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CONGENITAL HEART DISEASE (CHD) DISCRIMINATION IN FETAL ECHOCARDIOGRAM BASED ON 3D FEATURE FUSION

机译:基于3D特征融合的先天性心脏病(CHD)诱导胎儿诊断

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Automatic diagnosis for fetal echocardiography plays an important part in diagnostic aid in the discrimination of congenital heart disease (CHD). Instead of traditional methods analyzing 2D cardiac echo video that need to find the standard view for discrimination, in this paper, we proposed a new system for automatic discrimination of CHD applying 4D original echocardiogram, which avoids the challenging work of searching standard views. We extracted the features of 3D static structure and 3D motion via 3D SIFT and 3D Histogram of Optical Flow (HOF) from the original 4D (3D+T) echocardiogram data, respectively. Bag of Words (BoW) method was employed to construct the quantized feature. Both static and motion features were fused to form the final image representation. One-Class SVM classifier was utilized to discriminate CHD due to the lack of CHD data and the significant difference in all the CHD cases. Experiments on the real data demonstrate the improved discrimination accuracy due to the fused feature.
机译:胎儿超声心动图的自动诊断在先天性心脏病(CHD)的鉴别中起着重要组成部分。而不是传统方法分析需要查找标准视图的2D心脏回声视频,本文提出了一种新的自动歧视CHD应用4D原始超声心动图的系统,这避免了搜索标准视图的具有挑战性的工作。我们通过3D SIFT和3D直方图从原始4D(3D + T)超声心动图数据分别通过3D SIFT和3D直方图提取了3D静态结构和3D运动的特征。使用袋子(弓)方法来构建量化特征。静态和运动功能都被融合以形成最终的图像表示。由于缺乏CHD数据和所有CHD病例的显着差异,使用单级SVM分类器来区分CHD。真实数据的实验证明了由于融合特征导致的辨别精度提高。

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