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Research Articles

The Cognitive Status of Older Adults: Do Reduced Time Constraints Enhance Sequence Learning?

, , ORCID Icon, & ORCID Icon
Pages 558-569 | Received 28 Sep 2018, Accepted 30 Jul 2019, Published online: 25 Aug 2019

REFERENCES

  • Adams, J. A. (1971). A closed-loop theory of motor learning. Journal of Motor Behavior, 3(2), 111–149. doi:10.1080/00222895.1971.10734898
  • Bastian, A. J. (2006). Learning to predict the future: The cerebellum adapts feedforward control. Current Opinion in Neurobiology, 16(6), 645–649. doi:10.1016/j.conb.2006.08.016
  • Bo, J., Borza, V., & Seidler, R. D. (2009). Age-related declines in visuospatial working memory correlate with deficits in explicit motor sequence learning. Journal of Neurophysiology, 102(5), 2744–2754. doi:10.1152/jn.00393.2009
  • Boyle, J. B., Kennedy, D., & Shea, C. H. (2015). A novel approach to enhancing limb control in older adults. Experimental Brain Research, 233(7), 2061–2071. doi:10.1007/s00221-015-4277-x
  • Buchanan, J. J., Park, J.-H., & Shea, C. H. (2006). Target width scaling in a repetitive aiming task: Switching between cyclical and discrete units of action. Experimental Brain Research, 175(4), 710–725. doi:10.3389/fnagi.2014.00031
  • Cai, L., Chan, J. S. Y., Yan, J. H., & Peng, K. (2014). Brain plasticity and motor practice in cognitive aging. Frontiers in Aging Neuroscience, 6, 31. doi:10.3389/fnagi.2014.00031
  • Chaput, S., & Proteau, L. (1996). Aging and motor control. The Journals of Gerontology. Series B, Psychological Sciences and Social Sciences, 51(6), 346–355.
  • Cleeremans, A., & Sarrazin, J. C. (2007). Time, action, and consciousness. Human Movement Science, 26(2), 180–202. doi:10.1016/j.humov.2007.01.009
  • Cohen, J. (1988). Statistical power analysis for the behavioral sciences (2nd ed.). Hillsdale, NJ: Erlbaum.
  • Cooke, J. D., Brown, S. H., & Cunningham, D. A. (1989). Kinematics of arm movements in elderly humans. Neurobiology of Aging, 10(2), 159–165.
  • De Kleine, E., & van der Lubbe, R. H. J. (2011). Decreased load on general motor preparation and visual-working memory while preparing familiar as compared to unfamiliar movement sequences. Brain and Cognition, 75(2), 126–134. doi:10.1016/j.bandc.2010.10.013
  • Dounskaia, N. (2005). The internal model and the leading joint hypothesis: Implications for control of multi-joint movements. Experimental Brain Research, 166(1), 1–16. doi:10.1007/s00221-005-2339-1
  • Dounskaia, N., Wisleder, D., & Johnson, T. (2005). Influence of biomechanical factors on substructure of pointing movement. Experimental Brain Research, 164(4), 505–516. doi:10.1007/s00221-005-2271-4
  • Glover, S. (2004). Separate visual representations in the planning and control of action - Response. Behavioral and Brain Sciences, 27(1), 57–78. doi:10.1017/S0140525X04000020
  • Greenhouse, S. W., & Geisser, S. (1959). On methods in the analysis of profile data. Psychometrika, 24(2), 95–112. doi:10.1007/BF02289823
  • Guiard, Y. (1993). On Fitts’s and Hooke’s laws: Simple harmonic movement in upper-limb cyclical aiming. Acta Psychologica, 82(1–3), 139–159.
  • Hayden, K. M., Reed, B. R., Manly, J. J., Tommet, D., Pietrzak, R. H., Chelune, G. J., … Jones, R. N. (2011). Cognitive decline in the elderly an analysis of population heterogeneity. Age and Ageing, 40(6), 684–689. doi:10.1093/ageing/afr101
  • Heitz, R. P. (2014). The speed-accuracy tradeoff: History, physiology, methodology, and behavior. Frontiers in Neuroscience, 8, 1–19. doi:10.3389/fnins.2014.00150
  • Howard, D. V., & Howard, J. H. (2001). When it does hurt to try: Adult age differences in the effects of instructions on implicit pattern learning. Psychonomic Bulletin & Review, 8, 798–805. doi:10.3758/BF03196220
  • Keele, S. W., & Posner, M. I. (1968). Processing of visual feedback in rapid movements. Journal of Experimental Psychology, 77(1), 155–158. doi:10.1037/h0025754
  • Kenny, R. A., Coen, R. F., Frewen, J., Donoghue, O. A., Cronin, H., & Savva, G. M. (2013). Normative values of cognitive and physical function in older adults: Findings from the Irish Longitudinal Study on Ageing. Journal of the American Geriatric Society, 61, 279–290.
  • Ketcham, C. J., Dounskaia, N. V., & Stelmach, G. E. (2004). Age-related differences in the control of multijoint movements. Motor Control, 8(4), 422–436. doi:10.1123/mcj.8.4.422
  • Kovacs, A. J., Boyle, J., Grutmatcher, N., & Shea, C. H. (2010). Coding of online and pre-planned movement sequences. Acta Psychologica, 133(2), 119–126. doi:10.1016/j.actpsy.2009.10.007
  • Kovacs, A. J., Han, D., & Shea, C. H. (2009). Representation of movement sequences is related to task characteristics. Acta Psychologica, 132(1), 54–61. doi:10.1016/j.actpsy.2009.10.007
  • Leinen, P., Shea, C. H., & Panzer, S. (2015). The impact of concurrent visual feedback on coding of online and preplanned movement sequences. Acta Psychologica, 155, 92–100. doi:10.1016/j.actpsy.2014.12.005
  • Li, S.-C., Lindenberger, U., Hommel, B., Aschersleben, G., Prinz, W., & Baltes, P. (2004). Transformations in the couplings among intellectual abilities and constituent cognitive processes across the life span. Psychological Science, 15(3), 155–163. doi:10.1111/j.0956-7976.2004.01503003.x
  • Maxwell, J. P., Masters, R. S. W., & Eves, F. F. (2003). The role of working memory in motor learning and performance. Consciousness and Cognition, 12(3), 376–402. doi:10.1016/S1053-8100(03)00005-9
  • McNay, E. C., & Willingham, D. B. (1998). Deficit in learning of a motor skill requiring strategy, but not of perceptuomotor recalibration, with aging. Learning & Memory, 4(5), 411–420. doi:10.1101/lm.4.5.411
  • Nasreddine, Z. S., Phillips, N. A., Bédirian, V., Charbonneau, S., Whitehead, V., Collin, I., … Chertkow, H. (2005). The Montreal Cognitive Assessment, MoCA: A brief screening tool for mild cognitive impairment. Journal of the American Geriatrics Society, 53(4), 695–699. doi:10.1111/j.1532-5415.2005.53221.x
  • Nemanich, S. T., & Earhart, G. M. (2015). How do age and nature of motor tasks influence visuomotor adaptation? Gait & Posture, 42(4), 564–568.
  • Oldfield, R. C. (1971). The assessment and analysis of handedness: The Edinburgh inventory. Neuropsychologia, 9(1), 97–113. doi:10.1016/0028-3932(71)90067-4
  • Panzer, S., Gruetzmacher, N., Ellenbürger, T., & Shea, C. H. (2014). Interlimb practice and aging: Coding a simple movement sequence. Experimental Aging Research, 40(1), 107–128. doi:10.1080/0361073X.2014.857566
  • Panzer, S., Gruetzmacher, N., Fries, U., Krueger, M., & Shea, C. H. (2011). Age-related effects in interlimb practice on coding complex movement sequences. Human Movement Science, 30(3), 459–474. doi:10.1016/j.humov.2010.11.003
  • Potter, L. M., & Grealy, M. A. (2008). Aging and inhibition of a prepotent motor response during an ongoing action. Aging Neuropsychology and Cognition, 15(2), 232–255. doi:10.1080/13825580701336882
  • Rabbitt, P. (1979). How old and young subjects monitor and control responses for accuracy and speed. British Journal of Psychology, 70(2), 305–311. doi:10.1111/j.2044-8295.1979.tb01687.x
  • Reuter-Lorenz, P. A., Jonides, J., Smith, E. E., Hartley, A., Miller, A., Marshuetz, C., & Koeppe, R. A. (2000). Age differences in the frontal lateralization of verbal and spatial working memory revealed by PET. Journal of Cognitive Neuroscience, 12(1), 174–187. doi:10.1162/089892900561814
  • Salthouse, T. A. (1979). Adult age and the speed-accuracy trade-off. Ergonomics, 22(7), 811–821. doi:10.1080/00140137908924659
  • Salthouse, T. A. (1996). The processing-speed theory of adult age differences in cognition. Psychological Review, 103(3), 403–428. doi:10.1037/0033-295X.103.3.403
  • Sarlegna, F. R. (2006). Impairment of online control of reaching movements with aging: A double-step study. Neuroscience Letters, 403(3), 309–314. doi:10.1016/j.neulet.2006.05.003
  • Seidler, R. D. (2006). Differential effects of age on sequence learning and sensorimotor adaptation. Brain Research Bulletin, 70(4–6), 337–346. doi:10.1016/j.brainresbull.2006.06.008
  • Seidler, R. D. (2010). Neural correlates of motor learning, transfer of learning, and learning to learn. Exercise and Sport Sciences Reviews, 38 (1), 3–9. doi:10.1097/JES.0b013e3181c5cce7
  • Seidler, R. D., & Stelmach, G. E. (1995). Reduction in sensorimotor control with age. Quest, 47(3), 386– 394. doi:10.1080/00336297.1995.10484165
  • Shea, C. H., Kennedy, D., & Panzer, S. (2019). Information processing approach to understanding and improving physical performance. In M. Anshel (Ed.), APA handbook of sport and exercise psychology. Washington, DC: APA Books.
  • Shea, C. H., Kovacs, A. J., & Panzer, S. (2011). The coding and inter-manual transfer of movement sequences. Frontiers in Psychology, 2, 52. doi:10.3389/fpsyg.2011.00052
  • Shea, C. H., Panzer, S., & Kennedy, D. (2019). Effector transfer. In F. Loffing, N. Hagemann, B. Strauss, & C. MacMahon (Eds.), Laterality in sports: Theories and applications (pp. 180–204). San Diego, CA: Academic Press.
  • Shea, C. H., Park, J. H., & Braden, H. W. (2006). Age-related effects in sequential motor learning. Physical Therapy, 86, 478–488. doi:10.1093/ptj/86.4.478
  • Smits-Engelsman, B. C. M., van Galen, G. P., & Duysens, J. (2004). Force levels in uni- and bimanual isometric tasks affect variability measures differently throughout lifespan. Motor Control, 8(4), 437–449. doi:10.1123/mcj4.437
  • Starns, J. J., & Ratcliff, R. (2010). The effects of aging on the speed–accuracy compromise: Boundary optimality in the diffusion model. Psychology and Aging, 25(2), 377–390. doi:10.1037/a0018022
  • Verhaeghen, P., & Salthouse, T. A. (1997). Meta-analyses of age–cognition relations in adulthood: Estimates of linear and nonlinear age effects and structural models. Psychological Bulletin, 122(3), 231–249. doi:10.1037//0033-2909.122.3.231
  • Verneau, M., van der Kamp, J., de Looze, M. P., & Savelsbergh, G. J. (2016). Age effects on voluntary and automatic adjustments in anti-pointing tasks. Experimental Brain Research, 234(2), 419–428. doi:10.1007/s00221-015-4459-6
  • Verneau, M., van der Kamp, J., Savelsbergh, G. J., & de Looze, M. P. (2014). Age and time effects on implicit and explicit learning. Experimental Aging Research, 40(4), 477–511. doi:10.1080/0361073X.2014.926778
  • Verwey, W. B. (2010). Diminished motor skill development in elderly: Indications for limited motor chunk use. Acta Psychologica, 137, 206–214. doi:10.1016/j.actpsy.2010.02.001
  • Voelcker-Rehage, C. (2008). Motor-skill learning in older adults - A review of studies on age-related differences. European Review of Aging and Physical Activity, 5(1), 5–16. doi:10.1007/s11556-008-0030-9
  • Voelcker-Rehage, C., & Alberts, J. L. (2005). Age-related changes in grasping force modulation. Experimental Brain Research, 166(1), 61–70. doi:10.1007/s00221-005-2342-6
  • Welford, A. T. (1982). Motor skills and aging. In J. Mortimer, M. Pirozzolo, & G. Maletta (Eds.), Advances in neurogerontology: The aging motor system (Vol. 3, pp. 152–157). New York, NY: Praeger Publishers.
  • Welford, A. T. (1984). Between bodily changes and performance: Some possible reasons for slowing with age. Experimental Aging Research, 10(2), 73–88. doi:10.1080/03610738408258548
  • Welsh, T. N., Higgins, L., & Elliott, D. (2007). Are there age related differences in learning to optimize speed, accuracy, and energy expenditure? Human Movement Science, 26(6), 892–912. doi:10.1016/j.humov.2007.04.004
  • Yu, W. (2012, May 1). Older adults prize accuracy more than speed. Scientific American, Mind. Retrieved from https://www.scientificamerican.com/article/seniors-think-fast/

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