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Approximations of noise covariance in multi-slice helical CT scans: impact on lung nodule size estimation.

机译:多层螺旋CT扫描中噪声协方差的近似值:对肺结节大小估计的影响。

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摘要

Multi-slice computed tomography (MSCT) scanners have become popular volumetric imaging tools. Deterministic and random properties of the resulting CT scans have been studied in the literature. Due to the large number of voxels in the three-dimensional (3D) volumetric dataset, full characterization of the noise covariance in MSCT scans is difficult to tackle. However, as usage of such datasets for quantitative disease diagnosis grows, so does the importance of understanding the noise properties because of their effect on the accuracy of the clinical outcome. The goal of this work is to study noise covariance in the helical MSCT volumetric dataset. We explore possible approximations to the noise covariance matrix with reduced degrees of freedom, including voxel-based variance, one-dimensional (1D) correlation, two-dimensional (2D) in-plane correlation and the noise power spectrum (NPS). We further examine the effect of various noise covariance models on the accuracy of a prewhitening matched filter nodule size estimation strategy. Our simulation results suggest that the 1D longitudinal, 2D in-plane and NPS prewhitening approaches can improve the performance of nodule size estimation algorithms. When taking into account computational costs in determining noise characterizations, the NPS model may be the most efficient approximation to the MSCT noise covariance matrix.
机译:多层计算机断层扫描(MSCT)扫描仪已成为流行的体积成像工具。文献中已经研究了所得CT扫描的确定性和随机性。由于三维(3D)体积数据集中的体素数量众多,因此很难解决MSCT扫描中噪声协方差的完整特征。但是,随着此类数据集用于定量疾病诊断的用途不断增长,了解噪声属性的重要性也随之增加,因为它们对临床结果的准确性有影响。这项工作的目的是研究螺旋MSCT体积数据集中的噪声协方差。我们探索了降低自由度的噪声协方差矩阵的可能近似值,包括基于体素的方差,一维(1D)相关性,二维(2D)平面内相关性和噪声功率谱(NPS)。我们进一步检查了各种噪声协方差模型对预白化匹配滤波器结节尺寸估计策略准确性的影响。我们的仿真结果表明,一维纵向,二维平面内和NPS预增白方法可以提高结核大小估计算法的性能。当在确定噪声特征时考虑到计算成本时,NPS模型可能是MSCT噪声协方差矩阵的最有效近似。

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