The variability of physical match demands in elite women’s football
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[1] A. Coutts,et al. Analysis of the worst-case scenarios in an elite football team: Towards a better understanding and application , 2021, Journal of sports sciences.
[2] Peter Krustrup,et al. Physical performance and loading for six playing positions in elite female football: full‐game, end‐game, and peak periods , 2021, Scandinavian journal of medicine & science in sports.
[3] S. Emmonds,et al. Whole and peak physical characteristics of elite youth female soccer match-play , 2020, Journal of sports sciences.
[4] Daniel Castillo,et al. Global Positioning System Analysis of Physical Demands in Small and Large-Sided Games with Floaters and Official Matches in the Process of Return to Play in High Level Soccer Players , 2020, Sensors.
[5] S. McLaren,et al. Decomposing the variability of match physical performance in professional soccer: Implications for monitoring individuals , 2020, European journal of sport science.
[6] J. Castellano,et al. Most running demand passages of match play in youth soccer congestion period , 2020, Biology of sport.
[7] M. McNarry,et al. A comparison of rolling averages versus discrete time epochs for assessing the worst-case scenario locomotor demands of professional soccer match-play. , 2020, Journal of science and medicine in sport.
[8] A. Rebelo,et al. Positional Differences in Peak- and Accumulated- Training Load Relative to Match Load in Elite Football , 2019, Sports.
[9] C. Twist,et al. Analysis of Physical Demands During Youth Soccer Match-Play: Considerations of Sampling Method and Epoch Length , 2019, Research quarterly for exercise and sport.
[10] A. Rebelo,et al. A comparison of match-physical demands between different tactical systems: 1-4-5-1 vs 1-3-5-2 , 2019, PloS one.
[11] A. Strauss,et al. The Use of GPS Analysis to Quantify the Internal and External Match Demands of Semi-Elite Level Female Soccer Players during a Tournament. , 2019, Journal of sports science & medicine.
[12] U. Wisløff,et al. Accelerations – a new approach to quantify physical performance decline in male elite soccer? , 2019, European journal of sport science.
[13] Kevin Till,et al. The peak duration-specific locomotor demands and concurrent collision frequencies of European Super League rugby , 2018, Journal of sports sciences.
[14] J. Vescovi,et al. Contextual factors on physical demands in professional women’s soccer: Female Athletes in Motion study , 2018, European journal of sport science.
[15] Tim J Gabbett,et al. Positional Differences in the Most Demanding Passages of Play in Football Competition. , 2018, Journal of sports science & medicine.
[16] D. Munguía-Izquierdo,et al. Variability of GPS-derived running performance during official matches in elite professional soccer players. , 2018, The Journal of sports medicine and physical fitness.
[17] Antonio Dello Iacono,et al. The Validity and Between-Unit Variability of GNSS Units (STATSports Apex 10 and 18 Hz) for Measuring Distance and Peak Speed in Team Sports , 2018, Front. Physiol..
[18] Kevin Till,et al. The Use of Microtechnology to Quantify the Peak Match Demands of the Football Codes: A Systematic Review , 2018, Sports Medicine.
[19] Hugo Folgado,et al. Speed synchronization, physical workload and match-to-match performance variation of elite football players , 2018, PloS one.
[20] Håvard D. Johansen,et al. Quantified Soccer Using Positional Data: A Case Study , 2018, Front. Physiol..
[21] S. Pettersen,et al. Position specific player load during match-play in a professional football club , 2018, PloS one.
[22] C. Cook,et al. Assessing worst case scenarios in movement demands derived from global positioning systems during international rugby union matches: Rolling averages versus fixed length epochs , 2018, PloS one.
[23] Joshua Trewin,et al. The match-to-match variation of match-running in elite female soccer. , 2018, Journal of science and medicine in sport.
[24] Barry Drust,et al. Match Physical Performance of Elite Female Soccer Players During International Competition , 2017, Journal of strength and conditioning research.
[25] Joshua Trewin,et al. The influence of situational and environmental factors on match-running in soccer: a systematic review , 2017 .
[26] Martin Buchheit,et al. Player-Tracking Technology: Half-Full or Half-Empty Glass? , 2017, International journal of sports physiology and performance.
[27] Peter J. Beek,et al. Quantification of in-season training load relative to match load in professional Dutch Eredivisie football players , 2017 .
[28] Stuart Morgan,et al. The acceleration and deceleration profiles of elite female soccer players during competitive matches. , 2017, Journal of science and medicine in sport.
[29] C. Carling,et al. Match-to-match variability in high-speed running activity in a professional soccer team , 2016, Journal of sports sciences.
[30] C. Carling,et al. Positional interchanges influence the physical and technical match performance variables of elite soccer players , 2016, Journal of sports sciences.
[31] Robert Hogg,et al. Factors influencing physical and technical variability in the English Premier League. , 2015, International journal of sports physiology and performance.
[32] Jace A. Delaney,et al. Establishing Duration-Specific Running Intensities From Match-Play Analysis in Rugby League. , 2015, International journal of sports physiology and performance.
[33] Keith Lyons,et al. Movement profiles of elite women soccer players during international matches and the effect of opposition’s team ranking , 2014, Journal of sports sciences.
[34] D. Bates,et al. Fitting Linear Mixed-Effects Models Using lme4 , 2014, 1406.5823.
[35] Jason D Vescovi,et al. Motion characteristics of women's college soccer matches: Female Athletes in Motion (FAiM) study. , 2014, International journal of sports physiology and performance.
[36] Christopher Carling,et al. Interpreting Physical Performance in Professional Soccer Match-Play: Should We be More Pragmatic in Our Approach? , 2013, Sports Medicine.
[37] M. Spencer,et al. Repeated high-intensity running and sprinting in elite women's soccer competition. , 2013, International journal of sports physiology and performance.
[38] Jason D Vescovi,et al. Sprint profile of professional female soccer players during competitive matches: Female Athletes in Motion (FAiM) study , 2012, Journal of sports sciences.
[39] G. Atkinson,et al. Match-to-Match Variability of High-Speed Activities in Premier League Soccer , 2010, International journal of sports medicine.
[40] Peter Krustrup,et al. Elite Female Soccer Players Perform More High-Intensity Running When Playing in International Games Compared With Domestic League Games , 2010, Journal of strength and conditioning research.
[41] Esa Peltola,et al. Application of four different football match analysis systems: A comparative study , 2010, Journal of sports sciences.
[42] Riccardo Bernardini,et al. Energy cost and metabolic power in elite soccer: a new match analysis approach. , 2010, Medicine and science in sports and exercise.
[43] S. Marshall,et al. Progressive statistics for studies in sports medicine and exercise science. , 2009, Medicine and science in sports and exercise.
[44] Tim J Gabbett,et al. Time-Motion Analysis of Small-Sided Training Games and Competition in Elite Women Soccer Players , 2008, Journal of strength and conditioning research.
[45] Peter Krustrup,et al. Match Activities of Elite Women Soccer Players at Different Performance Levels , 2008, Journal of strength and conditioning research.
[46] M. McGuigan,et al. Reliability of Performance of Elite Olympic Weightlifters , 2004, Journal of strength and conditioning research.
[47] P. Krustrup,et al. Match performance of high-standard soccer players with special reference to development of fatigue , 2003, Journal of sports sciences.
[48] W. Hopkins,et al. Variation in performance of elite cyclists from race to race , 2001 .
[49] W G Hopkins,et al. Design and analysis of research on sport performance enhancement. , 1999, Medicine and science in sports and exercise.