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Postural activity and motion sickness during video game play in children and adults

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Abstract

Research has confirmed that console video games give rise to motion sickness in many adults. During exposure to console video games, there are differences in postural activity (movement of the head and torso) between participants who later experience motion sickness and those who do not, confirming a prediction of the postural instability theory of motion sickness. Previous research has not addressed relations between video games, movement and motion sickness in children. We evaluated the nauseogenic properties of a commercially available console video game in both adults and 10-year-old children. Individuals played the game for up to 50 min and were instructed to discontinue immediately if they experienced any symptoms of motion sickness, however mild. During game play, we monitored movement of the head and torso. Motion sickness was reported by 67% of adults and by 56% of children; these rates did not differ. As a group, children moved more than adults. Across age groups, the positional variability of the head and torso increased over time during game play. In addition, we found differences in movement between participants who later reported motion sickness and those who did not. Some of these differences were general across age groups but we also found significant differences between the movement of adults and children who later reported motion sickness. The results confirm that console video games can induce motion sickness in children and demonstrate that changes in postural activity precede the onset of subjective symptoms of motion sickness in children.

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References

  • Akiduki H, Nishiike S, Watanabe H, Matsuoka K, Kubo T, Takeda N (2005) Visual-vestibular conflict induced by virtual reality in humans. Neurosci Let 340:197–200

    Article  Google Scholar 

  • Ali MR, Mowery Y, Kaplan B, DeMaria EJ (2004) Training the novice in laparoscopy. Surg Endo 16:1732–1736

    Article  Google Scholar 

  • Assaiante C, Amblard B (1995) An ontogenic model for the sensorimotor organization of balance control in humans. Hum Mov Sci 14:13–43

    Article  Google Scholar 

  • Barab SA, Gresalfi M, Ingram-Goble A (2010) Transformational play: using games to position person, content, and context. Educ Res 39:525–536

    Article  Google Scholar 

  • Bonnet CT, Faugloire E, Riley MA, Bardy BG, Stoffregen TA (2006) Motion sickness preceded by unstable displacements of the center of pressure. Hum Move Sci 25(6):800–820

    Article  Google Scholar 

  • Bos JE, Damala D, Lewis C, Ganguly A, Turan O (2007) Susceptibility to seasickness. Ergon 50:890–901

    Article  CAS  Google Scholar 

  • Cohen J (1988) Statistical power analysis for the behavioral sciences, 2nd edn. Erlbaum, Hillsdale

    Google Scholar 

  • Dong X, Yoshida K, Stoffregen TA (2011) Control of a virtual vehicle influences postural activity and motion sickness. J Exp Psych: Appl 17:128–138

    Article  Google Scholar 

  • Draper MH, Viirre ES, Gawron VJ, Furness TA (2001) The effects of image scale and system delay on simulator sickness within head-coupled virtual environments. Hum Factors 43:129–146

    Google Scholar 

  • Duh H, Parker D, Philips J, Furness T (2004) “Conflicting” motion cues to the visual and vestibular self-motion systems around 0.06 Hz evoke simulator sickness. Hum Fact 46:142–153

    Article  Google Scholar 

  • Gentile D (2009) Pathological video-game use among youth ages 8 to 18: a national study. Psych Sci 20:594–602

    Article  Google Scholar 

  • Gentile D, Choo H, Liau A, Sim T, Li D, Fung D et al (2011) Pathological video game use among youths: a two-year longitudinal study. Pediat 127(2):e319–e329

    Article  Google Scholar 

  • Godoi D, Barela JA (2008) Body sway and sensory motor coupling adaptation in children: effects of distance manipulation. Dev Psych 50:77–87

    Article  Google Scholar 

  • Hong SL, James EG, Newell KM (2008) Age-related complexity and coupling of children’s sitting posture. Dev Psych 50:502–510

    Article  Google Scholar 

  • Howell DC (1997) Statistical methods for psychology, 4th edn. Wadsworth Publishing Company, Belmont CA

    Google Scholar 

  • Kennedy RS, Lane NE, Berbaum KS, Lilienthal MG (1993) Simulator sickness questionnaire: an enhanced method for quantifying simulator sickness. Int J Avi Psych 3:203–220

    Article  Google Scholar 

  • Mayo MJ (2007) Games for science and engineering education. Comm ACM 50:30–35

    Article  Google Scholar 

  • Merhi O, Faugloire E, Flanagan M, Stoffregen TA (2007) Motion sickness, console video games, and head-mounted displays. Hum Factors 49:920–934

    Article  PubMed  Google Scholar 

  • Olivier I, Palluel E, Nougier V (2008) Effects of attentional focus on postural sway in children and adults. Exp Brain Res 185:341–345

    Article  PubMed  Google Scholar 

  • Olivier I, Cuisinier R, Vaugoyeau M, Nougier V, Assaiante C (2010) Age-related differences in cognitive and postural dual-task performance. Gait Pos 32:494–499

    Article  Google Scholar 

  • Pan W-W, Chang C-H (2011) Console video games induced postural sway and motion sickness. Sports Ex Res 13:232–240

    Google Scholar 

  • Reason JT (1978) Motion sickness adaptation: a neural mismatch model. J Royal Soc Med 71:819–829

    CAS  Google Scholar 

  • Rehbein F, Kleimann M, Mößle T (2010) Prevalence and risk factors of video game dependency in adolescence: results of a German nationwide survey. Cyberpsych Beh Social Network 13(3):269–277

    Article  Google Scholar 

  • Riccio GE, Stoffregen TA (1991) An ecological theory of motion sickness and postural instability. Eco Psych 3:195–240

    Article  Google Scholar 

  • Rolnick A, Lubow RE (1991) Why is the driver rarely motion sick? The role of controllability in motion sickness. Ergonomics 34:867–879

    Google Scholar 

  • Rosenberg BH, Landsittel D, Averch TD (2005) Can video games be used to predict or improve laparoscopic skills? J Endour 19:372–376

    Article  Google Scholar 

  • Rosser JC, Lynch PJ, Cuddihy L, Gentile DA, Klonsky J (2007) The impact of video games on training surgeons in the 21st century. Arch Surg 142:181–186

    Article  PubMed  Google Scholar 

  • Smart LJ, Stoffregen TA, Bardy BG (2002) Visually-induced motion sickness predicted by postural instability. Hum Factors 44:451–465

    Article  PubMed  Google Scholar 

  • Stanney K, Salvendy G, Deisinger J, DiZio P, Ellis S, Ellison J et al (1998) Aftereffects and sense of presence in virtual environments: formulation of a research and development agenda. Int J Hum-Comp Interact 10(2):135–187

    Article  CAS  Google Scholar 

  • Stoffregen TA (2011) Motion sickness considered as a movement disorder. Science et Motricité 74:19–30

    Article  Google Scholar 

  • Stoffregen TA, Smart LJ (1998) Postural instability precedes motion sickness. Brain Res Bull 47:437–448

    Article  PubMed  CAS  Google Scholar 

  • Stoffregen TA, Pagulayan RJ, Bardy BG, Hettinger LJ (2000) Modulating postural control to facilitate visual performance. Hum Move Sci 19:203–220

    Article  Google Scholar 

  • Stoffregen TA, Faugloire E, Yoshida K, Flanagan MB, Merhi O (2008) Motion sickness and postural sway in console video games. Hum Factors 50:322–331

    Article  PubMed  Google Scholar 

  • Stoffregen TA, Yoshida K, Villard S, Scibora L, Bardy BG (2010) Stance width influences postural stability and motion sickness. Ecol Psychol 22:169–191

    Google Scholar 

  • Takahashi M, Toriyabe I, Takei Y, Kanzaki J (1994) Study on experimental motion sickness in children. Acta Otolaryn 114:231–237

    Article  CAS  Google Scholar 

  • Turner M, Griffin MJ (1999) Motion sickness in public road transport: passenger behavior and susceptibility. Ergonomics 42:444–461

    Article  PubMed  CAS  Google Scholar 

  • Villard SJ, Flanagan MB, Albanese GM, Stoffregen TA (2008) Postural instability and motion sickness in a virtual moving room. Hum Factors 50:332–345

    Article  PubMed  Google Scholar 

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Acknowledgments

We thank Shotah Stoffregen for help with video game terminology.

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Correspondence to Thomas A. Stoffregen.

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Chang, CH., Pan, WW., Tseng, LY. et al. Postural activity and motion sickness during video game play in children and adults. Exp Brain Res 217, 299–309 (2012). https://doi.org/10.1007/s00221-011-2993-4

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  • DOI: https://doi.org/10.1007/s00221-011-2993-4

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