Validity of the two-parameter model in estimating the anaerobic work capacity
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J. Dekerle | J. Pringle | J. Dekerle | H. Carter | H. Carter | G. Brickley | A. J. P. Hammond | J. S. M. Pringle | G. Brickley | A. Hammond | J. S. Pringle
[1] J. Dekerle,et al. Reproducibility of variables derived from a 90 s all-out effort isokinetic cycling test. , 2006, The Journal of sports medicine and physical fitness.
[2] D. Hill. The relationship between power and time to fatigue in cycle ergometer exercise. , 2004, International journal of sports medicine.
[3] Akira Kan,et al. The curvature constant parameter of the power-duration curve for varied-power exercise. , 2003, Medicine and science in sports and exercise.
[4] T. Barstow,et al. Relationship between the curvature constant parameter of the power-duration curve and muscle cross-sectional area of the thigh for cycle ergometry in humans , 2002, European Journal of Applied Physiology.
[5] T. Barstow,et al. Effect of endurance training on oxygen uptake kinetics during treadmill running. , 2000, Journal of applied physiology.
[6] Y. Fukuba,et al. The effect of glycogen depletion on the curvature constant parameter of the power-duration curve for cycle ergometry , 2000, Ergonomics.
[7] P. E. D. Prampero,et al. The concept of critical velocity: a brief analysis , 1999, European Journal of Applied Physiology and Occupational Physiology.
[8] Y. Fukuba,et al. The effect of oral creatine supplementation on the curvature constant parameter of the power-duration curve for cycle ergometry in humans. , 1999, The Japanese journal of physiology.
[9] Steve Haake,et al. The Engineering of Sport , 1998 .
[10] H Monod,et al. Work-exhaustion time relationships and the critical power concept. A critical review. , 1997, The Journal of sports medicine and physical fitness.
[11] R. Bulbulian,et al. Comparison of anaerobic components of the Wingate and Critical Power tests in males and females. , 1996, Medicine and science in sports and exercise.
[12] P B Gastin,et al. Accumulated oxygen deficit during supramaximal all-out and constant intensity exercise. , 1995, Medicine and science in sports and exercise.
[13] B. Dawson,et al. Y-intercept of the maximal work-duration relationship and anaerobic capacity in cyclists , 1994, European Journal of Applied Physiology and Occupational Physiology.
[14] D. Lawson,et al. Influence of training status on maximal accumulated oxygen deficit during all-out cycle exercise , 1994, European Journal of Applied Physiology and Occupational Physiology.
[15] J. Smith,et al. A comparison of methods of estimating anaerobic work capacity. , 1993, Ergonomics.
[16] B. Quigley,et al. The influence of high-intensity exercise training on the Wlim-Tlim relationship. , 1993, Medicine and science in sports and exercise.
[17] C Bouchard,et al. Estimation of the Contribution of the Various Energy Systems During Maximal Work of Short Duration , 1988, International journal of sports medicine.
[18] G. Gaesser,et al. Effects of Continuous and Interval Training on the Parameters of the Power-Endurance Time Relationship for High-Intensity Exercise , 1988, International journal of sports medicine.
[19] T J Housh,et al. A comparison between methods of measuring anaerobic work capacity. , 1988, Ergonomics.
[20] D. Altman,et al. STATISTICAL METHODS FOR ASSESSING AGREEMENT BETWEEN TWO METHODS OF CLINICAL MEASUREMENT , 1986, The Lancet.
[21] T. Moritani,et al. Critical power as a measure of physical work capacity and anaerobic threshold. , 1981, Ergonomics.
[22] W L Beaver,et al. Anaerobic threshold and respiratory gas exchange during exercise. , 1973, Journal of applied physiology.
[23] R. H. Morton,et al. The relationship between power output and endurance: a brief review , 2004, European Journal of Applied Physiology and Occupational Physiology.
[24] R. Withers,et al. Oxygen deficits incurred during 45, 60, 75 and 90-s maximal cycling on an air-braked ergometer , 2004, European Journal of Applied Physiology and Occupational Physiology.
[25] H. Monod,et al. Comparison between a 30-s all-out test and a time-work test on a cycle ergometer , 2004, European Journal of Applied Physiology and Occupational Physiology.
[26] Paul B. Gastin,et al. Energy System Interaction and Relative Contribution During Maximal Exercise , 2001, Sports medicine.
[27] J Bangsbo,et al. Quantification of anaerobic energy production during intense exercise. , 1998, Medicine and science in sports and exercise.
[28] Louis Passfield,et al. The dynamic calibration of bicycle power measuring cranks , 1998 .
[29] S. Green. Measurement of Anaerobic Work Capacities in Humans , 1995 .
[30] B. Dawson,et al. Measurement of anaerobic capacities in humans. Definitions, limitations and unsolved problems. , 1993, Sports medicine.
[31] B. Quigley,et al. The y-intercept of the critical power function as a measure of anaerobic work capacity. , 1991, Ergonomics.
[32] O Vaage,et al. Anaerobic capacity determined by maximal accumulated O2 deficit. , 1988, Journal of applied physiology.
[33] B J Whipp,et al. Effect of ramp slope on determination of aerobic parameters from the ramp exercise test. , 1982, Medicine and science in sports and exercise.