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The Impact of Selecting a Validation Method in Machine Learning on Predicting Basketball Game Outcomes

机译:在机器学习中选择验证方法的影响预测篮球比赛结果

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摘要

Interest in sports predictions as well as the public availability of large amounts of structured and unstructured data are increasing every day. As sporting events are not completely independent events, but characterized by the influence of the human factor, the adequate selection of the analysis process is very important. In this paper, seven different classification machine learning algorithms are used and validated with two validation methods: Train&Test and cross-validation. Validation methods were analyzed and critically reviewed. The obtained results are analyzed and compared. Analyzing the results of the used machine learning algorithms, the best average prediction results were obtained by using the nearest neighbors algorithm and the worst prediction results were obtained by using decision trees. The cross-validation method obtained better results than the Train&Test validation method. The prediction results of the Train&Test validation method by using disjoint datasets and up-to-date data were also compared. Better results were obtained by using up-to-date data. In addition, directions for future research are also explained.
机译:对体育预测的兴趣以及大量结构化和非结构化数据的公共可用性每天都在增加。由于体育赛事不是完全独立的事件,而是以人为因素的影响为特征,对分析过程的充分选择非常重要。在本文中,使用了七种不同的分类机学习算法并用两种验证方法验证:列车和测试和交叉验证。分析验证方法并批判性审查。分析并比较了得到的结果。分析二手机器学习算法的结果,通过使用最近的邻居算法获得了最佳的平均预测结果,并且通过使用决策树获得了最差预测结果。交叉验证方法比列车和测试验证方法获得更好的结果。还比较了使用不相交的数据集和最新数据的列车和测试验证方法的预测结果。通过使用最新数据获得更好的结果。此外,还解释了未来研究的方向。

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