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Practical considerations for noise power spectra estimation for clinical CT scanners

机译:临床CT扫描仪噪声功率谱估计的实际考虑

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Local noise power spectra (NPS) have been commonly calculated to represent the noise properties of CT imaging systems, but their properties are significantly affected by the utilized calculation schemes. In this study, the effects of varied calculation parameters on the local NPS were analyzed, and practical suggestions were provided regarding the estimation of local NPS for clinical CT scanners. The uniformity module of a Catphan phantom was scanned with a Philips Brilliance 64 slice CT simulator with varied scanning protocols. Images were reconstructed using FBP and iDose4 iterative reconstruction with noise reduction levels 1, 3, and 6. Local NPS were calculated and compared for varied region of interest (ROI) locations and sizes, image background removal methods, and window functions. Additionally, with a predetermined NPS as a ground truth, local NPS calculation accuracy was compared for computer simulated ROIs, varying the aforementioned parameters in addition to ROI number. An analysis of the effects of these varied calculation parameters on the magnitude and shape of the NPS was conducted. The local NPS varied depending on calculation parameters, particularly at low spatial frequencies below ~ 0.15 mm ? 1 . For the simulation study, NPS calculation error decreased exponentially as ROI number increased. For the Catphan study the NPS magnitude varied as a function of ROI location, which was better observed when using smaller ROI sizes. The image subtraction method for background removal was the most effective at reducing low-frequency background noise, and produced similar results no matter which ROI size or window function was used. The PCA background removal method with a Hann window function produced the closest match to image subtraction, with an average percent difference of 17.5%. Image noise should be analyzed locally by calculating the NPS for small ROI sizes. A minimum ROI size is recommended based on the chosen radial bin size and image pixel dimensions. As the ROI size decreases, the NPS becomes more dependent on the choice of background removal method and window function. The image subtraction method is most accurate, but other methods can achieve similar accuracy if certain window functions are applied. All dependencies should be analyzed and taken into account when considering the interpretation of the NPS for task-based image quality assessment.PACS number(s): 87.57.C-, 87.57.Q-
机译:通常已经计算出局部噪声功率谱(NPS)来表示CT成像系统的噪声特性,但是其特性会受到所使用的计算方案的显着影响。在这项研究中,分析了各种计算参数对局部NPS的影响,并为临床CT扫描仪的局部NPS估算提供了实用建议。用具有不同扫描方案的飞利浦Brilliance 64 slice CT仿真器扫描了Catphan幻像的均匀性模块。使用FBP和iDose 4 迭代重建技术以降噪级别分别为1、3和6重建图像。计算局部NPS并比较感兴趣区域(ROI)位置和大小的变化,图像背景去除方法以及窗口功能。另外,以预定的NPS作为基本事实,比较了计算机模拟ROI的本地NPS计算精度,除了ROI数量外还更改了上述参数。对这些变化的计算参数对NPS的大小和形状的影响进行了分析。局部NPS取决于计算参数,特别是在低于0.15 mm的低空间频率下? 1。对于模拟研究,随着ROI数量的增加,NPS计算误差呈指数下降。对于Catphan研究,NPS大小随ROI位置的变化而变化,当使用较小的ROI尺寸时,可以更好地观察到。用于背景去除的图像减影方法在减少低频背景噪声方面最为有效,无论使用哪种ROI大小或窗口功能,其效果都相似。具有Hann窗口功能的PCA背景去除方法产生的图像减法最接近,平均百分差为17.5%。图像噪声应通过为小ROI尺寸计算NPS进行本地分析。根据所选的径向仓尺寸和图像像素尺寸,建议最小ROI尺寸。随着ROI尺寸的减小,NPS越来越依赖于背景去除方法和窗口功能的选择。图像减法是最准确的方法,但是如果应用某些窗口功能,其他方法也可以达到类似的精度。在考虑基于任务图像质量评估的NPS的解释时,应分析并考虑所有依赖性.PACS编号:87.57.C-,87.57.Q-

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