The Specificity of Motor Learning Tasks Determines the Kind of Skating Skill Development in Older School-Age Children
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Approach to the Problem
2.2. Subjects
2.3. Regular Training Program
2.4. Training of the Change of Direction (COD) Speed
2.5. Training of Partial Tasks (SeqTs)
2.6. On-Ice Test Measurements
2.6.1. Agility without Puck and with the Puck
2.6.2. Straight 30-m Forward and Backward Sprint with and without a Puck
2.6.3. Straight 4-m Forward and Backward Sprint Speed without a Puck
2.7. Statistical Analyses
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
Appendix A. Change of Direction Speed Training
Appendix B. Partial Skating Training
References
- Buckeridge, E.; LeVangie, M.C.; Stetter, B.; Nigg, S.R.; Nigg, B.M. An on-ice measurement approach to analyse the biomechanics of ice hockey skating. PLoS ONE 2015, 10, e0127324. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Popkin, C.; Schulz, B.; Park, C.; Bottiglieri, T.; Lynch, T.S. Evaluation, management and prevention of lower extremity youth ice hockey injuries. Open Access J. Sports Med. 2016, 7, 167–176. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Farlinger, C.M.; Kruisselbrink, L.D.; Fowles, J.D. Relationships to Skating Performance in Competitive Hockey Players. J. Strength Cond. Res. 2007, 21, 915–922. [Google Scholar] [CrossRef] [PubMed]
- Allisse, M.; Sercia, P.; Comtois, A.S.; Leone, M. Morphological, Physiological and Skating Performance Profiles of Male Age-Group Elite Ice Hockey Players. J. Hum. Kinet. 2017, 58, 87–97. [Google Scholar] [CrossRef] [Green Version]
- Mascaro, T.; Seaver, B.L.; Swanson, L. Prediction of skating speed with off-ice testing in professional hockey players. J. Orthop. Sports Phys. Ther. 1992, 15, 92–98. [Google Scholar] [CrossRef]
- Novák, D.; Lipinska, P.; Roczniok, R.; Spieszny, M.; Stastny, P. Off-ice agility provide motor transfer to on-ice skating performance and agility in adolescent ice hockey players. J. Sports Sci. Med. 2019, 18, 680–694. [Google Scholar]
- Pearsall, D.; Turcotte, R.; Murphy, S.D. Biomechanics of ice hockey. Exerc. Sport Sci. 2000, 675–692. [Google Scholar]
- Bracko, M. Biomechanics powers ice hockey performance. Biomechanics 2004, 9, 47–53. [Google Scholar]
- Clark, J.E.; Metcalfe, J.S. The Mountain of Motor Development: A Metaphor. Mot. Dev. Res. Rev. 2002, 2, 163–190. [Google Scholar]
- Seidler, R.D. Neural Correlates of Motor Learning, Transfer of Learning, and Learning to Learn. Exerc. Sport Sci. Rev. 2013, 38, 3–9. [Google Scholar] [CrossRef]
- Krakauer, J.W.; Hadjiosif, A.K.; Xu, J.; Wong, A.L.; Haith, A.M. Motor learning. Compr. Physiol. 2011, 9, 613–663. [Google Scholar]
- Sheppard, J.M. Strength and conditioning exercise selection in speed development. Strength Cond. J. 2003, 25, 26–30. [Google Scholar] [CrossRef]
- Sheppard, J.M.; Young, W.B.; Doyle, T.L.A.; Sheppard, T.A.; Newton, R.U. An evaluation of a new test of reactive agility and its relationship to sprint speed and change of direction speed. J. Sci. Med. Sport 2006, 9, 342–349. [Google Scholar] [CrossRef] [Green Version]
- Young, W.B.; James, R.; Montgomery, I. Is muscle power related to running speed with changes of direction? J. Sports Med. Phys. Fitness 2002, 42, 282–288. [Google Scholar]
- Brughelli, M.; Cronin, J.; Levin, G.; Chaouachi, A. Understanding change of direction ability in sport: A review of resistance training studies. Sports Med. 2008, 38, 1045–1063. [Google Scholar] [CrossRef]
- Janot, J.M.; Beltz, N.M.; Dalleck, L.D. Multiple off-ice performance variables predict onice skating performance in male and female division III ice hockey players. J. Sports Sci. Med. 2015, 14, 522–529. [Google Scholar] [PubMed]
- Bracko, M.R.; George, J.D. Prediction of Ice Skating Performance with Off-Ice Testing in Women’s Ice Hockey Players. J. Strength Cond. Res. 2001, 15, 116–122. [Google Scholar] [CrossRef]
- Hopkins, W.G.; Marshall, S.W.; Batterham, A.M.; Hanin, J. Progressive statistics for studies in sports medicine and exercise science. Med. Sci. Sports Exerc. 2009, 41, 3–12. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hopkins, W.G. Spreadsheets for analysis of controlled trials, crossovers and time series. Sportscience 2017, 21, 1–4. [Google Scholar]
- Hopkins, W.G. Compatibility Intervals and Magnitude-Based Decisions for Standardized Differences and Changes in Means. Sportscience 2019, 23, 1–4. [Google Scholar]
- Batterham, A.M.; Hopkins, W.G. The Problems with “The Problem with ‘Magnitude-Based Inference’”. Med. Sci. Sports Exerc. 2019, 51, 599. [Google Scholar] [CrossRef] [PubMed]
- Sainani, K. The Problem with “Magnitude-based Inference”. Med. Sci. Sports Exerc. 2018, 50, 2166–2176. [Google Scholar] [CrossRef] [PubMed]
- IIHF Hockey Centre. IIHF Skills Challenge: Operations Manual. Available online: https://www.hockeycentre.org/Portals/3/IIHF_docs_skillsChallenge/IIHFSkillsChallengeOpsManual_opt.pdf (accessed on 5 September 2020).
- Kowalczuk, M.; Ayeni, O.; Farag, J.; Farrokhyar, F.; Chu, R.; Bedi, A.; Willits, K.; Bhandari, M. Trends in reporting of mechanisms and incidence of hip injuries in males playing minor ice hockey in Canada: A cross-sectional study. Open Access J. Sports Med. 2014, 143. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hockey Canada. Hockey Canada Skill Academy. Available online: https://www.bchockey.net/Files/Skills%20and%20Fitness%20Tests%20-%202015.pdf (accessed on 5 September 2020).
- Lemoyne, J.; Martini, G.; Brunelle, J.F.; Trudeau, F. Measuring ice hockey skills in a repeated measures testing context: The effects of fatigue on skating efficiency, passing, agility, and shooting. Sport J. 2018, 21, 1–16. [Google Scholar]
- Haukali, E.; Tjelta, L.I. Correlation between “off-ice” variables and skating performance among young male ice hockey players. Int. J. Appl. Sports Sci. 2015, 27, 26–32. [Google Scholar] [CrossRef]
- Gilenstam, K.; Thorsen, K.; Henriksson-Larsén, K.B. Physiological Correlates of Skating Performance in Women’s and Men’s Ice Hockey. J. Strength Cond. Res. 2011. [Google Scholar] [CrossRef] [Green Version]
- Budarick, A.R.; Shell, J.R.; Robbins, S.M.K.; Wu, T.; Renaud, P.J.; Pearsall, D.J. Ice hockey skating sprints: Run to glide mechanics of high calibre male and female athletes. Sports Biomech. 2020, 19, 601–617. [Google Scholar] [CrossRef]
- Pearsall, D.J.; Upjohn, T.; Loh, J. Three-dimensional kinematics of the lower limbs during forward ice hockey skating. Sports Biomech. 2008, 7, 206–221. [Google Scholar] [CrossRef]
Subject | Height | Weight (kg) | BMI | Post |
---|---|---|---|---|
1 | 152 | 38 | 16.45 | Defender |
2 | 146 | 36 | 16.89 | Forward |
3 | 166 | 62 | 22.5 | Forward |
4 | 133 | 35 | 19.79 | Defender |
5 | 161 | 48 | 18.52 | Defender |
6 | 155 | 43 | 17.9 | Defender |
7 | 160 | 50 | 19.53 | Forward |
8 | 154 | 37 | 15.6 | Forward |
9 | 138 | 29 | 15.23 | Defender |
10 | 160 | 39 | 15.23 | Forward |
11 | 147 | 37 | 17.12 | Forward |
12 | 146 | 37 | 17.36 | Forward |
13 | 161 | 54 | 20.83 | Forward |
Mean ± SD | 152.23 ± 9.41 | 41.92 ± 8.76 | 17.91 ± 2.14 |
Test | Baseline Mean ± SD | After COD | After Partial Task Training | ||
---|---|---|---|---|---|
Mean ± 90% CL | Effect | Mean ± 90% CL | Effect | ||
Agility without a puck (s) | 16 ± 0.4 | −0.4%; ± 1.3% | unclear | −1.9%; ± 0.9% | Moderate **** |
Agility with a puck (s) | 18 ± 1.0 | −2.2%; ± 2.4% | Small ** | −1.9%; ± 2.1% | small * |
Straight 30-m sprint without a puck (s) | 6.1 ± 0.4 | 0.3%; ± 2.0% | unclear | −2.6%; ± 1.3% | Moderate *** |
Straight 30-m sprint with a puck (s) | 6.4 ± 0.4 | 1.1%; ± 4.7% | Trivial * | −5.4%; ± 2.5% | large **** |
Backward skating for 30-m without a puck (s) | 7.8 ± 0.9 | 0.9%; ± 2.3% | Trivial * | −2.4%; ± 2.7% | small* |
Straight 4-m sprint speed without a puck (s) | 1.9 ± 0.1 | −11.7%; ± 2.4% | Large **** | −1.7%; ± 3.8% | unclear |
Straight 4-m sprint speed with a puck (s) | 2.0 ± 0.1 | −16.3%; ± 2.5% | very large **** | 1.3%; ± 2.9% | unclear |
Backward 4-m sprint speed without a puck (s) | 2.4 ± 0.1 | −15.2%; ± 3.4% | very large **** | 1.1%; ± 4.8% | unclear |
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Novak, D.; Tomasek, A.; Lipinska, P.; Stastny, P. The Specificity of Motor Learning Tasks Determines the Kind of Skating Skill Development in Older School-Age Children. Sports 2020, 8, 126. https://doi.org/10.3390/sports8090126
Novak D, Tomasek A, Lipinska P, Stastny P. The Specificity of Motor Learning Tasks Determines the Kind of Skating Skill Development in Older School-Age Children. Sports. 2020; 8(9):126. https://doi.org/10.3390/sports8090126
Chicago/Turabian StyleNovak, Dominik, Adam Tomasek, Patrycja Lipinska, and Petr Stastny. 2020. "The Specificity of Motor Learning Tasks Determines the Kind of Skating Skill Development in Older School-Age Children" Sports 8, no. 9: 126. https://doi.org/10.3390/sports8090126
APA StyleNovak, D., Tomasek, A., Lipinska, P., & Stastny, P. (2020). The Specificity of Motor Learning Tasks Determines the Kind of Skating Skill Development in Older School-Age Children. Sports, 8(9), 126. https://doi.org/10.3390/sports8090126