to study the properties of the detector alone, under clinically relevant x-ray spectra. We report the detector MTF, NPS, NEQ, and DQE for beam energies ranging from 60-100kVp and for different detector entrance exposures. For the second step, the phantom was placed adjacent to the detector, allowing scatter to enter the detector and new measurements were obtained for the same beam energies and detector entrance exposures. Different radiation field sizes were studied, and the effects of different scatter amounts were investigated. The spatial distribution of scatter was studied using the edge-spread method and a generalized system MTF was obtained by combining the scatter MTF weighted by the scatter fraction with the detector MTF and focal spot unsharpness due to magnification. The NPS combined with the generalized MTF gave the generalized system NEQ and DQE. The generalized NEQ and the ideal object detectability were used to calculate the Dose Area Product to the patient for 75% object detection probability. This was used as a system optimization method.

摘要

我们研究了一种新型微血管造影系统的特性,该系统由感兴趣区域(ROI)微血管造影探测器、X射线源和患者组成。该研究是在适用于临床程序的条件下进行的,如神经诊断血管造影以及颅内动脉瘤和血管狭窄的治疗。该研究分两步进行;首先,使用均匀的头部等效体模作为“滤波器”。这使我们能够在临床相关的X射线光谱下单独研究探测器的特性。我们报告了探测器在60 - 100kVp的束能量范围内以及不同探测器入口曝光量下的调制传递函数(MTF)、噪声功率谱(NPS)、等效噪声量子(NEQ)和量子探测效率(DQE)。对于第二步,将体模放置在探测器旁边,使散射进入探测器,并在相同的束能量和探测器入口曝光量下获得新的测量结果。研究了不同的辐射场大小,并研究了不同散射量的影响。使用边缘扩展法研究了散射的空间分布,并通过将由散射分数加权的散射MTF与探测器MTF以及由于放大引起的焦点不清晰度相结合,获得了广义系统MTF。将NPS与广义MTF相结合得到了广义系统NEQ和DQE。广义NEQ和理想物体可探测性被用于计算患者在75%物体检测概率下的剂量面积乘积。这被用作一种系统优化方法。

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