Effects of voluntary heart rate control on user engagement and agency in a virtual reality game
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Simon Richir | Olivier Christmann | Geoffrey Gorisse | Samory Houzangbe | S. Richir | O. Christmann | Geoffrey Gorisse | Samory Houzangbe | G. Gorisse
[1] S. Manuck,et al. Role of Feedback in Voluntary Control of Heart Rate , 1975, Perceptual and motor skills.
[2] Gilles Pourtois,et al. Controlling the emotional heart: heart rate biofeedback improves cardiac control during emotional reactions. , 2014, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[3] G. Malcuit,et al. Voluntary heart rate lowering following a cardiovascular arousing task , 1980, Biological Psychology.
[4] J. Brady,et al. Psychological and physiological variables associated with large magnitude voluntary heart rate changes. , 1975, Psychophysiology.
[5] Pattie Maes,et al. BreathVR: Leveraging Breathing as a Directly Controlled Interface for Virtual Reality Games , 2018, CHI.
[6] Simon Richir,et al. First- and Third-Person Perspectives in Immersive Virtual Environments: Presence and Performance Analysis of Embodied Users , 2017, Front. Robot. AI.
[7] Michael Madary,et al. Real Virtuality: A Code of Ethical Conduct. Recommendations for Good Scientific Practice and the Consumers of VR-Technology , 2016, Front. Robot. AI.
[8] Mirjana Prpa,et al. Attending to Breath: Exploring How the Cues in a Virtual Environment Guide the Attention to Breath and Shape the Quality of Experience to Support Mindfulness , 2018, Conference on Designing Interactive Systems.
[9] T. McCanne,et al. Changes in autonomic responding to stress after practice at controlling heart rate , 1983, Biofeedback and self-regulation.
[10] Robert L. Mason,et al. Statistical Principles in Experimental Design , 2003 .
[11] B. A. Flowers. Virtual Environments for the Induction of Action , 2018 .
[12] Eugénio C. Oliveira,et al. Vanishing scares: biofeedback modulation of affective player experiences in a procedural horror game , 2016, Journal on Multimodal User Interfaces.
[13] Regan L. Mandryk,et al. Biofeedback game design: using direct and indirect physiological control to enhance game interaction , 2011, CHI.
[14] Barbara S. Chaparro,et al. The Development and Validation of the Game User Experience Satisfaction Scale (GUESS) , 2016, Hum. Factors.
[15] Dermot Phelan,et al. Accuracy of Wrist-Worn Heart Rate Monitors , 2017, JAMA cardiology.
[16] Alan R. Hevner,et al. Towards a NeuroIS Research Methodology: Intensifying the Discussion on Methods, Tools, and Measurement , 2014, J. Assoc. Inf. Syst..
[17] Stephen B. Manuck,et al. Heart Rate Feedback-Assisted Reduction in Cardiovascular Reactivity to a Videogame Challenge , 1989 .
[18] Simon Richir,et al. Integrability and Reliability of Smart Wearables in Virtual Reality Experiences: A Subjective Review , 2018, VRIC.
[19] Simon Richir,et al. Fear as a biofeedback game mechanic in virtual reality: effects on engagement and perceived usability , 2018, FDG.
[20] Paul A. Obrist,et al. Cardiovascular Psychophysiology: Current Issues in Response Mechanisms, Biofeedback and Methodology , 2017 .
[21] Seiji Takeda,et al. Effect of Visual Feedback Caused by Changing Mental States of the Avatar Based on the Operator's Mental States Using Physiological Indices , 2017, IVA.
[22] Sarah Diefenbach,et al. Needs, affect, and interactive products - Facets of user experience , 2010, Interact. Comput..
[23] François Bernier,et al. Using Biofeedback while Immersed in a Stressful Videogame Increases the Effectiveness of Stress Management Skills in Soldiers , 2012, PloS one.
[24] S. Manuck,et al. The effect of feedback-assisted reduction in heart rate reactivity on videogame performance , 1990, Biofeedback and self-regulation.
[25] Elaine Toms,et al. What is user engagement? A conceptual framework for defining user engagement with technology , 2008, J. Assoc. Inf. Sci. Technol..
[26] Thomas O. Meservy,et al. Using Wearable Devices for Non-invasive, Inexpensive Physiological Data Collection , 2017, HICSS.
[27] Jan K. Argasinski,et al. Affective VR Serious Game For Firefighter Training , 2018, AfCAI.
[28] Extended Abstracts Publication of the Annual Symposium on Computer-Human Interaction in Play , 2017, CHI PLAY.
[29] F. Verhulst,et al. Perceived and physiological arousal during a stress task: Can they differentiate between anxiety and depression? , 2010, Psychoneuroendocrinology.
[30] Gunjan Tiyyagura,et al. Development and Evaluation , 2021 .
[31] Ferran Argelaguet,et al. The role of interaction in virtual embodiment: Effects of the virtual hand representation , 2016, 2016 IEEE Virtual Reality (VR).
[32] J. Huttenlocher,et al. Cardiac conditioning: the effects and implications of controlled and uncontrolled respiration. , 1961, Journal of experimental psychology.
[33] A. Bandura. Self-Efficacy: The Exercise of Control , 1997, Journal of Cognitive Psychotherapy.
[34] A. Bandura. Self-efficacy mechanism in human agency. , 1982 .
[35] Simon Richir,et al. From Robot to Virtual Doppelganger: Impact of Visual Fidelity of Avatars Controlled in Third-Person Perspective on Embodiment and Behavior in Immersive Virtual Environments , 2019, Front. Robot. AI.
[36] Utility of voluntary control of respiration and biofeedback for increasing and decreasing heart rate. , 1979, Psychophysiology.
[37] L. Sroufe,et al. Effects of depth and rate of breathing on heart rate and heart rate variability. , 1971, Psychophysiology.
[38] Eric N. Wiebe,et al. Measuring engagement in video game-based environments: Investigation of the User Engagement Scale , 2014, Comput. Hum. Behav..
[39] Perttu Hämäläinen,et al. Using heart rate to control an interactive game , 2007, CHI.
[40] Ferran Argelaguet,et al. “Do You Feel in Control?”: Towards Novel Approaches to Characterise, Manipulate and Measure the Sense of Agency in Virtual Environments , 2018, IEEE Transactions on Visualization and Computer Graphics.
[41] A. Lynn Abbott,et al. Assessment of psychophysiological characteristics using heart rate from naturalistic face video data , 2014, IEEE International Joint Conference on Biometrics.
[42] A. Rizzo,et al. Applications of Virtual Reality in Clinical Psychology and Clinical Cognitive Neuroscience–An Introduction , 2019, Virtual Reality for Psychological and Neurocognitive Interventions.
[43] M CLYNES,et al. Respiratory sinus arrhythmia: laws derived from computer simulation. , 1960, Journal of applied physiology.
[44] A. Bandura. Perceived Self-Efficacy in Cognitive Development and Functioning , 1993, Educational Psychologist.
[45] Fernando Seoane,et al. User-Centred Design and Usability Evaluation of a Heart Rate Variability Biofeedback Game , 2016, IEEE Access.
[46] Stéphane Bouchard,et al. Virtual reality compared with in vivo exposure in the treatment of social anxiety disorder: A three-arm randomised controlled trial , 2017, British Journal of Psychiatry.
[47] T. Metzinger,et al. Full-body illusions and minimal phenomenal selfhood , 2009, Trends in Cognitive Sciences.
[48] Peter Muris,et al. A Brief Questionnaire for Measuring Self-Efficacy in Youths , 2001 .
[49] T. C. Nicholas Graham,et al. Designing for Exertion: How Heart-Rate Power-ups Increase Physical Activity in Exergames , 2015, CHI PLAY.
[50] P. Nogueira,et al. Multimodal vs. unimodal biofeedback in videogames: An empirical player study using a First-Person Shooter , 2014, 2014 9th Iberian Conference on Information Systems and Technologies (CISTI).
[51] Arindam Dey,et al. Effects of Sharing Physiological States of Players in a Collaborative Virtual Reality Gameplay , 2017, CHI.
[52] C. Davies,et al. Sinus arrhythmia in man at rest. , 1967, Journal of applied physiology.
[53] Giulio Jacucci,et al. Bio-adaptive Social VR to Evoke Affective Interdependence: DYNECOM , 2018, IUI.
[54] Elaine Toms,et al. The development and evaluation of a survey to measure user engagement , 2010, J. Assoc. Inf. Sci. Technol..
[55] Mel Slater,et al. The physiological mirror—a system for unconscious control of a virtual environment through physiological activity , 2010, The Visual Computer.
[56] Mel Slater,et al. Virtually Being Einstein Results in an Improvement in Cognitive Task Performance and a Decrease in Age Bias , 2018, Front. Psychol..
[57] Karolina Baras,et al. PhysioVR: A novel mobile virtual reality framework for physiological computing , 2016, 2016 IEEE 18th International Conference on e-Health Networking, Applications and Services (Healthcom).
[58] Erik Champion,et al. Please Biofeed the Zombies: Enhancing the Gameplay and Display of a Horror Game Using Biofeedback , 2007, DiGRA Conference.
[59] Michael J. Singer,et al. Measuring Presence in Virtual Environments: A Presence Questionnaire , 1998, Presence.
[60] Isabela Granic,et al. Exploring the Role of Self-efficacy in Biofeedback Video Games , 2017, CHI PLAY.