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article

Exertion Games

Published: 29 December 2016 Publication History

Abstract

Advances in human-computer interaction HCI technologies have led to emerging computer game systems that foster physical exertion as part of the interaction; we call them exertion games. These games highlight a body-centric perspective on our interactions with computers, in contrast to traditional mouse, keyboard and gamepad interactions, not just in terms of their physical interface, but also in terms of the experiences that they support. As a result, exertion games show great promise in facilitating not only health benefits, but also novel play experiences. However, to realize this promise, exertion games need to be well designed, not only in terms of technical aspects involving the sensing of the active body, but also in relation to the experiential perspective of an active human body. This article provides an overview of existing work on exertion games, outlines a spectrum of exertion games, and presents an analysis of key enabling technologies. We also position exertion games within a broader HCI context by reviewing and examining different design approaches and frameworks for building exertion games. Finally, the article concludes with directions for future work.

References

[1]
M. A. Adams, S. J. Marshall, L. Dillon, S. Caparosa, E. Ramirez, J. Phillips, and G. J. Norman. A theory-based framework for evaluating exergames as persuasive technology. In Proceedings of the 4th International Conference on Persuasive Technology, page 45, 2009.
[2]
M. Ahn, S. Kwon, B. Park, K. Cho, S. Choe, I. Hwang, H. Jang, J. Park, Y. Rhee, and J. Song. Running or gaming. In International Conference on Advances in Computer Enterntainment Technology, pages 345-348, 2009.
[3]
R. Altamimi and G. Skinner. A survey of active video game literature. Journal of Computer and Information Technology, 1(1):20-35, 2012.
[4]
D. Altimira, M. Billinghurst, and F. Mueller. Understanding handicapping for balancing exertion games. CHI Extended Abstracts on Human Factors in Computing Systems, pages 1125-1130, 2013.
[5]
D. Altimira, F. F. Mueller, G. Lee, J. Clarke, and M. Billinghurst. Towards understanding balancing in exertion games. In Proceedings of the 11th Conference on Advances in Computer Entertainment Technology, pages 1-8. Funchal, Portugal, 2014.
[6]
J. Anlauff, E. Weitnauer, A. Lehnhardt, S. Schirmer, S. Zehe, and K. Tonekaboni. A method for outdoor skateboarding video games. In Proceedings of the 7th International Conference on Advances in Computer Entertainment Technology, pages 40-44, 2010.
[7]
Apple. Apple-Nike + iPod. Retrieved from: https://en.wikipedia.org/wiki/Nike%2B, 4 November 2016.
[8]
B. G. Behrenshausen. Toward a (Kin) aesthetic of video gaming: The case of dance dance revolution. Games and Culture, 2(4):335, 2007.
[9]
T. Bekker, J. Sturm, and B. Eggen. Designing playful interactions for social interaction and physical play. Personal and Ubiquitous Computing, 14(5): 385-396, 2010.
[10]
S. Benford, R. Anastasi, M. Flintham, A. Drozd, A. Crabtree, C. Greenhalgh, and et al. Coping with uncertainty in a location-based game. IEEE Pervasive Computing, 2(3):34-41, 2003.
[11]
S. Benford, A. Crabtree, M. Flintham, A. Drozd, R. Anastasi, M. Paxton, and et al. Can you see me now? ACM Transactions on Computer-Human Interaction, 13(1):100-133, 2006.
[12]
N. Bianchi-Berthouze. Understanding the role of body movement in player engagement. Human-Computer Interaction, 28(1):40-75, 2013.
[13]
N. Bianchi-Berthouze, W. Kim, and D. Patel. Does body movement engage you more in digital game play? and why? In A. Paiva, R. Prada, and R. Picard, editors, Affective Computing and Intelligent Interaction, volume 4738, pages 102-113, Springer Berlin / Heidelberg, 2007. Retrieved from:
[14]
E. Biddiss and J. Irwin. Active video games to promote physical activity in children and youth: A systematic review. Archives of Pediatrics & Adolescent Medicine, 164(7):664-672, 2010.
[15]
I. Bogost. The rhetoric of exergaming. Digital Arts and Cultures (DAC) Conference, Denmark, 2005.
[16]
Ian Bogost. Persuasive Games: The Expressive Power of Videogames. MIT Press, 2007.
[17]
G. Borg. Borg's Perceived Exertion and Pain Scales. Champaign, IL: Human Kinetics, 1998.
[18]
J. Bowers and S. Hellstrom. Simple interfaces to complex sound in improvised music. In Conference on Human Factors in Computing Systems, Extended Abstracts, pages 125-126, The Hague, The Netherlands, 2000.
[19]
T. Campbell, B. Ngo, and J. Fogarty. Game design principles in everyday fitness applications. In Proceedings of the ACM Conference on Computer Supported Cooperative Work, pages 249-252, San Diego, CA, USA, 2008.
[20]
G. U. Carraro, M. Cortes, J. T. Edmark, and J. R. Ensor. The peloton bicycling simulator. In Proceedings of the 3rd Symposium on Virtual Reality Modeling Language, pages 63-70, 1998.
[21]
E. H. Chi, J. Song, and G. Corbin. "killer app" of wearable computing: Wireless force sensing body protectors for martial arts. In Proceedings of the 17th Annual ACM Symposium on User Interface Software and Technology, pages 277-285, Santa Fe, NM, USA, 2004. (retrieved from).
[22]
M. Chuah and S. Sample. Fitness tour: A mobile application for combating obesity. In Proceedings of the First ACM MobiHoc Workshop on Pervasive Wireless Healthcare, page 9, 2011.
[23]
E. E. A. Cohen, R. Ejsmond-Frey, N. Knight, and R. I. M. Dunbar. Rowers' high: Behavioural synchrony is correlated with elevated pain thresholds. Biology Letters, 6(1):106, 2010.
[24]
S. Consolvo, K. Everitt, I. Smith, and J. A. Landay. Design requirements for technologies that encourage physical activity. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 457-466, Montreal, Quebec, Canada, 2006.
[25]
S. Consolvo, D. W. McDonald, T. Toscos, M. Y. Chen, J. Froehlich, B. Harrison, and et al. Activity sensing in the wild: a field trial of ubifit garden. In Proceedings of the Conference on Human Factors and Computing Systems, pages 1797-1806, Florence, Italy, 2008.
[26]
A. R. Damasio. The Feeling of What Happens: Body and Emotion in the Making of Consciousness. Vintage, 1999.
[27]
Y. A. W. de Kort and W. A. IJsselsteijn. People, places, and play: Player experience in a socio-spatial context. Computers in Entertainment (CIE), 6(2), 2008.
[28]
B. DeLorenzo. Wii sports experiment. Retrieved from: http://wiinintendo.net/2007/01/15/wii-sports-experiment-results/, 2007.
[29]
A. DeSmet, D. Van Ryckeghem, S. Compernolle, T. Baranowski, D. Thompson, G. Crombez, and et al. A meta-analysis of serious digital games for healthy lifestyle promotion. Preventive Medicine, 69:95-107, 2014.
[30]
S. Deterding, D. Dixon, L. Nacke, K. O'Hara, and M. Sicart. Gamification: Using game design elements in non-gaming contexts. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, Vancouver, Canada, 2011.
[31]
E. Dickson. Woman uses Nike+ app to draw penises all over San Francisco. Retrieved from: http://www.dailydot.com/lol/nike-plus-penis-drawing/, 2014.
[32]
P. Dourish. Where the Action Is: The Foundations of Embodied Interaction. Boston, MA, USA: MIT Press, 2001.
[33]
H. Dreyfus. Being-in-the-World: A Commentary on Heidegger's Being and Time, Division I. The MIT Press, 1991.
[34]
Electronic Arts. The Sims. URL: http://thesims.ea.com/, 2010.
[35]
D. England, E. Hornecker, C. Roast, P. Romero, P. Fergus, and P. Marshall. Workshop on whole-body interactions. In Proceedings of the 27th International Conference on Human Factors in Computing Systems, Extended Abstracts, pages 1-4, Boston, MA, USA, 2009. URL: http://dl.acm.org/citation.cfm?doid=1520340.1520748.
[36]
E. Eriksson, T. Hansen, and A. Lykke-Olesen. Movement-based interaction in camera spaces: A conceptual framework. Personal and Ubiquitous Computing, 11(8):621-632, 2007.
[37]
D. G. Fabrik. Johann sebastian joust. Retrieved from jsjoust.com, 2014.
[38]
S. Finkelstein, A. Nickel, T. Barnes, and E. A. Suma. Astrojumper: Motivating children with autism to exercise using a VR game. In CHI Extended Abstracts on Human Factors in Computing Systems, pages 4189-4194, 2010.
[39]
Fitocracy. Fitocracy. retrieved from: http://fitocracy.com, 2012.
[40]
B. J. Fogg. Persuasive Technology: Using Computers to Change What We Think and Do. Morgan Kaufmann San Francisco, CA, USA, 2002.
[41]
M. H. Fogtmann. Kinesthetic empathy interaction -- exploring the possibilities of psychomotor abilities in interaction design. Workshop on Physicality, UK: Lancaster University, Retrieved from: http://www.interactivespaces.net/data/uploads/papers/18.pdf, 2007.
[42]
M. H. Fogtmann, J. Fritsch, and K. J. Kortbek. Kinesthetic interaction -- revealing the bodily potential in interaction design. In Conference of the Computer-human Interaction Special Interest Group (CHISIG) of Australia on Computer-Human Interaction, Cairns, Australia, 2008.
[43]
C. Foster, J. P. Porcari, J. Anderson, M. Paulson, D. Smaczny, H. Webber, and et al. The talk test as a marker of exercise training intensity. Journal of Cardiopulmonary Rehabilitation and Prevention, 28(1):24-30, 2008.
[44]
Gale Encyclopedia of Medicine. Exercise. Retrieved from: http://medical-dictionary.thefreedictionary.com/exercise, 2008.
[45]
Gamebike. gamebike.com. Retrieved from: http://www.cateyefitness.com/GameBike, n.d.
[46]
Y. Gao and R. Mandryk. The acute cognitive benefits of casual exergame play. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 1863-1872, Austin, Texas, USA, 2012.
[47]
Y. Gao and R. L. Mandryk. GrabApple: The design of a casual exergame. In Entertainment Computing-ICEC 2011, pages 35-46, Springer, 2011.
[48]
A. Gekker. Health games taxonomy analysis and multiplayer design suggestions. In M. Ma, M. F. Oliveira, J. B. Hauge, H. Duin, and K.-D. Thoben, editors, Serious Games Development and Applications: Third International Conference, SGDA 2012, September 26-29, 2012, Springer Berlin Heidelberg, 2012. Retrieved from:
[49]
K. Gerling and R. Mandryk. Custom-designed motion-based games for older adults: A review of literature in human-computer interaction. Gerontechnology, 12(2):68-80, 2014.
[50]
K. Gerling, K. Hicks, M. Kalyn, A. Evans, and C. Linehan. Designing movement-based play with young people using powered wheelchairs. In Conference on Human Factors in Computing Systems, San Jose, CA, USA, 2016.
[51]
K. M. Gerling, M. Miller, R. L. Mandryk, M. V. Birk, and J. D. Smeddinck. Effects of balancing for physical abilities on player performance, experience and self-esteem in exergames. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 2201-2210. 2014.
[52]
K. M. Gerling, R. L. Mandryk, and C. Linehan. Long-term use of motion-based video games in care home settings. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems, pages 1573-1582, 2015.
[53]
F. Gil-Castiñeira, A. Fernández-López, C. L. Bravo, N. Cid-Vieytes, D. Conde-Lagoa, E. Costa-Montenegro, and F. J. González-Castaño. Run-WithUs: A Social Sports Application in the Ubiquitous Oulu Environment. ACM, 2011.
[54]
S. Göbel, S. Hardy, V. Wendel, F. Mehm, and R. Steinmetz. Serious games for health: Personalized exergames. In Proceedings of the 18th ACM International Conference on Multimedia, pages 1663-1666, 2010.
[55]
E. Goffman. The Presentation of Self in Everyday Life. Garden City, 1959.
[56]
M. L. Goodwin, J. E. Harris, A. Hernández, and L. B. Gladden. Blood lactate measurements and analysis during exercise: A guide for clinicians. Journal of Diabetes Science and Technology (Online), 1(4):558-569, 2007.
[57]
L. Görgü, A. G. Campbell, K. McCusker, M. Dragone, M. J. O'Grady, N. E. O'Connor, and G. M. O'Hare. Freegaming: Mobile, collaborative, adaptive and augmented exergaming. Mobile Information Systems, 8(4):287-301, 2012.
[58]
D. L. Graf, L. V. Pratt, C. N. Hester, and K. R. Short. Playing active video games increases energy expenditure in children. Pediatrics, 124(2):534-540, 2009.
[59]
L. Graves, G. Stratton, N. D. Ridgers, and N. T. Cable. Comparison of energy expenditure in adolescents when playing new generation and sedentary computer games: Cross sectional study. British Medical Journal, 335 (7633):1282-1284, 2007.
[60]
L. Graves, G. Stratton, N. Ridgers, and N. Cable. Energy expenditure in adolescents playing new generation computer games. British Journal of Sports Medicine, 42(7):592-594, 2008.
[61]
M. Griffiths and A. Meredith. Videogame addiction and its treatment. Journal of Contemporary Psychotherapy, 39(4):247-253, 2009.
[62]
E. T. Hall. The Hidden Dimension. New York: Anchor Books, 1969.
[63]
P. Hämäläinen, T. Ilmonen, J. Höysniemi, M. Lindholm, and A. Nykänen. Martial arts in artificial reality. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 781-790, Portland, Oregon, USA, 2005.
[64]
J. Haviland-Jones, H. H. Rosario, P. Wilson, and T. R. McGuire. An environmental approach to positive emotion: Flowers. Evolutionary Psychology, 3: 104-132, 2005.
[65]
H. A. Hernandez, T. Graham, D. Fehlings, L. Switzer, Z. Ye, Q. Bellay, and et al. Design of an exergaming station for children with cerebral palsy. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 2619-2628, 2012.
[66]
H. A. Hernandez, M. Ketcheson, A. Schneider, Z. Ye, D. Fehlings, L. Switzer, and et al. Design and evaluation of a networked game to supportsocial connection of youth with cerebral palsy. In Proceedings of the 16th International ACM SIGACCESS Conference on Computers & Accessibility, pages 161-168, Rochester, New York, USA, 2014.
[67]
J. Hoonhout and W. Fontijn. It's hard, it is fun: Throwing balls inside the home. In SIGCHI conference on Human Factors in Computing Systems. Workshop Exertion Interfaces, Florence, Italy, 2008. Retrieved from: http://workshopchi.pbwiki.com/f/CHI2008_splashball_exertion_interfaces_uploaded.pdf.
[68]
E. Hornecker and J. Buur. Getting a grip on tangible interaction: A framework on physical space and social interaction. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 437-446, Montreal, Quebec, Canada, 2006.
[69]
J. Hoysniemi. Design and Evaluation of Physically Interactive Games (Unpublished Doctoral Dissertation, Tampere University, Tampere, Finland). Retrieved from: http://acta.uta.fi/pdf/951-44-6694-2.pdf, 2006.
[70]
A. Huggard, A. D. Mel, J. Garner, C. C. Toprak, A. Chatham, and F. Mueller. Musical embrace: Exploring social awkwardness in digital games. In Proceedings of the 2013 ACM International Joint Conference on Pervasive and Ubiquitous Computing, pages 725-728, Zurich, Switzerland, 2013.
[71]
C. Hummels, K. C. J. Overbeeke, and S. Klooster. Move to get moved: A search for methods, tools and knowledge to design for expressive and rich movement-based interaction. Personal and Ubiquitous Computing, 11(8): 677-690, 2007.
[72]
K. Isbister. Enabling social play. In R. Bernhaupt, editor, Evaluating User Experience in Games: Concepts and Methods, Springer-Verlag New York Inc, 2010.
[73]
H. Ishii, C. Wisneski, J. Orbanes, B. Chun, and J. Paradiso. Pingpongplus: Design of an athletic-tangible interface for computer-supported cooperative play. In SIGCHI Conference on Human Factors in Computing Systems, pages 394-401. 1999.
[74]
O. Izuta, T. Sato, S. Kodama, and H. Koike. Bouncing star project: Design and development of augmented sports application using a ball including electronic and wireless modules. In Proceedings of the 1st Augmented Human International Conference, pages 1-7, France, 2010.
[75]
M. M. Jensen, M. K. Rasmussen, F. Mueller, and K. Gronbaek. Keepin' it real: Challenges when designing sports-training games. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems, pages 2003-2012, Seoul, Republic of Korea, 2015.
[76]
C. Karageorghis and D.-L. Priest. Music in sport and exercise : An update on research and application. The Sport Journal, 11(3), 2008.
[77]
E. Khoo, T. Merritt, A. Cheok, M. Lian, and K. Yeo. Age invaders: User studies of intergenerational computer entertainment. Entertainment Computing, pages 231-242, 2007.
[78]
R. A. Khot, J. Lee, D. Aggarwal, L. Hjorth, and F. Mueller. Tastybeats: Designing palatable representations of physical activity. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems, pages 2933-2942, Seoul, Republic of Korea, 2015.
[79]
K. Kiili, A. Perttula, P. Tuomi, M. Suominen, and A. Lindstedt. Designing mobile multiplayer exergames for physical education. In IA Sanchez and P. Isaias, editors, Proceedings of the IADIS International Conference, Mobile Learning, pages 19-21, Porto, Portugal, 2010.
[80]
S. Klemmer and B. Hartmann. How bodies matter: Five themes for interaction design. In Proceedings of the 6th Conference on Designing Interactive Systems, pages 140-149, University Park, PA, USA, 2006.
[81]
S. Knights, N. Graham, L. Switzer, H. Hernandez, Z. Ye, B. Findlay, and et al. An innovative cycling exergame to promote cardiovascular fitness in youth with cerebral palsy: A brief report. Developmental Neurorehabilitation, pages 1-6, 2014.
[82]
B. Koleva, H. Schnadelbach, S. Benford, and C. Greenhalgh. Traversable interfaces between real and virtual worlds. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 233-240, The Hague, The Netherlands, 2000.
[83]
R. Koster. A Theory of Fun for Game Design. Paraglyph Press, 2004.
[84]
R. Kretchmar. Practical Philosophy of Sport and Physical Activity. Champaign, IL, USA: Human Kinetics Publishers, 2005.
[85]
L. Lanningham-Foster, T. B. Jensen, R. C. Foster, A. B. Redmond, B. A. Walker, D. Heinz, and J. A. Levine. Energy expenditure of sedentary screen time compared with active screen time for children. Pediatrics, 118(6): 1831-1835, 2006.
[86]
A. Larssen, L. Loke, T. Robertson, J. Edwards, and A. Sydney. Understanding movement as input for interaction -- a study of two eyetoy games. In Conference of the Computer-Human Interaction Special Interest Group (CHISIG) of Australia on Computer-Human Interaction, Wollongong, Australia, 2004.
[87]
N. Lazzaro. Why we play games: Four keys to more emotion without story. Retrieved from: http://www.xeodesign.com/whyweplaygames.html, 2004.
[88]
J. Lehrer. How the nintendo wii will get you emotionally invested in video games. Seedmagazine.com. Brain & Behavior. Retrieved from: http://www.seedmagazine.com/news/2006/11/a_console_to_make_you_wiip.php, 2006.
[89]
D. A. Lieberman. Dance games and other exergames: What the research says. Retrieved from: http://www.comm.ucsb.edu/faculty/lieberman/exergames.htm, 2006.
[90]
J. Lin, L. Mamykina, S. Lindtner, G. Delajoux, and H. Strub. Fish'n'steps: Encouraging physical activity with an interactive computer game. In Ubiquitous Computing, pages 261-278, 2006. Retrieved from:
[91]
S. E. Lindley, J. Le Couteur, and N. L. Berthouze. Stirring up experience through movement in game play: Effects on engagement and social behaviour. In Proceeding of the 26th Annual SIGCHI Conference on Human Factors in Computing Systems, pages 511-514, Florence, Italy, 2008.
[92]
L. Loke and T. Robertson. Studies of dancers: Moving from experience to interaction design. International Journal of Design, 4(2), 2010.
[93]
L. Loke and T. Robertson. Moving and making strange: An embodied approach to movement-based interaction design. ACM Transactions on Computer-Human Interaction, 20(1):7, 2013.
[94]
L. Loke, A. Larssen, T. Robertson, and J. Edwards. Understanding movement for interaction design: Frameworks and approaches. Personal and Ubiquitous Computing, Special Issue Movement-Based Interaction, 11(8): 691-701, 2007.
[95]
M. Ludvigsen, M. Fogtmann, and K. Gronbek. Tactowers: An interactive training equipment for elite athletes. In Proceedings of the 8th ACM Conference on Designing Interactive Systems, pages 412-415, Aarhus, Denmark, 2010.
[96]
R. Mark, R. E. Rhodes, D. Warburton, and S. Bredin. Interactive video games and physical activity: A review of the literature and future directions. Health and Fitness Journal of Canada, 1(1):14-24, 2008.
[97]
N. Marquardt, R. Diaz-Marino, S. Boring, and S. Greenberg. The proximity toolkit: Prototyping proxemic interactions in ubiquitous computing ecologies. In Proceedings of the 24th Annual ACM Symposium on User Interface Software and Technology, pages 315-326, 2011.
[98]
S. Masuko and J. Hoshino. A Fitness Game Reflecting Heart Rate. ACM, 2006.
[99]
D. Mears and L. Hansen. Technology in physical education article #5 in a 6-part series: Active gaming: Definitions, options and implementation. Strategies, 23(2):26-29, 2009.
[100]
Microsoft. Xbox kinect. Retrieved from: http://www.xbox.com/en-US/xbox-one/accessories/kinect, 2010.
[101]
G. Misund, H. Holone, J. Karlsen, and H. Tolsby. Chase and Catch-simple as that?: Old-fashioned fun of traditional playground games revitalized with location-aware mobile phones. In Proceedings of the International Conference on Advances in Computer Enterntainment Technology, pages 73-80, 2009.
[102]
J. Moen. Kinaesthetic movement interaction: Designing for the pleasure of motion. Unpublished Dissertation, Stockholm: KTH, Numerical Analysis and Computer Science, 2006.
[103]
S. Mokka, A. Väätänen, J. Heinilä, and P. Välkkynen. Fitness computer game with a bodily user interface. In Proceedings of the Second International Conference on Entertainment Computing, pages 1-3, Pittsburgh, Pennsylvania, 2003.
[104]
T. Morelli, J. Foley, and E. Folmer. Vi-bowling: A tactile spatial exergame for individuals with visual impairments. In Proceedings of the 12th International ACM SIGACCESS Conference on Computers and Accessibility, 2010.
[105]
F. Mueller and K. Isbister. Movement-based game guidelines. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 2191-2200, Toronto, Ontario, Canada, 2014.
[106]
F. Mueller and M. Muirhead. Jogging with a quadcopter. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems, pages 2023-2032, Seoul, Republic of Korea, 2015.
[107]
F. Mueller, S. Agamanolis, and R. Picard. Exertion interfaces: Sports over a distance for social bonding and fun. In SIGCHI Conference on Human Factors in Computing Systems, pages 561-568, Ft. Lauderdale, Florida, USA, 2003.
[108]
F. Mueller, M. Gibbs, and F. Vetere. Taxonomy of exertion games. In Conference of the Computer-Human Interaction Special Interest Group (CHISIG) of Australia on Computer-Human Interaction, pages 263-266, Cairns, Australia, 2008.
[109]
F. Mueller, S. Agamanolis, F. Vetere, and M. R. Gibbs. A framework for exertion interactions over a distance. ACM SIGGRAPH 2009, pages 143- 150, 2009a.
[110]
F. Mueller, M. Gibbs, and F. Vetere. Design influence on social play in distributed exertion games. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 1539-1548, Boston, MA, USA, 2009b.
[111]
F. Mueller, M. R. Gibbs, and V. Frank. Towards understanding how to design for social play in exertion games. Personal and Ubiquitous Computing, 14 (5):417-424, 2010a.
[112]
F. Mueller, F. Vetere, M. R. Gibbs, S. Agamanolis, and J. Sheridan. Jogging over a distance: The influence of design in parallel exertion games. In Proceedings of the 5th ACM SIGGRAPH Symposium on Video Games, pages 63-68, Los Angeles, USA, 2010b.
[113]
F. Mueller, F. Vetere, M. R. Gibbs, D. Edge, S. Agamanolis, and J. G. Sheridan. Jogging over a distance between europe and australia. In Proceedings of the 23nd Annual ACM Symposium on User Interface Software and Technology, pages 189-198, New York, New York, USA, 2010c.
[114]
F. Mueller, D. Edge, F. Vetere, M. R. Gibbs, S. Agamanolis, B. Bongers, and J. G. Sheridan. Designing sports: A framework for exertion games. In CHI '11: Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 2651-2660, Vancouver, Canada, 2011.
[115]
F. Mueller, F. Vetere, M. Gibbs, D. Edge, S. Agamanolis, J. Sheridan, and J. Heer. Balancing exertion experiences. In SIGCHI Conference on Human Factors in Computing Systems, pages 1853-1862, 2012.
[116]
F. Mueller, M. Gibbs, F. Vetere, S. Agamanolis, and D. Edge. Designing mediated combat play. In Proceedings of the 8th International Conference on Tangible, pages 149-156, Embedded and Embodied Interaction, 2014a.
[117]
F. Mueller, M. R. Gibbs, F. Vetere, and D. Edge. Supporting the creative game design process with exertion cards. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 2211-2220, Toronto, Ontario, Canada, 2014b.
[118]
F. Mueller, S. Stellmach, S. Greenberg, A. Dippon, S. Boll, J. Garner, and et al. Proxemics play: Understanding proxemics for designing digital play experiences. In Proceedings of the 2014 Conference on Designing Interactive Systems, pages 533-542, 2014c.
[119]
T. Muender, M. K. Miller, M. V. Birk, and R. L. Mandryk. Extracting heart rate from videos of online participants. In SIGCHI Conference on Human Factors in Computing Systems, San Jose, USA, 2016.
[120]
A. Nagargoje, K. Maybach, and T. Sokoler. Social Yoga Mats: Designing for Exercising/socializing Synergy. ACM, 2012.
[121]
V. Nenonen, A. Lindblad, V. Häkkinen, T. Laitinen, M. Jouhtio, and P. Hämäläinen. Using heart rate to control an interactive game. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 853-856, San Jose, California, USA, 2007.
[122]
Nike. Nike+. Retrieved from: http://nikeplus.nike.com, 2012.
[123]
Nintendo. Wii sports. Retrieved from: wiisports.nintendo.com/.
[124]
Y. Oh and S. Yang. Defining exergames & exergaming. In Meaningful Play 2010 Conference Proceedings, 2010. http://meaningfulplay.msu.edu/proceedings2010/.
[125]
K. Orland and C. Remo. Games for Health: Noah Falstein on Exergaming History. 2008.
[126]
R. J. Pagulayan, K. Keeker, D. Wixon, R. L. Romero, and T. Fuller. User-centered design in games. In L. Erlbaum Associates Inc, editor, The Human-Computer Interaction Handbook: Fundamentals, Evolving Technologies and Emerging Applications, pages 883-906, Mahwah, New Jersey, USA, 2003.
[127]
M. Papastergiou. Exploring the potential of computer and video games for health and physical education: A literature review. Computers & Education, 53(3):603-622, 2009.
[128]
T. Park, C. Yoo, S. P. Choe, B. Park, and J. Song. Transforming solitary exercises into social exergames. In Proceedings of the ACM 2012 conference on Computer Supported Cooperative Work, pages 863-866, Seattle, Washington, USA, 2012.
[129]
W. Peng, J. C. Crouse, and J.-H. Lin. Using active video games for physical activity promotion: A systematic review of the current state of research. Health Education & Behavior, 2012.
[130]
S. Pijnappel and F. F. Mueller. Designing interactive technology for skate-boarding. In Proceedings of the 8th International Conference on Tangible, Embedded and Embodied Interaction, pages 141-148, Munich, Germany, 2014.
[131]
S. Plowman and D. Smith. Exercise Physiology for Health, Fitness, and Performance. Baltimore, MD, USA: Lippincott Williams & Wilkins, 2007.
[132]
G. Powers, V. Nguyen, and L. Frieden. Video game accessibility: A legal approach. Disability Studies Quarterly, 35(1), 2015.
[133]
L. Prévost, O. Liechti, and M. J. Lyons. Design and implementation of a mobile exergaming platform. In Intelligent Technologies for Interactive Entertainment, pages 213-220, Springer, 2009.
[134]
S. Reeves, S. Benford, C. O'Malley, and M. Fraser. Designing the spectator experience. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 741-750, Portland, Oregon, USA, 2005.
[135]
S. Rigby and R. Ryan. Glued to Games: How Video Games Draw US in and Hold US Spellbound. Praeger, 2011.
[136]
Y. Rogers. Interaction design gone wild: Striving for wild theory. Interactions, 18(4):58-62, 2011.
[137]
K. Salen and E. Zimmerman. Rules of Play: Game Design Fundamentals. Boston, MA, USA: The MIT Press, 2003a.
[138]
K. Salen and E. Zimmerman. Rules of Play: Game Design Fundamentals. Boston, MA, USA: The MIT Press, 2003b.
[139]
T. Schiphorst. Really, really small: The palpability of the invisible. In Proceedings of the 6th ACM SIGCHI Conference on Creativity Cognition, pages 7-16, Washington, DC, USA, 2007.
[140]
R. A. Schmidt and C. A. Wrisberg. Motor Learning and Performance. Human Kinetics Pub, 2004.
[141]
E. M. Segura, A. Waern, J. Moen, and C. Johansson. The design space of body games: Technological, physical, and social design. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, pages 3365-3374, Paris, France, 2013.
[142]
O. Shaer and E. Hornecker. Tangible user interfaces: Past, present, and future directions. Foundations and Trends in Human-Computer Interaction, 3(1- 2):1-137, 2010.
[143]
M. Sheinin and C. Gutwin. Exertion in the small: Improving differentiation and expressiveness in sports games with physical controls. In Proceedings of the 32nd Annual ACM Conference on Human Factors in Computing Systems, pages 1845-1854, 2014.
[144]
J. Sheridan and N. Bryan-Kinns. Designing for performative tangible interaction. International Journal of Arts and Technology Special Issue on Tangible and Embedded Interaction, 1(3/4):288-308, 2008.
[145]
J. Sheridan, A. Dix, S. Lock, and A. Bayliss. Understanding interaction in ubiquitous guerrilla performances in playful arenas. In S. Fincher, P. Markopoulos, D. Moore, and R. Ruddle, editors, People and Computers XVIII -- Design for Life, pages 3-17, Springer London, 2005. Retrieved from:
[146]
J. M. Silva and A. El Saddik. An adaptive game-based exercising framework. In Proceedings of the IEEE International Conference on Virtual Environments Human-Computer Interfaces and Measurement Systems (VECIMS), pages 1-6, IEEE, 2011.
[147]
J. Sinclair, P. Hingston, and M. Masek. Considerations for the design of exergames. In Proceedings of the 5th International Conference on Computer Graphics and Interactive Techniques in Australia and Southeast Asia, pages 289-295, Perth, Australia, 2007.
[148]
J. Sinclair, P. Hingston, and M. Masek. Exergame development using the dual flow model. In Proceedings of the 6th Australasian Conference on Interactive Entertainment, page 11, 2009.
[149]
B. K. Smith. Physical fitness in virtual worlds. IEEE Computer, 38(10): 101-103, 2005.
[150]
Sony. Playstation move. Retrieved from: http://us.playstation.com/ps3/playstation-move/, 2010.
[151]
M. Sra and C. Schmandt. Design strategies for playful technologies to support light-intensity physical activity in the workplace. arXiv preprint arXiv:1512.02921, 2015.
[152]
T. Stach, T. Graham, J. Yim, and R. E. Rhodes. Heart rate control of exercise video games. In Proceedings of Graphics Interface 2009, Kelowna, pages 125-132, 2009.
[153]
B. A. Stamford. Validity and reliability of subjective ratings of perceived exertion during work. Ergonomics, 19(1):53-60, 1976.
[154]
K. G. Stanley, I. Livingston, A. Bandurka, R. Kapiszka, and R. L. Mandryk. PiNiZoRo: A GPS-based exercise game for families. In Proceedings of the International Academic Conference on the Future of Game Design and Technology, pages 243-246, 2010.
[155]
K. G. Stanley, I. J. Livingston, A. Bandurka, M. Hashemian, and R. L. Mandryk. Gemini: A pervasive accumulated context exergame. In Entertainment Computing, pages 65-76, Springer, 2011.
[156]
H. Strömberg, A. Väätänen, and V.-P. Räty. A group game played in interactive virtual space: Design and evaluation. In 4th Conference on Designing Interactive Systems, pages 56-63, London, England, 2002.
[157]
Tacx. Tacx virtual reality. Retrieved from: http://www.tacxvr.com, 2009.
[158]
L. M. Taylor, R. Maddison, L. A. Pfaeffli, J. C. Rawstorn, N. Gant, and N. M. Kerse. Activity and energy expenditure in older people playing active video games. Archives of Physical Medicine and Rehabilitation, 93(12):2281-2286, 2012.
[159]
A. G. Thin and N. Poole. Dance-based exergaming: User experience design implications for maximizing health benefits based on exercise intensity and perceived enjoyment. In Transactions on Edutainment IV, pages 189-199, Springer, 2010.
[160]
C. Toprak, J. Platt, H. Y. Ho, and F. Mueller. Cart-load-o-fun: Designing digital games for trams. In Extended Abstracts on Human Factors in Computing Systems, pages 2877-2878, 2013.
[161]
A. Väätänen and J. Leikas. Human-centered design and exercise games. In M. H. Kankaanranta and P. Neittaanmäki, editors, Design and Use of Serious Games, volume 37, Springer Science & Business Media, 2009.
[162]
V. Vandeen Abele. The permeable bubble: Vero vanden abeele at TEDxUHowest. Retrieved from: https://www.youtube.com/watch?v=oXBJLurPA_8, 2013.
[163]
Virtual Active. Retrieved from: http://vafitness.com, 2012.
[164]
A. Voida and S. Greenberg. Wii all play: The console game as a computational meeting place. In Proceedings of the 27th International Conference on Human Factors in Computing Systems, pages 1559-1568, Boston, MA, USA, 2009.
[165]
A. Voida, S. Carpendale, and S. Greenberg. The individual and the group in console gaming. In Proceedings of the ACM Conference on Computer Supported Cooperative Work, pages 371-380, Savannah, Georgia, USA, 2010.
[166]
R. Wakkary, M. Hatala, Y. Jiang, M. Droumeva, and M. Hosseini. Making sense of group interaction in an ambient intelligent environment for physical play. In Proceedings of the 2nd International Conference on Tangible and Embedded Interaction, pages 179-186, Bonn, Germany, 2008.
[167]
Wikipedia. Kinect adventures! Retrieved from: https://en.wikipedia.org/wiki/Kinect_Adventures!
[168]
D. Wilde. Swing That Thing: Moving to Move. The Poetics of Embodied Engagement. Monash University, 2011.
[169]
A. Williams, L. Hughes, and B. Simon. Propinquity: Exploring embodied gameplay. In Proceedings of the 12th ACM International Conference Adjunct Papers on Ubiquitous Computing -- Adjunct, pages 387-388, Copenhagen, Denmark, 2010.
[170]
D. Wilson and M. Sicart. Now it's personal: on abusive game design. In Proceedings of the International Academic Conference on the Future of Game Design and Technology, pages 40-47, Vancouver, British Columbia, Canada, 2010.
[171]
C. G. Wylie and P. Coulton. Mobile exergaming. In Proceedings of the 2008 International Conference on Advances in Computer Entertainment Technology, pages 338-341, 2008.
[172]
H. Yano, H. Noma, H. Iwata, and T. Miyasato. Shared walk environment using locomotion interfaces. In Proceedings of the ACM Conference on Computer Supported Cooperative Work, pages 163-170, 2000.
[173]
J. Yim and T. C. N. Graham. Using games to increase exercise motivation. In Future Play 2007, pages 166-173, Toronto, Canada, 2007.
[174]
L. Yingzi. A natural contact sensor paradigm for nonintrusive and realtime sensing of biosignals in human-machine interactions. Sensors Journal, IEEE, 11(3):522-529, 2011.

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    cover image Foundations and Trends in Human-Computer Interaction
    Foundations and Trends in Human-Computer Interaction  Volume 10, Issue 1
    29 12 2016
    89 pages

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    Hanover, MA, United States

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    Published: 29 December 2016

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