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Image quality evaluation of motion-contaminated calcified plaques in cardiac CT

机译:心脏CT中运动污染钙化斑块的图像质量评价

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An automated method for evaluating the image quality of motion-contaminated calcified plaques in non contrast-enhanced cardiac CT was developed. This method consisted of using the rapid phase-correlated ROI (RP-ROI) reconstruction algorithm for generating a 4D series of calcified plaque images, and then extracting phase-correlated dynamic, morphological, and intensity-based features of the plaques. Velocity-based linear regression (VLR), multiple linear regression (MLR), and artificial neural network (ANN) regression models were used to predict plaque motion indices based on these extracted features. Since motion indices were reflective of the amount of motion that plaques underwent at multiple phases throughout the cardiac cycle, these indices represented metrics of image quality with respect to motion artifacts. Motion indices were predicted for sixty calcified plaques placed along the left and right coronary arterial trees in the dynamic NCAT phantom. In a five-fold cross-validation scheme involving independent testing groups of twelve plaques, average repeated measures concordance correlation coefficients for the VLR, MLR, and ANN models were 0.848±0.022, 0.885±0.014, and 0.950±0.009. The motion indices predicted by the ANN regression model also were used to obtain optimal phases for image interpretation of individual plaques.
机译:用于评估在非造影增强心脏CT运动污染钙化斑块的图像质量的自动方法被开发。该方法包括使用所述快速相位相关的ROI(RP-ROI)重建算法用于产生4D系列钙化斑图像,然后提取相位相关的动态,形态,和斑块的基于强度的特征的。速度为基础的线性回归(VLR),多元线性回归(MLR),和人工神经网络(ANN)回归模型用于预测基于这些提取的特征噬斑运动指数。由于运动指数均反射运动的该噬斑在多个阶段整个心动周期经历量,这些指数表示的图像质量的度量相对于运动伪影。运动指标进行了预测沿60个在动态NCAT幻象的左和右冠状动脉树放置钙化斑块。在一个五倍涉及的12个斑块独立测试组,平均重复测量一致性相关系数为VLR,MLR,和人工神经网络模型交叉验证方案是0.848±0.022,0.885±0.014,和0.950±0.009。由ANN回归模型所预测的运动指标也被用于获得最优相位单个斑块的图像判读。

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