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Texture analysis for infarcted myocardium detection on delayed enhancement MRI

机译:延迟增强MRI的心肌梗死检测的纹理分析

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Detection of infarcted myocardium in the left ventricle is achieved with delayed enhancement magnetic resonance imaging (DE-MRI). However, manual segmentation is tedious and prone to variability. We studied three texture analysis methods (run-length matrix, co-occurrence matrix, and autoregressive model) in combination with histogram features to characterize the infarcted myocardium. We evaluated 10 patients with chronic infarction to select the most discriminative features and to train a support vector machine (SVM) classifier. The classifier model was then used to segment five human hearts from the STACOM DE-MRI challenge at MICCAI 2012. The Dice coefficient was used to compare the segmentation results with the ground truth available in the STACOM dataset. Segmentation using texture features provided good results with an overall Dice coefficient of 0.71 ± 0.12 (mean ± standard deviation).
机译:延迟增强磁共振成像(DE-MRI)可检测左心室梗塞的心肌。但是,手动分割很繁琐,并且容易变化。我们结合直方图特征研究了三种纹理分析方法(游程矩阵,共现矩阵和自回归模型)来表征梗塞的心肌。我们评估了10例慢性梗死患者,以选择最具区分性的特征并训练支持向量机(SVM)分类器。然后将分类器模型用于在MICCAI 2012上从STACOM DE-MRI挑战中分割出五个人的心脏。使用Dice系数将分割结果与STACOM数据集中可用的地面真实情况进行比较。使用纹理特征进行分割可提供良好的结果,总体Dice系数为0.71±0.12(平均值±标准偏差)。

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