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Automatic recognition of fetal standard plane in ultrasound image

机译:超声图像中胎儿标准平面的自动识别

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Detection and recognition of standard plane automatically during the course of US examination is an effective method for diagnosis of fetal development. In this paper, an automatic algorithm is developed to address the issue of recognition of standard planes (i.e. axial, coronal and sagittal planes) in the fetal ultrasound (US) image. The dense sampling feature transform descriptor (DSIFT) with aggregating vector method (i.e. fish vector (FV)) is explored for feature extraction. The learning and recognition of the planes have been implemented by support vector machine (SVM) classifier. Experimental results on the collected data demonstrate that high recognition accuracy is obtained.
机译:在美国检查过程中自动检测和识别标准平面是诊断胎儿发育的有效方法。在本文中,开发了一种自动算法来解决胎儿超声(US)图像中标准平面(即轴向,冠状和矢状平面)的识别问题。探索了采用聚合矢量方法(即鱼矢量(FV))的密集采样特征变换描述符(DSIFT)进行特征提取。飞机的学习和识别已通过支持向量机(SVM)分类器实现。对收集到的数据进行的实验结果表明,可以获得较高的识别精度。

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