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A framework for analysis of linear ultrasound videos to detect fetal presentation and heartbeat

机译:分析线性超声视频以检测胎儿呈现和心跳的框架

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摘要

Confirmation of pregnancy viability (presence of fetal cardiac activity) and diagnosis of fetal presentation (head or buttock in the maternal pelvis) are the first essential components of ultrasound assessment in obstetrics. The former is useful in assessing the presence of an on-going pregnancy and the latter is essential for labour management. We propose an automated framework for detection of fetal presentation and heartbeat from a predefined free-hand ultrasound sweep of the maternal abdomen. Our method exploits the presence of key anatomical sonographic image patterns in carefully designed scanning protocols to develop, for the first time, an automated framework allowing novice sonographers to detect fetal breech presentation and heartbeat from an ultrasound sweep. The framework consists of a classification regime for a frame by frame categorization of each 2D slice of the video. The classification scores are then regularized through a conditional random field model, taking into account the temporal relationship between the video frames. Subsequently, if consecutive frames of the fetal heart are detected, a kernelized linear dynamical model is used to identify whether a heartbeat can be detected in the sequence. In a dataset of 323 predefined free-hand videos, covering the mother's abdomen in a straight sweep, the fetal skull, abdomen, and heart were detected with a mean classification accuracy of 83.4%. Furthermore, for the detection of the heartbeat an overall classification accuracy of 93.1% was achieved. (C) 2017 The Authors. Published by Elsevier B.V.
机译:确认妊娠生存率(胎儿心脏活性的存在)和胎儿呈现的诊断(母体骨盆中的头部或臀部)是妇产科超声评估的第一个基本组成部分。前者可用于评估持续怀孕的存在,后者对劳动力管理至关重要。我们提出了一种自动框架,用于检测胎儿腹部预定义的自由超声波扫描的胎儿呈现和心跳。我们的方法利用了主要设计扫描协议的关键解剖超声图像图案的存在,这是首次开发自动框架,允许新手超声波检测胎儿臀部呈现和心跳从超声波扫描。该框架由每个2D片的帧分类来组成帧的分类制度。然后通过条件随机场模型进行分类分数,考虑到视频帧之间的时间关系。随后,如果检测到胎儿心脏的连续帧,则用于识别序列中是否可以检测心跳的线性动力学模型。在323个预定义的释放视频的数据集中,覆盖母亲的腹部直扫,胎儿颅骨,腹部和心脏被检测到,平均分类精度为83.4%。此外,对于心跳的检测,实现了93.1%的整体分类精度。 (c)2017作者。 elsevier b.v出版。

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