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Improved kinetic analysis of dynamic PET data with optimized HYPR-LR

机译:通过优化的HYPR-LR改进动态PET数据的动力学分析

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摘要

Purpose: Highly constrained backprojection-local reconstruction (HYPR-LR) has made a dramatic impact on magnetic resonance angiography (MRA) and shows promise for positron emission tomography (PET) because of the improvements in the signal-to-noise ratio (SNR) it provides dynamic images. For PET in particular, HYPR-LR could improve kinetic analysis methods that are sensitive to noise. In this work, the authors closely examine the performance of HYPR-LR in the context of kinetic analysis, they develop an implementation of the algorithm that can be tailored to specific PET imaging tasks to minimize bias and maximize improvement in variance, and they provide a framework for validating the use of HYPR-LR processing for a particular imaging task. Methods: HYPR-LR can introduce errors into non sparse PET studies that might bias kinetic parameter estimates. An implementation of HYPR-LR is proposed that uses multiple temporally summed composite images that are formed based on the kinetics of the tracer being studied (HYPR-LR-MC). The effects of HYPR-LR-MC and of HYPR-LR using a full composite formed with all the frames in the study (HYPR-LR-FC) on the kinetic analysis of Pittsburgh compound-B ([11C]-PIB) are studied. HYPR-LR processing is compared to spatial smoothing. HYPR-LR processing was evaluated using both simulated and human studies. Nondisplaceable binding potential (BP ND) parametric images were generated from fifty noise realizations of the same numerical phantom and eight 11C-PIB positive human scans before and after HYPR-LR processing or smoothing using the reference region Logan graphical method and receptor parametric mapping (RPM2). The bias and coefficient of variation in the frontal and parietal cortex in the simulated parametric images were calculated to evaluate the absolute performance of HYPR-LR processing. Bias in the human data was evaluated by comparing parametric image BP ND values averaged over large regions of interest (ROIs) to Logan estimates of the BP ND from TACs averaged over the same ROIs. Variance was assessed qualitatively in the parametric images and semiquantitatively by studying the correlation between voxel BP ND estimates from Logan analysis and RPM2. Results: Both the simulated and human data show that HYPR-LR-FC overestimates BP ND values in regions of high 11C-PIB uptake. HYPR-LR-MC virtually eliminates this bias. Both implementations of HYPR-LR reduce variance in the parametric images generated with both Logan analysis and RPM2, and HYPR-LR-FC provides a greater reduction in variance. This reduction in variance nearly eliminates the noise-dependent Logan bias. The variance reduction is greater for the Logan method, particularly for HYPR-LR-MC, and the variance in the resulting Logan images is comparable to that in the RPM2 images. HYPR-LR processing compares favorably with spatial smoothing, particularly when the data are analyzed with the Logan method, as it provides a reduction in variance with no loss of spatial resolution. Conclusions: HYPR-LR processing shows significant potential for reducing variance in parametric images, and can eliminate the noise-dependent Logan bias. HYPR-LR-FC processing provides the greatest reduction in variance but introduces a positive bias into the BP ND of high-uptake border regions. The proposed method for forming HYPR composite images, HYPR-LR-MC, eliminates this bias at the cost of less variance reduction.
机译:目的:高度受限的反投影局部重建(HYPR-LR)对磁共振血管造影(MRA)产生了巨大影响,并且由于信噪比(SNR)的改善,显示了正电子发射断层扫描(PET)的前景它提供动态图像。特别是对于PET,HYPR-LR可以改善对噪声敏感的动力学分析方法。在这项工作中,作者在动力学分析的背景下仔细检查了HYPR-LR的性能,他们开发了一种算法的实现,可以针对特定的PET成像任务量身定制该算法,以最大程度地减少偏差并最大程度地提高方差,并提供用于验证对特定成像任务使用HYPR-LR处理的框架。方法:HYPR-LR可能将错误引入非稀疏PET研究中,这可能会偏离动力学参数估计值。提出了一种HYPR-LR的实现,该实现使用基于正在研究的示踪剂(HYPR-LR-MC)的动力学形成的多个时间相加的合成图像。研究了HYPR-LR-MC和HYPR-LR使用由研究中的所有骨架形成的全复合材料(HYPR-LR-FC)对匹兹堡化合物-B([11C] -PIB)动力学分析的影响。将HYPR-LR处理与空间平滑进行比较。使用模拟研究和人体研究对HYPR-LR加工进行了评估。使用参考区域Logan图形方法和受体参数映射(RPM2),在HYPR-LR处理或平滑之前和之后,从相同数字幻影的五十次噪声实现和八次11C-PIB阳性人体扫描产生不可移位的结合电位(BP ND)参数图像)。计算模拟参数图像中额叶和顶叶皮层的偏差和变异系数,以评估HYPR-LR处理的绝对性能。通过比较在大目标区域(ROI)上平均的参数图像BP ND值与在相同ROI上平均的TAC的BP ND的​​Logan估计,来评估人类数据中的偏差。通过研究Logan分析得出的体素BP ND估计值与RPM2之间的相关性,定性评估了参数图像中的方差,并半定量地评估了方差。结果:模拟数据和人类数据均显示,HYPR-LR-FC高估了11C-PIB摄取量高的区域的BP ND值。 HYPR-LR-MC实际上消除了这种偏差。 HYPR-LR的两种实现方式均减少了通过Logan分析和RPM2生成的参数图像中的方差,而HYPR-LR-FC则提供了方差的更大减少。方差的减小几乎消除了噪声相关的Logan偏差。对于Logan方法,尤其是对于HYPR-LR-MC,方差减小更大,并且所得Logan图像中的方差与RPM2图像中的方差相当。 HYPR-LR处理与空间平滑相比具有优势,尤其是在使用Logan方法分析数据时,因为HYPR-LR处理在不损失空间分辨率的情况下减少了方差。结论:HYPR-LR处理显示出减少参数图像方差的巨大潜力,并且可以消除依赖于噪声的Logan偏差。 HYPR-LR-FC处理可最大程度地减少方差,但会给高摄取边界区域的BP ND带来正偏差。提出的用于形成HYPR合成图像的方法HYPR-LR-MC消除了这种偏差,但减少了方差减小。

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