Occupational therapists' evaluation of the perceived usability and utility of wearable soft robotic exoskeleton gloves for hand function rehabilitation following a stroke

被引:17
作者
Proulx, Camille E. [1 ,2 ]
Higgins, Johanne [1 ,2 ]
Gagnon, Dany H. [1 ,2 ]
机构
[1] Univ Montreal, Sch Rehabil, Montreal, PQ, Canada
[2] CIUSSS Ctr Sud De lIle De Montreal, Ctr Interdisciplinary Res Rehabil Greater Montrea, Inst Univ Readaptat Deficience Phys Montreal, Montreal, PQ, Canada
关键词
Activity-based therapy; exoskeleton; hand; rehabilitation; soft robotic glove; usability; IMPLEMENTATION;
D O I
10.1080/17483107.2021.1938710
中图分类号
R49 [康复医学];
学科分类号
100215 ;
摘要
Purpose To evaluate the perceived usability and utility of using a soft robotic glove to rehabilitate hand function following a stroke. Methods A convergent parallel mixed-methods design was used to consult a convenience sample of 14 experienced occupational therapists (OTs) practicing within a specialised stroke rehabilitation program. All OTs participated in one 60-to-90-minute individual consultation during which the attributes of a recently-developed soft robotic glove (ExoGlove) were presented before they could test it on themselves. After this consultation, OTs completed the System Usability Scale (SUS) questionnaire and answered open-ended questions focussing on the usability and utility of soft robotic gloves framed according to the Unified Theory of Acceptance and Use of Technology (UTAUT). Results The OTs perceived the glove's usability as being moderate-to-good on the SUS (median score= 63.75 on a scale of 100). Thematic analysis revealed the importance of specifically considering elements such as ease of use (e.g. simplicity and speed), cost, movement precision, durability, and safety, when developing soft robotic gloves such as the ExoGlove. Conclusions Engagement in a continuous improvement process is essential to maximise the perceived usability and utility of soft robotic gloves, particularly of the ExoGlove, through their final development phase before pilot testing their effects and effectiveness for post-stroke hand rehabilitation.
引用
收藏
页码:953 / 962
页数:10
相关论文
共 40 条
[1]  
[Anonymous], 2018, NVivo qualitative data analysis software
[2]  
[Anonymous], 2017, IBM SPSS Statistics for Windows. Version 25.0
[3]  
BATAVIA A I, 1990, Journal of Rehabilitation Research and Development, V27, P425, DOI 10.1682/JRRD.1990.10.0425
[4]   Barriers to implementation of stroke rehabilitation evidence: findings from a multi-site pilot project [J].
Bayley, Mark T. ;
Hurdowar, Amanda ;
Richards, Carol L. ;
Korner-Bitensky, Nicol ;
Wood-Dauphinee, Sharon ;
Eng, Janice J. ;
McKay-Lyons, Marilyn ;
Harrison, Edward ;
Teasell, Robert ;
Harrison, Margaret ;
Graham, Ian D. .
DISABILITY AND REHABILITATION, 2012, 34 (19) :1633-1638
[5]   Little therapy, little physical activity: Rehabilitation within the first 14 days of organized stroke unit care [J].
Bernhardt, Julie ;
Chan, James ;
Nicola, Ilona ;
Collier, Janice M. .
JOURNAL OF REHABILITATION MEDICINE, 2007, 39 (01) :43-48
[6]   Translating Animal Doses of Task-Specific Training to People With Chronic Stroke in 1-Hour Therapy Sessions: A Proof-of-Concept Study [J].
Birkenmeier, Rebecca L. ;
Prager, Eliza M. ;
Lang, Catherine E. .
NEUROREHABILITATION AND NEURAL REPAIR, 2010, 24 (07) :620-635
[7]  
Boyd Lara, 2006, J Neurol Phys Ther, V30, P46
[8]  
Brooke J, 2013, J USABILITY STUD, V8, P29
[9]  
Brooke John., 1996, SUS QUICK DIRTY USAB
[10]   Shaping plasticity to enhance recovery after injury [J].
Dancause, Numa ;
Nudo, Randolph J. .
ENHANCING PERFORMANCE FOR ACTION AND PERCEPTION: MULTISENSORY INTEGRATION, NEUROPLASTICITY AND NEUROPROSTHETICS, PT II, 2011, 192 :273-295