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Prediction of Myopia in Adolescents through Machine Learning Methods

机译:通过机器学习方法预测青少年近视

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摘要

According to literature, myopia has become the second most common eye disease in China, and the incidence of myopia is increasing year by year, and showing a trend of younger age. Previous researches have shown that the occurrence of myopia is mainly determined by poor eye habits, including reading and writing posture, eye length, and so on, and parents’ heredity. In order to better prevent myopia in adolescents, this paper studies the influence of related factors on myopia incidence in adolescents based on machine learning method. A feature selection method based on both univariate correlation analysis and multivariate correlation analysis is used to better construct a feature sub-set for model training. A method based on GBRT is provided to help fill in missing items in the original data. The prediction model is built based on SVM model. Data transformation has been used to improve the prediction accuracy. Results show that our method could achieve reasonable performance and accuracy.
机译:据文献报道,近视眼已成为中国第二常见的眼病,近视眼的发病率逐年增加,并呈现出年轻化的趋势。以前的研究表明,近视的发生主要取决于不良的眼部习惯,包括读写姿势,眼长等,以及父母的遗传。为了更好地预防青少年近视,本文基于机器学习方法研究了相关因素对青少年近视发生率的影响。基于单变量相关性分析和多元相关性分析的特征选择方法被用来更好地构建用于模型训练的特征子集。提供了一种基于GBRT的方法来帮助填写原始数据中的缺失项。该预测模型是基于SVM模型构建的。数据转换已用于提高预测精度。结果表明,该方法可以达到合理的性能和准确性。

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