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A fast automatic recognition and location algorithm for fetal genital organs in ultrasound images

机译:超声图像中胎儿生殖器官的快速自动识别与定位算法

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摘要

Severe sex ratio imbalance at birth is now becoming an important issue in several Asian countries. Its leading immediate cause is prenatal sex-selective abortion following illegal sex identification by ultrasound scanning. In this paper, a fast automatic recognition and location algorithm for fetal genital organs is proposed as an effective method to help prevent ultrasound technicians from unethically and illegally identifying the sex of the fetus. This automatic recognition algorithm can be divided into two stages. In the ‘rough’ stage, a few pixels in the image, which are likely to represent the genital organs, are automatically chosen as points of interest (POIs) according to certain salient characteristics of fetal genital organs. In the ‘fine’ stage, a specifically supervised learning framework, which fuses an effective feature data preprocessing mechanism into the multiple classifier architecture, is applied to every POI. The basic classifiers in the framework are selected from three widely used classifiers: radial basis function network, backpropagation network, and support vector machine. The classification results of all the POIs are then synthesized to determine whether the fetal genital organ is present in the image, and to locate the genital organ within the positive image. Experiments were designed and carried out based on an image dataset comprising 658 positive images (images with fetal genital organs) and 500 negative images (images without fetal genital organs). The experimental results showed true positive (TP) and true negative (TN) results from 80.5% (265 from 329) and 83.0% (415 from 500) of samples, respectively. The average computation time was 453 ms per image.
机译:在几个亚洲国家,出生时性别比的严重失衡现已成为一个重要问题。其主要的直接原因是在通过超声扫描进行非法性别鉴定后,产前性别选择性流产。本文提出了一种针对胎儿生殖器官的快速自动识别和定位算法,作为防止超声技术人员不道德和非法识别胎儿性别的有效方法。这种自动识别算法可以分为两个阶段。在“粗糙”阶段,图像中可能代表生殖器官的一些像素会根据胎儿生殖器官的某些显着特征自动选择为关注点(POI)。在“精细”阶段,每个POI都会应用经过专门监督的学习框架,该框架将有效的特征数据预处理机制融合到多分类器体系结构中。框架中的基本分类器选自三个广泛使用的分类器:径向基函数网络,反向传播网络和支持向量机。然后综合所有POI的分类结果,以确定图像中是否存在胎儿生殖器官,并在阳性图像中定位生殖器官。基于包括658个阳性图像(带有胎儿生殖器官的图像)和500个阴性图像(没有胎儿生殖器官的图像)的图像数据集设计和进行实验。实验结果显示,分别来自80.5%(329个为265)和83.0%(500个为415)的真阳性(TP)和真阴性(TN)结果。每个图像的平均计算时间为453毫秒。

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