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Published in: Sports Medicine 10/2014

01-10-2014 | Review Article

Coordination Pattern Variability Provides Functional Adaptations to Constraints in Swimming Performance

Authors: Ludovic Seifert, John Komar, Tiago Barbosa, Huub Toussaint, Grégoire Millet, Keith Davids

Published in: Sports Medicine | Issue 10/2014

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Abstract

In a biophysical approach to the study of swimming performance (blending biomechanics and bioenergetics), inter-limb coordination is typically considered and analysed to improve propulsion and propelling efficiency. In this approach, ‘opposition’ or ‘continuous’ patterns of inter-limb coordination, where continuity between propulsive actions occurs, are promoted in the acquisition of expertise. Indeed a ‘continuous’ pattern theoretically minimizes intra-cyclic speed variations of the centre of mass. Consequently, it may also minimize the energy cost of locomotion. However, in skilled swimming performance there is a need to strike a delicate balance between inter-limb coordination pattern stability and variability, suggesting the absence of an ‘ideal’ pattern of coordination toward which all swimmers must converge or seek to imitate. Instead, an ecological dynamics framework advocates that there is an intertwined relationship between the specific intentions, perceptions and actions of individual swimmers, which constrains this relationship between coordination pattern stability and variability. This perspective explains how behaviours emerge from a set of interacting constraints, which each swimmer has to satisfy in order to achieve specific task performance goals and produce particular task outcomes. This overview updates understanding on inter-limb coordination in swimming to analyse the relationship between coordination variability and stability in relation to interacting constraints (related to task, environment and organism) that swimmers may encounter during training and performance.
Literature
1.
go back to reference Ericsson KA, Krampe RT, Tesch-Römer C. The role of deliberate practice in the acquisition of expert performance. Psychol Rev. 1993;3:363–406.CrossRef Ericsson KA, Krampe RT, Tesch-Römer C. The role of deliberate practice in the acquisition of expert performance. Psychol Rev. 1993;3:363–406.CrossRef
2.
go back to reference Chollet D, Chalies S, Chatard JC. A new index of coordination for the crawl: description and usefulness. Int J Sports Med. 2000;21:54–9.PubMedCrossRef Chollet D, Chalies S, Chatard JC. A new index of coordination for the crawl: description and usefulness. Int J Sports Med. 2000;21:54–9.PubMedCrossRef
3.
go back to reference Leblanc H, Seifert L, Baudry L, et al. Arm-leg coordination in flat breaststroke: a comparative study between elite and non-elite swimmers. Int J Sports Med. 2005;26:787–97.PubMedCrossRef Leblanc H, Seifert L, Baudry L, et al. Arm-leg coordination in flat breaststroke: a comparative study between elite and non-elite swimmers. Int J Sports Med. 2005;26:787–97.PubMedCrossRef
4.
go back to reference Chollet D, Seifert L, Leblanc H, et al. Evaluation of arm-leg coordination in flat breaststroke. Int J Sports Med. 2004;25:486–95.PubMedCrossRef Chollet D, Seifert L, Leblanc H, et al. Evaluation of arm-leg coordination in flat breaststroke. Int J Sports Med. 2004;25:486–95.PubMedCrossRef
5.
go back to reference Chollet D, Seifert L, Carter M. Arm coordination in elite backstroke swimmers. J Sports Sci. 2008;26:675–82.PubMedCrossRef Chollet D, Seifert L, Carter M. Arm coordination in elite backstroke swimmers. J Sports Sci. 2008;26:675–82.PubMedCrossRef
6.
go back to reference Seifert L, Chollet D, Bardy BG. Effect of swimming velocity on arm coordination in the front crawl: a dynamic analysis. J Sports Sci. 2004;22:651–60.PubMedCrossRef Seifert L, Chollet D, Bardy BG. Effect of swimming velocity on arm coordination in the front crawl: a dynamic analysis. J Sports Sci. 2004;22:651–60.PubMedCrossRef
7.
go back to reference Seifert L, Boulesteix L, Chollet D. Effect of gender on the adaptation of arm coordination in front crawl. Int J Sports Med. 2004;25:217–23.PubMedCrossRef Seifert L, Boulesteix L, Chollet D. Effect of gender on the adaptation of arm coordination in front crawl. Int J Sports Med. 2004;25:217–23.PubMedCrossRef
8.
go back to reference Seifert L, Chollet D. A new index of flat breaststroke propulsion: a comparison of elite men and women. J Sports Sci. 2005;23:309–20.PubMedCrossRef Seifert L, Chollet D. A new index of flat breaststroke propulsion: a comparison of elite men and women. J Sports Sci. 2005;23:309–20.PubMedCrossRef
9.
go back to reference Davids K, Shuttleworth R, Button C, et al. “Essential noise”—enhancing variability of informational constraints benefits movement control: a comment on Waddington and Adams (2003). Br J Sports Med. 2004;38:601–5.PubMedCrossRefPubMedCentral Davids K, Shuttleworth R, Button C, et al. “Essential noise”—enhancing variability of informational constraints benefits movement control: a comment on Waddington and Adams (2003). Br J Sports Med. 2004;38:601–5.PubMedCrossRefPubMedCentral
10.
go back to reference Newell KM, Deutsch KM, Sosnoff JJ, et al. Variability in motor output as noise: a default and erroneous proposition? In: Davids K, Bennet SJ, Newell KM, editors. Mov. Syst. Var. Champaign: Human Kinetics; 2006. p. 3–23. Newell KM, Deutsch KM, Sosnoff JJ, et al. Variability in motor output as noise: a default and erroneous proposition? In: Davids K, Bennet SJ, Newell KM, editors. Mov. Syst. Var. Champaign: Human Kinetics; 2006. p. 3–23.
11.
go back to reference Slifkin AB, Newell KM. Is variability in human performance a reflection of system noise? Curr Dir Psychol Sci. 1998;7:170–7.CrossRef Slifkin AB, Newell KM. Is variability in human performance a reflection of system noise? Curr Dir Psychol Sci. 1998;7:170–7.CrossRef
12.
go back to reference Billat VL, Slawinski J, Danel M, et al. Effect of free versus constant pace on performance and oxygen kinetics in running. Med Sci Sports Exerc. 2001;33:2082–8.PubMedCrossRef Billat VL, Slawinski J, Danel M, et al. Effect of free versus constant pace on performance and oxygen kinetics in running. Med Sci Sports Exerc. 2001;33:2082–8.PubMedCrossRef
13.
go back to reference Hellard P, Dekerle J, Avalos M, et al. Kinematic measures and stroke rate variability in elite female 200-m swimmers in the four swimming techniques: Athens 2004 Olympic semi-finalists and French National 2004 Championship semi-finalists. J Sports Sci. 2008;26:35–46.PubMedCrossRef Hellard P, Dekerle J, Avalos M, et al. Kinematic measures and stroke rate variability in elite female 200-m swimmers in the four swimming techniques: Athens 2004 Olympic semi-finalists and French National 2004 Championship semi-finalists. J Sports Sci. 2008;26:35–46.PubMedCrossRef
14.
go back to reference Seifert L, Boulesteix L, Carter M, et al. The spatial-temporal and coordinative structures in elite male 100-m front crawl swimmers. Int J Sports Med. 2005;26:286–93.PubMedCrossRef Seifert L, Boulesteix L, Carter M, et al. The spatial-temporal and coordinative structures in elite male 100-m front crawl swimmers. Int J Sports Med. 2005;26:286–93.PubMedCrossRef
15.
go back to reference Seifert L, Chollet D, Chatard JC. Kinematic changes during a 100-m front crawl: effects of performance level and gender. Med Sci Sport Exerc. 2007;39:1784–93.CrossRef Seifert L, Chollet D, Chatard JC. Kinematic changes during a 100-m front crawl: effects of performance level and gender. Med Sci Sport Exerc. 2007;39:1784–93.CrossRef
16.
go back to reference Davids K, Bennett SJ, Newell KM, editors. Movement system variability. Champaign: Human Kinetics; 2006. Davids K, Bennett SJ, Newell KM, editors. Movement system variability. Champaign: Human Kinetics; 2006.
17.
go back to reference Seifert L, Button C, Davids K. Key properties of expert movement systems in sport: an ecological dynamics perspective. Sports Med. 2013;43:167–78.PubMedCrossRef Seifert L, Button C, Davids K. Key properties of expert movement systems in sport: an ecological dynamics perspective. Sports Med. 2013;43:167–78.PubMedCrossRef
18.
go back to reference Davids K, Button C, Bennett SJ, editors. Dynamics of skill acquisition: a constraints-led approach. Champaign: Human Kinetics; 2008. Davids K, Button C, Bennett SJ, editors. Dynamics of skill acquisition: a constraints-led approach. Champaign: Human Kinetics; 2008.
19.
go back to reference Glazier PS, Davids K. On analysing and interpreting variability in motor output. J Sci Med Sport. 2009;12:e.2–3.CrossRef Glazier PS, Davids K. On analysing and interpreting variability in motor output. J Sci Med Sport. 2009;12:e.2–3.CrossRef
20.
go back to reference Newell KM. Constraints on the development of coordination. In: Wade MG, Whiting HTA, editors. Mot. Dev. Child. Asp. Coord. Control. Dordrecht: Martinus Nijhoff; 1986. p. 341–60. Newell KM. Constraints on the development of coordination. In: Wade MG, Whiting HTA, editors. Mot. Dev. Child. Asp. Coord. Control. Dordrecht: Martinus Nijhoff; 1986. p. 341–60.
21.
go back to reference Seifert L, Davids K. Intentions, perceptions and actions constrain functional intra- and inter-individual variability in the acquisition of expertise in individual sports. Open Sports Sci J. 2012;5:68–75.CrossRef Seifert L, Davids K. Intentions, perceptions and actions constrain functional intra- and inter-individual variability in the acquisition of expertise in individual sports. Open Sports Sci J. 2012;5:68–75.CrossRef
22.
go back to reference Davids K, Glazier PS. Deconstructing neurobiological coordination: the role of the biomechanics-motor control nexus. Exerc Sport Sci Rev. 2010;38:86–90.PubMedCrossRef Davids K, Glazier PS. Deconstructing neurobiological coordination: the role of the biomechanics-motor control nexus. Exerc Sport Sci Rev. 2010;38:86–90.PubMedCrossRef
23.
go back to reference Chow JY, Davids K, Hristovski R, et al. Nonlinear pedagogy: learning design for self-organizing neurobiological systems. New Ideas Psychol. 2011;29:189–200.CrossRef Chow JY, Davids K, Hristovski R, et al. Nonlinear pedagogy: learning design for self-organizing neurobiological systems. New Ideas Psychol. 2011;29:189–200.CrossRef
24.
go back to reference Barbosa T, Bragada J, Reis VM, et al. Energetics and biomechanics as determining factors of swimming performance: updating the state of the art. J Sci Med Sport. 2010;13:262–9.PubMedCrossRef Barbosa T, Bragada J, Reis VM, et al. Energetics and biomechanics as determining factors of swimming performance: updating the state of the art. J Sci Med Sport. 2010;13:262–9.PubMedCrossRef
25.
go back to reference Pelayo P, Alberty M, Sidney M, et al. Aerobic potential, stroke parameters, and coordination in swimming front-crawl performance. Int J Sports Physiol Perform. 2007;2:347–59. Pelayo P, Alberty M, Sidney M, et al. Aerobic potential, stroke parameters, and coordination in swimming front-crawl performance. Int J Sports Physiol Perform. 2007;2:347–59.
26.
go back to reference Vilas-Boas JP, Fernandes RJ, Barbosa T. Intra-cyclic velocity variations, swimming economy, performance, and training in swimming. In: Seifert L, Chollet D, Mujika I, editors. World Book of Swimming: From Science to Performance. New York: Nova Science Publishers, Hauppauge; 2011. p. 119–34. Vilas-Boas JP, Fernandes RJ, Barbosa T. Intra-cyclic velocity variations, swimming economy, performance, and training in swimming. In: Seifert L, Chollet D, Mujika I, editors. World Book of Swimming: From Science to Performance. New York: Nova Science Publishers, Hauppauge; 2011. p. 119–34.
27.
go back to reference Toussaint HM, Truijens MJ. Biomechanical aspects of peak performance in human swimming. Anim Biol. 2005;55:17–40.CrossRef Toussaint HM, Truijens MJ. Biomechanical aspects of peak performance in human swimming. Anim Biol. 2005;55:17–40.CrossRef
28.
go back to reference Nigg B. Selected methodology in biomechanics with respect to swimming. In: Hollander A, Huijing P, de Groot G, editors. Biomechanics and medicine in swimming: V. Champaign: Human Kinetics; 1983. p. 72–80. Nigg B. Selected methodology in biomechanics with respect to swimming. In: Hollander A, Huijing P, de Groot G, editors. Biomechanics and medicine in swimming: V. Champaign: Human Kinetics; 1983. p. 72–80.
29.
go back to reference Fujishima M, Miyashita M. Velocity degradation caused by its fluctuation in swimming and guidelines for improvement of average velocity. In: Keskinen K, Komi P, Hollander P, editors. Biomechanics and Medicine in Swimming: VIII. Jyvaskyla: University of Jyvaskyla; 1998. p. 41–5. Fujishima M, Miyashita M. Velocity degradation caused by its fluctuation in swimming and guidelines for improvement of average velocity. In: Keskinen K, Komi P, Hollander P, editors. Biomechanics and Medicine in Swimming: VIII. Jyvaskyla: University of Jyvaskyla; 1998. p. 41–5.
30.
go back to reference Schnitzler C, Seifert L, Alberty M, et al. Hip velocity and arm coordination in front crawl swimming. Int J Sports Med. 2010;31:875–81.PubMedCrossRef Schnitzler C, Seifert L, Alberty M, et al. Hip velocity and arm coordination in front crawl swimming. Int J Sports Med. 2010;31:875–81.PubMedCrossRef
31.
go back to reference Chollet D, Seifert L. Inter-limb coordination in the four competitive strokes. In: Seifert L, Chollet D, Mujika I, editors. World Book of Swimming: From Science to Performance. New York: Nova Science Publishers, Hauppauge; 2011. p. 153–72. Chollet D, Seifert L. Inter-limb coordination in the four competitive strokes. In: Seifert L, Chollet D, Mujika I, editors. World Book of Swimming: From Science to Performance. New York: Nova Science Publishers, Hauppauge; 2011. p. 153–72.
32.
go back to reference Alberty M, Sidney M, Huot-Marchand F, et al. Intracyclic velocity variations and arm coordination during exhaustive exercise in front crawl stroke. Int J Sports Med. 2004;26:471–5.CrossRef Alberty M, Sidney M, Huot-Marchand F, et al. Intracyclic velocity variations and arm coordination during exhaustive exercise in front crawl stroke. Int J Sports Med. 2004;26:471–5.CrossRef
33.
go back to reference Alberty M, Sidney M, Pelayo P, et al. Stroking characteristics during time to exhaustion tests. Med Sci Sport Exerc. 2009;41:637–44.CrossRef Alberty M, Sidney M, Pelayo P, et al. Stroking characteristics during time to exhaustion tests. Med Sci Sport Exerc. 2009;41:637–44.CrossRef
34.
go back to reference Bideault G, Hérault R, Seifert L. Data modelling reveals inter-individual variability of front crawl swimming. J Sci Med Sport. 2013;16:281–5.PubMedCrossRef Bideault G, Hérault R, Seifert L. Data modelling reveals inter-individual variability of front crawl swimming. J Sci Med Sport. 2013;16:281–5.PubMedCrossRef
35.
go back to reference Seifert L, Schnitzler C, Alberty M, et al. Arm coordination, active drag and propelling efficiency in front crawl. In: Stallman R, Cabri J, Kjendlie P, editors. Biomechanics and Medicine in Swimming: XI. Norway: University. Oslo; 2010. p. 115–7. Seifert L, Schnitzler C, Alberty M, et al. Arm coordination, active drag and propelling efficiency in front crawl. In: Stallman R, Cabri J, Kjendlie P, editors. Biomechanics and Medicine in Swimming: XI. Norway: University. Oslo; 2010. p. 115–7.
36.
go back to reference Seifert L, Toussaint HM, Alberty M, et al. Arm coordination, power, and swim efficiency in national and regional front crawl swimmers. Hum Mov Sci. 2010;29:426–39.PubMedCrossRef Seifert L, Toussaint HM, Alberty M, et al. Arm coordination, power, and swim efficiency in national and regional front crawl swimmers. Hum Mov Sci. 2010;29:426–39.PubMedCrossRef
37.
go back to reference Seifert L, Chollet D. Modelling spatial-temporal and coordinative parameters in swimming. J Sci Med Sport. 2009;12:495–9.PubMedCrossRef Seifert L, Chollet D. Modelling spatial-temporal and coordinative parameters in swimming. J Sci Med Sport. 2009;12:495–9.PubMedCrossRef
38.
go back to reference Barbosa T, Keskinen KL, Fernandes RJ, et al. Energy cost and intracyclic variation of the velocity of the centre of mass in butterfly stroke. Eur J Appl Physiol. 2005;93:519–23.PubMedCrossRef Barbosa T, Keskinen KL, Fernandes RJ, et al. Energy cost and intracyclic variation of the velocity of the centre of mass in butterfly stroke. Eur J Appl Physiol. 2005;93:519–23.PubMedCrossRef
39.
go back to reference Chollet D, Seifert L, Boulesteix L, et al. Arm to leg coordination in elite butterfly swimmers. Int J Sports Med. 2006;27:322–9.PubMedCrossRef Chollet D, Seifert L, Boulesteix L, et al. Arm to leg coordination in elite butterfly swimmers. Int J Sports Med. 2006;27:322–9.PubMedCrossRef
40.
go back to reference Seifert L, Boulesteix L, Chollet D, et al. Differences in spatial-temporal parameters and arm-leg coordination in butterfly stroke as a function of race pace, skill and gender. Hum Mov Sci. 2008;27:96–111.PubMedCrossRef Seifert L, Boulesteix L, Chollet D, et al. Differences in spatial-temporal parameters and arm-leg coordination in butterfly stroke as a function of race pace, skill and gender. Hum Mov Sci. 2008;27:96–111.PubMedCrossRef
41.
go back to reference Komar J, Sanders RH, Chollet D, et al. Do qualitative changes in inter-limb coordination lead to effectiveness of aquatic locomotion rather than efficiency? J Appl Biomech. Epub 22 Jul 2013. Komar J, Sanders RH, Chollet D, et al. Do qualitative changes in inter-limb coordination lead to effectiveness of aquatic locomotion rather than efficiency? J Appl Biomech. Epub 22 Jul 2013.
42.
go back to reference Seifert L, Komar J, Lemaitre F, et al. Swim specialty affects energy cost and motor organization. Int J Sports Med. 2010;3:624–30.CrossRef Seifert L, Komar J, Lemaitre F, et al. Swim specialty affects energy cost and motor organization. Int J Sports Med. 2010;3:624–30.CrossRef
43.
go back to reference Seifert L, Chollet D, Rouard A. Swimming constraints and arm coordination. Hum Mov Sci. 2007;26:68–86.PubMedCrossRef Seifert L, Chollet D, Rouard A. Swimming constraints and arm coordination. Hum Mov Sci. 2007;26:68–86.PubMedCrossRef
44.
go back to reference Seifert L, Leblanc H, Hérault R, et al. Inter-individual variability in the upper–lower limb breaststroke coordination. Hum Mov Sci. 2011;30:550–65.PubMedCrossRef Seifert L, Leblanc H, Hérault R, et al. Inter-individual variability in the upper–lower limb breaststroke coordination. Hum Mov Sci. 2011;30:550–65.PubMedCrossRef
45.
go back to reference Schnitzler C, Seifert L, Chollet D. Arm coordination and performance level in the 400-m front crawl. Res Q Exerc Sport. 2011;82:1–8.PubMedCrossRef Schnitzler C, Seifert L, Chollet D. Arm coordination and performance level in the 400-m front crawl. Res Q Exerc Sport. 2011;82:1–8.PubMedCrossRef
46.
go back to reference Bartlett RM, Wheat J, Robins M. Is movement variability important for sports biomechanists? Sports Biomech. 2007;6:224–43.PubMedCrossRef Bartlett RM, Wheat J, Robins M. Is movement variability important for sports biomechanists? Sports Biomech. 2007;6:224–43.PubMedCrossRef
48.
go back to reference Mason PH. Degeneracy at multiple levels of complexity. Biol Theory. 2010;5:277–88.CrossRef Mason PH. Degeneracy at multiple levels of complexity. Biol Theory. 2010;5:277–88.CrossRef
49.
50.
51.
go back to reference Kelso JAS. Dynamic patterns: the self-organization of brain and behavior. Cambridge: MIT; 1995. Kelso JAS. Dynamic patterns: the self-organization of brain and behavior. Cambridge: MIT; 1995.
52.
go back to reference Seifert L, Button C, Brazier T. Interacting constraints and inter-limb co-ordination in swimming. In: Davids K, Savelsbergh GJP, Renshaw I, editors. Motor Learning in Practice. London: Routledge; 2011. p. 83–98. Seifert L, Button C, Brazier T. Interacting constraints and inter-limb co-ordination in swimming. In: Davids K, Savelsbergh GJP, Renshaw I, editors. Motor Learning in Practice. London: Routledge; 2011. p. 83–98.
53.
go back to reference Glazier PS, Wheat J, Pease D, et al. The interface of biomechanics and motor control: dynamics systems theory and the functional role of movement variability. In: Davids K, Bennett SJ, Newell KM, editors. Movement System Variability. Champaign: Human Kinetics; 2006. p. 49–70. Glazier PS, Wheat J, Pease D, et al. The interface of biomechanics and motor control: dynamics systems theory and the functional role of movement variability. In: Davids K, Bennett SJ, Newell KM, editors. Movement System Variability. Champaign: Human Kinetics; 2006. p. 49–70.
54.
go back to reference Hamill J, Haddad JM, Mcdermott WJ. Issues in quantifying variability from a dynamical systems perspective. J Appl Biomech. 2000;16:407–18. Hamill J, Haddad JM, Mcdermott WJ. Issues in quantifying variability from a dynamical systems perspective. J Appl Biomech. 2000;16:407–18.
55.
go back to reference Nikodelis T, Kollias I, Hatzitaki V. Bilateral inter-arm coordination in freestyle swimming: effect of skill level and swimming speed. J Sports Sci. 2005;23:737–45.PubMedCrossRef Nikodelis T, Kollias I, Hatzitaki V. Bilateral inter-arm coordination in freestyle swimming: effect of skill level and swimming speed. J Sports Sci. 2005;23:737–45.PubMedCrossRef
56.
go back to reference Seifert L, Leblanc H, Chollet D, et al. Inter-limb coordination in swimming: effect of speed and skill level. Hum Mov Sci. 2010;29:103–13.PubMedCrossRef Seifert L, Leblanc H, Chollet D, et al. Inter-limb coordination in swimming: effect of speed and skill level. Hum Mov Sci. 2010;29:103–13.PubMedCrossRef
57.
go back to reference Figuereido P, Seifert L, Vilas-Boas JP, et al. Individual profiles of spatio-temporal coordination in high intensity swimming. Hum Mov Sci. 2012;31:1200–12.CrossRef Figuereido P, Seifert L, Vilas-Boas JP, et al. Individual profiles of spatio-temporal coordination in high intensity swimming. Hum Mov Sci. 2012;31:1200–12.CrossRef
58.
go back to reference Rein R. Measurement methods to analyse changes in coordination during motor learning from a non-linear perspective. Open Sports Sci J. 2012;5:36–48.CrossRef Rein R. Measurement methods to analyse changes in coordination during motor learning from a non-linear perspective. Open Sports Sci J. 2012;5:36–48.CrossRef
59.
go back to reference Toussaint HM, Carol A, Kranenborg H, et al. Effect of fatigue on stroking characteristics in an arms-only 100-m front-crawl race. Med Sci Sport Exerc. 2006;38:1635–42.CrossRef Toussaint HM, Carol A, Kranenborg H, et al. Effect of fatigue on stroking characteristics in an arms-only 100-m front-crawl race. Med Sci Sport Exerc. 2006;38:1635–42.CrossRef
60.
go back to reference Aujouannet YA, Bonifazi M, Hintzy F, et al. Effects of a high-intensity swim test on kinematic parameters in high-level athletes. Appl Physiol Nutr Metab. 2006;31:150–8.PubMedCrossRef Aujouannet YA, Bonifazi M, Hintzy F, et al. Effects of a high-intensity swim test on kinematic parameters in high-level athletes. Appl Physiol Nutr Metab. 2006;31:150–8.PubMedCrossRef
61.
go back to reference Ikuta Y, Matsuda Y, Yamada Y, et al. Relationship between decreased swimming velocity and muscle activity during 200-m front crawl. Eur J Appl Physiol. 2012;12(9):3417–29.CrossRef Ikuta Y, Matsuda Y, Yamada Y, et al. Relationship between decreased swimming velocity and muscle activity during 200-m front crawl. Eur J Appl Physiol. 2012;12(9):3417–29.CrossRef
62.
go back to reference Stirn I, Jarm T, Kapus V, et al. Evaluation of muscle fatigue during 100-m front crawl. Eur J Appl Physiol. 2011;111:101–13.PubMedCrossRef Stirn I, Jarm T, Kapus V, et al. Evaluation of muscle fatigue during 100-m front crawl. Eur J Appl Physiol. 2011;111:101–13.PubMedCrossRef
63.
go back to reference Dadashi F, Arami A, Crettenand F, et al. A hidden Markov model of the breaststroke swimming temporal phases using wearable inertial measurement units. 10th International IEEE Body Sensor Networks Conference. Cambridge: MIT Press; 2013. Dadashi F, Arami A, Crettenand F, et al. A hidden Markov model of the breaststroke swimming temporal phases using wearable inertial measurement units. 10th International IEEE Body Sensor Networks Conference. Cambridge: MIT Press; 2013.
64.
go back to reference Dadashi F, Crettenand F, Millet GP, et al. Automatic front-crawl temporal phase detection using adaptive filtering of inertial signals. J Sports Sci. 2013;31:1251–60.PubMedCrossRef Dadashi F, Crettenand F, Millet GP, et al. Automatic front-crawl temporal phase detection using adaptive filtering of inertial signals. J Sports Sci. 2013;31:1251–60.PubMedCrossRef
65.
go back to reference Madgwick SOH, Harrison AJL, Vaidyanathan A. Estimation of IMU and MARG orientation using a gradient descent algorithm. IEEE International Conference on Rehabilitation Robotics; 2011. p. 5975346. Madgwick SOH, Harrison AJL, Vaidyanathan A. Estimation of IMU and MARG orientation using a gradient descent algorithm. IEEE International Conference on Rehabilitation Robotics; 2011. p. 5975346.
67.
go back to reference Komar J. Dynamique de l’apprentissage moteur: apprendre loin de l’équilibre [Dynamic of motor learning: learning far from equilibrium]. Saarbrücken: Presse Académique Francophone; 2013. Komar J. Dynamique de l’apprentissage moteur: apprendre loin de l’équilibre [Dynamic of motor learning: learning far from equilibrium]. Saarbrücken: Presse Académique Francophone; 2013.
68.
go back to reference Komar J, Hérault R, Seifert L. Key point selection and clustering of swimmer coordination through Sparse Fisher-EM. Prague: European Conference on Machine Learning and Principles and Practice of Knowledge Discovery in Databases; 2013. Komar J, Hérault R, Seifert L. Key point selection and clustering of swimmer coordination through Sparse Fisher-EM. Prague: European Conference on Machine Learning and Principles and Practice of Knowledge Discovery in Databases; 2013.
69.
go back to reference Button C, Chow JY, Rein R. Exploring the perceptual-motor workspace: new approaches to skill acquisition and training. In: Hong Y, Barlett RM, editors. Handbook of Biomechanics and Human Movement Science. New York: Routledge; 2008. p. 538–53. Button C, Chow JY, Rein R. Exploring the perceptual-motor workspace: new approaches to skill acquisition and training. In: Hong Y, Barlett RM, editors. Handbook of Biomechanics and Human Movement Science. New York: Routledge; 2008. p. 538–53.
70.
go back to reference Rein R, Button C, Davids K, et al. Cluster analysis of movement patterns in multiarticular actions: a tutorial. Motor Control. 2010;14:211–39.PubMed Rein R, Button C, Davids K, et al. Cluster analysis of movement patterns in multiarticular actions: a tutorial. Motor Control. 2010;14:211–39.PubMed
71.
go back to reference Dutt-Mazumder A, Button C, Robins A, et al. Neural network modelling and dynamical system theory: are they relevant to study the governing dynamics of association football players? Sports Med. 2011;41:1003–17.PubMedCrossRef Dutt-Mazumder A, Button C, Robins A, et al. Neural network modelling and dynamical system theory: are they relevant to study the governing dynamics of association football players? Sports Med. 2011;41:1003–17.PubMedCrossRef
72.
go back to reference Lamb PF, Bartlett RM, Robins A. Artificial neural networks for analyzing inter-limb coordination: the golf chip shot. Hum Mov Sci. 2011;30:1129–43.PubMedCrossRef Lamb PF, Bartlett RM, Robins A. Artificial neural networks for analyzing inter-limb coordination: the golf chip shot. Hum Mov Sci. 2011;30:1129–43.PubMedCrossRef
73.
go back to reference Daffertshofer A, Lamoth CJC, Meijer OG, et al. PCA in studying coordination and variability: a tutorial. Clin Biomech. 2004;19:415–28.CrossRef Daffertshofer A, Lamoth CJC, Meijer OG, et al. PCA in studying coordination and variability: a tutorial. Clin Biomech. 2004;19:415–28.CrossRef
74.
go back to reference Forner-Cordero A, Levin O, Li Y, et al. Principal component analysis of complex multijoint coordinative movements. Biol Cybern. 2005;93:63–78.PubMedCrossRef Forner-Cordero A, Levin O, Li Y, et al. Principal component analysis of complex multijoint coordinative movements. Biol Cybern. 2005;93:63–78.PubMedCrossRef
75.
go back to reference Chow JY, Davids K, Button C. Variation in coordination of a discrete multiarticular action as a function of skill level. J Mot Behav. 2007;39:463–79.PubMedCrossRef Chow JY, Davids K, Button C. Variation in coordination of a discrete multiarticular action as a function of skill level. J Mot Behav. 2007;39:463–79.PubMedCrossRef
76.
go back to reference Chow JY, Davids K, Button C, et al. Dynamics of movement patterning in learning a discrete multiarticular action. Motor Control. 2008;12:219–40.PubMed Chow JY, Davids K, Button C, et al. Dynamics of movement patterning in learning a discrete multiarticular action. Motor Control. 2008;12:219–40.PubMed
77.
go back to reference Rein R, Davids K, Button C. Adaptive and phase transition behavior in performance of discrete multi-articular actions by degenerate neurobiological systems. Exp Brain Res. 2010;201:307–22.PubMedCrossRef Rein R, Davids K, Button C. Adaptive and phase transition behavior in performance of discrete multi-articular actions by degenerate neurobiological systems. Exp Brain Res. 2010;201:307–22.PubMedCrossRef
78.
go back to reference Wilson B, Howard A. The use of cluster analysis in movement description and classification of the backstroke swim start. In: Matsui H, Kobayashi K, editors. Biomechanics: VIII-B. Champaign: Human Kinetics; 1983. p. 1223–30. Wilson B, Howard A. The use of cluster analysis in movement description and classification of the backstroke swim start. In: Matsui H, Kobayashi K, editors. Biomechanics: VIII-B. Champaign: Human Kinetics; 1983. p. 1223–30.
79.
go back to reference Seifert L, Vantorre J, Lemaitre F, et al. Different profiles of the aerial start phase in front crawl. J Strength Cond Res. 2010;24:507–16.PubMedCrossRef Seifert L, Vantorre J, Lemaitre F, et al. Different profiles of the aerial start phase in front crawl. J Strength Cond Res. 2010;24:507–16.PubMedCrossRef
80.
go back to reference Vantorre J, Seifert L, Fernandes RJ, et al. Kinematical profiling of the front crawl start. Int J Sports Med. 2010;31:16–21.PubMedCrossRef Vantorre J, Seifert L, Fernandes RJ, et al. Kinematical profiling of the front crawl start. Int J Sports Med. 2010;31:16–21.PubMedCrossRef
81.
go back to reference Kolmogorov SV, Duplishcheva OA. Active drag, useful mechanical power output and hydrodynamic force coefficient in different swimming strokes at maximal velocity. J Biomech. 1992;25:311–8.PubMedCrossRef Kolmogorov SV, Duplishcheva OA. Active drag, useful mechanical power output and hydrodynamic force coefficient in different swimming strokes at maximal velocity. J Biomech. 1992;25:311–8.PubMedCrossRef
82.
go back to reference Kolmogorov SV, Rumyantseva OA, Gordon BJ, et al. Hydrodynamic characteristics of competitive swimmers of different genders and performance levels. J Appl Biomech. 1997;13:88–97. Kolmogorov SV, Rumyantseva OA, Gordon BJ, et al. Hydrodynamic characteristics of competitive swimmers of different genders and performance levels. J Appl Biomech. 1997;13:88–97.
83.
go back to reference Kent M, Atha J. Intracycle kinematics and body configuration changes in the breaststroke. In: Lewillie L, Clarys JP, editors. Swimming Science II. Baltimore: University Park Press; 1975. p. 125–9. Kent M, Atha J. Intracycle kinematics and body configuration changes in the breaststroke. In: Lewillie L, Clarys JP, editors. Swimming Science II. Baltimore: University Park Press; 1975. p. 125–9.
84.
go back to reference Schnitzler C, Brazier T, Button C, et al. Effect of velocity and added resistance on selected coordination and force parameters in front crawl. J Strength Cond Res. 2011;25:2681–90.PubMedCrossRef Schnitzler C, Brazier T, Button C, et al. Effect of velocity and added resistance on selected coordination and force parameters in front crawl. J Strength Cond Res. 2011;25:2681–90.PubMedCrossRef
85.
go back to reference Leblanc H, Seifert L, Chollet D. Does floatation influence breaststroke technique? J Appl Biomech. 2010;26:150–8.PubMed Leblanc H, Seifert L, Chollet D. Does floatation influence breaststroke technique? J Appl Biomech. 2010;26:150–8.PubMed
86.
go back to reference Hue O, Benavente H, Chollet D. The effect of wet suit use by triathletes: an analysis of the different phases of arm movement. J Sports Sci. 2003;21:1025–30.PubMedCrossRef Hue O, Benavente H, Chollet D. The effect of wet suit use by triathletes: an analysis of the different phases of arm movement. J Sports Sci. 2003;21:1025–30.PubMedCrossRef
87.
go back to reference Seifert L, Chollet D, Allard P. Arm coordination symmetry and breathing effect in front crawl. Hum Mov Sci. 2005;24:234–56.PubMedCrossRef Seifert L, Chollet D, Allard P. Arm coordination symmetry and breathing effect in front crawl. Hum Mov Sci. 2005;24:234–56.PubMedCrossRef
88.
go back to reference Seifert L, Chehensse A, Tourny-Chollet C, et al. Effect of breathing pattern on arm coordination symmetry in front crawl. J Strength Cond Res. 2008;22:1670–6.PubMedCrossRef Seifert L, Chehensse A, Tourny-Chollet C, et al. Effect of breathing pattern on arm coordination symmetry in front crawl. J Strength Cond Res. 2008;22:1670–6.PubMedCrossRef
89.
go back to reference Tourny-Chollet C, Seifert L, Chollet D. Effect of force symmetry on coordination in crawl. Int J Sports Med. 2009;30:182–7.PubMedCrossRef Tourny-Chollet C, Seifert L, Chollet D. Effect of force symmetry on coordination in crawl. Int J Sports Med. 2009;30:182–7.PubMedCrossRef
90.
go back to reference Seifert L, Barbosa T, Kjendlie P. Biophysical approach in swimming: gender effect. In: Davies S, editor. Gender Gap: Causes, Experiences and Effects. New York: Nova Science Publishers, Hauppauge; 2011. p. 59–80. Seifert L, Barbosa T, Kjendlie P. Biophysical approach in swimming: gender effect. In: Davies S, editor. Gender Gap: Causes, Experiences and Effects. New York: Nova Science Publishers, Hauppauge; 2011. p. 59–80.
91.
go back to reference McCabe CB, Psycharakis SG, Sanders RH. Kinematic differences between front crawl sprint and distance swimmers at sprint pace. J Sports Sci. 2011;29:115–23.PubMedCrossRef McCabe CB, Psycharakis SG, Sanders RH. Kinematic differences between front crawl sprint and distance swimmers at sprint pace. J Sports Sci. 2011;29:115–23.PubMedCrossRef
92.
go back to reference McCabe CB, Sanders RH. Kinematic differences between front crawl sprint and distance swimmers at a distance pace. J Sports Sci. 2012;30:601–8.PubMedCrossRef McCabe CB, Sanders RH. Kinematic differences between front crawl sprint and distance swimmers at a distance pace. J Sports Sci. 2012;30:601–8.PubMedCrossRef
93.
go back to reference Komar J, Leprêtre PM, Alberty M, et al. Effect of increasing energy cost on arm coordination in elite sprint swimmers. Hum Mov Sci. 2011;31(3):620–9.PubMedCrossRef Komar J, Leprêtre PM, Alberty M, et al. Effect of increasing energy cost on arm coordination in elite sprint swimmers. Hum Mov Sci. 2011;31(3):620–9.PubMedCrossRef
94.
go back to reference Millet GP, Chollet D, Chalies S, et al. Coordination in front crawl in elite triathletes and elite swimmers. Int J Sports Med. 2002;23:99–104.PubMedCrossRef Millet GP, Chollet D, Chalies S, et al. Coordination in front crawl in elite triathletes and elite swimmers. Int J Sports Med. 2002;23:99–104.PubMedCrossRef
95.
go back to reference Marques-Aleixo I, Querido AJ, Figuereido P, et al. Intracyclic velocity variation and arm coordination assessment in swimmers with Down syndrome. Adapt Phys Activ Q. 2013;30:70–84.PubMed Marques-Aleixo I, Querido AJ, Figuereido P, et al. Intracyclic velocity variation and arm coordination assessment in swimmers with Down syndrome. Adapt Phys Activ Q. 2013;30:70–84.PubMed
96.
go back to reference Querido AJ, Marques-Aleixo I, Figuereido P, et al. Front crawl and backstroke arm coordination in swimmers with down syndrome. In: Kjendlie P, Stallman R, Cabri J, editors. Biomechanics and Medicine in Swimming: XI. Oslo: University of Oslo; 2010. p. 157–9. Querido AJ, Marques-Aleixo I, Figuereido P, et al. Front crawl and backstroke arm coordination in swimmers with down syndrome. In: Kjendlie P, Stallman R, Cabri J, editors. Biomechanics and Medicine in Swimming: XI. Oslo: University of Oslo; 2010. p. 157–9.
97.
go back to reference Osborough CD, Payton CJ, Daly D. Influence of swimming speed on inter-arm coordination in competitive unilateral arm amputee front crawl swimmers. Hum Mov Sci. 2010;29:921–31.PubMedCrossRef Osborough CD, Payton CJ, Daly D. Influence of swimming speed on inter-arm coordination in competitive unilateral arm amputee front crawl swimmers. Hum Mov Sci. 2010;29:921–31.PubMedCrossRef
98.
go back to reference Satkunskiene D, Schega L, Kunze K, et al. Coordination in arm movements during crawl stroke in elite swimmers with a loco-motor disability. Hum Mov Sci. 2005;24:54–65.PubMedCrossRef Satkunskiene D, Schega L, Kunze K, et al. Coordination in arm movements during crawl stroke in elite swimmers with a loco-motor disability. Hum Mov Sci. 2005;24:54–65.PubMedCrossRef
99.
go back to reference González-Agüero A, Vicente-Rodríguez G, Moreno LA, et al. Health-related physical fitness in children and adolescents with Down syndrome and response to training. Scand J Med Sci Sports. 2010;20:716–24.PubMedCrossRef González-Agüero A, Vicente-Rodríguez G, Moreno LA, et al. Health-related physical fitness in children and adolescents with Down syndrome and response to training. Scand J Med Sci Sports. 2010;20:716–24.PubMedCrossRef
100.
go back to reference Lerda R, Cardelli C. Breathing and propelling in crawl as a function of skill and swim velocity. Int J Sports Med. 2003;24:75–80.PubMedCrossRef Lerda R, Cardelli C. Breathing and propelling in crawl as a function of skill and swim velocity. Int J Sports Med. 2003;24:75–80.PubMedCrossRef
101.
go back to reference Seifert L, Komar J, Crettenand F, et al. Inter-limb coordination and energy cost in swimming. J Sci Med Sport. Epub 7 Aug 2013. Seifert L, Komar J, Crettenand F, et al. Inter-limb coordination and energy cost in swimming. J Sci Med Sport. Epub 7 Aug 2013.
102.
go back to reference Figuereido P, Morais PA, Vilas-Boas JP, et al. Changes in arm coordination and stroke parameters on transition through the lactate threshold. Eur J Appl Physiol. 2013;113:1957–64.CrossRef Figuereido P, Morais PA, Vilas-Boas JP, et al. Changes in arm coordination and stroke parameters on transition through the lactate threshold. Eur J Appl Physiol. 2013;113:1957–64.CrossRef
103.
go back to reference Alberty M, Potdevin F, Dekerle J, et al. Changes in swimming technique during time to exhaustion at freely chosen and controlled stroke rates. J Sports Sci. 2008;26:1191–200.PubMedCrossRef Alberty M, Potdevin F, Dekerle J, et al. Changes in swimming technique during time to exhaustion at freely chosen and controlled stroke rates. J Sports Sci. 2008;26:1191–200.PubMedCrossRef
104.
go back to reference Guerin S, Kunkle D. Emergence of constraint in self-organizing systems: nonlinear dynamics. Psychol Life Sci. 2004;8:131–46. Guerin S, Kunkle D. Emergence of constraint in self-organizing systems: nonlinear dynamics. Psychol Life Sci. 2004;8:131–46.
105.
go back to reference Harbourne RT, Stergiou N. Movement variability and the use of nonlinear tools: principles to guide physical therapist practice. Phys Ther. 2009;89:267–82.PubMedCrossRefPubMedCentral Harbourne RT, Stergiou N. Movement variability and the use of nonlinear tools: principles to guide physical therapist practice. Phys Ther. 2009;89:267–82.PubMedCrossRefPubMedCentral
106.
go back to reference Reed E, Bril B. The primacy of action in development. A commentary of N. Bernstein. In: Latash ML, editor. Dexterity and its Development. Hillsdale: Erlbaum; 1996. p. 431–51. Reed E, Bril B. The primacy of action in development. A commentary of N. Bernstein. In: Latash ML, editor. Dexterity and its Development. Hillsdale: Erlbaum; 1996. p. 431–51.
Metadata
Title
Coordination Pattern Variability Provides Functional Adaptations to Constraints in Swimming Performance
Authors
Ludovic Seifert
John Komar
Tiago Barbosa
Huub Toussaint
Grégoire Millet
Keith Davids
Publication date
01-10-2014
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 10/2014
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.1007/s40279-014-0210-x

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