In “Ride Basic: A Minimalist Guide to Maximize Your Cycling,” Nate advocates for simplicity in an often overcomplicated training landscape.

Whether you’re a beginner eager to complete your first fondo, or a seasoned pro aiming to refresh the foundational principles of long-term cycling success, this time-efficient guide offers invaluable insights into why and how you can Ride Basic

Ride Basic: A Minimalist Guide to Maximize Your Cycling is your key to rediscovering the simple joy of cycling. It’s an indispensable resource for anyone serious about improving, and it’s here to inspire and motivate you to unlock your full potential on the bike.

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Click on the arrow for recent book revisions and a full reference list

In the first revision (printed before 5/22/24), three pages of references were missing from the References section. The full reference list is shown below.

References

1. McKeown, J., Essentialism : the disciplined pursuit of less. 2014.

2. Nichols, T.M., The death of expertise : the campaign against established knowledge and why it matters. Paperback edition ed. 2019, New York, NY: Oxford University Press New York, NY.

3. Merriam-Webster.com, “Scientific method.”. 2021: Merriam-Webster, https://www.merriam-webster.com/dictionary/scientific%20method. .

4. van Ravenzwaaij, D., et al., Perspectives on scientific error. Royal Society Open Science, 2023. 10(7): p. 230448.

5. Kruger, J. and D. Dunning, Unskilled and unaware of it: how difficulties in recognizing one’s own incompetence lead to inflated self-assessments. J Pers Soc Psychol, 1999. 77(6): p. 1121-34.

6. Harrell, E., How 1% Performance Improvements Led to Olympic Gold, in Harvard Business Review. 2015: Online.

7. Pinot, J. and F. Grappe, A six-year monitoring case study of a top-10 cycling Grand Tour finisher. Journal of sports sciences, 2014: p. 1-8.

8. Carr, N., SHALLOWS : what the internet is doing to our brains. 2020, [S.l.]: W W NORTON.

9. Iyengar, S.S. and M.R. Lepper, When choice is demotivating: can one desire too much of a good thing? J Pers Soc Psychol, 2000. 79(6): p. 995-1006.

10. Vohs, K.D., et al., Making choices impairs subsequent self-control: a limited-resource account of decision making, self-regulation, and active initiative. J Pers Soc Psychol, 2008. 94(5): p. 883-98.

11. Baumeister, R.F., D.M. Tice, and K.D. Vohs, The Strength Model of Self-Regulation: Conclusions From the Second Decade of Willpower Research. Perspectives on Psychological Science, 2018. 13(2): p. 141-145.

12. Friese, M., et al., Is Ego Depletion Real? An Analysis of Arguments. Pers Soc Psychol Rev, 2019. 23(2): p. 107-131.

13. Gillen, J.B., et al., Three minutes of all-out intermittent exercise per week increases skeletal muscle oxidative capacity and improves cardiometabolic health. PLoS ONE, 2014. 9: p. e111489.

14. Seiler, K.S. and G.O. Kjerland, Quantifying training intensity distribution in elite endurance athletes: is there evidence for an “optimal” distribution? Scand J Med Sci Sports, 2006. 16(1): p. 49-56.

15. Staff, H.C., et al., Long-Term Development of Training Characteristics and Performance-Determining Factors in Elite/International and World-Class Endurance Athletes: A Scoping Review. Sports Med, 2023. 53(8): p. 1595-1607.

16. Dionne, J.F., et al., Physiological and Psychological Adaptations of Trained Cyclists to Spring Cycling Camps. J Hum Kinet, 2018. 64: p. 137-146.

17. Marquet, L.A., et al., Enhanced Endurance Performance by Periodization of CHO Intake: “Sleep Low” Strategy. Medicine and science in sports and exercise, 2016.

18. Burke, L.M., et al., Toward a common understanding of diet-exercise strategies to manipulate fuel availability for training and competition preparation in endurance sport. International Journal of Sport Nutrition and Exercise Metabolism, 2018. 28: p. 451-463.

19. Gibala, M.J., et al., Short-term sprint interval versus traditional endurance training: similar initial adaptations in human skeletal muscle and exercise performance. The Journal of Physiology, 2006. 575: p. 901-911.

20. Laursen, P.B., Training for intense exercise performance: high-intensity or high-volume training? Scand J Med Sci Sports, 2010. 20 Suppl 2: p. 1-10.

21. Gottschall, J.S., et al., Exercise Time and Intensity: How Much Is Too Much? Int J Sports Physiol Perform, 2020. 15(6): p. 808-815.

22. Corbett, J., et al., Influence of competition on performance and pacing during cycling exercise. Med Sci Sports Exerc, 2012. 44(3): p. 509-15.

23. Casado, A., et al., Different psychophysiological responses to a high-intensity repetition session performed alone or in a group by elite middle-distance runners. Eur J Sport Sci, 2019. 19(8): p. 1045-1052.

24. Stork, M.J., et al., Music enhances performance and perceived enjoyment of sprint interval exercise. Med Sci Sports Exerc, 2015. 47(5): p. 1052-60.

25. Laursen, P. and M. Buchheit, Science and application of high-intensity interval training : solutions to the programming puzzle. 2019, Champaign, IL: Human Kinetics.

26. Jeukendrup, A.E. and M. Gleeson, Sport Nutrition. 2019.

27. Muros, J.J., et al., Nutritional intake and body composition changes in a UCI World Tour cycling team during the Tour of Spain. Eur J Sport Sci, 2019. 19(1): p. 86-94.

28. Thomas, D.T., K.A. Erdman, and L.M. Burke, Position of the Academy of Nutrition and Dietetics, Dietitians of Canada, and the American College of Sports Medicine: Nutrition and Athletic Performance. J Acad Nutr Diet, 2016. 116: p. 501-528.

29. Wallis, G.A., et al., Metabolic response to carbohydrate ingestion during exercise in males and females. Am J Physiol Endocrinol Metab, 2006. 290(4): p. E708-15.

30. Aschwanden, C., Good to go : what the athlete in all of us can learn from the strange science of recovery. First edition ed. 2019, New York, N.Y.: W.W. Norton & Company, Inc. New York, N.Y.

31. Halson, S.L., et al., Sleep Quality in Elite Athletes: Normative Values, Reliability and Understanding Contributors to Poor Sleep. Sports Med, 2021.

32. Knufinke, M., et al., Dim light, sleep tight, and wake up bright – Sleep optimization in athletes by means of light regulation. Eur J Sport Sci, 2020: p. 1-9.

33. Vitale, K.C., et al., Sleep Hygiene for Optimizing Recovery in Athletes: Review and Recommendations. Int J Sports Med, 2019. 40(8): p. 535-543.

34. Halson, S.L., Sleep in elite athletes and nutritional interventions to enhance sleep. Sports Med, 2014. 44 Suppl 1: p. S13-23.

35. Arnal, P.J., et al., Sleep Extension before Sleep Loss: Effects on Performance and Neuromuscular Function. Med Sci Sports Exerc, 2016. 48(8): p. 1595-603.

36. Patterson, P.D., et al., Does evidence support “banking/extending sleep” by shift workers to mitigate fatigue, and/or to improve health, safety, or performance? A systematic review. Sleep Health, 2019. 5(4): p. 359-369.

37. Vikmoen, O., et al., Heavy strength training improves running and cycling performance following prolonged submaximal work in well-trained female athletes. Physiol Rep, 2017. 5(5).

38. Beattie, K., et al., The Effect of Strength Training on Performance in Endurance Athletes. Sports Med, 2014.

39. Kristoffersen, M., et al., Comparison of Short-Sprint and Heavy Strength Training on Cycling Performance. Frontiers in Physiology, 2019. 10.

40. Coleman, C.J., et al., Dose–response association of aerobic and muscle-strengthening physical activity with mortality: a national cohort study of 416 420 US adults. British Journal of Sports Medicine, 2022. 56(21): p. 1218-1223.

41. American College of Sports, M., ACSM’s guidelines for exercise testing and prescription. 2021, Philadelphia: Wolters Kluwer.

42. Kohrt, W.M., et al., American College of Sports Medicine Position Stand: physical activity and bone health. Med Sci Sports Exerc, 2004. 36(11): p. 1985-96.

43. Mcleod, J.C., T. Stokes, and S.M. Phillips, Resistance Exercise Training as a Primary Countermeasure to Age-Related Chronic Disease. Frontiers in Physiology, 2019. 10: p. 645.

44. Ronnestad, B.R., E.A. Hansen, and T. Raastad, In-season strength maintenance training increases well-trained cyclists’ performance. Eur J Appl Physiol, 2010. 110: p. 1269-1282.

45. Ronnestad, B.R. and I. Mujika, Optimizing strength training for running and cycling endurance performance: A review. Scandinavian journal of medicine & science in sports, 2013.

46. Rhea, M.R., et al., A meta-analysis to determine the dose response for strength development. Med Sci Sports Exerc, 2003. 35(3): p. 456-64.

47. Mujika, I. and S. Padilla, Physiological and Performance Characteristics of Male Professional Road Cyclists. Sports Medicine, 2001. 31(7): p. 479-487.

48. Stellingwerff, T., et al., Overtraining Syndrome (OTS) and Relative Energy Deficiency in Sport (RED-S): Shared Pathways, Symptoms and Complexities. Sports Med, 2021.

49. Kenney, W.L., J.H. Wilmore, and D.L. Costill, Physiology of sport and exercise. 2020, Champaign, IL: Human Kinetics.

50. Rosenbaum, D.L., et al., Daily self-weighing and weight gain prevention: a longitudinal study of college-aged women. J Behav Med, 2017. 40(5): p. 846-853.

51. McLester, C.N., et al., An investigation of the accuracy and reliability of body composition assessed with a handheld electrical impedance myography device. Eur J Sport Sci, 2018: p. 1-9.

52. Longland, T.M., et al., Higher compared with lower dietary protein during an energy deficit combined with intense exercise promotes greater lean mass gain and fat mass loss: a randomized trial. Am J Clin Nutr, 2016. 103(3): p. 738-46.

53. Halton, T.L. and F.B. Hu, The effects of high protein diets on thermogenesis, satiety and weight loss: a critical review. J Am Coll Nutr, 2004. 23(5): p. 373-85.

54. Jager, R., et al., International Society of Sports Nutrition Position Stand: protein and exercise. J Int Soc Sports Nutr, 2017. 14: p. 20.

55. Dubowitz, T., et al., Using a Grocery List Is Associated With a Healthier Diet and Lower BMI Among Very High-Risk Adults. J Nutr Educ Behav, 2015. 47(3): p. 259-64.

56. Ducrot, P., et al., Meal planning is associated with food variety, diet quality and body weight status in a large sample of French adults. Int J Behav Nutr Phys Act, 2017. 14(1): p. 12.

57. Gibson, O.R., et al., Cross-Adaptation: Heat and Cold Adaptation to Improve Physiological and Cellular Responses to Hypoxia. Sports Med, 2017.

58. Benjamin, C.L., et al., Heat Acclimation Following Heat Acclimatization Elicits Additional Physiological Improvements in Male Endurance Athletes. Int J Environ Res Public Health, 2021. 18(8).

59. Tyler, C.J., et al., The Effects of Heat Adaptation on Physiology, Perception and Exercise Performance in the Heat: A Meta-Analysis. Sports Medicine, 2016. 46: p. 1699-1724.

60. Guy, J.H., et al., Adaptation to hot environmental conditions: an exploration of the performance basis, procedures and future directions to optimise opportunities for elite athletes. Sports Med, 2015. 45: p. 303-311.

61. Houmard, J.A., et al., The influence of exercise intensity on heat acclimation in trained subjects. Medicine and science in sports and exercise, 1990. 22: p. 615-20.

62. Lorenzo, S., et al., Heat acclimation improves exercise performance. Journal of Applied Physiology, 2010. 109: p. 1140-1147.

63. Neal, R.A., et al., Effect of short-term heat acclimation with permissive dehydration on thermoregulation and temperate exercise performance. Scand J Med Sci Sports, 2016. 26(8): p. 875-84.

64. Fein, J.T. Effects of Daily and Intermittent Exposures on Heat Acclimation of Women. 1975.

65. Garrett, a.T. Induction and Decay of Short-Term Heat Acclimation in Moderately and Highly Trained Athletes. in Sports Med. 2011.

66. Casadio, J.R., et al., CURRENT OPINION From Lab to Real World: Heat Acclimation Considerations for Elite Athletes. Sports Medicine, 2016. 47.

67. Chapman, R.F., et al., Defining the “dose” of altitude training: how high to live for optimal sea level performance enhancement. J Appl Physiol (1985), 2014. 116(6): p. 595-603.

68. Lukes, R.A., S.B. Chin, and S.J. Haake, The understanding and development of cycling aerodynamics. Sports Engineering, 2005. 8(2): p. 59-74.

69. Malizia, F. and B. Blocken, Cyclist aerodynamics through time: Better, faster, stronger. Journal of Wind Engineering and Industrial Aerodynamics, 2021. 214.

70. Fintelman, D.M., et al., Optimal cycling time trial position models: aerodynamics versus power output and metabolic energy. J Biomech, 2014. 47: p. 1894-1898.

71. Fintelman, D.M., et al., The effect of time trial cycling position on physiological and aerodynamic variables. J Sports Sci, 2015. 33(16): p. 1730-7.

72. Barry, N., et al., Aerodynamic performance and riding posture in road cycling and triathlon. Proceedings of the Institution of Mechanical Engineers, Part P: Journal of Sports Engineering and Technology, 2015. 229(1): p. 28-38.

73. Ford, P., et al., The Long-Term Athlete Development model: Physiological evidence and application. Journal of Sports Sciences, 2011. 29: p. 389-402.

74. Gollwitzer, P.M. and P. Sheeran, Implementation Intentions and Goal Achievement: A Meta Analysis of Effects and Processes, in Advances in Experimental Social Psychology. 2006, Academic Press. p. 69-119.

75. Kompf, J., Implementation Intentions for Exercise and Physical Activity: Who Do They Work For? A Systematic Review. Journal of Physical Activity and Health, 2020. 17(3): p. 349.

76. Wieber, F., J.L. Thurmer, and P.M. Gollwitzer, Promoting the translation of intentions into action by implementation intentions: behavioral effects and physiological correlates. Front Hum Neurosci, 2015. 9: p. 395.

77. Robinson, S.A., et al., Time for change: using implementation intentions to promote physical activity in a randomised pilot trial. Psychol Health, 2019. 34(2): p. 232-254.

78. Thaler, R.H.S.C.R., NUDGE : improving decisions about health, wealth and happiness, the final edition. 2021, [S.l.]: PENGUIN BOOKS.

79. Clear, J., ATOMIC HABITS : an easy and proven way to build good habits and break bad ones. 2019, [Place of publication not identified]: RANDOM House BUSINESS.

80. Newman, M.E.J., The Structure and Function of Complex Networks. SIAM Review, 2003. 45(2): p. 167-256.

81. Christakis, N.A. and J.H. Fowler, The Spread of Obesity in a Large Social Network over 32 Years. New England Journal of Medicine, 2007. 357(4): p. 370-379.

82. Kataoka, R., et al., Periodization: Variation in the Definition and Discrepancies in Study Design. Sports Med, 2021.

83. Kiely, J., Periodization Theory: Confronting an Inconvenient Truth. Sports Med, 2017.

84. Laursen, P.B. and D.G. Jenkins, The scientific basis for high-intensity interval training: optimising training programmes and maximising performance in highly trained endurance athletes. Sports Medicine, 2002. 32: p. 53-73.


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