首页> 外文期刊>電子情報通信学会技術研究報告. 医用画像. Medical Imaging >A Study of Automatic 3D Fetal Face Detection By Locating Facial Features From 3D Ultrasound Images for Navigating FETO Surgeries
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A Study of Automatic 3D Fetal Face Detection By Locating Facial Features From 3D Ultrasound Images for Navigating FETO Surgeries

机译:通过定位3D超声图像中的面部特征进行FETO手术导航自动进行3D胎儿面部检测的研究

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摘要

With the wide clinical application of 3D ultrasound (US) imaging, automatic location of fetal facial features from US volumes for navigating fetoscopic tracheal occlusion (FETO) surgeries becomes possible, which plays an important role in reducing surgical risk. In this paper, we propose a feature-based method to automatically detect 3D fetal face and accurately locate key facial features without any priori knowledge or training data. The candidates of the key facial features, such as the nose, eyes, nose upper bridge and upper lip are detected by analyzing the mean and Gaussian curvatures of the facial surface. Each feature is gradually identified from the candidates by a boosted cascade filtering scheme based on the spatial relations between each feature. In experiments, an identification rate of 100% is achieved by using 72 3D US images from a test database of 6 fetal faces in the frontal view and any pose within 15° from the frontal view, and the location error 3.18±0.91 mm of the detected upper lip for all test data is obtained, which can be tolerated by the FETO surgery.
机译:随着3D超声(US)成像在临床上的广泛应用,可以通过US量自动定位胎儿面部特征,以导航胎儿镜气管闭塞(FETO)手术,这在降低手术风险中起着重要作用。在本文中,我们提出了一种基于特征的方法,无需任何先验知识或训练数据即可自动检测3D胎儿面部并准确定位关键面部特征。通过分析面部表面的平均曲率和高斯曲率,可以检测出关键的面部特征(例如鼻子,眼睛,鼻子上桥和上唇)的候选者。通过基于每个特征之间的空间关系的增强级联滤波方案,从候选中逐渐识别每个特征。在实验中,通过使用来自正面视图中6个胎儿面部的测试数据库中的72张3D US图像以及与正面视图相距15°内的任何姿势以及位置误差的3.18±0.91 mm,可以达到100%的识别率。获得所有测试数据的检测到的上唇,FETO手术可以忍受。

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