Kinect-Assisted Performance-Sensitive Upper Limb Exercise Platform for Post-stroke Survivors.
adaptive design
computer-based-task
physiology
stroke
upper limb
Journal
Frontiers in neuroscience
ISSN: 1662-4548
Titre abrégé: Front Neurosci
Pays: Switzerland
ID NLM: 101478481
Informations de publication
Date de publication:
2019
2019
Historique:
received:
24
12
2018
accepted:
26
02
2019
entrez:
11
4
2019
pubmed:
11
4
2019
medline:
11
4
2019
Statut:
epublish
Résumé
One's ability to use upper limbs is critical for performing activities of daily living necessary for enjoying quality community life. However, after stroke, such abilities becomes adversely affected and it often deprives one of their capability to perform tasks that need coordinated movement in the upper limbs. To address issues with upper limb dysfunction, patients typically undergo rehabilitative exercises. Given the high patient to doctor ratio particularly in developing countries like India, conventional rehabilitation with patients undergoing exercises under one-on-one therapist's supervision often becomes a challenge. Thus, investigators are exploring technology such as computer-based platforms coupled with cameras that can alleviate the need for the continuous presence of a therapist and can offer a powerful complementary tool in the hands of the clinicians. Such marker-based imaging systems used for rehabilitation can offer real-time processing and high accuracy of data. However, these systems often require dedicated lab space and high set-up time. Often this is very expensive and suffers from portability issues. Investigators have been exploring marker-less imaging techniques e.g., Kinect integrated computer-based graphical user interfaces in stroke-rehabilitation such as tracking one's limb movement during rehabilitation. In our present study, we have developed a Kinect-assisted computer-based system that offered Human Computer Interaction (HCI) tasks of varying challenge levels. Execution of the tasks required one to use reaching and coordination skills of the upper limbs. Also, the system was Performance-sensitive i.e., adaptive to the individualized residual movement ability of one's upper limb quantified in terms of task performance score. We tested for the usability of our system by exposing 15 healthy participants to our system. Subsequently, seven post-stroke patients interacted with our system over a few sessions spread over 2 weeks. Also, we studied patient's mean tonic activity corresponding to the HCI tasks as a possible indicator of one's post-stroke functional recovery suggesting its potential of our system to serve as a rehabilitation platform. Our results indicate the potential of such systems toward the improvement of task performance capability of post-stroke patients with possibilities of upper limb movement rehabilitation.
Identifiants
pubmed: 30967755
doi: 10.3389/fnins.2019.00228
pmc: PMC6438898
doi:
Types de publication
Journal Article
Langues
eng
Pagination
228Références
J Neuroeng Rehabil. 2004 Oct 26;1(1):5
pubmed: 15679916
Clin Biomech (Bristol, Avon). 2005 Jul;20(6):591-9
pubmed: 15890439
Top Stroke Rehabil. 2005 Spring;12(2):22-35
pubmed: 15940582
J Biomech. 2006;39(4):681-8
pubmed: 16439237
Neurorehabil Neural Repair. 2008 Nov-Dec;22(6):728-36
pubmed: 18784267
Med Sci Sports Exerc. 2010 Mar;42(3):443-8
pubmed: 19952826
J Neuroeng Rehabil. 2009 Dec 07;6:44
pubmed: 19968873
J Stroke Cerebrovasc Dis. 2010 Jan;19(1):10-6
pubmed: 20123221
Man Ther. 2010 Jun;15(3):220-8
pubmed: 20163979
Nature. 2010 Nov 11;468(7321):305-9
pubmed: 21048709
Conf Proc IEEE Eng Med Biol Soc. 2010;2010:3690-3
pubmed: 21096856
Ann Emerg Med. 1990 Sep;19(9):1054-9
pubmed: 2203291
Conf Proc IEEE Eng Med Biol Soc. 2011;2011:1831-4
pubmed: 22254685
Sensors (Basel). 2012;12(2):1437-54
pubmed: 22438718
Conf Proc IEEE Eng Med Biol Soc. 2012;2012:1286-9
pubmed: 23366134
IEEE Trans Neural Syst Rehabil Eng. 2014 Mar;22(2):312-25
pubmed: 23508271
Indian J Med Res. 2013 Apr;137(4):632-5
pubmed: 23703329
J Neuroeng Rehabil. 2013 Aug 01;10:85
pubmed: 23914733
Am J Phys Med Rehabil. 2013 Oct;92(10):871-80
pubmed: 24051993
J Clin Nurs. 2014 May;23(9-10):1201-26
pubmed: 24102924
J Med Eng Technol. 2014 Jul;38(5):274-80
pubmed: 24878252
J Neuroeng Rehabil. 2014 Jul 03;11:108
pubmed: 24996956
Front Neuroeng. 2014 Jul 08;7:25
pubmed: 25071547
Neural Regen Res. 2013 Nov 5;8(31):2904-13
pubmed: 25206611
J Neuroeng Rehabil. 2014 Nov 15;11:154
pubmed: 25399249
Physiotherapy. 2015 Dec;101(4):389-93
pubmed: 26050135
Sensors (Basel). 2015 Oct 30;15(11):27569-89
pubmed: 26528979
PLoS One. 2016 Jul 01;11(7):e0158640
pubmed: 27367518
J Physiother. 2017 Jan;63(1):53
pubmed: 27964964
IEEE Trans Neural Syst Rehabil Eng. 2017 Mar;25(3):244-253
pubmed: 28113559
BMC Neurol. 2017 Jun 8;17(1):109
pubmed: 28595611
J Neuroeng Rehabil. 2017 Jun 24;14(1):61
pubmed: 28646914
Sensors (Basel). 2017 Jul 07;17(7):
pubmed: 28686174
Behav Brain Res. 2017 Aug 30;333:314-322
pubmed: 28688897
J Neuroeng Rehabil. 2017 Nov 17;14(1):119
pubmed: 29149855
J Neurol Phys Ther. 2018 Oct;42(4):224-232
pubmed: 30138228
Front Neurorobot. 2018 Sep 25;12:57
pubmed: 30319387
J Neuroeng Rehabil. 2018 Nov 14;15(1):104
pubmed: 30428896
Phys Ther. 1985 Feb;65(2):175-80
pubmed: 3969398
Neuropsychologia. 1971 Mar;9(1):97-113
pubmed: 5146491