<?xml version="1.0" encoding="UTF-8" standalone="yes"?><oembed><version><![CDATA[1.0]]></version><provider_name><![CDATA[TBI Rehabilitation]]></provider_name><provider_url><![CDATA[https://tbirehabilitation.wordpress.com]]></provider_url><author_name><![CDATA[Kostas Pantremenos]]></author_name><author_url><![CDATA[https://tbirehabilitation.wordpress.com/author/onganalop/]]></author_url><title><![CDATA[[Abstract + References] Feasibility of Wearable Sensing for In-Home Finger Rehabilitation Early After&nbsp;Stroke]]></title><type><![CDATA[link]]></type><html><![CDATA[<h3><strong>Abstract</strong></h3>
<div>Wearable grip sensing shows potential for hand rehabilitation, but few studies have studied feasibility early after stroke. Here, we studied a wearable grip sensor integrated with a musical computer game (MusicGlove). Among the stroke patients admitted to a hospital without limiting complications, 13% had adequate hand function for system use. Eleven subjects used MusicGlove at home over three weeks with a goal of nine hours of use. On average they achieved 4.1 ± 3.2 (SD) hours of use and completed 8627 ± 7500 grips, an amount comparable to users in the chronic phase of stroke measured in a previous study. The rank-order usage data were well fit by distributions that arise in machine failure theory. Users operated the game at high success levels, achieving note-hitting success &gt;75% for 84% of the 1061 songs played. They changed game parameters infrequently (31% of songs), but in a way that logically modulated challenge, consistent with the Challenge Point Hypothesis from motor learning. Thus, a therapy based on wearable grip sensing was feasible for home rehabilitation, but only for a fraction of subacute stroke subjects. Subjects made usage decisions consistent with theoretical models of machine failure and motor learning.</div>
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<p><span id="ref20" class="number"><b>20.</b></span> K. E. Laver, D. Schoene, M. Crotty, S. George, N. A. Lannin and C. Sherrington, &#8220;Telerehabilitation services for stroke&#8221;, <em>Cochrane Database Systematic Rev.</em>, vol. 2013, no. 12, pp. 1-48, 2013.</p>
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<p><span id="ref21" class="number"><b>21.</b></span> Y. Hara, S. Ogawa, K. Tsujiuchi and Y. Muraoka, &#8220;A home-based rehabilitation program for the hemiplegic upper extremity by power-assisted functional electrical stimulation&#8221;, <em>Disability Rehabil.</em>, vol. 30, no. 4, pp. 296-304, Jan. 2008.</p>
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<p><span id="ref22" class="number"><b>22.</b></span> E. V. Donoso Brown, S. W. McCoy, A. S. Fechko, R. Price, T. Gilbertson and C. T. Moritz, &#8220;Preliminary investigation of an electromyography-controlled video game as a home program for persons in the chronic phase of stroke recovery&#8221;, <em>Arch. Phys. Med. Rehabil.</em>, vol. 95, no. 8, pp. 1461-1469, Aug. 2014.</p>
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<p><span id="ref23" class="number"><b>23.</b></span> M. King, J. Hijmans, M. Sampson, J. Satherley and L. Hale, &#8220;Home-based stroke rehabilitation using computer gaming&#8221;, <em>New Zeal. J. Physiother.</em>, vol. 40, no. 3, pp. 128-134, 2012.</p>
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<p><span id="ref24" class="number"><b>24.</b></span> A. Slijper, K. E. Svensson, P. Backlund, H. Engström and K. Sunnerhagen, &#8220;Computer game-based upper extremity training in the home environment in stroke persons: A single subject design&#8221;, <em>J. NeuroEng. Rehabil.</em>, vol. 11, no. 1, pp. 35, 2014.</p>
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<p><span id="ref25" class="number"><b>25.</b></span> M. Villeneuve and A. Lamontagne, &#8220;Playing piano can improve upper extremity function after stroke: Case studies&#8221;, <em>Stroke Res. Treat.</em>, vol. 2013, pp. 1-5, Feb. 2013.</p>
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<p><span id="ref26" class="number"><b>26.</b></span> J. M. Hijmans, L. A. Hale, J. A. Satherley, N. J. Mcmillan and M. J. King, &#8220;Bilateral upper-limb rehabilitation after stroke using a movement-based game controller&#8221;, <em>J. Rehabil. Res. Develop.</em>, vol. 48, no. 8, pp. 1005, 2011.</p>
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<p><span id="ref27" class="number"><b>27.</b></span> J. Yoo, &#8220;The role of therapeutic instrumental music performance in hemiparetic arm rehabilitation&#8221;, <em>Music Therapy Perspect.</em>, vol. 27, no. 1, pp. 16-24, Jan. 2009.</p>
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<p><span id="ref28" class="number"><b>28.</b></span> P. Rinne et al., &#8220;Democratizing neurorehabilitation: How accessible are low-cost mobile-gaming technologies for self-rehabilitation of arm disability in stroke?&#8221;, <em>PLoS ONE</em>, vol. 11, no. 10, 2016.</p>
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<p><span id="ref29" class="number"><b>29.</b></span> N. Friedman, V. Chan, D. Zondervan, M. Bachman and D. J. Reinkensmeyer, &#8220;MusicGlove: Motivating and quantifying hand movement rehabilitation by using functional grips to play music&#8221;, <em>Proc. Annu. Int. Conf. IEEE Eng. Med. Biol. Soc.</em>, pp. 2359-2363, Aug. 2011.</p>
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<p><span id="ref30" class="number"><b>30.</b></span> N. Friedman et al., &#8220;Retraining and assessing hand movement after stroke using the MusicGlove: Comparison with conventional hand therapy and isometric grip training&#8221;, <em>J. NeuroEng. Rehabil.</em>, vol. 11, no. 1, pp. 76, 2014.</p>
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<p><span id="ref34" class="number"><b>34.</b></span> M. L. Delignette-Muller and C. Dutang, &#8220;fitdistrplus: An R package for fitting distributions&#8221;, <em>J. Stat. Softw.</em>, vol. 64, no. 4, pp. 1-23, 2015.</p>
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<p><span id="ref35" class="number"><b>35.</b></span> R. Proffitt and B. Lange, &#8220;Innovative technologies special series&#8221;, <em>Phys. Therapy</em>, vol. 95, no. 3, pp. 441-448, 2015.</p>
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<p><span id="ref36" class="number"><b>36.</b></span> S. Nijenhuis, G. Prange, F. Amirabdollahian, F. Infarinato, J. Buurke and J. Reitman, &#8220;Feasibility of a second iteration wrist and hand supported training system for self-administered training at home in chronic stroke&#8221;, <em>Proc. 8th Int. Conf. eHealth Telemed. Soc. Med.</em>, pp. 51-56, Apr. 2016.</p>
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<p><span id="ref37" class="number"><b>37.</b></span> P. Rinne et al., &#8220;Democratizing neurorehabilitation: How accessible are low-cost mobile-gaming technologies for self-rehabilitation of arm disability in stroke?&#8221;, <em>PLoS ONE</em>, vol. 11, no. 10, 2016.</p>
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<p>via <a href="https://ieeexplore.ieee.org/document/9068278">Feasibility of Wearable Sensing for In-Home Finger Rehabilitation Early After Stroke &#8211; IEEE Journals &amp; Magazine</a></p>
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