Relationship between external and internal load indicators and injury using machine learning in professional soccer: a systematic review and meta-analysis

被引:8
|
作者
Pillitteri, Guglielmo [1 ,2 ]
Petrigna, Luca [3 ]
Ficarra, Salvatore [1 ,2 ]
Giustino, Valerio [1 ,11 ]
Thomas, Ewan [1 ]
Rossi, Alessio [4 ]
Clemente, Filipe Manuel [5 ,6 ,10 ]
Paoli, Antonio [7 ]
Petrucci, Marco [8 ]
Bellafiore, Marianna [1 ]
Palma, Antonio [1 ,9 ]
Battaglia, Giuseppe [1 ,9 ]
机构
[1] Univ Palermo, Sport & Exercise Sci Res Unit, Dept Psychol Educ Sci & Human Movement, Palermo, Italy
[2] Univ Palermo, Program Hlth Promot & Cognit Sci, Palermo, Italy
[3] Univ Catania, Human Anat & Histol Sect, Dept Biomed & Biotechnol Sci, Sch Med, Catania, Italy
[4] Univ Pisa, Dept Comp Sci, Pisa, Italy
[5] Inst Politecn Viana do Castelo, Escola Super Desporto & Lazer, Rua Escola Ind & Comercial Nun Alvares, Viana Do Castelo, Portugal
[6] Res Ctr Sports Performance Recreat Innovat & Techn, Melgaco, Portugal
[7] Univ Padua, Dept Biomed Sci, Padua, Italy
[8] Football Club Palermo, Palermo, Italy
[9] Reg Sports Sch CONI Sicilia, Palermo, Italy
[10] Gdansk Univ Phys Educ & Sport, Gdansk, Poland
[11] Univ Palermo, Dept Psychol Educ Sci & Human Movement, Sport & Exercise Sci Res Unit, Via Giovanni Pascoli 6, I-90144 Palermo, Italy
关键词
Soccer; sport performance; training load; injury; machine learning; MEASURE TRAINING LOAD; PERCEIVED EXERTION; PHYSICAL PERFORMANCE; OFFICIAL GAMES; WORKLOAD RATIO; SESSION-RPE; FOOTBALL; PLAYERS; RISK; TEAM;
D O I
10.1080/15438627.2023.2297190
中图分类号
G8 [体育];
学科分类号
04 ; 0403 ;
摘要
This study verified the relationship between internal load (IL) and external load (EL) and their association on injury risk (IR) prediction considering machine learning (ML) approaches. Studies were included if: (1) participants were male professional soccer players; (2) carried out for at least 2 sessions, exercises, or competitions; (3) correlated training load (TL) with non-contact injuries; (4) applied ML approaches to predict TL and non-contact injuries. TL included: IL indicators (Rating of Perceived Exertion, RPE; Session-RPE, Heart Rate, HR) and EL indicators (Global Positioning System, GPS variables); the relationship between EL and IL through index, ratio, formula; ML indicators included performance measures, predictive performance of ML methods, measure of feature importance, relevant predictors, outcome variable, predictor variable, data pre-processing, features selection, ML methods. Twenty-five studies were included. Eleven addressed the relationship between EL and IL. Five used EL/IL indexes. Five studies predicted IL indicators. Three studies investigated the association between EL and IL with IR. One study predicted IR using ML. Significant positive correlations were found between S-RPE and total distance (TD) (r = 0.73; 95% CI (0.64 to 0.82)) as well as between S-RPE and player load (PL) (r = 0.76; 95% CI (0.68 to 0.84)). Association between IL and EL and their relationship with injuries were found. RPE, S-RPE, and HR were associated with different EL indicators. A positive relationship between EL and IL indicators and IR was also observed. Moreover, new indexes or ratios (integrating EL and IL) to improve knowledge regarding TL and fitness status were also applied. ML can predict IL indicators (HR and RPE), and IR. The present systematic review was registered in PROSPERO (CRD42021245312).
引用
收藏
页码:902 / 938
页数:37
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