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Multilayer Perceptron Application for Diabetes Mellitus Prediction in Pregnancy Care

机译:多层感知器在孕期糖尿病预测中的应用

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The human intelligence modeling by brain components simulation, such as neurons and their connections, is part of leading smart decision computing paradigms. In Health, artificial neural networks (ANN) have the capacity to adapt to uncertainty situations and learn even with inaccurate data. This paper presents the modeling and performance evaluation of an ANN-based technique, named multilayer perceptron (MLP), for gestational diabetes mellitus (GDM) prediction that is responsible for several severe complications and affects 3 to 7% of pregnancies worldwide. Results show that this approach reached a precision of 0.74, Recall 0.741, F-measure 0.741, and ROC area 0.779. These indicators show that this method is an excellent predictor of this disease. This contribution offers a computational intelligence (CI) tool capable of identifying risk cases during pregnancy and, thus, reduce possible sequels for both pregnant woman and fetus.
机译:通过脑部组件仿真(例如神经元及其连接)进行的人类智能建模是领先的智能决策计算范例的一部分。在健康方面,人工神经网络(ANN)能够适应不确定性情况,甚至可以使用不准确的数据进行学习。本文介绍了一种基于神经网络的技术(称为多层感知器(MLP))的建模和性能评估,该技术可用于妊娠糖尿病(GDM)预测,该疾病可导致多种严重并发症,并影响全球3%至7%的怀孕。结果表明,该方法的精度为0.74,召回率为0.741,F测度为0.741,ROC面积为0.779。这些指标表明,该方法是该疾病的极佳预测指标。此贡献提供了一种计算智能(CI)工具,能够识别怀孕期间的风险案例,从而减少孕妇和胎儿的可能后遗症。

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