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Finding Dominant Factor That Affects Crude Birth Rates in Japanese Prefectures

机译:寻找影响日本州原油出生率的主导因素

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We conduct a regression to find a dominant factor that affects crude birth rates in Japan by prefectures. As the traditional regression method, a linear multiple regression is widely used. However, higher accuracy methods with machine learning algorithms have been developed. To find the dominant factor, we use eXtreme Gradient Boosting (XGBoost) and Random Forest which are the decision tree based machine learning algorithms. The results show better accuracies, compared with the traditional linear multiple one. Then, the XGBoost shows that the most dominant factor is the number of marriages, and the second one is the migration rate to the prefecture.
机译:我们进行回归以找到影响日本的批发出生率的主导因素。作为传统的回归方法,广泛使用线性多元回归。然而,已经开发了具有机器学习算法的更高的精度方法。为了找到主导因素,我们使用极端梯度升压(XGBoost)和随机森林,这些森林是基于决策树的机器学习算法。与传统的线性多个相比,结果表现出更好的准确性。然后,XGBoost表明最多主导因素是婚姻的数量,第二个是县的迁移率。

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