Análisis cinemático tridimensionalaspectos metodológicos

  1. Bermejo Frutos, Javier
  2. Palao Andrés, José Manuel
  3. López Elvira, José Luis
Revista:
European Journal of Human Movement

ISSN: 0214-0071 2386-4095

Año de publicación: 2012

Número: 29

Páginas: 75-94

Tipo: Artículo

Otras publicaciones en: European Journal of Human Movement

Resumen

El presente trabajo revisa los aspectos teóricos y las consideraciones metodológicas a tener en cuenta cuando se realiza un análisis del movimiento en el ámbito deportivo mediante fotogrametría tridimensional. Las consideraciones abordadas se agrupan en: 1) sistema de registro, 2) características de las cámaras, 3) número y ubicación de las cámaras, 4) determinación del sistema de referencia, 5) determinación del nivel de extrapolación, 6) sincronización de las imágenes, 7) representación del deportista, 8) digitalización, 9) determinación de los centros de masas de los segmentos y del cuerpo, y 10) validez, fiabilidad y objetividad de análisis 3D. El documento aporta información sobre los protocolos para realizar un análisis biomecánico de la técnica deportiva desde la perspectiva de la cinemática.

Referencias bibliográficas

  • Abdel-Aziz, Y. I. y Karara, H. M. (1971). Direct Linear Transformation from comparator coordinates into object space coordinates in close-range photogrametry. Symposium on closerange photogrametry. Falls Church, VA: American Society of Photogrametry, pp. 1-18.
  • Aguado, X., González, J. L., e Izquierdo, M. (1997). Biomecánica fuera y dentro del laboratorio. Universidad de León. León.
  • Allard, P., Blanchi, J. O., y Aissaoui, R. (1997). Three dimenisonal analysis of human movemente. Ed: Paul Allard, Jean Pierre Blanchi, Ian A.F. Stokes.
  • Angulo, R. M. y Dapena, J. (1992). Comparison of Film and Video Techniques for Estimating Three-Dimensional Coordinates Within a large Field. International Journal of Sport Biomechanics, 2, 145-151.
  • Bahamonde, R. y Stevens, R. (2006). Comparison of two methods of manual digitization on accuracy and time of completion. XXIV Symposium of the International Society of Biomechanics in Sports. Salzburg: Austria, pp 680-684.
  • Bartlett, R. (2007). Introduction to sports biomechanics. Analysing human movement patterns (2.º ed.). London: Routledge, pp. 115-162.
  • Bartlett, R., Bussey, M., y Flyger, N. (2006). Movement variability cannot be determined reliably from no-marker conditions. Journal of Biomechanics, 16, 3076-3079.
  • Bermejo, J., Palao, J. M., y Elvira, J. L. L. (2011). Effect of age on high jump take-off biomechanics. Portuguese Journal of Sport Sciences, 2, 155-158. Proceedings of: XXIX Symposium of the International Society of Biomechanics in Sport. Oporto: Portugal, 2011.
  • Borgström, A., Bartonietz, K., Morris, C., Fowler, N., Lilleheim, M., Henriksson, A., y Keihäs, J. (1995). Biomechanics of the throwing events, an introduction to a simplified way of analysing with normal videoequipment. En Biomechanics, Special edition of the express information given in the throwing events during the 5th IAAF World Championships in Athletics, Göteborg: 1-15.
  • Calvert, T. W. y Buderlin, A. (1995). Computer graphics for visualization and animation. En: Three-dimensional Analysis of Human Movement (editado por Allard, P., Stokes, I., y Blanchi, J. P.), pp 101-123. Human Kinetics. Champaign, Illinois.
  • Challis, J. H. (1995). A multiphase calibration procedure for the Direct Linear Transformation. Journal of Applied Biomechanics, 3, 351-358.
  • Challis, J. H. y Kerwin, D. G. (1992). Accuracy assessment and control point configuration when using the DLT for photogrametry. Journal of Biomechanics, 9, 1053-1058.
  • Chen, L., Armstrong, C. W., y Raftopoulus, D. D. (1994). An investigation on the accuracy of three dimensional space reconstruction using the direct linear transformation technique. Journal of Biomechanics, 4, 493-500.
  • Clauser, C. E., Mc Conville, J. T., y Young, J. W. (1986). Weight, volume and center of mass of segments of the human body. Journal of Biomechanics, 10, 269- 277.
  • Dapena, J., Harman, E. A., y Miller, J. A. (1982). Three-Dimensional cinematography with control object of unknown shape. Journal of Biomechanics, 1, 11-19.
  • De Leva, P. (1996). Adjustments to Zatsiorsky-Seluyanov’s segment inertia parameter. Journal of Biomechanics, 9, 1223-1230.
  • Gazzani, F. (1993). Comparative assessment of two algorithms for calibrating stereophotogrammetric systems. Journal of Biomechanics, 12, 1449-1454.
  • Grimshaw, P. y Burden, A. (2007). Sport and exercise biomechanics. London: Taylor and Francis Group, pp. 295-316.
  • Gruen, A. (1997). Fundamentals of videogrammetry – A review. Human Movement Science, 2, 155-187. Hallert, B. (1970). Photogrammetry. Nueva York: McGraw Hill.
  • Hazte, H. (1988). High-precision three-dimensional photogrametric calibration and object space reconstruction using a modified DLT-approach. Journal of Biomechanics, 7, 533-538.
  • Hazte, H. (1990). Date conditioning and differentiation techniques. En N. Berme y A. Cappozzo (Eds), Biomechanics of Human Movement: Applications in Rehabilitation, Sports and Ergonomics, pp 237-248. Worthigton, Ohio: Bertec Corporation.
  • Hinrichs, R. N. y McLean, S. P. (1995). NLT and extrapolated DLT: 3-D cinematography alternatives for enlarging the volume of calibration. Journal of Biomechanics, 10, 1219-1223.
  • Kennedy, P. W., Wright, D. L., y Smith, G. A. (1989). Comparison of film and video techniques for three-dimensional DLT reproductions. International Journal of Sports Biomechanics, 4, 4457-4460.
  • Kerwin, D. G. y Twigg, D. R. (1998). Precision and Accuracy of Video and Cinefilm Digitising Systems. North American Congress on Biomechanics. Waterloo, Ontario: Canada. (http:/ /asb-biomech.org/NACOB98/212/index.html) [consulta: 12/04/2012].
  • Kofman, J., Miller, D. I., Knopf, G. K., y Zecevic, A. (1998). Calibration and measurement accuracy of a stereophotogrammetric system using the direct linear transformation. North American Congress on Biomechanics. Waterloo, Ontario: Canada. (http://asbbiomech.org/ NACOB98/107/index.html) [consulta: 12/04/2012].
  • Knudson y Morrison (2002). Knudson, D. y Morrison, C. (2002). Qualitative analysis of human movement. Champaign, IL: Human Kinetics, p 207.
  • Lehmann, G. (1975). Fotogrametría. Barcelona: Editores Técnicos asociados S.A. McDonald,C. y Dapena, J. (1991). Linear kinematics of the men’s 110-m and women’s 100- m hurdles races. Medicine and Science in Sports and Exercise, 12, 1382-1391.
  • Navarro, E. (1994). Análisis Biomecánico de la Técnica Individual del Lanzamiento de Jabalina. Tesis Doctoral. Universidad Politécnica de Valencia. Escuela Técnica Superior de Ingenieros Industriales.
  • Nelson, R. y Miller, D. (1988) Biomechanics in Sports. Philadelfia: Lea & febinger.
  • Nordin, M. y Frankel, V. H. (2001). Basic biomechanics of the musculoskeletal system. Journal of Biomechanics, 6, 872.
  • Pearsall, D. y Reid, J. G. (1994). The Study of Human Body Segment Parameters in Biomechanics. Sports Medicine, 2, 126-140.
  • Pérez Soriano, P. y Llana Belloch, S. (2007). La instrumentación en la biomecánica deportiva. Journal of Human Sport and Exercise, 2, 26-41.
  • Planenhoef, S. (1971). Patterns of human motion, a cinematographic analysis. Prentice-Hall, Inc., Englewood Cliffs, New Jersey.
  • Payton, C. y Bartlett, R. (2008). Biomechanical Evaluation of Movement in Sport and Exercise. London: Routledge.
  • Soto, V. M. (1995). Desarrollo de un sistema para el análisis biomecánico tridimensional del deporte y la representación gráfica realista del cuerpo humano. Tesis Doctoral, Facultad de Ciencias de la Actividad Física y el Deporte, Universidad de Granada.
  • Soto, V. M. y Gutiérrez, M. (1996). Parámetros inerciales para el modelado biomecánico del cuerpo humano. Revista Motricidad, 2, 169-189.
  • Van Gheluwe, B., Roosen, P., y Desloovere, K. (2003). Rearfoot kinematics during initial takeoff of elite high jumpers: estimation of spatial position and orientation of subtalar axis. Journal of Applied Biomechanics, 19, 13-27.
  • Wilson, D. J., Smith, B. K., Gibson, J. K., Choe, B. K., Gaba, B. C., y Voelz, J. T. (1999). Accuracy of digitization using automated and manual methods. American Physical Therapy Association, 6, 558-566.
  • Winter, D. A., Sidwall, H. G., y Hobson, D. A. (1974). Measurement and reduction of noise in kinematics of locomotion. Journal of Biomechanics, 2, 157 - 159.
  • Wood, G. A. y Jennings, L. S. (1979). On the use of spline functions for data smoothing. Journal of Biomechanics, 6, 477-479.
  • Wood, G. A. y Marshall, R. N. (1986). The accuracy of DLT extrapolation in three dimensional film analysis. Journal of Biomechanics, 9, 781-785.
  • Wolf, P. R. (1983). Elements of photogrammetry. Nueva York: McGraw Hill. Yeadon, M. R. (1990). The simulation of aerial movements-I. The determination or orientation angles from film data. Journal of Biomechanics, 1, 59-66.
  • Yeadon, M. R. y King, M. A. (2008). Computer simulation modeling in sport. En C. J. Payton y R. M. Barlett, Biomechanical analysis of movement in sport and exercise. London: Routledge, pp 176-205.
  • Zatsiorsky, V. M. y Seluyanov, V. (1985). Estimation of the mass and inertia characteristics of the human body by means of the best predictive regressions equations. Biomechanics IX-B (editado por Winter, D. y cols.). Champaign, Illinois: Human Kinetics Publishers, pp. 233-239.
  • Zatsiorsky, V. M., Seluyanov, V. N., y Chugunova, L. G. (1990). Methods of determining massinertial characteristics of human body segments. En G. G. Chernyi y S. A. Regirer, Contemporary Problems of Biomechanics. USA: CRC Press, pp. 272-291.