A Novel Model for Diagnosing High-Risk Pregnancies Using Bayesian Belief Network Algorithm and Particle Optimization

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Article Type:
Research/Original Article (بدون رتبه معتبر)
Abstract:
Introduction

Diagnosis of high - risk maternal pregnancy is one of the most important issues during pregnancy and can be of great help to pregnant mothers. Also, early diagnosis can reduce mortality and morbidity in mothers.

Material and Methods

In this study, the data of 1014 pregnant mothers were used, which includes 272 people with high - risk pregnancies, 742 people with medium - risk and low - risk pregnancies. Also, the data include six independent variables. A combi nation of Bayesian belief network algorithms and particle optimization was used to predict pregnancy risk.

Results

For validation, the data model was divided into two sets of training and testing based on the method of 30 - 70. Then the proposed model was d esigned by training data. Then the model for training and testing data was evaluated in terms of accuracy parameters 99.18 and 98.32% accuracy were obtained, respectively. It has also performed between 0.5 and 8% better than similar work in the past.

Conclusion

 In this study, a new model for designing Bayesian belief network was presented and it was found that this model can be useful for predicting maternal pregnancy risk.

Language:
English
Published:
Frontiers in Health Informatics, Volume:11 Issue: 1, 2022
Page:
108
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