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Research Paper

Proposed framework for forecasting heat-effects on motor-cognitive performance in the Summer Olympics

ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon & ORCID Icon show all
Pages 262-283 | Received 29 Apr 2021, Accepted 14 Jul 2021, Published online: 20 Aug 2021

References

  • Gerrett N, Kingma BRM, Sluijter R, et al. Ambient conditions prior to tokyo 2020 olympic and paralympic games: considerations for acclimation or acclimatization strategies. Front Physiol. 2019;10.
  • Kakamu T, Wada K, Dr S, et al. Preventing heat illness in the anticipated hot climate of the Tokyo 2020 summer olympic games. Environ Health Prev Med. 2017;22(1):68.
  • Vanos JK, Kosaka E, Iida A, et al. Planning for spectator thermal comfort and health in the face of extreme heat: the Tokyo 2020 Olympic marathons. SciTotal Environ. 2019;657:904–917.
  • Vanos JK, Thomas WM, Grundstein AJ, et al. A multi-scalar climatological analysis in preparation for extreme heat at the Tokyo 2020 olympic and paralympic games. Temperature. 2020;7(2):191–214. doi: https://doi.org/10.1080/23328940.2020.1737479.
  • Pachauri RK, Allen MR, Barros VR, et al. Climate change 2014: synthesis report. Contribution of Working Groups I, II and III to the fifth assessment report of the Intergovernmental Panel on Climate Change. Ipcc; 2014. Geneva, Switzerland.
  • Moss RH, Edmonds JA, Hibbard KA, et al. The next generation of scenarios for climate change research and assessment. Nature. 2010;463(7282):747–756.
  • Nybo L, Rasmussen P, Sawka MN Performance in the heat—physiological factors of importance for hyperthermia-induced fatigue.
  • Nybo L, Nielsen B. Hyperthermia and central fatigue during prolonged exercise in humans. J Appl Physiol. 2001;91(3):1055–1060.
  • Che Muhamed AM, Yusof HA, Stannard SR, et al. The efficacy of ingesting water on thermoregulatory responses and running performance in a warm-humid condition. Front Physiol. 2019;10.
  • Lei T-H, Schlader ZJ, Che Muhamed AM, et al. Differences in dry-bulb temperature do not influence moderate-duration exercise performance in warm environments when vapor pressure is equivalent. Eur J Appl Physiol. 2020;120(4):841–852.
  • Nielsen B, Kassow K, Aschengreen FE. Heat balance during exercise in the sun. Eur J Appl Physiol. 1988;58:189–196.
  • Otani H, Kaya M, Tamaki A, et al. Exposure to high solar radiation reduces self-regulated exercise intensity in the heat outdoors. Physiol Behav. 2019;199:191–199.
  • Otani H, Kaya M, Tamaki A, et al. Effects of solar radiation on endurance exercise capacity in a hot environment. Eur J Appl Physiol. 2016;116(4):769–779.
  • Cheung SS. Neuromuscular response to exercise heat stress. Thermoregulation Hum Perform. 2008;53:39–60.
  • Racinais S, Ihsan M, Périard JD. Neural and Muscular Function in the Heat. In: Périard JD, Racinais S, editors. Heat stress in sport and exercise: thermophysiology of health and performance. Cham, Switzerland: Springer International Publishing. 2019; p. 67–88.
  • González‐Alonso J, Crandall CG, Johnson JM. The cardiovascular challenge of exercising in the heat. J Physiol. 2008;586:45–53.
  • Crandall CG, Wilson TE. Human cardiovascular responses to passive heat stress. Compr Physiol. 2015;5:17–43.
  • Crandall CG, González-Alonso J. Cardiovascular function in the heat-stressed human. Acta Physiol (Oxf). 2010;199(4):407–423.
  • Junge N, Jørgensen R, Flouris AD, et al. Prolonged self-paced exercise in the heat – environmental factors affecting performance. Temperature. 2016;3(4):539–548. doi: https://doi.org/10.1080/23328940.2016.1216257.
  • Racinais S, Alonso J-M, Coutts AJ, et al. Consensus recommendations on training and competing in the heat. Sports Med. 2015;45(7):925–938.
  • Racinais S, Cocking S, Périard JD. Sports and environmental temperature: from warming-up to heating-up. Temperature. 2017;4(3):227–257. doi: https://doi.org/10.1080/23328940.2017.1356427.
  • Cheuvront SN, Kenefick RW, Montain SJ, et al. Mechanisms of aerobic performance impairment with heat stress and dehydration. J Appl Physiol. 2010;109(6):1989–1995.
  • Sawka MN, Wenger CB, Young AJ, et al. Physiological responses to exercise in the heat 1993.
  • Trangmar SJ, Heat G-AJ. Hydration and the human brain, heart and skeletal muscles. Sports Med. 2019;49(S1):69–85.
  • Trangmar SJ, González-alonso J. New insights into the impact of dehydration on blood flow and metabolism during exercise. Exerc Sport Sci Rev. 2017;45(3):146–153.
  • Maughan RJ. Impact of mild dehydration on wellness and on exercise performance. Eur J Clin Nutr. 2003;57(S2):S19–S23.
  • Nielsen B, Kubica R, Bonnesen A, et al. Physical work capacity after dehydration and hyperthermia. Scandinavian j sports sci 3: 1981:2–10.
  • Drust B, Rasmussen P, Mohr M, et al. Elevations in core and muscle temperature impairs repeated sprint performance. Acta Physiol Scand. 2005;183(2):181–190.
  • Mohr M, Nybo L, Grantham J, et al. Physiological responses and physical performance during football in the heat. PLOS ONE. 2012;7(6):e39202.
  • González-Alonso J, Teller C, Andersen SL, et al. Influence of body temperature on the development of fatigue during prolonged exercise in the heat. J Appl Physiol. 1999;86(3):1032–1039.
  • Nybo L. CNS fatigue provoked by prolonged exercise in the heat. Front Biosci (Elite Ed). 2010;2(2):779–792.
  • Matsuura R, Arimitsu T, Yunoki T, et al. Effects of heat exposure in the absence of hyperthermia on power output during repeated cycling sprints. Bio sport Ins Sport. 2015;32(1):15–20.
  • Downs NJ, Axelsen T, Schouten P, et al. Biologically effective solar ultraviolet exposures and the potential skin cancer risk for individual gold medalists of the 2020 Tokyo Summer Olympic Games. Temperature. 2019;7(1):89–108. doi: https://doi.org/10.1080/23328940.2019.1581427.
  • Cheuvront SN, Kenefick RW. (2014). Dehydration: Physiology, Assessment, and Performance Effects. In Terjung R, editor. Comprehensive Physiology; 2014.
  • Montain SJ. Hydration Recommendations for Sport 2008. Curr Sports Med Rep. 2008;7(4):187.
  • Sawka MN, Burke LM, Eichner ER, et al. Exercise and Fluid Replacement. Med Sci Sports Exercise. 2007;39:377–390.
  • Sawka MN, Montain SJ. Fluid and electrolyte supplementation for exercise heat stress. Am J Clin Nutr. 2000;72(2):564S–572S.
  • Craig EN, Cummings EG. Dehydration and muscular work. J Appl Physiol. 1966;21(2):670–674.
  • González-Alonso J. Separate and combined influences of dehydration and hyperthermia on cardiovascular responses to exercise. Int J Sports Med. 1998;19(Suppl 2):S111–114.
  • Gonzalez-Alonso J, Mora-Rodriguez R, Below PR, et al. Dehydration reduces cardiac output and increases systemic and cutaneous vascular resistance during exercise. J Appl Physiol. 1995;79(5):1487–1496.
  • González -Alonso J, Mora-Rodríguez R, Below PR, et al. Dehydration markedly impairs cardiovascular function in hyperthermic endurance athletes during exercise. J Appl Physiol. 1997;82(4):1229–1236.
  • Nybo L, Jensen T, Nielsen B, et al. Effects of marked hyperthermia with and without dehydration onV˙o onV˙o2 kinetics during intense exercise. J Appl Physiol. 2001;90(3):1057–1064.
  • Trangmar SJ, Chiesa ST, Llodio I, et al. Dehydration accelerates reductions in cerebral blood flow during prolonged exercise in the heat without compromising brain metabolism. Am J Physiol Heart Circ Physiol. 2015;309(9):H1598–H1607.
  • Trangmar SJ, Chiesa ST, Stock CG, et al. Dehydration affects cerebral blood flow but not its metabolic rate for oxygen during maximal exercise in trained humans. J Physiol. 2014;592(14):3143–3160.
  • Walton CC, Keegan RJ, Martin M, et al. The potential role for cognitive training in sport: more research needed. Front Psychol. 2018;9.
  • Clarke ND, Duncan MJ, Smith M, et al. Pre-cooling moderately enhances visual discrimination during exercise in the heat. J Sports Sci. 2017;35(4):355–360.
  • Gaoua N, Racinais S, Grantham J, et al. Alterations in cognitive performance during passive hyperthermia are task dependent. Int J Hyperthermia. 2011;27(1):1–9.
  • Hocking C, Silberstein RB, Lau WM, et al. Evaluation of cognitive performance in the heat by functional brain imaging and psychometric testing. Comp Biochem Physiol Part A. 2001;128(4):719–734.
  • Lee JKW, Koh ACH, Koh SXT, et al. Neck cooling and cognitive performance following exercise-induced hyperthermia. Eur J Appl Physiol. 2014;114(2):375–384.
  • Liu K, Sun G, Li B, et al. The impact of passive hyperthermia on human attention networks: an fMRI study. Behav Brain Res. 2013;243:220–230.
  • McMorris T, Swain J, Smith M, et al. Heat stress, plasma concentrations of adrenaline, noradrenaline, 5-hydroxytryptamine and cortisol, mood state and cognitive performance. Int J Psychophysiol. 2006;61(2):204–215.
  • Racinais S, Gaoua N, Grantham J. Hyperthermia impairs short-term memory and peripheral motor drive transmission. J Physiol. 2008;586(19):4751–4762.
  • Schlader ZJ, Gagnon D, Adams A, et al. Cognitive and perceptual responses during passive heat stress in younger and older adults. Am J Physiol Regul Integr Comp Physiol. 2015;308(10):R847–R854.
  • Schlader ZJ, Lucas RAI, Pearson J, et al. Hyperthermia does not alter the increase in cerebral perfusion during cognitive activation. Exp Physiol. 2013;98(11):1597–1607.
  • Schmit C, Hausswirth C, Le Meur Y, et al. Cognitive functioning and heat strain: performance responses and protective strategies. Sports Med. 2017;47(7):1289–1302.
  • Sun G, Yang X, Jiang Q, et al. Hyperthermia impairs the executive function using the Attention Network Test. Int J Hyperthermia. 2012;28(7):621–626.
  • Bandelow S, Maughan R, Shirreffs S, et al. The effects of exercise, heat, cooling and rehydration strategies on cognitive function in football players. Scand J Med Sci Sports 20 Suppl. 2010;3:148–160.
  • Gaoua N, Herrera CP, Périard JD, et al. Effect of passive hyperthermia on working memory resources during simple and complex cognitive tasks. Front Psychol. 2017;8:2290.
  • Qian S, Li M, Li G, et al. Environmental heat stress enhances mental fatigue during sustained attention task performing: evidence from an ASL perfusion study. Behav Brain Res. 2015;280:6–15.
  • Simmons SE, Saxby BK, McGlone FP, et al. The effect of passive heating and head cooling on perception, cardiovascular function and cognitive performance in the heat. Eur J Appl Physiol. 2008;104(2):271–280.
  • Piil JF, Lundbye-Jensen J, Trangmar SJ, et al. Performance in complex motor tasks deteriorates in hyperthermic humans. Temperature. 2017;4(4):420–428. doi: https://doi.org/10.1080/23328940.2017.1368877.
  • D’Anci KE, Constant F, Rosenberg IH. Hydration and cognitive function in children. Nutr Rev. 2006;64(10):457–464.
  • Goodman SPJ, Moreland AT, Marino FE. Maintaining euhydration preserves cognitive performance, but is not superior to hypohydration. Journal of Cognitive Enhancement. 2019;3:338–348.
  • Gopinathan MA, Pichan G, Sharma VM. Role of dehydration in heat stress-induced variations in mental performance. Arch Environ Health. 1988;43(1):15–17.
  • Lindseth PD, Lindseth GN, Petros TV, et al. Effects of Hydration on Cognitive Function of Pilots. Mil Med. 2013;178(7):792–798.
  • Piil JF, Lundbye-Jensen J, Christiansen L, et al. High prevalence of hypohydration in occupations with heat stress—Perspectives for performance in combined cognitive and motor tasks. PLoS One. 2018;13(10):e0205321.
  • Sharma VM, Sridharan K, Pichan G, et al. Influence of heat-stress induced dehydration on mental functions. Ergonomics. 1986;29(6):791–799.
  • Smith MF, Newell AJ, Baker MR. Effect of acute mild dehydration on cognitive-motor performance in golf. J Strength Cond Res. 2012;26(11):3075.
  • Watson P, Whale A, Mears SA, et al. Mild hypohydration increases the frequency of driver errors during a prolonged, monotonous driving task. Physiol Behav. 2015;147:313–318.
  • Wittbrodt MT, Sawka MN, Mizelle JC, et al. Exercise‐heat stress with and without water replacement alters brain structures and impairs visuomotor performance. Physiol Rep. 2018;6(16):e13805.
  • Goodman SPJ, Moreland AT, Marino FE. The effect of active hypohydration on cognitive function: a systematic review and meta-analysis. Physiol Behav. 2019;204:297–308.
  • Wittbrodt M, Millard-Stafford M. Dehydration Impairs Cognitive Performance: a Meta-analysis. Med Sci Sports Exercise. 2018;50(11):2360–2368.
  • Piil JF, Christiansen L, Morris NB, et al. Direct exposure of the head to solar heat radiation impairs motor-cognitive performance. Sci Rep. 2020;10(1):7812.
  • Griggs KE, Stephenson BT, Price MJ, et al. Heat-related issues and practical applications for Paralympic athletes at Tokyo 2020. Temperature. 2019;7(1):37–57. doi: https://doi.org/10.1080/23328940.2019.1617030.
  • Malchaire J, Piette A, Kampmann B, et al. Development and validation of the predicted heat strain model. Ann Work Expo Health. 2000;45(2):123–135.
  • Liljegren JC, Carhart RA, Lawday P, et al. Modeling the wet bulb globe temperature using standard meteorological measurements. J Occup Environ Hyg. 2008;5(10):645–655.
  • Ramsey JD, Bernard TE. Heat Stress. In Harris R, editor. Patty’s Industrial Hygiene; 2001.
  • Ioannou, Tsoutsoubi L, Mantzios K, et al. A free software to predict heat strain according to the ISO 7933: 2018. Ind Health. 2019;57(6):711–720.
  • Morrison S, Sleivert GG, Cheung SS. Passive hyperthermia reduces voluntary activation and isometric force production. Eur J Appl Physiol. 2004;91(5–6):729–736.
  • Simmons SE, Mündel T, Jones DA. The effects of passive heating and head-cooling on perception of exercise in the heat. Eur J Appl Physiol. 2008;104(2):281–288.
  • Wolpert DM, Landy MS. Motor control is decision-making. Curr Opin Neurobiol. 2012;22(6):996–1003.
  • Yarrow K, Brown P, Krakauer JW. Inside the brain of an elite athlete: the neural processes that support high achievement in sports. Nat Rev Neurosci. 2009;10(8):585–596.
  • Araújo D, Davids K, Diniz A, et al. Ecological dynamics of continuous and categorical decision-making: the regatta start in sailing. Eur J Sport Sci. 2015;15(3):195–202.
  • Koo TK, Li MY. A guideline of selecting and reporting intraclass correlation coefficients for reliability research. J Chiropr Med. 2016;15(2):155–163.
  • FIFA.com. Women’s Olympic Football Tournament Tokyo 2020 - FIFA.com [Online]. www.fifa.com:[dateunknown].https://www.fifa.com/womensolympic/ [2021 Mar 18].
  • Nybo L, Flouris AD, Racinais S, et al. Football facing a future with global warming: perspectives for players health and performance. Br J Sports Med. 2021;55(6):297–298.
  • Lei T-H, Mündel T. Humid heat stress affects trained female athletes more than does their menstrual phase. Temperature. 2018;5(3):202–204. doi: https://doi.org/10.1080/23328940.2018.1436394.
  • Lei T, Cotter JD, Schlader ZJ, et al. On exercise thermoregulation in females: interaction of endogenous and exogenous ovarian hormones. J Physiol. 2019;597(1):71–88.
  • Gagnon D, Kenny GP. Sex differences in thermoeffector responses during exercise at fixed requirements for heat loss. J Appl Physiol (1985). 2012;113(5):746–757.
  • Flouris AD, McGinn R, Poirier MP, et al. Screening criteria for increased susceptibility to heat stress during work or leisure in hot environments in healthy individuals aged 31–70 years. Temperature. 2017;5(1):86–99. doi: https://doi.org/10.1080/23328940.2017.1381800.
  • Nybo L. Hyperthermia and fatigue. J Appl Physiol. 2008;104(3):871–878.
  • Nybo L, Secher NH. Cerebral perturbations provoked by prolonged exercise. Prog Neurobiol. 2004;72:223–261.
  • Bongers CCWG, Hopman MTE, Eijsvogels TMH. Cooling interventions for athletes: an overview of effectiveness, physiological mechanisms, and practical considerations. Temperature. 2017;4(1):60–78. doi: https://doi.org/10.1080/23328940.2016.1277003.
  • Costa RJS, Gaskell SK, McCubbin AJ, et al. Exertional-heat stress-associated gastrointestinal perturbations during Olympic sports: management strategies for athletes preparing and competing in the 2020 Tokyo Olympic Games. Temperature. 2020;7(1):58–88. doi: https://doi.org/10.1080/23328940.2019.1597676.
  • Lei T-H, Wang F. Looking ahead of 2021 tokyo summer olympic games: how does humid heat affect endurance performance? Insight into physiological mechanism and heat-related illness prevention strategies. J Therm Biol. 2021;99:102975.
  • Morris NB, Jay O, Flouris AD, et al. Sustainable solutions to mitigate occupational heat strain – an umbrella review of physiological effects and global health perspectives. Environ Health. 2020;19(1):95.
  • Daanen HAM, Racinais S, Périard JD. Heat acclimation decay and re-induction: a systematic review and meta-analysis. Sports Med. 2018;48(2):409–430.
  • Lorenzo S, Halliwill JR, Sawka MN, et al. Heat acclimation improves exercise performance. J Appl Physiol (1985). 2010;109(4):1140–1147.
  • Mikkelsen CJ, Junge N, Piil JF, et al. Prolonged Heat Acclimation and Aerobic Performance in Endurance Trained Athletes. Front Physiol. 2019;10.
  • Nadel ER, Pandolf KB, Roberts MF, et al. Mechanisms of thermal acclimation to exercise and heat. J Appl Physiol. 1974;37(4):515–520.
  • Oberholzer L, Siebenmann C, Mikkelsen CJ, et al. Hematological adaptations to prolonged heat acclimation in endurance- trained males. Front Physiol. 2019;10.
  • Périard JD, Racinais S, Sawka MN. Adaptations and mechanisms of human heat acclimation: applications for competitive athletes and sports. Scand J Med Sci Sports. 2015;25(Suppl 1):20–38.
  • Sawka MN, Latzka WA, Montain SJ, et al. Physiologic tolerance to uncompensable heat: intermittent exercise, field vs laboratory. Med Sci Sports Exerc. 2001;33(3):422–430.
  • Nielsen B, Strange S, Christensen NJ, et al. Acute and adaptive responses in humans to exercise in a warm, humid environment. Pflugers Arch. 1997;434(1):49–56.
  • Nielsen B, Hales JR, Strange S, et al. Human circulatory and thermoregulatory adaptations with heat acclimation and exercise in a hot, dry environment. J Physiol. 1993;460(1):467–485.
  • Racinais S, Wilson MG, Gaoua N, et al. Heat acclimation has a protective effect on the central but not peripheral nervous system. J Appl Physiol. 2017;123(4):816–824.
  • Radakovic SS, Maric J, Surbatovic M, et al. Effects of acclimation on cognitive performance in soldiers during exertional heat stress. Mil Med. 2007;172(2):133–136.
  • Brazaitis M, Skurvydas A. Heat acclimation does not reduce the impact of hyperthermia on central fatigue. Eur J Appl Physiol. 2010;109(4):771–778.
  • Piil JF, Mikkelsen CJ, Junge N, et al. Heat acclimation does not protect trained males from hyperthermia-induced impairments in complex task performance. Int J Environ Res Public Health. 2019;16(5):716.
  • Taylor L, Watkins SL, Marshall H, et al. The impact of different environmental conditions on cognitive function: a focused review. Front Physiol. 2016;6.
  • Morris NB, Jay O. To drink or to pour: how should athletes use water to cool themselves? Temperature. 2016;3(2):191–194.doi: https://doi.org/10.1080/23328940.2016.1185206.
  • Siegel R, Maté J, Watson G, et al. Pre-cooling with ice slurry ingestion leads to similar run times to exhaustion in the heat as cold water immersion. J Sports Sci. 2012;30(2):155–165.
  • Siegel R, Maté J, Brearley MB, et al. Ice slurry ingestion increases core temperature capacity and running time in the heat. Med Sci Sports Exerc. 2010;42(4):717–725.
  • Misailidi M, Mantzios K, Papakonstantinou C, et al. Environmental and psychophysical heat stress in adolescent tennis athletes. Int J Sports Physiol Perform. 2021;1–6.
  • Bongers CCWG, Thijssen DHJ, Veltmeijer MTW, et al. Precooling and percooling (cooling during exercise) both improve performance in the heat: a meta-analytical review. Br J Sports Med. 2015;49(6):377–384.
  • Jay O, Hoelzl R, Weets J, et al. Fanning as an alternative to air conditioning – a sustainable solution for reducing indoor occupational heat stress. Energy Build. 2019;193:92–98.
  • Morris NB, English T, Hospers L, et al. The effects of electric fan use under differing resting heat index conditions: a clinical trial.
  • Morris NB, Chaseling GK, English T, et al. Electric fan use for cooling during hot weather: a biophysical modelling study. Lancet Planet Health. 2021;5(6):e368–e377.
  • Bongers CCWG, Hopman MTE, Eijsvogels TMH. Cooling interventions for athletes: an overview of effectiveness, physiological mechanisms, and practical considerations. Temperature. 2017;4(1):60–78. doi: https://doi.org/10.1080/23328940.2016.1277003.
  • Ainsworth BE, Haskell WL, Herrmann SD, et al. Compendium of physical activities: a second update of codes and MET Values. Med Sci Sports Exercise. 2011;438:1575–1581. 2011
  • Morris KS, Osborne MA, Shephard ME, et al. Velocity, aerobic power and metabolic cost of whole body and arms only front crawl swimming at various stroke rates. Eur J Appl Physiol. 2016;116(5):1075–1085.
  • Pe DP, Botter A, Osgnach C. The energy cost of sprint running and the role of metabolic power in setting top performances. Eur J Appl Physiol. 2015;115(3):451–469.
  • Spencer MR, Gastin PB. Energy system contribution during 200- to 1500-m running in highly trained athletes. Med Sci Sports Exercise. 2001;33:157–162.
  • Brisswalter J, Fougeron B, Legros P. Variability in energy cost and walking gait during race walking in competitive race walkers. Med Sci Sports Exercise. 1998;30:1451–1455.
  • Faude O, Meyer T, Rosenberger F, et al. Physiological characteristics of badminton match play. Eur J Appl Physiol. 2007;100(4):479–485.
  • McInnes SE, Carlson JS, Jones CJ, et al. The physiological load imposed on basketball players during competition. J Sports Sci. 1995;13(5):387–397.
  • Michael JS, Rooney KB, Smith R. The Metabolic Demands of Kayaking: a Review. J Sports Sci Med. 2008;7:1–7.
  • Novak AR, Dascombe BJ. Physiological and performance characteristics of road, mountain bike and BMX cyclists. Journal of Science and Cycling. 2014;3(3):9-16.
  • Ebert TR, Martin DT, Stephens B, et al. Power output during a professional men’s road-cycling tour. Int J Sports Physiol Perform. 2006;1(4):324–335.
  • Granier C, Abbiss CR, Aubry A, et al. Power output and pacing during international cross-country mountain bike cycling. Int J Sports Physiol Perform. 2018;13(9):1243–1249.
  • Craig NP, Norton KI. Characteristics of track cycling. Sports Med. 2001;31(7):457–468.
  • Osgnach C, Poser S, Bernardini R, et al. Energy cost and metabolic power in elite soccer: a new match analysis approach. Med Sci Sports Exercise. 2010;42(1):170–178.
  • Y M, S K, T H. Heart rate and metabolic responses to participation in golf. J Sports Med Phys Fitness. 1989;29:269–272.
  • Banister EW, Ribisl PM, Porter GH, et al. The caloric cost of playing handball. Res Quarterly Am Asso Health, Phyl Edu Recreation. 1964;35(3):236–240.
  • Sell KM, Ledesma AB Heart rate and energy expenditure in division i field hockey players during competitive play. Wolters Kluwer: 2016.
  • Arseneau E, Mekary S, Léger LA. V2 Requirements of Boxing Exercises. J Strength Cond Res. 2011;25(2):348–359.
  • Crisafulli A, Vitelli S, Cappai I, et al. Physiological responses and energy cost during a simulation of a Muay Thai boxing match. Appl Physiol Nutr Metab. 2009;34(2):143–150.
  • Horswill CA. Applied Physiology of Amateur Wrestling. Sports Med. 1992;14:114–143.
  • Secher NH. The physiology of rowing. J Sports Sci. 1983;1(1):23–53.
  • Dubois R, Paillard T, Lyons M, et al. Metabolic demands of elite rugby union assessed using traditional, metabolic power, and heart rate monitoring methods. J Sports Sci Med. 2017;16:84–92.
  • Bojsen-Moller J, Larsson B, Magnusson SP, et al. Strength and endurance profiles of elite Olympic class sailors. In: Human performance in sailing conference proceedings: incorporating the 4th European Conference on Sailing Sports Science and Sports Medicine and the 3rd Australian Sailing Science Conference. Palmerston North, New Zealand: Massey University. 2003, p. 97–111.
  • Murias JM, Lanatta D, Arcuri CR, et al. Metabolic and functional responses playing tennis on different surfaces. J Strength Cond Res. 2007;21(1):112–117.