Test–retest reliability of a 3-min isokinetic all-out test using two different cadences
Tài liệu tham khảo
Jones, 2010, Critical power: implications for determination of V˙O2 peak and exercise tolerance, Med Sci Sports Exerc, 42, 1876, 10.1249/MSS.0b013e3181d9cf7f
Dekerle, 2008, Determination of critical power from a single test, Sci Sports, 23, 231, 10.1016/j.scispo.2007.06.015
Francis, 2010, Defining intensity domains from the end power of a 3-min all-out cycling test, Med Sci Sports Exerc, 42, 1769, 10.1249/MSS.0b013e3181d612e8
Hill, 1993, The critical power concept, Sports Med, 16, 237, 10.2165/00007256-199316040-00003
Burnley, 2006, A 3-min all-out test to determine peak oxygen uptake and the maximal steady state, Med Sci Sports Exerc, 38, 1995, 10.1249/01.mss.0000232024.06114.a6
Johnson, 2011, Reliability analysis of the 3-min all-out exercise test for cycle ergometry, Med Sci Sports Exerc, 43, 2375, 10.1249/MSS.0b013e318224cb0f
Vanhatalo, 2007, Determination of critical power using a 3-min all-out cycling test, Med Sci Sports Exerc, 39, 548, 10.1249/mss.0b013e31802dd3e6
Vanhatalo, 2008, Robustness of a 3min all-out cycling test to manipulations of power profile and cadence in humans, Exp Physiol, 93, 383, 10.1113/expphysiol.2007.039883
McClave, 2011, Sustainability of critical power determined by a 3-minute all-out test in elite cyclists, J Strength Cond Res, 25, 3093, 10.1519/JSC.0b013e318212dafc
Vanhatalo, 2008, A 3-min all-out cycling test is sensitive to a change in critical power, Med Sci Sports Exerc, 40, 1693, 10.1249/MSS.0b013e318177871a
Vanhatalo, 2008, Influence of prior sprint exercise on the parameters of the ‘all-out critical power test’ in men, Exp Physiol, 94, 255, 10.1113/expphysiol.2008.045229
Sperlich, 2011, Are peak oxygen uptake and power output at maximal lactate steady state obtained from a 3-min all-out cycle test?, Int J Sports Med, 32, 433, 10.1055/s-0031-1271770
Carnevale, 1991, Effects of pedaling speed on the power-duration relationship for high-intensity exercise, Med Sci Sports Exerc, 23, 242, 10.1249/00005768-199102000-00016
Sargeant, 2007, Structural and functional determinants of human muscle power, Exp Physiol, 92, 323, 10.1113/expphysiol.2006.034322
Barker, 2006, Human critical power–oxygen uptake relationship at different pedalling frequencies, Exp Physiol, 91, 621, 10.1113/expphysiol.2005.032789
Hopkins, 2001, Reliability of power in physical performance tests, Sports Med, 31, 11, 10.2165/00007256-200131030-00005
Hopkins, 2000, Measures of reliability in sports medicine and science, Sports Med, 30, 1, 10.2165/00007256-200030010-00001
Dekerle, 2006, Reproducibility of variables derived from a 90s all-out effort isokinetic cycling test, J Sports Med Phys Fitness, 46, 388
Williams, 2005, Achievement of peak V˙O2 during a 90-s maximal intensity cycle sprint in adolescents, Can J Appl Physiol, 30, 157, 10.1139/h05-112
Atkinson, 1996, Circadian variation in sports performance, Sports Med, 21, 292, 10.2165/00007256-199621040-00005
Beaver, 1986, A new method for detecting anaerobic threshold by gas exchange, J Appl Physiol, 60, 2020, 10.1152/jappl.1986.60.6.2020
Ludbrook, 2010, Confidence in Altman–Bland plots: a critical review of the method of differences, Clin Exp Pharmacol Physiol, 37, 143, 10.1111/j.1440-1681.2009.05288.x
Currier, 1990, p.330
Baron, 1999, Measurement of maximal power output in isokinetic and non-isokinetic cycling. A comparison of two methods, Int J Sports Med, 20, 532, 10.1055/s-1999-8839
McCartney, 1985, Torque velocity relationship in isokinetic cycling exercise, J Appl Physiol, 58, 1459, 10.1152/jappl.1985.58.5.1459
Jones, 1985, Muscle performance and metabolism in maximal isokinetic cycling at slow and fast speed, J Appl Physiol, 59, 132, 10.1152/jappl.1985.59.1.132
Sargeant, 1981, Maximum leg force and power output during short-term dynamic exercise, J Appl Physiol, 51, 1175, 10.1152/jappl.1981.51.5.1175
Vandewalle, 1987, Standard anaerobic exercise tests, Sports Med, 4, 268, 10.2165/00007256-198704040-00004