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Automatic Real-time Tracking of Fetal Mouth in Fetoscopic Video Sequence for Supporting Fetal Surgeries

机译:用于支持胎儿手术的胎儿镜视频序列中胎儿口的自动实时跟踪

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Recently, a minimally invasive surgery (MIS) called fetoscopic tracheal occlusion (FETO) was developed to treat severe congenital diaphragmatic hernia (CDH) via fetoscopy, by which a detachable balloon is placed into the fetal trachea for preventing pulmonary hypoplasia through increasing the pressure of the chest cavity. This surgery is so dangerous that a supporting system for navigating surgeries is deemed necessary. In this paper, to guide a surgical tool to be inserted into the fetal trachea, an automatic approach is proposed to detect and track the fetal face and mouth via fetoscopic video sequencing. More specifically, the AdaBoost algorithm is utilized as a classifier to detect the fetal face based on Haar-like features, which calculate the difference between the sums of the pixel intensities in each adjacent region at a specific location in a detection window. Then, the CamShift algorithm based on an iterative search in a color histogram is applied to track the fetal face, and the fetal mouth is fitted by an ellipse detected via an improved iterative randomized Hough transform approach. The experimental results demonstrate that the proposed automatic approach can accurately detect and track the fetal face and mouth in real-time in a fetoscopic video sequence, as well as provide an effective and timely feedback to the robot control system of the surgical tool for FETO surgeries.
机译:最近,开发了一种称为胎儿镜气管闭塞术(FETO)的微创手术(MISO),以通过胎儿镜检查治疗严重的先天性diaphragm肌疝(CDH),通过在胎儿气管中放置一个可拆卸的球囊,通过增加胎盘的压力来预防肺发育不良。胸腔。该手术是如此危险,以至于需要用于手术导航的支撑系统。在本文中,为了指导将手术工具插入胎儿气管,提出了一种自动方法,通过胎儿视频测序技术来检测和跟踪胎儿的面部和口腔。更具体地说,AdaBoost算法被用作分类器,基于类似Haar的特征来检测胎儿的面部,该特征可计算检测窗口中特定位置处每个相邻区域中像素强度的总和之间的差。然后,将基于颜色直方图中的迭代搜索的CamShift算法应用于跟踪胎儿的脸部,并通过改进的迭代式随机霍夫变换方法检测到的椭圆拟合胎儿的嘴巴。实验结果表明,所提出的自动方法可以在检影视频序列中实时准确地检测和跟踪胎儿的面部和口腔,并为FETO手术的手术工具的机器人控制系统提供有效,及时的反馈。

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