Prediction of football match results by using artificial intelligence-based methods and proposal of hybrid methods

  • سال انتشار: 1402
  • محل انتشار: مجله آنالیز غیر خطی و کاربردها، دوره: 14، شماره: 1
  • کد COI اختصاصی: JR_IJNAA-14-1_230
  • زبان مقاله: انگلیسی
  • تعداد مشاهده: 229
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نویسندگان

İsmail KINALIOĞLU

Department of Actuerial Science, Selcuk University, ۴۲۲۵۰ Konya, Turkey

Coskun KUŞ

Department of Statistics, Selcuk University, ۴۲۲۵۰ Konya, Turkey

چکیده

In this study, hybrid classification methods are proposed, and they are used to predict the results of future football matches. Our hybrid classification methods are introduced by using clustering and classification algorithms together. By developing a web scraping tool, data on ۶۳۹۶ football matches played in European leagues are collected. Unlike similar studies, the data includes fans’ opinions gathered from social media platforms in addition to statistical information about the teams and players. The raw data is transformed into suitable datasets through a software developed by authors, and the processed data is used in the classification analysis. The match result variable (dependent variable) is considered as three types denoted by MR-۱, MR-۲ and MR-۳, respectively: The first one has three classes with Home, Draw and Away, the second one has two classes with Home and Draw-Away, the last one has also two classes Home-Draw and Away. The performances of the proposed hybrid methods are compared with the classification algorithms frequently used in the literature. As a result, our hybrid methods are more successful than classical classification algorithms. The prediction successes are ۶۵.۴۶% in the case of MR-۱, ۸۱.۷۶% in the case of MR-۲, and ۷۷.۸% in the case of MR-۳.

کلیدواژه ها

Clustering Analysis, Data Mining, Prediction, Football Statistics, Hybrid Classifier, machine learning, Multiple Classification, Sentiment Analysis, Sport Analytics

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