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Automatic Classification of Antepartum Cardiotocography Using Fuzzy Clustering and Adaptive Neuro -Fuzzy Inference System

机译:使用模糊聚类和自适应神经 - 换取推理系统自动分类安胃螺杆图谱

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Antepartum cardiotocography (CTG) monitoring is a crucial screening tool widely utilized to evaluate fetal wellbeing. However, the complexity and non-linearity of CTG usually result in inter-observer and intra-observer variability in a visual CTG interpretation using clinical guidelines. In this paper, a fuzzy C-means clustering based adaptive neuro-fuzzy inference system (FCM-ANFIS) was proposed to automatically classify CTG for antenatal fetal monitoring. Data visualization and spearman correlation analysis were implemented to select CTG features. Then, the fuzzy space was partitioned by using fuzzy Cmeans clustering algorithm, and the adjustment parameters were adjusted through the self-learning mechanism of neural networks and least squares algorithm. The experimental results show that the fuzzy space partition based on FCM clustering could improve the performance of ANFIS, and the proposed FCM-ANFIS model outperforms the state-of-the-art automatic classification of CTG models. In conclusion, the proposed FCM-ANIFIS model has promising learning ability and adaptability for the complexity and uncertainty of antenatal CTG interpretation.
机译:Antepartum Cardiotocography(CTG)监测是广泛利用的重要筛查工具来评估胎儿阱。然而,CTG的复杂性和非线性通常在使用临床指南中导致视觉CTG解释中的观察者间和观察者内变异性。本文提出了一种基于模糊的C-MEATIAL聚类的适应性神经模糊推理系统(FCM-ANFIS),以自动对CTG进行分类,以进行产前胎儿监测。实现了数据可视化和Spearman相关分析以选择CTG功能。然后,通过使用模糊CMEans聚类算法来划分模糊空间,通过神经网络的自学习机制和最小二乘算法来调整调整参数。实验结果表明,基于FCM聚类的模糊空间分区可以提高ANFI的性能,所提出的FCM-ANFIS模型优于CTG模型的最先进的自动分类。总之,提出的FCM-Anifis模型具有前景的学习能力和适应性,对产前CTG解释的复杂性和不确定性。

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