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Virtual Grasping Feedback and Virtual Hand Ownership

Published: 19 September 2019 Publication History

Abstract

In this work, we investigate the influence of different visualizations on a manipulation task in virtual reality (VR). Without the haptic feedback of the real world, grasping in VR might result in intersections with virtual objects. As people are highly sensitive when it comes to perceiving collisions, it might look more appealing to avoid intersections and visualize non-colliding hand motions. However, correcting the position of the hand or fingers results in a visual-proprioceptive discrepancy and must be used with caution. Furthermore, the lack of haptic feedback in the virtual world might result in slower actions as a user might not know exactly when a grasp has occurred. This reduced performance could be remediated with adequate visual feedback.
In this study, we analyze the performance, level of ownership, and user preference of eight different visual feedback techniques for virtual grasping. Three techniques show the tracked hand (with or without grasping feedback), even if it intersects with the grasped object. Another three techniques display a hand without intersections with the object, called outer hand, simulating the look of a real world interaction. One visualization is a compromise between the two groups, showing both a primary outer hand and a secondary tracked hand. Finally, in the last visualization the hand disappears during the grasping activity.
In an experiment, users perform a pick-and-place task for each feedback technique. We use high fidelity marker-based hand tracking to control the virtual hands in real time. We found that the tracked hand visualizations result in better performance, however, the outer hand visualizations were preferred. We also find indications that ownership is higher with the outer hand visualizations.

References

[1]
Ferran Argelaguet and Carlos Andújar. 2013. A survey of 3D object selection techniques for virtual environments. Computers & Graphics 37, 3 (May 2013), 121–136.
[2]
Ferran Argelaguet, Ludovic Hoyet, and Anatole Trico, Michaël & Lecuyer. 2016. The role of interaction in virtual embodiment: Effects of the virtual hand representation. In 2016 IEEE Virtual Reality. 3–10.
[3]
Christoph W. Borst and Arun P. Indugula. 2005. Realistic Virtual Grasping. In IEEE Proceedings. VR 2005. Virtual Reality, 2005.91–98.
[4]
Doug A. Bowman and Larry F. Hodges. 1997. An Evaluation of Techniques for Grabbing and Manipulating Remote Objects in Immersive Virtual Environments. In Proceedings of the 1997 Symposium on Interactive 3D Graphics(I3D ’97). ACM, 35–ff.
[5]
Doug A. Bowman, Ryan P. McMahan, and Eric D. Ragan. 2012. Questioning Naturalism in 3D User Interfaces. Commun. ACM 55, 9 (Sept. 2012), 78–88.
[6]
Andreas Geiger, Imke Bewersdorf, Elisabeth Brandenburg, and Rainer Stark. 2018. Visual Feedback for Grasping in Virtual Reality Environments for an Interface to Instruct Digital Human Models. In Advances in Usability and User Experience. Springer International Publishing, 228–239.
[7]
Shangchen Han, Beibei Liu, Robert Wang, Yuting Ye, Christopher D. Twigg, and Kenrick Kin. 2018. Online Optical Marker-based Hand Tracking with Deep Labels. ACM Trans. Graph. 37, 4, Article 166 (July 2018), 10 pages.
[8]
Konstantina Kilteni, Raphaela Groten, and Mel Slater. 2012a. The Sense of Embodiment in Virtual Reality. Presence: Teleoperators & Virtual Environments 21, 4 (Dec. 2012), 373–387.
[9]
Konstantina Kilteni, Jean-Marie Normand, Maria V. Sanchez-Vives, and Mel Slater. 2012b. Extending Body Space in Immersive Virtual Reality: A Very Long Arm Illusion. PloS ONE 7 (July 2012), 1–15.
[10]
Meng Chun Lam, Haslina Arshad, Anton Satria Prabuwono, Siok Yee Tan, and S. M. M. Kahaki. 2018. Interaction techniques in desktop virtual environment: the study of visual feedback and precise manipulation method. Multimedia Tools and Applications 77, 13 (Jul 2018), 16367–16398.
[11]
Lorraine Lin, Alexandra Adkins, Yu Sun, Andrew Robb, Yuting Ye, Massimiliano Di Luca, and Sophie Jörg. 2019. The Effect of Hand Size and Interaction Modality on the Virtual Hand Illusion. In 2019 IEEE Virtual Reality Conference.
[12]
Lorraine Lin and Sophie Jörg. 2016. Need a Hand?: How Appearance Affects the Virtual Hand Illusion. In Proceedings of the ACM Symposium on Applied Perception(SAP ’16). ACM, 69–76.
[13]
C. Karen Liu. 2008. Synthesis of Interactive Hand Manipulation. In Proceedings of the 2008 ACM SIGGRAPH/Eurographics Symposium on Computer Animation(SCA ’08). Eurographics Association, Aire-la-Ville, Switzerland, Switzerland, 163–171. http://dl.acm.org/citation.cfm?id=1632592.1632616
[14]
Matthew Longo, Friederike Schüür, Marjolein P M Kammers, Manos Tsakiris, and Patrick Haggard. 2008. What is embodiment? A psychometric approach. Cognition 107 (July 2008), 978–98.
[15]
Ke Ma and Bernhard Hommel. 2013. The virtual-hand illusion: effects of impact and threat on perceived ownership and affective resonance. Frontiers in Psychology 4 (Sept. 2013), 604.
[16]
Ke Ma and Bernhard Hommel. 2015a. Body-ownership for actively operated non-corporeal objects. Consciousness and Cognition 36 (June 2015), 75 – 86.
[17]
Ke Ma and Bernhard Hommel. 2015b. The role of agency for perceived ownership in the virtual hand illusion. Consciousness and Cognition 36 (July 2015), 277 – 288.
[18]
Ryan P. McMahan, Doug A. Bowman, David J. Zielinski, and Rachael B. Brady. 2012. Evaluating Display Fidelity and Interaction Fidelity in a Virtual Reality Game. IEEE Transactions on Visualization and Computer Graphics 18, 4 (April 2012), 626–633.
[19]
Owlchemy Labs. 2016. Job Simulator: The 2050 Archives. Oculus Rift version.
[20]
Nancy S. Pollard and Victor B. Zordan. 2005. Physically Based Grasping Control from Example. In Proceedings of the 2005 ACM SIGGRAPH/Eurographics Symposium on Computer Animation(SCA ’05). ACM, 311–318.
[21]
Ivan Poupyrev, Suzanne Weghorst, Mark Billinghurst, and Tadao Ichikawa. 1997. A Framework and Testbed for Studying Manipulation Techniques for Immersive VR. In Proceedings of the ACM Symposium on Virtual Reality Software and Technology(VRST ’97). ACM, 21–28.
[22]
Mores Prachyabrued and Christoph W. Borst. 2012. Visual interpenetration tradeoffs in whole-hand virtual grasping. In 2012 IEEE Symposium on 3D User Interfaces (3DUI). 39–42.
[23]
Mores Prachyabrued and Christoph W. Borst. 2013. Effects and Optimization of Visual-Proprioceptive Discrepancy Reduction for Virtual Grasping. 2013 IEEE Symposium on 3D User Interfaces (3DUI), 11–14.
[24]
Mores Prachyabrued and Christoph W. Borst. 2014. Visual Feedback for Virtual Grasping. 2014 IEEE Symposium on 3D User Interfaces (3DUI) (March 2014), 19–26.
[25]
Schell Games. 2016. I Expect You To Die. Oculus Rift version.
[26]
Martin Schubert and Barrett Fox. 2017. Interaction Sprints at Leap Motion: Exploring the Hand-Object Boundary. http://blog.leapmotion.com/interaction-sprint-exploring-the-hand-object-boundary/. Accessed July 15, 2019.
[27]
Mel Slater, Daniel Pérez-Marcos, H. Henrik Ehrsson, and Maria V. Sanchez-Vives. 2008. Towards a Digital Body: The Virtual Arm Illusion. Frontiers in Human Neuroscience 2 (Aug. 2008), 1499 – 1506.
[28]
Spyros Vosinakis and Panayiotis Koutsabasis. 2018. Evaluation of visual feedback techniques for virtual grasping with bare hands using Leap Motion and Oculus Rift. Virtual Reality 22, 1 (01 Mar 2018), 47–62.
[29]
Ye Yuan and Anthony Steed. 2010. Is the Rubber Hand Illusion Induced by Immersive Virtual Reality?. In Proceedings of the 2010 IEEE Virtual Reality Conference(VR ’10). IEEE Computer Society, Washington, DC, USA, 95–102.
[30]
Wenping Zhao, Jianjie Zhang, Jianyuan Min, and Jinxiang Chai. 2013. Robust Realtime Physics-based Motion Control for Human Grasping. ACM Trans. Graph. 32, 6, Article 207 (Nov. 2013), 12 pages.

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cover image ACM Conferences
SAP '19: ACM Symposium on Applied Perception 2019
September 2019
188 pages
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Published: 19 September 2019

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Author Tags

  1. body ownership
  2. virtual character
  3. virtual grasping
  4. virtual hand interaction
  5. virtual reality
  6. visual feedback

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SAP '19
SAP '19: ACM Symposium on Applied Perception 2019
September 19 - 20, 2019
Barcelona, Spain

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