一种使用数据挖掘和机器学习的胎儿评估方法

W. Copeland, C. Chiang
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引用次数: 1

摘要

如果一个女人怀孕了,对她和她的医生/临床医生来说,了解胎儿发育是否有问题是很重要的。目前发现问题的方法既有非侵入性的,也有侵入性的。阿肯色大学医学科学学院(UAMS)最近开发了一种名为“鱿鱼生殖评估阵列”(SARA)的无创系统,可用于收集胎儿心跳数据。然而,这些原始数据必须由人类进行分析,以确定某个胎儿是否有问题。在本文中,我们提出了一种方法,使计算机能够确定胎儿是否处于健康或不健康的状态,通过使用一种技术,将允许使用数据挖掘进行快速分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A method for fetal assessment using data mining and machine learning
If a woman is pregnant, it is important for both her and her doctor/clinician to be aware if there are problems with the developing fetus. There are currently ways to discover problems using both noninvasive and invasive techniques. The University of Arkansas for Medical Sciences (UAMS) has recently developed a noninvasive system called the Squid Array for Reproductive Assessment (SARA) that can be used to gather fetal heartbeat data. This raw data, however, must then be analyzed by a human being to determine if there is a problem with a given fetus. In this paper, we propose a method to enable a computer to determine if a fetus is in a healthy or unhealthy state by the employment of a technique that will allow for rapid analysis using data mining.
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