Autorzy: |
Viktor
Simanjuntak
![]() Faculty of Teacher Training and Education, University of Tanjung Pura, Indonesia Edi Setiawan ![]() Faculty of Teacher Training and Education, University of Suryakancana, Indonesia Novi Yanti ![]() Faculty of Teacher Training and Education, University of Tanjung Pura, Indonesia Yudha Isnaini Lalu Moh ![]() Faculty of Teacher Training and Education, University of Nahdlatul Ulama Nusa Tenggara Barat, Indonesia Mashuri Eko Winarno ![]() Faculty of Sport Science, University of Negeri Malang, Indonesia |
Słowa kluczowe: | virtual-based plyometric aquatic lower extremity muscle strength mixed methods research |
Data publikacji całości: | 2023 |
Liczba stron: | 12 (95-106) |
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16. | Gani, R. A., Achmad, I. Z., Julianti, R. R., Setiawan, E., Németh, Z., Muzakki, A., Yanti, N., & Habibie, H. (2022). Does the Athletes’ Leg Muscle Power Increase After the Tabata Aquatic Program? Teorìâ Ta Metodika Fìzičnogo Vihovannâ, 22(1), 56–61. https://doi.org/10.17309/tmfv.2022.1.08 |
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19. | Grgic, J., Schoenfeld, B. J., & Mikulic, P. (2021). Effects of plyometric vs. resistance training on skeletal muscle hypertrophy: A review. Journal of Sport and Health Science, 10(5), 530–536. https://doi.org/10.1016/j.jshs.2020.06.010 |
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21. | Guan, S., Lin, N., Yin, Y., Liu, H., Liu, L., & Qi, L. (2021). Electromyography Activity, and Tissue Oxygenation during Plyometric Training. Sensors (Basel, Switzerland), 21(9), 3015. https://doi.org/https://doi.org/10.3390/s21093015 |
22. | Guimarães, M. P., Silva, R. D. O., Dos Santos, I. A., Da Silva, G. P., Campos, Y. A. C., Da Silva, S. F., & De Azevedo, P. H. S. M. (2023). Effect of 4 weeks of plyometric training in the pre-competitive period on volleyball athletes' performance. Biology of sport, 40(1), 193–200. https://doi.org/10.5114/biolsport.2023.112971 |
23. | Hasan, S., Kandasamy, G., Alyahya, D., Alonazi, A., Jamal, A., Iqbal, A., Unnikrishnan, R., & Muthusamy, H. (2022). Effect of plyometric training and neuromuscular electrical stimulation assisted strength training on muscular, sprint, and functional performances in collegiate male football players. PeerJ, 10(e13588). https://doi.org/10.7717/peerj.13588 |
24. | Hasan, S., Kandasamy, G., Alyahya, D., Alonazi, A., Jamal, A., Unnikrishnan, R., Muthusamy, H., & Iqbal, A. (2021). Effect of resisted sprint and plyometric training on lower limb functional performance in collegiate male football players: A randomised control trial. International Journal of Environmental Research and Public Health, 18(13), 1–12. https://doi.org/10.3390/ijerph18136702 |
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30. | Morris, S. J., Oliver, J. L., Pedley, J. S., Haff, G. G., & Lloyd, R. S. (2022). Comparison of Weightlifting, Traditional Resistance Training and Plyometrics on Strength, Power and Speed: A Systematic Review with Meta-Analysis. Sports Medicine, 52(7), 1533–1554. https://doi.org/10.1007/s40279-021-01627-2 |
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33. | Ramírez, M., Sánchez, A. B., García, P. E., Jiménez, F., & Vicén, J. A. (2022). Effects of Plyometric Training on Lower Body Muscle Architecture, Tendon Structure, Stiffness and Physical Performance : A Systematic Review and Meta ‑ analysis. Sports Med Open, 8(1)(40), 1–29. https://doi.org/10.1186/s40798-022-00431-0 |
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