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A novel easy-to-use phantom for the determination of MTF in SPECT scanners

机译:一种新颖易用的幻像,用于测定SPECT扫描仪中的MTF

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Purpose: To evaluate modulation transfer function (MTF) in single photon emission computed tomography (SPECT) systems using the line spread function (LSF) method and a novel flood source which can be easily fabricated with materials accessible in hospital facilities. Methods: A Tc-99m-based flood source (E γ 140 keV) consisting of a radiopharmaceutical bound to the grains of a radiographic film was prepared in laboratory. Various films and radiopharmaceuticals were examined, in order to obtain a thin homogenous and reproducible flood source. The source showing best uniformity and reproducibility was placed between two PMMA blocks and images were obtained by using the brain tomographic acquisition protocol (brain) and the myocardial perfusion tomographic acquisition protocol (heart). MTF was evaluated by determining the LSF for various reconstruction methods and filters. MTF calculation was obtained by the utilization of a custom made software in which a method similar to the one proposed by Boone Med. Phys. 28, 356-360 (2001) was implemented. All imaging experiments were performed in a Siemens e-Cam γ-camera. Furthermore, MTF was assessed through the point spread function (PSF) following conventional methods. Results: The optimum homogeneity was obtained by immersing an Agfa MammoRay HDR Medical x-ray film in a solution of dithiothreitol (DTT, 10 -3 M)/Tc-99m(III)-DMSA (DMSA: trivalent technetium-99m-dimercapto-succinic acid, 40 mCi/40 ml) for 30 min in the dark. These films exhibited better uniformity (CV 1.9). Higher MTF values were obtained for the brain scan protocol with iterative 3D with eight iterations reconstruction method. MTF of the brain protocol was in all cases better than the heart protocol. MTFs derived from LSF were more precise compared with those obtained from PSF since their reproducibility was better in all cases, providing a mean standard deviation of 0.0065, in contrary to the PSF method which gave 0.0348. Conclusions: The method presented here is novel and easy to implement, requiring materials commonly found in clinical practice. Furthermore, this technique which is based on the LSF method reduces measurement noise levels due to the larger amount of data averaging than in the conventional PSF method. Furthermore, MTF can be assessed easily, in three dimensions (3D), by placing the flood source either in sagittal or coronal direction.
机译:目的:使用线扩散函数(LSF)方法和新型洪水源(可使用医院设施中的材料轻松制造)评估单光子发射计算机断层扫描(SPECT)系统中的调制传递函数(MTF)。方法:在实验室中制备了一种基于Tc-99m的洪水源(Eγ140 keV),该射线源由与放射性胶片胶片颗粒结合的放射性药物组成。为了获得稀薄的均质且可再现的洪水源,对各种薄膜和放射性药物进行了检查。将显示出最佳均匀性和可重复性的源放置在两个PMMA块之间,并使用脑断层扫描采集协议(大脑)和心肌灌注断层扫描采集协议(心脏)获得图像。通过确定各种重构方法和滤波器的LSF来评估MTF。 MTF计算是通过使用定制软件获得的,该软件中的一种方法类似于Boone Med提出的方法。物理28,356-360(2001)已实施。所有成像实验均在Siemens e-Camγ相机中进行。此外,按照常规方法通过点扩散函数(PSF)评估了MTF。结果:将Agfa MammoRay HDR Medical X射线​​胶片浸入二硫苏糖醇(DTT,10 -3 M)/ Tc-99m(III)-DMSA(DMSA:三价tech-99m-dimercapto-琥珀酸(40 mCi / 40 ml)在黑暗中放置30分钟。这些薄膜表现出更好的均匀性(CV <1.9)。对于具有八次迭代重建方法的迭代3D的脑部扫描协议,获得了更高的MTF值。在所有情况下,脑方案的MTF均优于心脏方案。与从PSF获得的MTF相比,从LSF衍生的MTF的精确度更高,因为在所有情况下它们的重现性都更好,与提供0.0348的PSF方法相反,其平均标准偏差为0.0065。结论:本文介绍的方法新颖且易于实施,需要临床实践中常用的材料。此外,基于LSF方法的该技术由于比传统PSF方法具有更大的数据平均量而降低了测量噪声级别。此外,通过将洪水源置于矢状或冠状方向,可以轻松地在三个维度(3D)上评估MTF。

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