Training protocol for driving power wheelchairs using virtual environment: preliminary results from a pilot study

Rousseau-Harrison K, Rochette A, Rout hier F. Impact of wheelchair acquisition on social participation. Disabil Rehabil Assist Technol. 2009;4:344–52.

Article  Google Scholar 

Kirby RL, Ackroyd-Stolarz SA, Brown MG, Kirkland SA, MacLeod DA. Wheelchair-related Accidents caused by tips and falls among noninstitutionalized users of manually propelled wheelchairs in Nova Scotia. Am J Phys Med Rehabil. 1994;73(5):319–30.

Article  Google Scholar 

Pettersson C, Iwarsson S, Brandt A, Norin L, Lexell EM. Men’s and women’s perspectives on using a powered mobility device: benefits and societal challenges. Scand J Occup Ther. 2014;21(6):438–46. https://doi.org/10.3109/11038128.2014.905634.

Article  Google Scholar 

Holliday PJ, Mihailidis A, Rolfson R, Fernie G. Understanding and measuring powered wheelchair mobility and manoeuvrability. Part I. Reach in confined spaces. Disabil Rehabil. 2015;27(16):939–49. https://doi.org/10.1080/09638280500052799.

Article  Google Scholar 

Jessica Chase, Bailey DM. Evaluating the potential for powered mobility. Am J Occup Tberapy. 1990;44:1125–9. https://doi.org/10.5014/ajot.44.12.1125.

Article  Google Scholar 

Nunnerley J, Gupta S, Snell D, King M. Training wheelchair navigation in immersive virtual environments for patients with spinal cord injury–end-user input to design an effective system. Disabil Rehabil Assist Technol. 2017;12(4):417–23. https://doi.org/10.1080/17483107.2016.1176259.

Article  Google Scholar 

Adelola IA, Cox SL, Rahman A. Adaptable virtual reality interface for powered wheelchair training of disabled children, Fourth Int. Conf. Disabil. Virtual Real. Assoc. Technol, no. October, 2002.

Mahajan HP, Dicianno BE, Cooper RA, Ding D. Assessment of wheelchair driving performance in a virtual reality-based simulator. J Spinal Cord Med. 2013;6(4):322–33. https://doi.org/10.1179/2045772313Y.0322000000130.

Article  Google Scholar 

Morère Y. ViEW: a wheelchair simulator for driving analysis, in International Conference on Virtual Rehabilitation, 2015, pp. 100–105.

Hernandez-Ossa K, Montenegro-Couto E, Longo B, Bastos-FIlho T. Virtual reality simulator for electric powered wheelchairs using a joystick, in XXVI Brazilian Congress on Biomedical Engineering, 2019, pp. 729–736.

Carlozzia NE, Gadeb V, Rizzoc A, Tulskya DS. Using virtual reality driving simulators in persons with spinal cord injury: three screen display versus head mounted display. Disabil Rehabil Assist Technol. 2015;8(2):176–80. https://doi.org/10.3109/17483107.2012.699990.

Article  Google Scholar 

Martins FR. Simulador para treinamento de cadeirantes em ambiente virtual acionado por comandos musculares e/ou visuais. Universidade Federal de Uberlândia; 2017.

SM_Brasil SM do, Brasil. 2018. http://www.seatmobile.com.br/sm2.asp (accessed Oct. 09, 2018).

Caetano D, Mattioli F, Lamounier E, Cardoso A, Naves E. Adaptação de uma interface USB para joystick VR2 aplicada Ao Treinamento De Usuários De Cadeira De Rodas. Tecnol Assist Desenvolv E Apl, pp. 261–7, 2018.

Martins FR, Naves ELM, Morère Y, de Sá AAR. Preliminary assessment of a multimodal electric-powered wheelchair simulator for training of activities of daily living. J Multimodal User Interfaces. 2021;21:1–29. https://doi.org/10.1007/s12193-021-00385-9.

Article  Google Scholar 

Massengale S, Folden D, McConnell P, Stratton L, Whitehead V, Whitehead V. Effect of visual perception, visual function, cognition, and personality on power wheelchair use in adults. Assist Technol. 2005;17(2):108–21. https://doi.org/10.1080/10400435.2005.10132101.

Article  Google Scholar 

Kamara DC, Dicianno ME, Ms P. Interrater reliability of the power mobility Road Test in the virtual reality–based Simulator-2. Arch Phys Med Rehabil. 2016;97(7):1078–84. https://doi.org/10.1016/j.apmr.2016.02.005.

Article  Google Scholar 

Surhone LM, Timpledon MT, Marseken SF. Shapiro-Wilk Test. VDM Publishing; 2010.

Sheskin DJ. Handbook of Parametric and Nonparametric Statistical procedures. 5th ed. Chapman and Hall; 2011.

Kirshblum SC, Waring W, Biering-Sorensen F, Burns SP. Reference for the 2011 revision of the international standards for neurological classification of spinal cord injury. J Spinal Cord Med. 2011;3(6):547–54. https://doi.org/10.1179/107902611X13186000420242.

Article  Google Scholar 

Charness N, Boot W. Aging and Information Technology Use. Curr Dir Psychol Sci. 2009;18(5):253–8. https://doi.org/10.1111/j.1467-8721.2009.01647.x.

Article  Google Scholar 

Bickenbach J, Officer A, Shakespeare T. International Perspectives on Spinal Cord Injury, World Health Organization, 2019. http://apps.who.int/iris/bitstream/handle/10665/94192/WHO_NMH_VIP_13.03_eng.pdf?sequence=1&isAllowed=y (accessed Mar. 05, 2019).

Filho DBF, Júnior JAS. Desvendando os mistérios do coeficiente de correlação De Pearson (r). Rev Política Hoje. 2009;18(1):115–46. https://doi.org/10.11606/issn.2237-4485.lev.2014.132346.

Article  Google Scholar 

MacGillivray M, Sawatzy B, Miller W, Routhier F, Kirby L. Goal satisfaction improves with individualized powered wheelchair skills training. Disabil Rehabil Assist Technol. 2017;1–4. https://doi.org/10.1080/17483107.2017.1353651.

留言 (0)

沒有登入
gif