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Research Article

Exercise intensity of active video gaming in cerebral palsy: hip- versus wrist-worn accelerometer data

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Pages 479-484 | Received 15 Jun 2021, Accepted 04 Jul 2022, Published online: 11 Jul 2022

References

  • Rosenbaum P, Paneth N, Leviton A, Goldstein M, Bax M, Damiano D, Dan B, Jacobsson B. A report: the definition and classification of cerebral palsy April 2006. Dev Med Child Neurol Suppl. 2007;109:8–14. doi:10.1111/j.1469-8749.2007.tb12610.x.
  • Orlin MN, Palisano RJ, Chiarello LA, Kang L-J, Polansky M, Almasri N, Maggs J. Participation in home, extracurricular, and community activities among children and young people with cerebral palsy. Dev Med Child Neurol. 2010;52(2):160–66. doi:10.1111/j.1469-8749.2009.03363.x.
  • Bjornson KF, Zhou C, Stevenson R, Christakis D, Song K. Walking activity patterns in youth with cerebral palsy and youth developing typically. Disabil Rehabil. 2014;36(15):1279–84. doi:10.3109/09638288.2013.845254.
  • Verschuren O, Peterson MD, Balemans AC, Hurvitz EA. Exercise and physical activity recommendations for people with cerebral palsy. Dev Med Child Neurol. 2016;58(8):798–808. doi:10.1111/dmcn.13053.
  • Maltais DB, Wiart L, Fowler E, Verschuren O, Damiano DL. Health-related physical fitness for children with cerebral palsy. J Child Neurol. 2014;29(8):1091–100. doi:10.1177/0883073814533152.
  • Rimmer JH, Chen M-D, McCubbin JA, Drum C, Peterson J. Exercise intervention research on persons with disabilities: what we know and where we need to go. Am J Phys Med Rehabil. 2010;89(3):249–63. doi:10.1097/PHM.0b013e3181c9fa9d.
  • Reedman S, Boyd RN, Sakzewski L. The efficacy of interventions to increase physical activity participation of children with cerebral palsy: a systematic review and meta-analysis. Dev Med Child Neurol. 2017;59(10):1011–18. doi:10.1111/dmcn.13413.
  • Bloemen M, Van Wely L, Mollema J, Dallmeijer A, de Groot J. Evidence for increasing physical activity in children with physical disabilities: a systematic review. Dev Med Child Neurol. 2017;59(10):1004–10. doi:10.1111/dmcn.13422.
  • Weiss PL, Tirosh E, Fehlings D. Role of virtual reality for cerebral palsy management. J Child Neurol. 2014;29(8):1119–24. doi:10.1177/0883073814533007.
  • Deutsch JE, Guarrera-Bowlby P, Myslinski MJ, Kafri M. Is there evidence that active videogames increase energy expenditure and exercise intensity for people poststroke and with cerebral palsy? Games Health J. 2015;4(1):31–37. doi:10.1089/g4h.2014.0082.
  • Sandlund M, McDonough S, Häger-Ross C. Interactive computer play in rehabilitation of children with sensorimotor disorders: a systematic review. Dev Med Child Neurol. 2009;51(3):173–79. doi:10.1111/j.1469-8749.2008.03184.x.
  • Wang M, Reid D. Virtual reality in pediatric neurorehabilitation: attention deficit hyperactivity disorder, autism and cerebral palsy. Neuroepidemiology. 2011;36(1):2–18. doi:10.1159/000320847.
  • Howcroft J, Klejman S, Fehlings D, Wright V, Zabjek K, Andrysek J, Biddiss E. Active video game play in children with cerebral palsy: potential for physical activity promotion and rehabilitation therapies. Arch Phys Med Rehabil. 2012;93(8):1448–56. doi:10.1016/j.apmr.2012.02.033.
  • Hurkmans HL, van den Berg-Emons Rj, Stam HJ. Energy expenditure in adults with cerebral palsy playing wii sports. Arch Phys Med Rehabil. 2010;91(10):1577–81. doi:10.1016/j.apmr.2010.07.216.
  • Koehler K, Abel T, Wallmann-Sperlich B, Dreuscher A, Anneken V. Energy expenditure in adolescents with cerebral palsy: comparison of the sensewear armband and indirect calorimetry. J Phys Act Health. 2015;12(4):540–45. doi:10.1123/jpah.2013-0294.
  • Delisle Nyström C, Pomeroy J, Henriksson P, Forsum E, Ortega FB, Maddison R, Migueles JH, Löf M. Evaluation of the wrist-worn actigraph wGT3x-BT for estimating activity energy expenditure in preschool children. Eur J Clin Nutr. 2017;71(10):1212–17. doi:10.1038/ejcn.2017.114.
  • Jeran S, Steinbrecher A, Pischon T. Prediction of activity-related energy expenditure using accelerometer-derived physical activity under free-living conditions: a systematic review. Int J Obes (Lond). 2016;40(8):1187–97. doi:10.1038/ijo.2016.14.
  • Mitchell LE, Ziviani J, Boyd RN. Habitual physical activity of independently ambulant children and adolescents with cerebral palsy: are they doing enough? Phys Ther. 2015;95(2):202–11. doi:10.2522/ptj.20140031.
  • Trost SG. State of the art reviews: measurement of physical activity in children and adolescents. Am J Lifestyle Med. 2007;1(4):299–314. doi:10.1177/1559827607301686.
  • Trost SG, Fragala-Pinkham M, Lennon N, O’Neil ME. Decision trees for detection of activity Intensity in youth with cerebral palsy. Med Sci Sports Exerc. 2016;48(5):958–66. doi:10.1249/MSS.0000000000000842.
  • Trost SG, Zheng Y, Wong W-K. Machine learning for activity recognition: hip versus wrist data. Physiol Meas. 2014;35(11):2183–89. doi:10.1088/0967-3334/35/11/2183.
  • Peters DM, McPherson AK, Fletcher B, McClenaghan BA, Fritz SL. Counting repetitions: an observational study of video game play in people with chronic poststroke hemiparesis. J Neurol Phys Ther. 2013;37(3):105–11. doi:10.1097/NPT.0b013e31829ee9bc.
  • Rand D, Givon N, Weingarden H, Nota A, Zeilig G. Eliciting upper extremity purposeful movements using video games: a comparison with traditional therapy for stroke rehabilitation. Neurorehabil Neural Repair. 2014;28(8):733–39. doi:10.1177/1545968314521008.
  • Bjornson K, Fiss A, Avery L, Wentz E, Kerfeld C, Cicirello N, Hanna SE. Longitudinal trajectories of physical activity and walking performance by gross motor function classification system level for children with cerebral palsy. Disabil Rehabil. 2020;42(12):1705–13. doi:10.1080/09638288.2018.1534995.
  • Palisano R, Rosenbaum P, Walter S, Russell D, Wood E, Galuppi B. Development and reliability of a system to classify gross motor function in children with cerebral palsy. Dev Med Child Neurol. 2008;39(4):214–23. doi:10.1111/j.1469-8749.1997.tb07414.x.
  • McDowell B. The gross motor function classification system - expanded and revised. Dev Med Child Neurol. 2008;50(10):725. doi:10.1111/j.1469-8749.2008.03104.x.
  • Robert M, Ballaz L, Hart R, Lemay M. Exercise intensity levels in children with cerebral palsy while playing with an active video game console. Phys Ther. 2013;93(8):1084–91. doi:10.2522/ptj.20120204.
  • Evenson KR, Catellier DJ, Gill K, Ondrak KS, McMurray RG. Calibration of two objective measures of physical activity for children. J Sports Sci. 2008;26(14):1557–65. doi:10.1080/02640410802334196.
  • Fowler EG, Staudt LA, Greenberg MB. Lower-extremity selective voluntary motor control in patients with spastic cerebral palsy: increased distal motor impairment. Dev Med Child Neurol. 2010;52(3):264–69. doi:10.1111/j.1469-8749.2009.03586.x.
  • Chruscikowski E, Fry NRD, Noble JJ, Gough M, Shortland AP. Selective motor control correlates with gait abnormality in children with cerebral palsy. Gait Posture. 2017;52:107–09. doi:10.1016/j.gaitpost.2016.11.031.
  • Lavelle G, Noorkoiv M, Theis N, Korff T, Kilbride C, Baltzopoulos V, Shortland A, Levin W, Ryan JM. Validity of the international physical activity questionnaire short form (IPAQ-SF) as a measure of physical activity (PA) in young people with cerebral palsy: a cross-sectional study. Physiotherapy. 2020;107:209–15. doi:10.1016/j.physio.2019.08.013.
  • Bjornson KF, Belza B, Kartin D, Logsdon R, McLaughlin JF. Ambulatory physical activity performance in youth with cerebral palsy and youth who are developing typically. Phys Ther. 2007;87(3):248–57. doi:10.2522/ptj.20060157.
  • van Wely L, Becher JG, Balemans AC, Dallmeijer AJ. Ambulatory activity of children with cerebral palsy: which characteristics are important? Dev Med Child Neurol. 2012;54(5):436–42. doi:10.1111/j.1469-8749.2012.04251.x.
  • Li QD, Kuang XM, Qi J. Correlates of physical activity of children and adolescents with visual impairments: a systematic review. Curr Pharm Des. 2020;26(39):5002–11. doi:10.2174/1381612826666200518110241.
  • Klausen B, Toubro S, Astrup A. Age and sex effects on energy expenditure. Am J Clin Nutr. 1997;65(4):895–907. doi:10.1093/ajcn/65.4.895.
  • Weststrate JA. Resting metabolic rate and diet-induced thermogenesis: a methodological reappraisal. Am J Clin Nutr. 1993;58(5):592–601. doi:10.1093/ajcn/58.5.592.

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