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Competitive Elite Golf

A Review of the Relationships between Playing Results, Technique and Physique

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  • Competitive Elite Golf
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Abstract

Elite golfers commonly use fitness and technical training to become more competitive. The aim of this paper was to review the literature regarding the relationships between elite golfers’ playing results, technique and physique. The competitive outcome is a direct function of the score. The three golf statistical measures that show the strongest correlations to scoring average are greens in regulation (GIR), scrambling, and putts per GIR. However, more detailed game statistics are needed where the distances to the targets are known before and after the strokes. Players affect ball displacement by controlling clubhead velocity and clubface angle during club and ball impact. X-factor studies have produced ambiguous results, possibly caused by different definitions of upper torso, rotation and top of backswing. Higher clubhead speed is generally associated with larger spinal rotation and shoulder girdle protraction at the top of the backswing. It is also associated with higher ground reaction forces and torques, a bottom-up and sequential increase of body segment angular velocities, a rapid increase of spinal rotation and a late adduction of the wrists during the downswing. Players can increase the clubhead speed generated by a swinging motion by actively adding a force couple. Wrist, elbow and shoulder force couple strategies should be differentiated when investigating the technique. Physical parameters such as anthropometrics, strength and flexibility are associated with skill level and clubhead speed. Current studies have investigated the linear correlation between arm and shaft lengths and clubhead speed, but a quadratic relationship may be stronger due to changes in moment of inertia. Fitness training can increase and perhaps decrease the clubhead speed and striking distance, depending on training methods and the player’s fitness and level of skill. Future studies may focus on individual training needs and the relationship between physique, execution and its relation to accuracy of impact and ball displacement.

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Notes

  1. Greens in regulation (GIR) is the number of greens reached on two shots (or less) than par for the hole.

  2. Driving accuracy is defined as the percentage of tee shots on par 4 and par 5 holes that end up on the fairway.

  3. Vch ≈ Vgrip + Ωshaft × lshaft; the bending of the shaft decreases the effective lever slightly.

  4. Defined as the time between the start of the backswing (0%) and ball impact (100%).

  5. See Kreighbaum and Barthels[80] and Putnam[81] for further discussion.

References

  1. Morrow Jr JR, Jackson AW, Disch JG, et al. Measurement and evaluation in human performance. 2nd ed. Champaign(IL): Human Kinetics, 2000

    Google Scholar 

  2. Davidson J, Templin T. Determinants of success among professional golfers. Res Q Exerc Sport 1986; 57 (1): 60–7

    Google Scholar 

  3. Hale T, Hale G. Lies, damned lies and statistics in golf. In: Cochran AJ, editor. Science and golf: proceedings of thefirst World Scientific Congress of Golf. London: E & FN Spon, 1990: 165–7

    Google Scholar 

  4. Jones RE. A correlation analysis of the Professional Golf Association (USA) statistical rankings for 1988. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 165–7

    Google Scholar 

  5. Dorsel TN, Rotunda RJ. Low scores, top 10 finishes, and big money: an analysis of professional golf association tourstatistics and how these relate to overall performance. Percept Mot Skills 2001; 92 (2): 575–85

    Article  CAS  PubMed  Google Scholar 

  6. Engelhardt GM. It’s not how you drive, it’s how you arrive: the myth. Percept Mot Skills 1995; 80 (3 Pt 2): 1135–8

    Article  Google Scholar 

  7. Engelhardt GM. Differences in shot-making skills among high and low money winners on the PGA tour [letter]. Percept Mot Skills 1997; 84 (3 Pt 2): 1314

    Article  CAS  PubMed  Google Scholar 

  8. Jimenez JA, Fierro-Hernandez C. Are European and American golf players different? Reply to Engelhardt(1997). Percept Mot Skills 1999; 89 (2): 417–8

    Article  CAS  PubMed  Google Scholar 

  9. Finley PS, Halsey JJ. Determinants of PGA tour success: an examination of relationships among performance, scoring,and earnings. Percept Mot Skills 2004; 98 (3 Pt 1): 1100–6

    Article  PubMed  Google Scholar 

  10. Belkin DS, Gansneder B, Pickens M, et al. Predictability and stability of Professional Golf Association tour statistics. Percept Mot Skills 1994; 78 (3 Pt 2): 1275–80

    Article  Google Scholar 

  11. Nix CL, Koslow R. Physical skill factors contributing to success on the professional golf tour. Percept Mot Skills 1991; 73 (3 Pt 2): 1272–4

    Article  Google Scholar 

  12. Wiseman F, Chatterjee S. Comprehensive analysis of golf performance on the PGA Tour: 1990-2004. Percept Mot Skills 2006; 102 (1): 109–17

    Article  PubMed  Google Scholar 

  13. Quinn RJ. Exploring correlation coefficients with golf statistics. Teach Stat 2006; 28 (1): 10–3

    Article  Google Scholar 

  14. Larkey PD. Comparing players in professional golf. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 193–8

    Google Scholar 

  15. Fried HO, Lambrinos J, Tyner J. Evaluating the performance of professional golfers on the PGA, LPGA and SPGA tours. Eur J Oper Res 2004; 154 (2): 548–61

    Article  Google Scholar 

  16. Thomas FW. The state of the game, equipment and science. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 237–46

    Google Scholar 

  17. Karlsen J, Smith G, Nilsson J. The stroke has only a minor influence on direction consistency in golf putting amongelite players. J Sports Sci 2008; 26 (3): 243–50

    Article  PubMed  Google Scholar 

  18. Pelz D. The short game bible. New York: Broadway Books, 1999

    Google Scholar 

  19. Pelz D. Dave Pelz’s putting bible. New York: Random House, 2000

    Google Scholar 

  20. Larkey PD, Smith AA. All around improvements. In: Science and golf III: proceedings of the World Scientific Congress of Golf. Champaign (IL): Human Kinetics, 1999: 377–84

    Google Scholar 

  21. Wiseman F, Habibullah M, Yilmaz M. A new method for ranking total driving performance on the PGA tour [online]. Sport J 2007; 10 (1). Available from URL: http://www.thesportjournal.org/article/new-method-ranking-totaldriving-performance-pga [Accessed 2009 Jul 1]

    Google Scholar 

  22. Cochran AJ. Club face flexibility and coefficient of restitution. In: Cochran AJ, Farally MR, editors. Science and golfIII: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1999: 486–92

    Google Scholar 

  23. Johnson SH, Hubbel JE. Golf ball rebound enhancement. In: Cochran AJ, Farally MR, editors. Science and golf III: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1999: 493–9

    Google Scholar 

  24. Werner FD, Greig RC. How golf clubs really work and how to optimize their design. Jackson (WY): Origin Inc., 2000

    Google Scholar 

  25. Wiren G. Laws, principles and preferences: a teaching model. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 3–13

    Google Scholar 

  26. PGA of America. PGA teaching manual: the art and science of golf instruction. Palm Beach Gardens (FL): PGA ofAmerica, 1990

  27. Jorgensen T. The physics of golf. 2nd ed. New York: AIP Press, 1999

    Google Scholar 

  28. Miura K, Sato F. The initial trajectory plane after ball impact. In: Farally MR, Cochran AJ, editors. Science and golf III: proceedings of the World Scientific Congress of Golf. Champaign (IL): Human Kinetics, 1999: 535–43

    Google Scholar 

  29. Miura K. Mapping clubhead to ball impact and estimating trajectory. In: Thain E, editor. Science and golf IV: proceedings of the World Scientific Congress of Golf. London: Routledge, 2002: 490–500

    Google Scholar 

  30. Chou PH, Liang D, Yang J. Contact forces, coefficient of restitution, and spin rate of golf ball impact. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 296–301

    Google Scholar 

  31. McLeod WM. Biomechanical variables as predictors of distance and accuracy in the golf drive [dissertation]. Halifax (NS): University of Dalhousie, 1976

    Google Scholar 

  32. Shaw M. Aerodynamics of golf balls. In: Cochran A, editor. Golf: the scientific way. Hemel Hempstead: Aston Publishing Group, 1995: 152–5

    Google Scholar 

  33. Scheie CE. The golf club-ball collision: 50 000 g’s. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 237–40

    Google Scholar 

  34. Williams KR, Sih BL. Changes in golf clubface orientation following impact with the ball. Sports Eng 2002; 5 (2): 65–80

    Article  Google Scholar 

  35. Kelley H. The golfing machine. Seattle (WA): Star System Press, 1982

    Google Scholar 

  36. Dalton J. Compression by any other name. Science and golf IV: proceedings of the World Scientific Congress of Golf. London: Routledge, 2002: 319–27

    Google Scholar 

  37. Chou A, Gilbert P. Clubhead designs: how they affect ball flight. In: Cochran A, editor. Golf: the scientific way. Hemel Hempstead: Aston Publishing Group, 1995

    Google Scholar 

  38. Cochran A, Stobbs J. Search for the perfect swing. Grass Valley (CA): The Booklegger, 1968

    Google Scholar 

  39. Hunter C. The sequence of hip and selected upper-extremity joint movements during the golf drive [dissertation]. Springfield (MA): Springfield College, 1971

    Google Scholar 

  40. Marshall RN, Elliott BC. Long-axis rotation: the missing link in proximal-to-distal segmental sequencing. J Sports Sci 2000; 18 (4): 247–54

    Article  CAS  PubMed  Google Scholar 

  41. Soriano BC. A biomechanical investigation of human movement during the golf swing [dissertation]. Irvine (CA): University of California, 1996

    Google Scholar 

  42. Fradkin AJ, Sherman CA, Finch CF. How well does club head speed correlate with golf handicaps? J Sci Med Sport 2004; 7 (4): 465–72

    Article  CAS  PubMed  Google Scholar 

  43. Watanabe K, Kuroki S, Hokari M, et al. Golf swing and skill. In: Farally MJ, Cochran AJ, editors. Science and golf III: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 29–39

    Google Scholar 

  44. Barrentine SW, Fleisig GS, Johnson H. Ground reaction forces and torques of professional and amateur golfers. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 33–9

    Google Scholar 

  45. Nesbit SM. A three dimensional kinematic and kinetic study of the golf swing. J Sports Sci Med 2005; 4 (4): 499–519

    Google Scholar 

  46. Fujimoto-Kanatani K. Determining the essential elements of golf swings used by elite golfers [dissertation]. Corvallis (OR): Oregon State University, 1995

    Google Scholar 

  47. Zheng N, Barrentine SW, Fleisig GS, et al. Kinematic analysis of swing in pro and amateur golfers. Int J Sports Med 2008; 29 (6): 487–93

    Article  CAS  PubMed  Google Scholar 

  48. Milburn PD. Summation of segmental velocities in the golf swing. Med Sci Sports Exerc 1982; 14 (1): 60–4

    Article  CAS  PubMed  Google Scholar 

  49. Miura K. Accelerating and decelerating phases of the wrist motion of the golf swing. The engineering of sport: designand development. 2nd International Conference on the Engineering of Sport 1998. Oxford: Blackwell Publishing, 455–63

  50. Butler JH, Winfield DC. The dynamic performance of the golf shaft during the downswing. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 259–64

    Google Scholar 

  51. Horwood GP. Golf shaft: a technical perspective. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 247–58

    Google Scholar 

  52. Milne RD, Davis JP. The role of the shaft in the golf swing. J Biomech 1992; 25 (9): 975–83

    Article  CAS  PubMed  Google Scholar 

  53. Brylawski AM. An investigation of three dimensional deformation of a golf club during downswing. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 265–70

    Google Scholar 

  54. Miao T, Watari I, Kawaguchi M, et al. A study of clubhead speed as a function of grip speed for a variety of shaft flexibility. In: Cochran AJ, Farally MR, editors. Science and golf III: proceedings of the World Scientific Congress of Golf. Champaign (IL): Human Kinetics, 1999: 554–61

    Google Scholar 

  55. Nesbit SM, Serrano M. Work and power analysis of the golf swing. J Sports Sci Med 2005; 4 (4): 520–33

    Google Scholar 

  56. Hay J. Golf. In: Hay J, editor. Biomechanics of sports techniques. 4th ed. Englewood Cliffs (NJ): Prentice-Hall, 1993: 276–95

    Google Scholar 

  57. Sprigings E, Neal RJ. An insight into the importance of wrist torque in driving the golf ball: a simulation study. J Appl Biomech 2000; 16 (4): 356–67

    Google Scholar 

  58. Coleman SG, Rankin AJ. A three-dimensional examination of the planar nature of the golf swing. J Sports Sci 2005; 23 (3): 227–34

    Article  PubMed  Google Scholar 

  59. Tang W-T, Abraham L. Analysis of golf swing optimization models. 19th Congress of the International Society of Biomechanics: the human body in motion. Congress handbook and book of abstracts. Dunedin: University of Otago, 2003: 383

    Google Scholar 

  60. Pink M, Jobe FW, Perry J. Electromyographic analysis of the shoulder during the golf swing. Am J Sports Med 1990; 18 (2): 137–40

    Article  CAS  PubMed  Google Scholar 

  61. Okuda I, Armstrong CW, Tsunezumi H, et al. Biomechanical analysis of professional golfer’s swing: HidemichiTanaka. In: Thain E, editor. Science and golf IV: proceedings of the World Scientific Congress of Golf. London: Routledge, 2002: 19–27

    Google Scholar 

  62. Miura K. Parametric acceleration: the effect of inward pull of the golf club at impact stage. Sports Eng 2001; 4 (2): 75–86

    Article  Google Scholar 

  63. Kawashima K, Meshizuka T, Takeshita S. A kinematic analysis of foot force exerted on the soles during the golf swing among skilled and unskilled golfers. In: Cochran AJ, Farally MR, editors. Science and golf III: proceedings of the World Scientific Congress of Golf. Champaign (IL): Human Kinetics, 1999: 40–5

    Google Scholar 

  64. Wallace ES, Graham D, Bleakley EW. Foot-to-ground pressure patterns during the golf drive: a case study involvinga low handicap player and a high handicap player. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 25–9

    Google Scholar 

  65. Koenig G, Tamres M, Mann RW. The biomechanics of the shoe-ground interaction in golf. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon 1994: 25–9

    Google Scholar 

  66. Ball KA, Best RJ. Different centre of pressure patterns within the golf stroke I: cluster analysis. J Sports Sci 2007; 25 (7): 757–70

    Article  CAS  PubMed  Google Scholar 

  67. Ball KA, Best RJ. Different centre of pressure patterns within the golf stroke II: group-based analysis. J Sports Sci 2007; 25 (7): 771–9

    Article  CAS  PubMed  Google Scholar 

  68. Grimshaw PN, Burden AM. Case report: reduction of low back pain in a professional golfer. Med Sci Sports Exerc 2000; 32 (10): 1667–73

    Article  CAS  PubMed  Google Scholar 

  69. Gulgin HR. Hip rotation range of motion asymmetry in elite female golfers [dissertation]. Toledo (OH): University ofToledo, 2005

    Google Scholar 

  70. McTeigue M, Lamb SR, Mottram R, et al. Spine and hip motion analysis during the golf swing. In: Farally MJ, Cochran AJ, editors. Science and golf II: proceedings of the World Scientific Congress of Golf. London: E & FN Spon, 1994: 50–8

    Google Scholar 

  71. Cheetham P, Martin P, Mottram R, et al. The importance of stretching the “X-factor” in the downswing of golf: “TheX-factor stretch”. In: Thomas PR, editor. Optimising performancein golf. Brisbane (QLD): Australian Academic Press Ltd, 2001: 192–9

    Google Scholar 

  72. Hume PA, Keogh J, Reid D. The role of biomechanics in maximising distance and accuracy of golf shots. Sports Med 2005; 35 (5): 429–49

    Article  PubMed  Google Scholar 

  73. Myers J, Lephart S, Tsai YS, et al. The role of upper torso and pelvis rotation in driving performance during the golf swing. J Sports Sci 2008; 26 (2): 181–8

    Article  PubMed  Google Scholar 

  74. Carlsöö S. A kinetic analysis of the golf swing. J Sports Med Phys Fitness 1967; 7 (2): 76–82

    PubMed  Google Scholar 

  75. Bechler JR, Jobe FW, Pink M, et al. Electromyographic analysis of the hip and knee during the golf swing. Clin J Sport Med 1995; 5 (3): 162–6

    Article  CAS  PubMed  Google Scholar 

  76. Newton RU, Murphy AJ, Humphries BJ, et al. Influence of load and stretch shortening cycle on the kinematics, kineticsand muscle activation that occurs during explosiveupper-body movements. Eur J Appl Physiol Occup Physiol 1997; 75 (4): 333–42

    Article  CAS  PubMed  Google Scholar 

  77. Hosea TM, Gatt CJ, Galli KM, et al. Biomechanical analysis of the golfer’s back. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 43–8

    Google Scholar 

  78. Abernethy B, Neal RJ, Moran MJ. Expert-novice differences in muscle activity during the golf swing. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 55–60

    Google Scholar 

  79. Barclay JK, McIlroy WE. Effect of skill level on muscle activity in neck and forearm muscles during the golf swing. In: Cochran AJ, editor. Science and golf: proceedings of the first World Scientific Congress of Golf. London: E & FN Spon, 1990: 49–53

    Google Scholar 

  80. Kreighbaum E, Barthels KM. Biomechanics: a qualitative approach for studying human movement. 4th ed. OldTappan (NJ): Allyn & Bacon, 1996

    Google Scholar 

  81. Putnam CA. Sequential motions of body segments in striking and throwing skills: descriptions and explanations. J Biomech 1993; 26 (1): 125–35

    Article  PubMed  Google Scholar 

  82. Sell TC, Tsai YS, Smoliga JM, et al. Strength, flexibility, and balance characteristics of highly proficient golfers. J Strength Cond Res 2007; 21 (4): 1166–71

    PubMed  Google Scholar 

  83. Crews DJ, Shirreffs JH, Thomas G, et al. Psychological and physiological attributes associated with performance ofselected players of the Ladies Professional Golf Association Tour. Percept Mot Skills 1986; 63 (1): 235–8

    Article  Google Scholar 

  84. Kawashima K, Kat K, Miyazaki M. Body size and somatotype characteristics of male golfers in Japan. J Sports Med Phys Fitness 2003; 43 (3): 334–41

    CAS  PubMed  Google Scholar 

  85. Dorado C, Sanchis Moysi J, Vicente G, et al. Bone mass, bone mineral density and muscle mass in professional golfers. In: Thain E, editor. Science and golf IV: proceedings of the World Scientific Congress of Golf. New York: Routledge, 2002: 54–63

    Google Scholar 

  86. Wiren G. Human factors influencing the golf drive for distance [dissertation]. Corvallis (OR): University of Oregon, 1968

    Google Scholar 

  87. Yoon S. The relationship between muscle power and swing speed in low-handicapped golfers [MS thesis]. Provo (UT): Brigham Young University, 1998

    Google Scholar 

  88. Lanford EE. Effect of strength training on distance and accuracy in golf [dissertation]. Corvallis (OR): University of Oregon, 1976

    Google Scholar 

  89. Fletcher IM, Hartwell M. Effect of an 8-week combined weights and plyometrics training program on golf drive performance. J Strength Cond Res 2004; 18 (1): 59–62

    PubMed  Google Scholar 

  90. Hetu FE, Christie CA, Faigenbaum AD. Effects of conditioning on physical fitness and club head speed in mature golfers. Percept Mot Skills 1998; 86 (3 Pt 1): 811–5

    Article  CAS  PubMed  Google Scholar 

  91. Thompson CJ, Osness WH. Effects of an 8-week multimodal exercise program on strength, flexibility, and golf performancein 55- to 79-year-old men. J Aging Phys Act 2004; 12 (2): 144–56

    PubMed  Google Scholar 

  92. Jones D. The effects of proprioceptive neuromuscular facilitation flexibility training on the clubhead speed ofrecreational golfers. In: Farally MR, Cochran AJ, editors. Science and golf III: proceedings of the World Scientific Congress of Golf. Champaign (IL): Human Kinetics, 1999: 46–50

    Google Scholar 

  93. Westcott WL, Dolan F, Cavicchi T. Golf and strength training are compatible activities. Strength Cond 1996; 18 (4): 54–6

    Article  Google Scholar 

  94. Doan BK, Newton RU, Kwon YH, et al. Effects of physical conditioning on intercollegiate golfer performance. J Strength Cond Res 2006; 20 (1): 62–72

    PubMed  Google Scholar 

  95. Pinter MD. Effect of strength training and flexibility on club head speed and accuracy in the golf drive [dissertation]. Starkville (MI): Mississippi State University, 1992

    Google Scholar 

  96. Schmidtbleicher D, Buehrle M. Neuronal adaptation and increase of cross-sectional area studying different strength training methods. In: Johnson B, editor. Biomechanics X-B; vol. 6-B; 615–20

  97. Hakkinen K, Alen M, Komi PV. Neuromuscular, anaerobic, and aerobic performance characteristics of elite power athletes. Eur J Appl Physiol Occup Physiol 1984; 53 (2): 97–105

    Article  CAS  PubMed  Google Scholar 

  98. Wilson GJ, Newton RU, Murphy AJ, et al. The optimal training load for the development of dynamic athletic performance. Med Sci Sports Exerc 1993; 25 (11): 1279–86

    CAS  PubMed  Google Scholar 

  99. Cronin J, McNair PJ, Marshall RN. Developing explosive power: a comparison of technique and training. J Sci Med Sport 2001; 4 (1): 59–70

    Article  CAS  PubMed  Google Scholar 

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Acknowledgements

The Swedish National Centre for Research in Sports funded this research. This is a national organization with the task of initiating, coordinating, supporting and informing about sport-related research. The author would also like to thank Leif Isberg, Johnny Nilsson and Robert Neal for their help in the preparation of this paper. The author has no conflicts of interest that are directly relevant to the content of this review.

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Hellström, J. Competitive Elite Golf. Sports Med 39, 723–741 (2009). https://doi.org/10.2165/11315200-000000000-00000

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