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Diving

The validation and application of Inertial Measurement Units to springboard diving

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Pages 485-500 | Received 07 Mar 2016, Accepted 06 Oct 2016, Published online: 20 Oct 2016

References

  • Barris, S., Farrow, D., & Davids, K. (2013). Do the kinematics of a baulked take-off in springboard diving differ from those of a completed dive. Journal of Sports Sciences, 31, 305–313. doi:10.1080/02640414.2012.733018
  • Bergamini, E., Guillon, P., Camomillia, V., Pillet, H., Skalli, W., & Cappozzo, A. (2013). Trunk inclination estimate during the sprint start using an inertial measurement unit: A validation study. Journal of Applied Biomechanics, 29, 622–627. doi:10.1123/jab.29.5.622
  • Boonstra, M. C., van der Slikke, R. M. A., Keijsers, N. L. W., van Lummel, R. C., de Waal Malefijt, M. C., & Verdonschot, N. (2006). The accuracy of measuring the kinematics of rising from a chair with accelerometers and gyroscopes. Journal of Biomechanics, 39, 354–358. doi:10.1016/j.jbiomech.2004.11.021
  • Brodie, M., Walmsley, A., & Page, W. (2008). Fusion motion capture: A prototype system using inertial measurement units and GPS for the biomechanical analysis of ski racing. Sports Technology, 1, 17–28. doi:10.1002/jst.6
  • Brunetti, F., Moreno, J. C., Ruiz, A. F., Rocon, E., & Pons, J. L. (2006). A new platform based on IEEE802.15.4 wireless inertial sensors for motion caption and assessment. Engineering in Medicine and Biology Society. 28th Annual International Conference of the IEEE, New York, 6497–6500. doi: 10.1109/IEMBS.2006.260866
  • Fasel, B., Spörri, J., Kröll, J., Muller, E., & Aminian, K. (2015). Using inertial sensors for reconstructing 3D full-body movement in sports – possibilities and limitation on the example of alpine ski racing. In F. Colloud, M. Domalain, T. Monnet, S. Boyer, H. Noël, & S. Guérineau-Brion (Eds.), XXXIII International Society of Biomechanics in Sports Conference Proceedings (pp. 1322–1325). Poitiers: University of Poitiers.
  • Finch, M. C., Lintern, T. O., Taberner, A. J., & Nielsen, P. M. F. (2011). Effectiveness of model-based motion estimation from an inertial measurement unit. Fifth International Conference on Sensing Technology (ICST), Palmerston North, New Zealand, 607–611. doi:10.1109/ICSensT.2011.6137053
  • Forner-Cordero, A., Mateu-Arce, M., Forner-Cordero, I., Alcántara, E., Moreno, J. C., & Pons, J. L. (2008). Study of the motion artefacts of skin-mounted inertial sensors under different attachment conditions. Physiological Measurement, 29, 21–31. doi:10.1088/0967-3334/29/4/N01
  • Gouwanda, D., & Senanayake, S. M. N. A. (2008). Emerging trends of body-mounted sensors in Sports and human gait analysis. 4th Kuala Lumpur International Conference on Biomedical Engineering (Vol. 21, pp. 715–718). Berlin: Springer.
  • Gouwanda, D., & Senanayake, S. M. N. A. (2011). Periodical gait asymmetry assessment using real-time wireless gyroscopes gait monitoring system. Journal of Medical Engineering & Technology, 35, 432–440. doi:10.3109/03091902.2011.627080
  • Hamill, J., Ricard, M. D., & Golden, D. M. (1986). Angular momentum in multiple rotation nontwisting platform dives. International Journal of Sport Biomechanics, 2, 78–87. doi:10.1123/ijsb.2.2.78
  • Harding, J., Mackintosh, C., Hahn, A., & James, D. (2008). Classification of aerial acrobatics in elite half-pipe snowboarding using body mounted inertial sensors (P237). The Engineering of Sport, 7, 447–456. doi:10.1007/978-2-287-99056-4_55
  • Helten, T., Brock, H., Müller, M., & Seidel, H. (2011). Classification of trampoline jumps using inertial sensors. Sports Engineering, 14, 155–164. doi:10.1007/s12283-011-0081-4
  • Jones, I. C., & Miller, D. I. (1996). Influence of fulcrum position on springboard response and takeoff performance in the running approach. Journal of Applied Biomechanics, 12, 383–408. doi:10.1123/jab.12.3.383
  • Marsland, F., Lyons, K., Anson, J., Waddington, G., Macintosh, C., & Chapman, D. (2012). Identification of cross-country skiing movement patterns using micro-sensors. Sensors (Basel, Switzerland), 12, 5047–5066. doi: 10.3390/s120405047
  • Mayagoitia, R. E., Nene, A. V., & Veltink, P. H. (2002). Accelerometer and rate gyroscope measurement of kinematics: An inexpensive alternative to optical motion analysis systems. Journal of Biomechanics, 35, 537–542. doi:10.1016/S0021-9290(01)00231-7
  • Miller, D. I. (1984). Biomechanical characteristics of the final approach step, hurdle and take-off of elite American springboard divers. Journal of Human Movement Studies, 10, 189–212.
  • Miller, D. I. (2013). Teaming up to enhance diving performance. In T. Köthe & O. Stoll (Eds.), 1st Symposium for Researchers in Diving (pp. 44–52). Germany: Leipzig.
  • Miller, D. I., & Munro, C. F. (1985). Greg Louganis’ springboard takeoff: II. Linear and angular momentum considerations. International Journal of Sport Biomechanics, 1, 288–307. doi:10.1123/ijsb.1.4.288
  • Miller, D. I., & Sprigings, E. J. (2001). Factors influencing the performance of springboard dives of increasing difficulty. Journal of Applied Biomechanics, 17, 217–231. doi:10.1123/jab.17.3.217
  • Myklebust, H., Gloersen, O., & Hallen, J. (2015). Validity of ski skating center-of-mass displacement measured by a single inertial measurement unit. Journal of Applied Biomechanics, 31, 492–498. doi:10.1123/jab.2015-0081
  • Picerno, P., Viero, V., Donati, M., Triossi, T., & Tancredi, V. (2015). Ambulatory assessment of shoulder abduction strength curve using a single wearable inertial sensor. Journal of Rehabilitation Research & Development, 52, 171–180. doi:10.1682/JRRD.2014.06.0146
  • Rueterbories, J., Spaich, E. G., Larsen, B., & Andersen, O. K. (2010). Methods for gait event detection and analysis in ambulatory systems. Medical engineering & physics, 32, 545–552. doi:10.1016/j.medengphy.2010.03.007
  • Sanders, R. H., & Gibson, B. J. (2000). Technique and timing in the womens forward two and one half somersault pike and mens three and one half somersault pike 3 m springboard dives. Journal of Science & Medicine in Sport, 3, 434–448. doi:10.1016/S1440-2440(00)80009-2
  • Sanders, R. H., & Wilson, B. D. (1987). Angular momentum requirements of the twisting and nontwisting forward 1 1/2 somersault dive. International Journal of Sport Biomechanics, 3, 47–62. doi:10.1123/ijsb.3.1.47
  • Sanders, R. H., & Wilson, B. D. (1988). Factors contributing to maximum height of dives after takeoff from the 3 m springboard. International Journal of Sport Biomechanics, 4, 231–259. doi:10.1123/ijsb.4.3.231
  • Sinclair, P. J., Walker, C. A., & Cobley, S. (2014). Variability and the control of rotation during springboard diving. In K. Sato, W. A. Sands, & S. Mizuguchi (Eds.), XXXII International Society of Biomechanics in Sports Conference Proceedings (pp. 357–360). Johnson City, TN: East Tennessee State University.
  • Sinclair, P. J., Walker, C. A., & Rickards, T. (2012). Kinematic determinants of dive height in springboard diving. Movement and Sport Sciences, 75, 107–112. doi:10.3917/sm.075.0107
  • Smith, R. M., & Loschner, C. (2002). Biomechanics feedback for rowing. Journal of Sports Sciences, 20, 783–791. doi:10.1080/026404102320675639
  • Walker, C. A., Sinclair, P. J., Cobley, S., Sanders, R. H., & Graham, K. S. (2014). A comparison of multiple forward somersault dives from the 3 m springboard: A case study. In K. Sato, W. A. Sands, & S. Mizuguchi (Eds.), XXXII International Society of Biomechanics in Sports Conference Proceedings (pp. 353–356). Johnson City, TN: East Tennessee State University.
  • Winter, D. A. (2005). Biomechanics and motor control of human movement (3rd ed.) Hoboken, NJ: John Wiley & Sons.
  • Zijlstra, A., Goosen, J., Verheyen, C., & Zijlstra, W. (2008). A body-fixed-sensor based analysis of compensatory trunk movements during unconstrained walking. Gait & Posture, 27, 164–167. doi:10.1016/j.gaitpost.2007.02.010

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