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Effective injury forecasting in soccer with GPS training data and machine learning

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Listed:
  • Alessio Rossi
  • Luca Pappalardo
  • Paolo Cintia
  • F Marcello Iaia
  • Javier Fernàndez
  • Daniel Medina

Abstract

Injuries have a great impact on professional soccer, due to their large influence on team performance and the considerable costs of rehabilitation for players. Existing studies in the literature provide just a preliminary understanding of which factors mostly affect injury risk, while an evaluation of the potential of statistical models in forecasting injuries is still missing. In this paper, we propose a multi-dimensional approach to injury forecasting in professional soccer that is based on GPS measurements and machine learning. By using GPS tracking technology, we collect data describing the training workload of players in a professional soccer club during a season. We then construct an injury forecaster and show that it is both accurate and interpretable by providing a set of case studies of interest to soccer practitioners. Our approach opens a novel perspective on injury prevention, providing a set of simple and practical rules for evaluating and interpreting the complex relations between injury risk and training performance in professional soccer.

Suggested Citation

  • Alessio Rossi & Luca Pappalardo & Paolo Cintia & F Marcello Iaia & Javier Fernàndez & Daniel Medina, 2018. "Effective injury forecasting in soccer with GPS training data and machine learning," PLOS ONE, Public Library of Science, vol. 13(7), pages 1-15, July.
  • Handle: RePEc:plo:pone00:0201264
    DOI: 10.1371/journal.pone.0201264
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    References listed on IDEAS

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    1. Erik E. Lehmann & Günther G. Schulze, 2007. "What does it take to be a star? The role of performance and the media for German soccer players," Discussion Paper Series 1, Department of International Economic Policy, University of Freiburg, revised Mar 2008.
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    1. Francisco Martins & Adilson Marques & Cíntia França & Hugo Sarmento & Ricardo Henriques & Andreas Ihle & Marcelo de Maio Nascimento & Carolina Saldanha & Krzysztof Przednowek & Élvio Rúbio Gouveia, 2023. "Weekly External Load Performance Effects on Sports Injuries of Male Professional Football Players," IJERPH, MDPI, vol. 20(2), pages 1-12, January.
    2. Lore Zumeta-Olaskoaga & Maximilian Weigert & Jon Larruskain & Eder Bikandi & Igor Setuain & Josean Lekue & Helmut Küchenhoff & Dae-Jin Lee, 2023. "Prediction of sports injuries in football: a recurrent time-to-event approach using regularized Cox models," AStA Advances in Statistical Analysis, Springer;German Statistical Society, vol. 107(1), pages 101-126, March.
    3. Qi, Yufei & Sajadi, S. Mohammad & Baghaei, S. & Rezaei, R. & Li, Wei, 2024. "Digital technologies in sports: Opportunities, challenges, and strategies for safeguarding athlete wellbeing and competitive integrity in the digital era," Technology in Society, Elsevier, vol. 77(C).

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