AI Article Synopsis

  • The study analyzed the performance of professional goalkeepers in top European leagues to identify factors that separate elite from sub-elite players.
  • A total of 14,671 player-match observations were evaluated using multiple machine learning algorithms, including Logistic Regression, Gradient Boosting Classifiers, and Random Forest Classifiers.
  • Key findings showed that successful passing, short distribution, and maintaining clean sheets are crucial traits for elite goalkeepers, highlighting the importance of foot skills over hand skills in their performance.

Article Abstract

This study applied multiple machine learning algorithms to classify the performance levels of professional goalkeepers (GK). Technical performances of GK's competing in the elite divisions of England, Spain, Germany, and France were analysed in order to determine which factors distinguish elite GK's from sub-elite GK's. A total of (n = 14,671) player-match observations were analysed via multiple machine learning algorithms (MLA); Logistic Regressions (LR), Gradient Boosting Classifiers (GBC) and Random Forest Classifiers (RFC). The results revealed 15 common features across the three MLA's pertaining to the actions of passing and distribution, distinguished goalkeepers performing at the elite level from those that do not. Specifically, short distribution, passing the ball successfully, receiving passes successfully, and keeping clean sheets were all revealed to be common traits of GK's performing at the elite level. Moderate to high accuracy was reported across all the MLA's for the training data, LR (0.7), RFC (0.82) and GBC (0.71) and testing data, LR (0.67), RFC (0.66) and GBC (0.66). Ultimately, the results discovered in this study suggest that a GK's ability with their feet and not necessarily their hands are what distinguishes the elite GK's from the sub-elite.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8609025PMC
http://dx.doi.org/10.1038/s41598-021-01187-5DOI Listing

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