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Assessment of SPM in Perfusion Brain SPECT Studies. A Numerical Simulation Study Using Bootstrap Resampling Methods

机译:灌注脑SPECT研究中SPM的评估。使用Bootstrap重采样方法的数值模拟研究

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Statistical parametric mapping (SPM) has become the technique of choice to statistically evaluate positron emission tomography (PET), functional magnetic resonance imaging (fMRI), and single photon emission computed tomography (SPECT) functional brain studies. Nevertheless, only a few methodological studies have been carried out to assess the performance of SPM in SPECT. The aim of this paper was to study the performance of SPM in detecting changes in regional cerebral blood flow (rCBF) in hypo- and hyperperfused areas in brain SPECT studies. The paper seeks to determine the relationship between the group size and the rCBF changes, and the influence of the correction for degradations. The assessment was carried out using simulated brain SPECT studies. Projections were obtained with Monte Carlo techniques, and a fan-beam collimator was considered in the simulation process. Reconstruction was performed by using the ordered subsets expectation maximization (OSEM) algorithm with and without compensation for attenuation, scattering, and spatial variant collimator response. Significance probability maps were obtained with SPM2 by using a one-tailed two-sample t-test. A bootstrap resampling approach was used to determine the sample size for SPM to detect the between-group differences. Our findings show that the correction for degradations results in a diminution of the sample size, which is more significant for small regions and low-activation factors. Differences in sample size were found between hypo- and hyperperfusion. These differences were larger for small regions and low-activation factors, and when no corrections were included in the reconstruction algorithm.
机译:统计参数映射(SPM)已成为统计评估正电子发射断层扫描(PET),功能磁共振成像(fMRI)和单光子发射计算机断层扫描(SPECT)功能脑研究的一种选择技术。然而,仅进行了一些方法学研究来评估SPECT中SPM的性能。本文的目的是研究在脑SPECT研究中低灌注和高灌注区域SPM在检测局部脑血流(rCBF)变化中的性能。本文试图确定组大小与rCBF变化之间的关系,以及对降级校正的影响。使用模拟脑SPECT研究进行评估。使用蒙特卡洛技术获得了投影,并且在仿真过程中考虑了扇形光束准直器。通过使用有序子集期望最大化(OSEM)算法进行重构,该算法对衰减,散射和空间变量准直仪响应进行补偿,而无需进行补偿。通过使用一尾两样本t检验,使用SPM2获得了显着性概率图。自举重采样方法用于确定SPM的样本量,以检测组间差异。我们的发现表明,对降解的校正会导致样本量的减少,这对于小区域和低活化因子而言更为重要。低灌注和高灌注之间存在样本大小差异。对于小区域和低激活因子,以及在重建算法中未包含任何校正时,这些差异更大。

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