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An Adaptive Thresholding Method for BTV Estimation Incorporating PET Reconstruction Parameters: A Multicenter Study of the Robustness and the Reliability

机译:结合PET重建参数的BTV估计的自适应阈值方法:鲁棒性和可靠性的多中心研究

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摘要

Objective. The aim of this work was to assess robustness and reliability of an adaptive thresholding algorithm for the biological target volume estimation incorporating reconstruction parameters. Method. In a multicenter study, a phantom with spheres of different diameters (6.5–57.4 mm) was filled with 18F-FDG at different target-to-background ratios (TBR: 2.5–70) and scanned for different acquisition periods (2–5 min). Image reconstruction algorithms were used varying number of iterations and postreconstruction transaxial smoothing. Optimal thresholds (TS) for volume estimation were determined as percentage of the maximum intensity in the cross section area of the spheres. Multiple regression techniques were used to identify relevant predictors of TS. Results. The goodness of the model fit was high (R 2: 0.74–0.92). TBR was the most significant predictor of TS. For all scanners, except the Gemini scanners, FWHM was an independent predictor of TS. Significant differences were observed between scanners of different models, but not between different scanners of the same model. The shrinkage on cross validation was small and indicative of excellent reliability of model estimation. Conclusions. Incorporation of postreconstruction filtering FWHM in an adaptive thresholding algorithm for the BTV estimation allows obtaining a robust and reliable method to be applied to a variety of different scanners, without scanner-specific individual calibration.
机译:目的。这项工作的目的是评估结合重建参数的生物目标体积估计的自适应阈值算法的鲁棒性和可靠性。方法。在一项多中心研究中,以不同的目标背景比(TBR:2.5-70)用 18 F-FDG填充了具有不同直径(6.5-57.4mm)球体的幻像,并扫描了不同的采集时间(2–5分钟)。图像重建算法用于变化的迭代次数和重建后的轴向平滑。确定体积估计的最佳阈值(TS),以其在球体横截面中的最大强度的百分比表示。使用多元回归技术来确定TS的相关预测因子。结果。模型拟合的好处很高(R 2 :0.74–0.92)。 TBR是TS的最重要预测因子。对于所有扫描仪,除了Gemini扫描仪,FWHM都是TS的独立预测因子。在不同型号的扫描仪之间观察到显着差异,但在相同型号的不同扫描仪之间未观察到显着差异。交叉验证的收缩很小,表明模型估计具有出色的可靠性。结论。在BTV估计的自适应阈值算法中结合了重建后滤波FWHM,可以在无需特定于扫描器的单独校准的情况下,获得适用于各种不同扫描器的强大而可靠的方法。

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