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Review Articles

The use of augmented reality for rehabilitation after stroke: a narrative review

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Pages 409-417 | Received 30 Aug 2019, Accepted 30 Jun 2020, Published online: 14 Jul 2020

References

  • Australian Institute of Health and Welfare. Australia's health 2018. Australia’s health series no. 16. AUS 221. Canberra: AIHW; 2018.
  • Avan A, Digaleh H, Di Napoli M, et al. Socioeconomic status and stroke incidence, prevalence, mortality, and worldwide burden: an ecological analysis from the Global Burden of Disease Study 2017. BMC Med. 2019;17(1):30.
  • Norlander A, Iwarsson S, Jonsson A, et al. Living and ageing with stroke: an exploration of conditions influencing participation in social and leisure activities over 15 years. Brain Inj. 2018;32(7):858–866.
  • Deloitte Access Economics. The economic impact of stroke in Australia. Melbourne (Australia): National Stroke Foundation; 2013.
  • Pallesen H, Andersen MB, Hansen GM, et al. Patients' and health professionals' experiences of using virtual reality technology for upper limb training after stroke: a qualitative substudy. Rehabil Res Pract. 2018; 2018:4318678– 4318611.
  • Holden MK. Virtual environments for motor rehabilitation: review. Cyberpsychol Behav. 2005;8(3):187–211.
  • Shin J-H, Ryu H, Jang SH. A task-specific interactive game-based virtual reality rehabilitation system for patients with stroke: a usability test and two clinical experiments. J Neuroeng Rehabil. 2014;11(1):32–32.
  • Schmid L, Glässel A, Schuster-Amft C. Therapists' perspective on virtual reality training in patients after stroke: a qualitative study reporting focus group results from three hospitals. Stroke Res Treat. 2016; 2016:6210508– 6210512.
  • Laver KE, George S, Thomas S, et al. Virtual reality for stroke rehabilitation. The Cochrane Database of Syst Rev. 2015;2(2):1–110.
  • Langhorne PP, Bernhardt JP, Kwakkel GP. Stroke rehabilitation. The Lancet. 2011;377(9778):1693–1702.
  • Kleim JA, Jones TA. Principles of experience-dependent neural plasticity: implications for rehabilitation after brain damage. J Speech Lang Hearing Res. 2008;51(1):S225–S239.
  • Plautz EJ, Milliken GW, Nudo RJ. Effects of repetitive motor training on movement representations in adult squirrel monkeys: role of use versus learning. Neurobiol Learn Mem. 2000;74(1):27–55.
  • Hubbard IJ, Parsons MW, Neilson C, et al. Task-specific training: evidence for and translation to clinical practice. Occup Ther Int. 2009;16(3–4):175–189.
  • Langhorne P, Baylan S. Early supported discharge services for people with acute stroke (Review). Cochrane Database Syst Rev. 2017;7:1–118.
  • Song GB. The effects of task-oriented versus repetitive bilateral arm training on upper limb function and activities of daily living in stroke patients. J Phys Ther Sci. 2015;27(5):1353–1355.
  • Stroke Foundation. Clinical guidelines for stroke management 2017; 2017. Available from: https://informme.org.au/en/Guidelines/Clinical-Guidelines-for-Stroke-Management
  • Ferguson JM, Trombly CA. The effect of added-purpose and meaningful occupation on motor learning. Am J Occup Ther. 1997;51(7):508–515.
  • Bayona NA, Bitensky J, Salter K, et al. The role of task-specific training in rehabilitation therapies. Top Stroke Rehabil. 2005;12(3):58–65.
  • Krakauer JW. Motor learning: its relevance to stroke recovery and neurorehabilitation. Curr Opin Neurol. 2006;19(1):84–90.
  • Lukosch S, Billinghurst M, Alem L, et al. Collaboration in augmented reality. Comput Supported Coop Work. 2015;24(6):515–525.
  • Mousavi Hondori H, Khademi M, Dodakian L, et al. Choice of human-computer interaction mode in stroke rehabilitation. Neurorehabil Neural Repair. 2016;30(3):258–265.
  • Ferrari R. Writing narrative style literature reviews. Eur Writers Assoc. 2015;24(4):230–235.
  • Corrêa AGD, de Assis GA, do Nascimento M, et al. Perceptions of clinical utility of an augmented reality musical software among health care professionals. Disabil Rehabil Assist Technol. 2017;12(3):205–216.
  • Hoermann S, Ferreira dos Santos L, Morkisch N, et al. Computerised mirror therapy with Augmented Reflection Technology for early stroke rehabilitation: clinical feasibility and integration as an adjunct therapy. Disabil Rehabil. 2017;39(15):1503–1514.
  • Deconinck FJA, Smorenburg ARP, Benham A, et al. Reflections on mirror therapy: a systematic review of the effect of mirror visual feedback on the brain. Neurorehabil Neural Repair. 2015;29(4):349–361.
  • Correa-Agudelo E, Ferrin C, Velez P, et al. Computer imagery and neurological rehabilitation: on the use of augmented reality in sensorimotor training to step up naturally occurring cortical reorganization in patients following stroke. Stud Health Technol Inform. 2016;220:71–76.
  • Regenbrecht HT, Franz EA, McGregor G, et al. Beyond the looking glass: fooling the brain with the augmented mirror box. Presence Teleop Virt Environ. 2011;20(6):559–576.
  • Pinches J, Hoermann S. Automated instructions and real time feedback for upper limb computerized mirror therapy with augmented reflection technology. J of Altern Med Res. 2018;10(1):37–46.
  • Hoermann S, Hale L, Winser SJ, et al. Patient engagement and clinical feasibility of Augmented Reflection Technology for stroke rehabilitation. Int J on Disabil Hum Dev. 2014;13(3):355–360.
  • Assis GAd, Corrêa AGD, Martins MBR, et al. An augmented reality system for upper-limb post-stroke motor rehabilitation: a feasibility study. Disabil Rehabil Assist Technol. 2016;11(6):521–528.
  • Trojan J, Diers M, Fuchs X, et al. An augmented reality home-training system based on the mirror training and imagery approach. Behav Res Methods. 2014;46(3):634–640.
  • Collins J, Hoermann S, Regenbrecht H. Comparing a finger dexterity assessment in virtual, video-mediated, and unmediated reality. Int J Child Health Hum Dev. 2016;9(3):333.
  • King M, Hale L, Pekkari A, et al. An affordable, computerised, table-based exercise system for stroke survivors. Disabil Rehabil Assist Technol. 2010;5(4):288–293.
  • Da Gama AEF, Chaves TM, Figueiredo LS, et al. MirrARbilitation: a clinically-related gesture recognition interactive tool for an AR rehabilitation system. Comput Methods Programs Biomed. 2016;135:105–114.
  • Mousavi Hondori H, Khademi M, Dodakian L, et al. A Spatial Augmented Reality rehab system for post-stroke hand rehabilitation. Studies in Health Technol Inform. 2013;184:279–285.
  • Colomer C, Llorens R, Noé E, et al. Effect of a mixed reality-based intervention on arm, hand, and finger function on chronic stroke. J Neuroeng Rehabil. 2016;13:1–10.
  • In-Chul K, Byoung-Hee L. Effects of Augmented Reality with functional electric stimulation on muscle strength, balance and gait of stroke patients. J Phys Ther Sci. 2012;24(8):755–762.
  • Jung G-U, Moon T-H, Park G-W, et al. Use of augmented reality-based training with EMG-triggered functional electric stimulation in stroke rehabilitation. J Phys Ther Sci. 2013;25(2):147–151.
  • Lee C-H, Kim Y, Lee B-H. Augmented reality-based postural control training improves gait function in patients with stroke: randomized controlled trial. Hong Kong Physiother J. 2014;32(2):51–57.
  • Park Y-H, Lee C-H, Lee B-H. Clinical usefulness of the virtual reality-based postural control training on the gait ability in patients with stroke. J Exerc Rehabil. 2013;9(5):489–494.
  • Jaffe DL, Brown DA, Pierson-Carey CD, et al. Stepping over obstacles to improve walking in individuals with poststroke hemiplegia. JRRD. 2004;41(3A):283–292.
  • Kim JH, Jang SH, Kim CS, et al. Use of virtual reality to enhance balance and ambulation in chronic stroke: a double-blind, randomized controlled study. Am J Phys Med Rehabil. 2009;88(9):693–701.
  • Al-Issa H, Regenbrecht H, Hale L. Augmented reality applications in rehabilitation to improve physical outcomes. Phys Ther Rev. 2012;17(1):16–28.
  • Alamri A, Cha J, Eid M, et al. editors. Evaluating the post-stroke patients progress using an Augmented Reality Rehabilitation system. Proceedings of the International Workshop on Medical Measurements and Applications; 2009 May 29–30; Centraro, Italy: IEEE; 2009.
  • Baran M. Design of a home-based adaptive mixed reality rehabilitation system for stroke survivors. Proceedings of the 33rd Annual International Conference of the Engineering in Medicine and Biology Society; 2011 Aug 30–Sep 3; Boston, MA: IEEE; 2011.
  • Burke JW, McNeill MDJ, Charles DK, et al., editors. Augmented reality games for upper-limb stroke rehabilitation. Proceedings of the International Conference on Games and Virtual Worlds for Serious Applications; 2010. IEEE;2010.
  • Ferreira Dos Santos L, Christ O, Mate K, et al. Movement visualisation in virtual reality rehabilitation of the lower limb: a systematic review. Biomed Eng Online. 2016;15(Suppl 3):144–144.
  • Baus O, Bouchard S. Moving from virtual reality exposure-based therapy to augmented reality exposure-based therapy: a review. Front Hum Neurosci. 2014;8:112.
  • Azuma R, Baillot Y, Behringer R, et al. Recent advances in augmented reality. IEEE Comput Grap Appl. 2001;21(6):34–47. [cited 34-47 p.].
  • Regenbrecht H, McGregor G, Ott C., et al., editors. Out of reach? - A novel AR interface approach for motor rehabilitation. Proceedings of the International Symposium on Mixed and Augmented Reality; 2011 Oct 26–29; Basel, Switzerland; 2011: IEEE.
  • Rostami HR, Akbarfahimi M, Hassani Mehraban A, et al. Occupation-based intervention versus rote exercise in modified constraint-induced movement therapy for patients with median and ulnar nerve injuries: a randomized controlled trial. Clin Rehabil. 2017;31(8):1087–1097.
  • Trombly CA. Occupation: purposefulness and meaningfulness as therapeutic mechanisms. 1995 Eleanor Clarke Slagle Lecture. Am J Occup Ther. 1995;49(10):960–972.

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