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首页> 外文期刊>IEEE Transactions on Nuclear Science >Estimation of image noise in PET using the bootstrap method
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Estimation of image noise in PET using the bootstrap method

机译:使用自举法估算PET中的图像噪声

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摘要

The bootstrap method applied to positron emission tomography (PET) data was evaluated as a technique to determine regional image noise in PET. To validate the method, 250 scans (5 min each) of a uniform cylinder filled with /sup 68/Ge was acquired and reconstructed using filtered backprojection (FBP). A single 5-min list mode scan was also acquired. From the list mode data, 250 bootstrap replicates were generated by randomly drawing, with replacement, prompt and random events. In each replicate, the total numbers of prompt and random events were kept identical to the number in the original list mode data set. The 250 individual scans, and the bootstrap replicates, were reconstructed using FBP and ordered subset expectation maximization (OSEM). Mean and standard-deviation (SD) images were generated from the reconstructed images. Mean and SD were also calculated in a central region of the image sets. Visual inspection showed no appreciable difference between the SD images derived from the repeated scans and the bootstrap replicates. Profiles through the images, showed no significant difference between image sets. Using an increased number of bootstrap replicates produced less noise in the SD images. Region of interest analysis showed, that the SDs derived from the bootstrap replicates were very close to the ones derived from the repeat scans, independent of reconstruction algorithm. The results indicate that the bootstrap method can accurately estimate regional image noise in PET. This could potentially provide a method to accurately compare image noise in phantom and patient data under various imaging and processing conditions, without the need for repeat scans.
机译:评估了应用于正电子发射断层扫描(PET)数据的自举方法,作为确定PET中局部图像噪声的技术。为了验证该方法,采集了250张/ sup 68 / Ge的均匀圆柱体的扫描图像(每次5分钟),并使用滤波反投影(FBP)进行了重建。还获取了一个5分钟的列表模式扫描。从列表模式数据中,通过随机绘制,替换,提示和随机事件生成了250个引导程序副本。在每个重复中,提示事件和随机事件的总数与原始列表模式数据集中的总数保持相同。使用FBP和有序的子集期望最大化(OSEM)重建了250个单独的扫描以及自举重复项。从重建图像中生成均值和标准差(SD)图像。在图像集的中央区域也计算了平均值和SD。目视检查表明,从重复扫描获得的SD图像与引导复制之间没有明显的差异。通过图像的配置文件显示图像集之间没有显着差异。使用更多数量的引导程序副本会在SD图像中产生较少的噪声。感兴趣区域分析表明,自举重复生成的SD非常接近于重复扫描生成的SD,而与重建算法无关。结果表明,bootstrap方法可以准确估计PET中的局部图像噪声。这可能潜在地提供一种方法,可以在各种成像和处理条件下准确比较体模和患者数据中的图像噪声,而无需重复扫描。

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