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Identifying the Stability of Couple Relationship Applying Different Machine Learning Techniques

机译:识别应用不同机器学习技术的夫妻关系的稳定性

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摘要

A couple relationship is an important matter where two people engaged each other in a romantic association. This bonding happens almost all human beings throughout the world. The failure of a relationship is a serious issue that affects not only two directly involved people but also hampered the kinship of indirectly associated people. This work aims to investigate and estimate the persistence of the couple relationship by using machine learning models. Therefore, we gathered a couple relationship data from the Standford Social Science Data Collection repository and reprocessed them for further analysis. Then, we generated several feature subsets from the primary dataset and employed different machine learning classifiers to them. In this case, the Bagging classifier with a decision tree classifier shows the best accuracy of 87% for the recursive feature elimination feature subset. We also explored significant features from these subsets which can be used to estimate the stability of a couple relationship as well. Thus, our model can be useful to predict in advance about the future relationship and could be possible to recover them before any occurrence.
机译:几个关系是一个重要的事情,两个人以浪漫的协会互相参与。这种粘合几乎所有全世界的人类。关系的失败是一个严重的问题,不仅影响了两个直接涉及的人,而且影响了间接相关人民的血缘关系。这项工作旨在使用机器学习模型来调查和估算夫妻关系的持久性。因此,我们收集了来自商人社会科学数据收集存储库的夫妻关系数据,并重新加工了它们以进行进一步分析。然后,我们生成了来自主数据集的多个特征子集,并将其使用不同的计算机学习分类器。在这种情况下,具有决策树分类器的堆垛分类器显示递归特征消除功能子集的最佳精度为87%。我们还探讨了这些子集中的重要特征,这些子集也可用于估计夫妻关系的稳定性。因此,我们的模型可以预测预先预测未来的关系,并且可以在任何发生之前恢复它们。

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