An Analysis of Bangladesh One Day International Cricket Data: A Machine Learning Approach

Md. Muhaimenur Rahman, Md. Omar Faruque Shamim, Sabir Ismail
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引用次数: 12

Abstract

Nowadays Data mining is an emerging field in sports analysis. To choose a most effective team or to predict suitable formation for winning a game or to analyze weakness of the opponent, data mining plays a vital role. However, no research has been done yet for the Bangladesh cricket team. So, we analyzed One Day International cricket data of Bangladesh, based on seventeen features and find out the most important features that are enough for better prediction, not only important features but also can take much decision in our analysis. Our analysis divided into three sections; before starting the game, after one innings played and continuous fall of wickets which leads to the probable prediction of the chances of winning and losing even while the game is in progress. In our analysis, we used the latest version of the decision tree algorithm that is C5.0 on our own collected data set and successfully get the accuracy of 63.63% for before starting the game, 72.72% and 81.81% when Bangladesh played in the first and second innings, finally 80% and 70% for fall of wicket analysis. We also used other classification algorithms and shown the accuracy level of our data set.
孟加拉一日国际板球数据分析:机器学习方法
数据挖掘是当今体育分析中的一个新兴领域。为了选择一个最有效的球队,或者预测赢得比赛的合适阵型,或者分析对手的弱点,数据挖掘起着至关重要的作用。然而,目前还没有针对孟加拉国板球队的研究。因此,我们分析了孟加拉国的一日国际板球数据,基于17个特征,找出了最重要的特征,这些特征足以更好地预测,不仅是重要的特征,而且可以在我们的分析中做出很多决定。我们的分析分为三个部分;在比赛开始前,在一局比赛结束后,三柱连续落下,即使在比赛进行中,也可以对输赢的可能性进行预测。在我们的分析中,我们在自己收集的数据集上使用了最新版本的决策树算法C5.0,成功地得到了比赛开始前的准确率为63.63%,孟加拉国队第一局和第二局的准确率为72.72%和81.81%,最后对三柱球落分析的准确率为80%和70%。我们还使用了其他分类算法,并显示了我们数据集的精度水平。
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