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首页> 外文期刊>Asia Oceania Journal of Nuclear Medicine & Biology >Comparison of Count Normalization Methods for Statistical Parametric Mapping Analysis Using a Digital Brain Phantom Obtained from Fluorodeoxyglucose-positron Emission Tomography
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Comparison of Count Normalization Methods for Statistical Parametric Mapping Analysis Using a Digital Brain Phantom Obtained from Fluorodeoxyglucose-positron Emission Tomography

机译:计数归一化方法用于统计参数映射分析的比较,该方法使用从氟脱氧葡萄糖-正电子发射断层扫描术获得的数字脑模来进行

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Objective(s): Alternative normalization methods were proposed to solve?the biased information of SPM in the study of neurodegenerative disease. The?objective of this study was to determine the most suitable count normalization?method for SPM analysis of a neurodegenerative disease based on the results of?different count normalization methods applied on a prepared digital phantom?similar to one obtained using fluorodeoxyglucose-positron emission tomography?(FDG-PET) data of a brain with a known neurodegenerative condition.Methods: Digital brain phantoms, mimicking mild and intermediate?neurodegenerative disease conditions, were prepared from the FDG-PET data of?11 healthy subjects. SPM analysis was performed on these simulations using?different count normalization methods.?Results: In the slight-decrease phantom simulation, the Yakushev method?correctly visualized wider areas of slightly decreased metabolism with the?smallest artifacts of increased metabolism. Other count normalization methods?were unable to identify this slightly decreases and produced more artifacts. The?intermediate-decreased areas were well visualized by all methods. The areas?surrounding the grey matter with the slight decreases were not visualized withthe GM and VOI count normalization methods but with the Andersson. The?Yakushev method well visualized these areas. Artifacts were present in all?methods. When the number of reference area extraction was increased, the?Andersson method better-captured the areas with decreased metabolism and?reduced the artifacts of increased metabolism. In the Yakushev method, increasing?the threshold for the reference area extraction reduced such artifacts.Conclusion: The Yakushev method is the most suitable count normalization?method for the SPM analysis of neurodegenerative disease.
机译:目的:提出了替代的归一化方法来解决SPM在神经退行性疾病研究中的偏向信息。这项研究的目的是基于对不同数字归一化方法应用于准备的数字体模的结果,确定一种最适合神经退行性疾病的SPM分析的计数归一化方法,该方法类似于使用氟脱氧葡萄糖-正电子发射断层显像技术方法:从11位健康受试者的FDG-PET数据中制备出模拟轻度和中度神经退行性疾病状况的数字大脑模型,以模拟已知的神经退行性疾病状况的大脑的FD数据。在这些模拟中,使用“不同计数归一化”方法进行了SPM分析。结果:在轻微减少的体模模拟中,Yakushev方法可以正确可视化新陈代谢略有下降的区域,而新陈代谢最小的伪影则最小。其他计数归一化方法?无法识别出这种略微减少并产生更多伪像的情况。所有方法都能很好地看到中间减少的区域。用GM和VOI计数归一化方法无法观察到周围灰质略有减少的区域,而使用Andersson则无法观察到。 Yakusev方法很好地可视化了这些区域。所有方法中都存在伪影。当增加参考区域提取的数量时,Andersson方法可以更好地捕获代谢降低的区域,并减少代谢增加的伪影。在Yakushev方法中,增加参考区域提取的阈值可减少此类伪影。结论:Yakushev方法是神经退行性疾病SPM分析的最合适的计数归一化方法。

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