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Published in: Sports Medicine 3/2008

01-03-2008 | Review Article

Describing and Understanding Pacing Strategies during Athletic Competition

Authors: Chris R. Abbiss, Paul B. Laursen

Published in: Sports Medicine | Issue 3/2008

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Abstract

It is widely recognized that an athlete’s ‘pacing strategy’, or how an athlete distributes work and energy throughout an exercise task, can have a significant impact on performance. By applying mathematical modelling (i.e. power/velocity and force/time relationships) to athletic performances, coaches and researchers have observed a variety of pacing strategies. These include the negative, all-out, positive, even, parabolic-shaped and variable pacing strategies. Research suggests that extremely short-duration events (≤30 seconds) may benefit from an explosive ‘all—out’ strategy, whereas during prolonged events (>2 minutes), performance times may be improved if athletes distribute their pace more evenly. Knowledge pertaining to optimal pacing strategies during middle—distance (1.5–2 minutes) and ultra-endurance (>4 hours) events is currently lacking. However, evidence suggests that during these events well trained athletes tend to adopt a positive pacing strategy, whereby after peak speed is reached, the athlete progressively slows. The underlying mechanisms influencing the regulation of pace during exercise are currently unclear. It has been suggested, however, that self-selected exercise intensity is regulated within the brain based on a complex algorithm involving peripheral sensory feedback and the anticipated workload remaining. Furthermore, it seems that the rate and capacity limitations of anaerobic and aerobic energy supply/utilization are particularly influential in dictating the optimal pacing strategy during exercise. This article outlines the various pacing profiles that have previously been observed and discusses possible factors influencing the self-selection of such strategies.
Literature
1.
go back to reference van Ingen Schenau GJ, de Koning JJ, de Groot G. The distribution of anaerobic energy in 1000 and 4000 metre cycling bouts. Int J Sports Med 1992; 13 (6): 447–51PubMedCrossRef van Ingen Schenau GJ, de Koning JJ, de Groot G. The distribution of anaerobic energy in 1000 and 4000 metre cycling bouts. Int J Sports Med 1992; 13 (6): 447–51PubMedCrossRef
2.
go back to reference Foster C, de Koning JJ, Hettinga F, et al. Effect of competitive distance on energy expenditure during simulated competition. Int J Sports Med 2004; 25 (3): 198–204PubMedCrossRef Foster C, de Koning JJ, Hettinga F, et al. Effect of competitive distance on energy expenditure during simulated competition. Int J Sports Med 2004; 25 (3): 198–204PubMedCrossRef
3.
go back to reference Foster C, Hoyos J, Earnest C, et al. Regulation of energy expenditure during prolonged athletic competition. Med Sci Sports Exerc 2005; 37 (4): 670–5PubMedCrossRef Foster C, Hoyos J, Earnest C, et al. Regulation of energy expenditure during prolonged athletic competition. Med Sci Sports Exerc 2005; 37 (4): 670–5PubMedCrossRef
4.
go back to reference Marino FE. Anticipatory regulation and avoidance of catastrophe during exercise—induced hyperthermia. Comp Biochem Physiol B Biochem Mol Biol 2004; 139 (4): 561–9PubMedCrossRef Marino FE. Anticipatory regulation and avoidance of catastrophe during exercise—induced hyperthermia. Comp Biochem Physiol B Biochem Mol Biol 2004; 139 (4): 561–9PubMedCrossRef
5.
go back to reference Tucker R, Marle T, Lambert EV, et al. The rate of heat storage mediates the anticipatory reduction in exercise workrate during cycling in the heat at a fixed rating of perceived exertion. J Physiol (Lond) 2006; 574 (3): 905–15CrossRef Tucker R, Marle T, Lambert EV, et al. The rate of heat storage mediates the anticipatory reduction in exercise workrate during cycling in the heat at a fixed rating of perceived exertion. J Physiol (Lond) 2006; 574 (3): 905–15CrossRef
6.
go back to reference Atkinson G, Davison R, Jeukendrup A, et al. Science and cycling: current knowledge and future directions for research. J Sports Sci 2003; 21 (9): 767–87PubMedCrossRef Atkinson G, Davison R, Jeukendrup A, et al. Science and cycling: current knowledge and future directions for research. J Sports Sci 2003; 21 (9): 767–87PubMedCrossRef
7.
go back to reference de Koning JJ, Bobbert MF, Foster C. Determination of optimal pacing strategy in track cycling with an energy flow model. J Sci Med Sport 1999; 2 (3): 266–77PubMedCrossRef de Koning JJ, Bobbert MF, Foster C. Determination of optimal pacing strategy in track cycling with an energy flow model. J Sci Med Sport 1999; 2 (3): 266–77PubMedCrossRef
8.
go back to reference Foster C, Snyder AC, Thompson NN, et al. Effect of pacing strategy on cycle time trial performance. Med Sci Sports Exerc 1993; 25 (3): 383–8PubMed Foster C, Snyder AC, Thompson NN, et al. Effect of pacing strategy on cycle time trial performance. Med Sci Sports Exerc 1993; 25 (3): 383–8PubMed
9.
go back to reference Foster C, Schrager M, Snyder AC, et al. Pacing strategy and athletic performance. Sports Med 1994; 17 (2): 77–85PubMedCrossRef Foster C, Schrager M, Snyder AC, et al. Pacing strategy and athletic performance. Sports Med 1994; 17 (2): 77–85PubMedCrossRef
10.
go back to reference Atkinson G, Edwards B. Pacing strategy and cycling performance: field data from the 1997 British 16 km time—trial championship [abstract]. In: Sargeant AJ, Siddons H, editors. Proceedings of the Third Annual Congress of the European College of Sports Science. Liverpool: Centre for Health Care Development, 1998: 211 Atkinson G, Edwards B. Pacing strategy and cycling performance: field data from the 1997 British 16 km time—trial championship [abstract]. In: Sargeant AJ, Siddons H, editors. Proceedings of the Third Annual Congress of the European College of Sports Science. Liverpool: Centre for Health Care Development, 1998: 211
11.
go back to reference St Clair Gibson A, Lambert EV, Rauch LHG, et al. The role of information processing between the brain and peripheral physiological systems in pacing and perception of effort. Sports Med 2006; 36 (8): 705–22CrossRef St Clair Gibson A, Lambert EV, Rauch LHG, et al. The role of information processing between the brain and peripheral physiological systems in pacing and perception of effort. Sports Med 2006; 36 (8): 705–22CrossRef
12.
go back to reference Abbiss CR, Laursen PB. Models to explain fatigue during prolonged endurance cycling. Sports Med 2005; 35 (10): 865–98PubMedCrossRef Abbiss CR, Laursen PB. Models to explain fatigue during prolonged endurance cycling. Sports Med 2005; 35 (10): 865–98PubMedCrossRef
13.
go back to reference St Clair Gibson A, Lambert MI, Noakes TD. Neural control of force output during maximal and submaximal exercise. Sports Med 2001; 31 (9): 637–50CrossRef St Clair Gibson A, Lambert MI, Noakes TD. Neural control of force output during maximal and submaximal exercise. Sports Med 2001; 31 (9): 637–50CrossRef
14.
go back to reference Padilla S, Mujika I, Orbananos J, et al. Exercise intensity during competition time trials in professional road cycling. Med Sci Sports Exerc 2000; 32 (4): 850–6PubMedCrossRef Padilla S, Mujika I, Orbananos J, et al. Exercise intensity during competition time trials in professional road cycling. Med Sci Sports Exerc 2000; 32 (4): 850–6PubMedCrossRef
15.
go back to reference Wilberg RB, Pratt J. A survey of the race profiles of cyclists in the pursuit and kilo track events. Can J Sport Sci 1988; 13 (4): 208–13PubMed Wilberg RB, Pratt J. A survey of the race profiles of cyclists in the pursuit and kilo track events. Can J Sport Sci 1988; 13 (4): 208–13PubMed
16.
go back to reference Coyle EF. Physiological determinants of endurance exercise performance. J Sci Med Sport 1999; 2 (3): 181–9PubMedCrossRef Coyle EF. Physiological determinants of endurance exercise performance. J Sci Med Sport 1999; 2 (3): 181–9PubMedCrossRef
17.
go back to reference Billat LV, Koralsztein JP, Morton RH. Time in human endurance models: from empirical models to physiological models. Sports Med 1999; 27 (6): 359–79PubMedCrossRef Billat LV, Koralsztein JP, Morton RH. Time in human endurance models: from empirical models to physiological models. Sports Med 1999; 27 (6): 359–79PubMedCrossRef
18.
go back to reference Swain DP. A model for optimizing cycling performance by varying power on hills and in wind. Med Sci Sports Exerc 1997; 29 (8): 1104–8PubMedCrossRef Swain DP. A model for optimizing cycling performance by varying power on hills and in wind. Med Sci Sports Exerc 1997; 29 (8): 1104–8PubMedCrossRef
19.
go back to reference Faria EW, Parker DL, Faria IE. The science of cycling: factors affecting performance: part 2. Sports Med 2005; 35 (4): 313–37PubMedCrossRef Faria EW, Parker DL, Faria IE. The science of cycling: factors affecting performance: part 2. Sports Med 2005; 35 (4): 313–37PubMedCrossRef
20.
go back to reference Arsac LM, Locatelli E. Modeling the energetics of 100−m running by using speed curves of world champions. J Appl Physiol 2002; 92 (5): 1781–8PubMed Arsac LM, Locatelli E. Modeling the energetics of 100−m running by using speed curves of world champions. J Appl Physiol 2002; 92 (5): 1781–8PubMed
21.
go back to reference Candau RB, Grappe F, Menard M, et al. Simplified deceleration method for assessment of resistive forces in cycling. Med Sci Sports Exerc 1999; 31 (10): 1441–7PubMedCrossRef Candau RB, Grappe F, Menard M, et al. Simplified deceleration method for assessment of resistive forces in cycling. Med Sci Sports Exerc 1999; 31 (10): 1441–7PubMedCrossRef
22.
go back to reference Smith MF, Davison RC, Balmer J, et al. Reliability of mean power recorded during indoor and outdoor self—paced 40 km cycling time—trials. Int J Sports Med 2001; 22 (4): 270–4PubMedCrossRef Smith MF, Davison RC, Balmer J, et al. Reliability of mean power recorded during indoor and outdoor self—paced 40 km cycling time—trials. Int J Sports Med 2001; 22 (4): 270–4PubMedCrossRef
23.
go back to reference Balmer J, Davison RC, Bird SR. Peak power predicts performance power during an outdoor 16.1−km cycling time trial. Med Sci Sports Exerc 2000; 32 (8): 1485–90PubMedCrossRef Balmer J, Davison RC, Bird SR. Peak power predicts performance power during an outdoor 16.1−km cycling time trial. Med Sci Sports Exerc 2000; 32 (8): 1485–90PubMedCrossRef
24.
go back to reference Keller JB. Optimal velocity in a race. Am Math Monthly 1974; 81 (5): 474–80CrossRef Keller JB. Optimal velocity in a race. Am Math Monthly 1974; 81 (5): 474–80CrossRef
25.
go back to reference Sandals LE, Wood DM, Draper SB, et al. Influence of pacing strategy on oxygen uptake during treadmill middle—distance running. Int J Sports Med 2006; 27 (1): 37–42PubMedCrossRef Sandals LE, Wood DM, Draper SB, et al. Influence of pacing strategy on oxygen uptake during treadmill middle—distance running. Int J Sports Med 2006; 27 (1): 37–42PubMedCrossRef
26.
go back to reference Mattern CO, Kenefick RW, Kertzer R, et al. Impact of starting strategy on cycling performance. Int J Sports Med 2001; 22 (5): 350–5PubMedCrossRef Mattern CO, Kenefick RW, Kertzer R, et al. Impact of starting strategy on cycling performance. Int J Sports Med 2001; 22 (5): 350–5PubMedCrossRef
27.
go back to reference Robinson S, Robinson D, Mountjoy RJ, et al. Influence of fatigue on the efficiency of men during exhausting runs. J Appl Physiol 1958; 12: 197–201PubMed Robinson S, Robinson D, Mountjoy RJ, et al. Influence of fatigue on the efficiency of men during exhausting runs. J Appl Physiol 1958; 12: 197–201PubMed
28.
go back to reference Tucker R, Rauch L, Harley YXR, et al. Impaired exercise performance in the heat is associated with an anticipatory reduction in skeletal muscle recruitment. Pflugers Arch 2004; 448: 422–30PubMedCrossRef Tucker R, Rauch L, Harley YXR, et al. Impaired exercise performance in the heat is associated with an anticipatory reduction in skeletal muscle recruitment. Pflugers Arch 2004; 448: 422–30PubMedCrossRef
29.
go back to reference Albertus Y, Tucker R, Gibson ASC, et al. Effect of distance feedback on pacing strategy and perceived exertion during cycling. Med Sci Sports Exerc 2005; 37 (3): 461–8PubMedCrossRef Albertus Y, Tucker R, Gibson ASC, et al. Effect of distance feedback on pacing strategy and perceived exertion during cycling. Med Sci Sports Exerc 2005; 37 (3): 461–8PubMedCrossRef
30.
go back to reference Nikolopoulos V, Arkinstall MJ, Hawley JA. Pacing strategy in simulated cycle time—trials is based on perceived rather than actual distance. J Sci Med Sport 2001; 4 (2): 212–9PubMedCrossRef Nikolopoulos V, Arkinstall MJ, Hawley JA. Pacing strategy in simulated cycle time—trials is based on perceived rather than actual distance. J Sci Med Sport 2001; 4 (2): 212–9PubMedCrossRef
31.
go back to reference Kay D, Marino FE, Cannon J, et al. Evidence for neuromuscular fatigue during high—intensity cycling in warm, humid conditions. Eur J Appl Physiol 2001; 84 (1-2): 115–21PubMedCrossRef Kay D, Marino FE, Cannon J, et al. Evidence for neuromuscular fatigue during high—intensity cycling in warm, humid conditions. Eur J Appl Physiol 2001; 84 (1-2): 115–21PubMedCrossRef
32.
go back to reference Tatterson AJ, Hahn AG, Martin DT, et al. Effects of heat stress on physiological responses and exercise performance in elite cyclists. J Sci Med Sport 2000; 3 (2): 186–93PubMedCrossRef Tatterson AJ, Hahn AG, Martin DT, et al. Effects of heat stress on physiological responses and exercise performance in elite cyclists. J Sci Med Sport 2000; 3 (2): 186–93PubMedCrossRef
33.
go back to reference Rauch HGL, St Clair Gibson A, Lambert EV, et al. A signalling role for muscle glycogen in the regulation of pace during prolonged exercise. Br J Sports Med 2005; 39 (1): 34–8PubMedCrossRef Rauch HGL, St Clair Gibson A, Lambert EV, et al. A signalling role for muscle glycogen in the regulation of pace during prolonged exercise. Br J Sports Med 2005; 39 (1): 34–8PubMedCrossRef
34.
go back to reference Tibshirani R. Who is the fastest man in the world? Am Statistician 1997; 51 (2): 106–11 Tibshirani R. Who is the fastest man in the world? Am Statistician 1997; 51 (2): 106–11
35.
go back to reference Bishop D, Bonetti D, Dawson B. The influence of pacing strategy on V̇O2 and supramaximal kayak performance. Med Sci Sports Exerc 2002; 34 (6): 1041–7PubMedCrossRef Bishop D, Bonetti D, Dawson B. The influence of pacing strategy on V̇O2 and supramaximal kayak performance. Med Sci Sports Exerc 2002; 34 (6): 1041–7PubMedCrossRef
36.
go back to reference Atkinson G, Brunskill A. Pacing strategies during a cycling time trial with simulated headwinds and tailwinds. Ergonomics 2000; 43 (10): 1449–60PubMedCrossRef Atkinson G, Brunskill A. Pacing strategies during a cycling time trial with simulated headwinds and tailwinds. Ergonomics 2000; 43 (10): 1449–60PubMedCrossRef
37.
go back to reference Mureika JR. A simple model for predicting sprint race times accounting for energy loss on the curve. Can J Physiol 1997; 75: 837–51CrossRef Mureika JR. A simple model for predicting sprint race times accounting for energy loss on the curve. Can J Physiol 1997; 75: 837–51CrossRef
38.
go back to reference Yamamoto M, Kanehisa H. Dynamics of anaerobic and aerobic energy supplies during sustained high intensity exercise on cycle ergometer. Eur J Appl Physiol Occup Physiol 1995; 71 (4): 320–5PubMedCrossRef Yamamoto M, Kanehisa H. Dynamics of anaerobic and aerobic energy supplies during sustained high intensity exercise on cycle ergometer. Eur J Appl Physiol Occup Physiol 1995; 71 (4): 320–5PubMedCrossRef
39.
go back to reference Thompson KG, Haljand R, Mac Laren DP. An analysis of selected kinematic variables in national and elite male and female 100−m and 200−m breaststroke swimmers. J Sports Sci 2000; 18 (6): 421–31PubMedCrossRef Thompson KG, Haljand R, Mac Laren DP. An analysis of selected kinematic variables in national and elite male and female 100−m and 200−m breaststroke swimmers. J Sports Sci 2000; 18 (6): 421–31PubMedCrossRef
40.
go back to reference Garland SW. An analysis of the pacing strategy adopted by elite competitors in 2000 m rowing. Br J Sports Med 2005; 39 (1): 39–42PubMedCrossRef Garland SW. An analysis of the pacing strategy adopted by elite competitors in 2000 m rowing. Br J Sports Med 2005; 39 (1): 39–42PubMedCrossRef
41.
go back to reference Thompson KG, Mac Laren DP, Lees A, et al. The effect of even, positive and negative pacing on metabolic, kinematic and temporal variables during breaststroke swimming. Eur J Appl Physiol 2003; 88 (4-5): 438–43PubMedCrossRef Thompson KG, Mac Laren DP, Lees A, et al. The effect of even, positive and negative pacing on metabolic, kinematic and temporal variables during breaststroke swimming. Eur J Appl Physiol 2003; 88 (4-5): 438–43PubMedCrossRef
42.
go back to reference Thompson KG, Mac Laren DPM, Lees A, et al. The effects of changing pace on metabolism and stroke characteristics during high—speed breaststroke swimming. J Sports Sci 2004; 22 (2): 149–57PubMedCrossRef Thompson KG, Mac Laren DPM, Lees A, et al. The effects of changing pace on metabolism and stroke characteristics during high—speed breaststroke swimming. J Sports Sci 2004; 22 (2): 149–57PubMedCrossRef
43.
go back to reference Noakes TD, St Clair Gibson A, Lambert EV. From catastrophe to complexity: a novel model of integrative central neural regulation of effort and fatigue during exercise in humans: summary and conclusions. Br J Sports Med 2005; 39 (2): 120–4PubMedCrossRef Noakes TD, St Clair Gibson A, Lambert EV. From catastrophe to complexity: a novel model of integrative central neural regulation of effort and fatigue during exercise in humans: summary and conclusions. Br J Sports Med 2005; 39 (2): 120–4PubMedCrossRef
44.
go back to reference Gonzalez-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): 1032–9PubMed Gonzalez-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): 1032–9PubMed
45.
go back to reference 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 (Lond) 1993; 460: 467–85 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 (Lond) 1993; 460: 467–85
46.
go back to reference Laursen PB, Knez WL, Shing CM, et al. Relationship between laboratory—measured variables and heart rate during an ultraendurance triathlon. J Sports Sci 2005; 23 (10): 1111–20PubMedCrossRef Laursen PB, Knez WL, Shing CM, et al. Relationship between laboratory—measured variables and heart rate during an ultraendurance triathlon. J Sports Sci 2005; 23 (10): 1111–20PubMedCrossRef
47.
go back to reference Abbiss CR, Quod MJ, Martin DT, et al. Dynamic pacing strategies during the cycle phase of an Ironman triathlon. Med Sci Sports Exerc 2006; 38 (4): 726–34PubMedCrossRef Abbiss CR, Quod MJ, Martin DT, et al. Dynamic pacing strategies during the cycle phase of an Ironman triathlon. Med Sci Sports Exerc 2006; 38 (4): 726–34PubMedCrossRef
48.
go back to reference Lambert MI, Dugas JP, Kirkman MC, et al. Changes in running speeds in a 100 km ultra—marathon race. J Sports Sci Med 2004; 3: 167–73 Lambert MI, Dugas JP, Kirkman MC, et al. Changes in running speeds in a 100 km ultra—marathon race. J Sports Sci Med 2004; 3: 167–73
49.
go back to reference Laursen PB, Rhodes EC, Langill RH, et al. Relationship of exercise test variables to cycling performance in an Ironman triathlon. Eur J Appl Physiol 2002; 87 (4-5): 433–40PubMedCrossRef Laursen PB, Rhodes EC, Langill RH, et al. Relationship of exercise test variables to cycling performance in an Ironman triathlon. Eur J Appl Physiol 2002; 87 (4-5): 433–40PubMedCrossRef
50.
go back to reference O’Toole ML, Douglas PS, Hiller WD. Use of heart rate monitors by endurance athletes: lessons from triathletes. J Sports Med Phys Fitness 1998; 38 (3): 181–7PubMed O’Toole ML, Douglas PS, Hiller WD. Use of heart rate monitors by endurance athletes: lessons from triathletes. J Sports Med Phys Fitness 1998; 38 (3): 181–7PubMed
51.
go back to reference Neumayr G, Pfister R, Mitterbauer G, et al. Effect of ultramarathon cycling on the heart rate in elite cyclists. Br J Sports Med 2004; 38 (1): 55–9PubMedCrossRef Neumayr G, Pfister R, Mitterbauer G, et al. Effect of ultramarathon cycling on the heart rate in elite cyclists. Br J Sports Med 2004; 38 (1): 55–9PubMedCrossRef
52.
go back to reference Neumayr G, Pfister R, Mitterbauer G, et al. Exercise intensity of cycle—touring events. Int J Sports Med 2002; 23 (7): 505–9PubMedCrossRef Neumayr G, Pfister R, Mitterbauer G, et al. Exercise intensity of cycle—touring events. Int J Sports Med 2002; 23 (7): 505–9PubMedCrossRef
53.
go back to reference Coyle EF, Coggan AR. Effectiveness of carbohydrate feeding in delaying fatigue during prolonged exercise. Sports Med 1984; 1 (6): 446–58PubMedCrossRef Coyle EF, Coggan AR. Effectiveness of carbohydrate feeding in delaying fatigue during prolonged exercise. Sports Med 1984; 1 (6): 446–58PubMedCrossRef
54.
go back to reference Laursen PB, Rhodes EC. Factors affecting performance in an ultraendurance triathlon. Sports Med 2001; 31 (3): 195–209PubMedCrossRef Laursen PB, Rhodes EC. Factors affecting performance in an ultraendurance triathlon. Sports Med 2001; 31 (3): 195–209PubMedCrossRef
55.
go back to reference Lepers R, Maffiuletti NA, Rochette L, et al. Neuromuscular fatigue during a long—duration cycling exercise. J Appl Physiol 2002; 92 (4): 1487–93PubMed Lepers R, Maffiuletti NA, Rochette L, et al. Neuromuscular fatigue during a long—duration cycling exercise. J Appl Physiol 2002; 92 (4): 1487–93PubMed
56.
go back to reference Hausswirth C, Bigard AX, Guezennec CY. Relationship between running mechanics and energy cost of running at the end of a triathlon and a marathon. Int J Sports Med 1997; 18 (5): 330–9PubMedCrossRef Hausswirth C, Bigard AX, Guezennec CY. Relationship between running mechanics and energy cost of running at the end of a triathlon and a marathon. Int J Sports Med 1997; 18 (5): 330–9PubMedCrossRef
57.
go back to reference St Clair Gibson A, Baden DA, Lambert MI, et al. The conscious perception of the sensation of fatigue. Sports Med 2003; 33 (3): 167–76CrossRef St Clair Gibson A, Baden DA, Lambert MI, et al. The conscious perception of the sensation of fatigue. Sports Med 2003; 33 (3): 167–76CrossRef
58.
go back to reference Laursen PB, Suriano R, Quod MS, et al. Core temperature and hydration status during an Ironman triathlon. Br J Sports Med 2006; 40 (4): 320–5PubMedCrossRef Laursen PB, Suriano R, Quod MS, et al. Core temperature and hydration status during an Ironman triathlon. Br J Sports Med 2006; 40 (4): 320–5PubMedCrossRef
59.
go back to reference Padilla S, Mujika I, Angulo F, et al. Scientific approach to the 1−h cycling world record: a case study. J Appl Physiol 2000; 89: 1522–7PubMed Padilla S, Mujika I, Angulo F, et al. Scientific approach to the 1−h cycling world record: a case study. J Appl Physiol 2000; 89: 1522–7PubMed
60.
go back to reference di Prampero PE, Cortili G, Mognoni P, et al. Equation of motion of a cyclist. J Appl Physiol 1979; 47 (1): 201–6PubMed di Prampero PE, Cortili G, Mognoni P, et al. Equation of motion of a cyclist. J Appl Physiol 1979; 47 (1): 201–6PubMed
61.
go back to reference Morton RH. The critical power and related whole—body bioenergetic models. Eur J Appl Physiol 2006; 96 (4): 339–54PubMedCrossRef Morton RH. The critical power and related whole—body bioenergetic models. Eur J Appl Physiol 2006; 96 (4): 339–54PubMedCrossRef
62.
go back to reference Fukuba Y, Whipp BJ. A metabolic limit on the ability to make up for lost time in endurance events. J Appl Physiol 1999; 87 (2): 853–61PubMed Fukuba Y, Whipp BJ. A metabolic limit on the ability to make up for lost time in endurance events. J Appl Physiol 1999; 87 (2): 853–61PubMed
63.
go back to reference Zamparo P, Bonifazi M, Faina M, et al. Energy cost of swimming of elite long—distance swimmers. Eur J Appl Physiol 2005; 94 (5-6): 697–704PubMedCrossRef Zamparo P, Bonifazi M, Faina M, et al. Energy cost of swimming of elite long—distance swimmers. Eur J Appl Physiol 2005; 94 (5-6): 697–704PubMedCrossRef
64.
go back to reference Kennedy MD, Bell GJ. Development of race profiles for the performance of a simulated 2000−m rowing race. Can J Appl Physiol 2003; 28 (4): 536–46PubMedCrossRef Kennedy MD, Bell GJ. Development of race profiles for the performance of a simulated 2000−m rowing race. Can J Appl Physiol 2003; 28 (4): 536–46PubMedCrossRef
65.
go back to reference Paterson S, Marino FE. Effects of deception of distance on prolonged cycling performance. Percept Mot Skills 2004; 98: 1017–26PubMedCrossRef Paterson S, Marino FE. Effects of deception of distance on prolonged cycling performance. Percept Mot Skills 2004; 98: 1017–26PubMedCrossRef
66.
go back to reference Liedl MA, Swain DP, Branch JD. Physiological effects of constant versus variable power during endurance cycling. Med Sci Sports Exerc 1999; 31 (10): 1472–7PubMedCrossRef Liedl MA, Swain DP, Branch JD. Physiological effects of constant versus variable power during endurance cycling. Med Sci Sports Exerc 1999; 31 (10): 1472–7PubMedCrossRef
67.
go back to reference Atkinson G, Peacock O, Law M. Acceptability of power variation during a simulated hilly time trial. Int J Sports Med 2007; 28: 157–63PubMedCrossRef Atkinson G, Peacock O, Law M. Acceptability of power variation during a simulated hilly time trial. Int J Sports Med 2007; 28: 157–63PubMedCrossRef
68.
go back to reference Noakes TD. Lore of running. 4th ed. Champaign (IL): Human Kinetics, 1985 Noakes TD. Lore of running. 4th ed. Champaign (IL): Human Kinetics, 1985
69.
go back to reference Palmer GS, Borghouts LB, Noakes TD, et al. Metabolic and performance responses to constant—load vs variable—intensity exercise in trained cyclists. J Appl Physiol 1999; 87 (3): 1186–96PubMed Palmer GS, Borghouts LB, Noakes TD, et al. Metabolic and performance responses to constant—load vs variable—intensity exercise in trained cyclists. J Appl Physiol 1999; 87 (3): 1186–96PubMed
70.
go back to reference Monod H, Scherrer J. The work capacity of a synergic muscular group. Ergonomics 1965; 8: 329–38CrossRef Monod H, Scherrer J. The work capacity of a synergic muscular group. Ergonomics 1965; 8: 329–38CrossRef
71.
go back to reference Moritani T, Nagata A, de Vries HA, et al. Critical power as a measure of physical work capacity and anaerobic threshold. Ergonomics 1981; 24 (5): 339–50PubMedCrossRef Moritani T, Nagata A, de Vries HA, et al. Critical power as a measure of physical work capacity and anaerobic threshold. Ergonomics 1981; 24 (5): 339–50PubMedCrossRef
72.
go back to reference Hill DW, Rose LE, Smith JC. Estimates of anaerobic capacity derived using different models of the power—time relationship [abstract]. Med Sci Sports Exerc 1993; 25: S108 Hill DW, Rose LE, Smith JC. Estimates of anaerobic capacity derived using different models of the power—time relationship [abstract]. Med Sci Sports Exerc 1993; 25: S108
73.
go back to reference Noakes TD, Peltonen JE, Rusko HK. Evidence that a central governor regulates exercise performance during acute hypoxia and hyperoxia. J Exp Biol 2001; 204 (Pt 18): 3225–34PubMed Noakes TD, Peltonen JE, Rusko HK. Evidence that a central governor regulates exercise performance during acute hypoxia and hyperoxia. J Exp Biol 2001; 204 (Pt 18): 3225–34PubMed
74.
go back to reference Lambert M, St Clair Gibson A, Noakes TD. Complex systems model of fatigue: integrative homoestatic control of peripheral physiological systems during exercise in humans. Br J Sports Med 2005; 39: 52–62PubMedCrossRef Lambert M, St Clair Gibson A, Noakes TD. Complex systems model of fatigue: integrative homoestatic control of peripheral physiological systems during exercise in humans. Br J Sports Med 2005; 39: 52–62PubMedCrossRef
75.
go back to reference St Clair Gibson A, Noakes TD. Evidence for complex system integration and dynamic neural regulation of skeletal muscle recruitment during exercise in humans. Br J Sports Med 2004; 38: 797–806CrossRef St Clair Gibson A, Noakes TD. Evidence for complex system integration and dynamic neural regulation of skeletal muscle recruitment during exercise in humans. Br J Sports Med 2004; 38: 797–806CrossRef
76.
go back to reference Ulmer HV. Concept of an extracellular regulation of muscular metabolic rate during heavy exercise in humans by psychophysiological feedback. Experientia 1996; 52: 416–20PubMedCrossRef Ulmer HV. Concept of an extracellular regulation of muscular metabolic rate during heavy exercise in humans by psychophysiological feedback. Experientia 1996; 52: 416–20PubMedCrossRef
77.
go back to reference St Clair Gibson A, Schabort EJ, Noakes TD. Reduced neuromuscular activity and force generation during prolonged cycling. Am J Physiol Regul Integr Comp Physiol 2001; 281 (1): R187–96 St Clair Gibson A, Schabort EJ, Noakes TD. Reduced neuromuscular activity and force generation during prolonged cycling. Am J Physiol Regul Integr Comp Physiol 2001; 281 (1): R187–96
78.
go back to reference Hettinga FJ, De Koning JJ, Broersen FT, et al. Pacing strategy and the occurrence of fatigue in 4000−m cycling time trials. Med Sci Sports Exerc 2006; 38 (8): 1484–91PubMedCrossRef Hettinga FJ, De Koning JJ, Broersen FT, et al. Pacing strategy and the occurrence of fatigue in 4000−m cycling time trials. Med Sci Sports Exerc 2006; 38 (8): 1484–91PubMedCrossRef
79.
go back to reference Hunter AM, St Clair Gibson A, Lambert MI, et al. Effects of supramaximal exercise on the electromyographic signal. Br J Sports Med 2003; 37 (4): 296–9PubMedCrossRef Hunter AM, St Clair Gibson A, Lambert MI, et al. Effects of supramaximal exercise on the electromyographic signal. Br J Sports Med 2003; 37 (4): 296–9PubMedCrossRef
80.
go back to reference Ansley L, Schabort E, St Clair Gibson A, et al. Regulation of pacing strategies during successive 4−km time trials. Med Sci Sports Exerc 2004; 36 (10): 1819–25PubMedCrossRef Ansley L, Schabort E, St Clair Gibson A, et al. Regulation of pacing strategies during successive 4−km time trials. Med Sci Sports Exerc 2004; 36 (10): 1819–25PubMedCrossRef
81.
go back to reference Gandevia SC. Spinal and supraspinal factors in human muscle fatigue. Physiol Rev 2001; 81 (4): 1725–89PubMed Gandevia SC. Spinal and supraspinal factors in human muscle fatigue. Physiol Rev 2001; 81 (4): 1725–89PubMed
82.
go back to reference Amann M, Eldridge MW, Lovering AT, et al. Arterial oxygenation influences central motor output and exercise performance via effects on peripheral locomotor muscle fatigue in humans. J Physiol 2006; 575 (Pt 3): 937–52PubMedCrossRef Amann M, Eldridge MW, Lovering AT, et al. Arterial oxygenation influences central motor output and exercise performance via effects on peripheral locomotor muscle fatigue in humans. J Physiol 2006; 575 (Pt 3): 937–52PubMedCrossRef
83.
go back to reference Behncke H. A mathematical model for the force and energetics in competitive running. J Math Biol 1993; 31 (8): 853–78PubMedCrossRef Behncke H. A mathematical model for the force and energetics in competitive running. J Math Biol 1993; 31 (8): 853–78PubMedCrossRef
84.
go back to reference van Ingen Schenau GJ, de Koning JJ, de Groot G. A simulation of speed skating performances based on a power equation. Med Sci Sports Exerc 1990; 22 (5): 718–28PubMedCrossRef van Ingen Schenau GJ, de Koning JJ, de Groot G. A simulation of speed skating performances based on a power equation. Med Sci Sports Exerc 1990; 22 (5): 718–28PubMedCrossRef
85.
go back to reference Perrey S, Grappe F, Girard A, et al. Physiological and metabolic responses of triathletes to a simulated 30−min time—trial in cycling at self—selected intensity. Int J Sports Med 2003; 24 (2): 138–43PubMedCrossRef Perrey S, Grappe F, Girard A, et al. Physiological and metabolic responses of triathletes to a simulated 30−min time—trial in cycling at self—selected intensity. Int J Sports Med 2003; 24 (2): 138–43PubMedCrossRef
Metadata
Title
Describing and Understanding Pacing Strategies during Athletic Competition
Authors
Chris R. Abbiss
Paul B. Laursen
Publication date
01-03-2008
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 3/2008
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.2165/00007256-200838030-00004

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