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VROffice: interactive and immersive 3D visualization, manipulation and correlation of multivariable georeferenced datasets in virtual reality (Demo Paper)

Published: 05 November 2019 Publication History

Abstract

In conventional work environments, visualization and integration of correlated data has always been limited by the amount of software windows a regular PC can display. On the other hand, immersive virtual environments present possibilities of interaction that fit scalable and adaptable three-dimensional space, allowing the integration of different types of data, and relating information. This article describes VROffice, an immersive virtual reality office to handle and correlate georeferenced data. VROffice is an immersive and interactive virtual reality office used to handle and correlate georeferenced data, providing access to 2D and 3D elements (i.e rocks, lab samples, organisms) organized as a virtual library. These objects work as data containers ready to store and display data from its location. In the virtual office, data is visualized in a way that allows different forms of interactions, such as observation, free-hand manipulation, inspection of details and object location in a 3D georeferenced space. Users can also organize datasets, perform analysis between different types of objects, combine characteristics, and interpret data in a Geographic Information System (GIS) environment. It enables different forms of interaction with potential to improve insights over observations, instantly turning multivariable datasets into intuitive immersive displays. Different forms of interaction, as well as UI (user interface) and UX (user experience) decisions have been customized to ensure that the experience in using the system is as comfortable as possible. Therefore, in order to demonstrate the possibilities of its use, case studies were created in two different fields of knowledge, geology and biology, which have georeferenced data available.

References

[1]
Rafal Ablamowicz and Bertfried Fauser. 2007. Getting Started With VR Interface Design. Retrieved May 28, 2019 from https://www.smashingmagazine.com/2017/02/getting-started-with-vr-interface-design/
[2]
Mike Alger. 2015. Visual Design Methods for Virtual Reality. Technical Report. https://vimeo.com/116101132
[3]
Ejder Bastug, Mehdi Bennis, Muriel Médard, and Mérouane Debbah. 2017. Toward interconnected virtual reality: Opportunities, challenges, and enablers. IEEE Communications Magazine 55, 6 (2017), 110--117.
[4]
P.A. Burrough. 2001. GIS and geostatistics: Essential partners for spatial analysis. Environmental and Ecological Statistics 8, 4 (01 Dec 2001), 361--377. https://doi.org/10.1023/A:1012734519752
[5]
Daniele Carvalho, Luciana Signorelli, Alessandro Morais, Rogerio Bastos, and Natan Maciel. 2013. Geographic structure and acoustic variation in populations of Scinax squalirostris (A. Lutz, 1925) (Anura: Hylidae). North-Western Journal of Zoology 9 (12 2013), 329--336.
[6]
Joshua Q Coburn, Ian Freeman, and John L Salmon. 2017. A review of the capabilities of current low-cost virtual reality technology and its potential to enhance the design process. Journal of Computing and Information Science in Engineering 17, 3 (2017), 031013.
[7]
Dietrich Kammer, Jan Wojdziak, Mandy Keck, Rainer Groh, and Severin Taranko. 2010. Towards a Formalization of Multi-touch Gestures. In ACM International Conference on Interactive Tabletops and Surfaces (ITS '10). ACM, New York, NY, USA, 49--58. https://doi.org/10.1145/1936652.1936662
[8]
Andreas Rudh and Anna Qvarnström. 2013. Adaptive colouration in amphibians. Seminars in Cell and Developmental Biology 24, 6 (2013), 553--561. https://doi.org/10.1016/j.semcdb.2013.05.004 Genetic basis and evolutionary causes of colour variation in vertebrates.
[9]
Čeněk Šašinka, Zdeněk Stachoň, Michal Sedlák, Jiří Chmelík, Lukáš Herman, Petr Kubíček, Alžběta Šašinková, Milan Doležal, Hynek Tejkl, Tomáš Urbánek, et al. 2019. Collaborative Immersive Virtual Environments for Education in Geography. ISPRS International Journal of Geo-Information 8, 1 (2019), 3.
[10]
Jonathan Steuer. 1992. Defining virtual reality: Dimensions determining telepresence. Journal of communication 42, 4 (1992), 73--93.
[11]
W Geoffrey Wright. 2014. Using virtual reality to augment perception, enhance sensorimotor adaptation, and change our minds. Frontiers in systems neuroscience 8 (2014), 56.

Cited By

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  • (2023)An Immersive Virtual Field Experience Structuring Method for Geoscience EducationIEEE Transactions on Learning Technologies10.1109/TLT.2022.320708916:1(121-132)Online publication date: 1-Feb-2023
  • (2021)Mosis Lab Hyperspectral - Visualization and Correlation of Hyperspectral Data on Immersive Virtual Reality2021 IEEE International Geoscience and Remote Sensing Symposium IGARSS10.1109/IGARSS47720.2021.9554529(5747-5750)Online publication date: 11-Jul-2021

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  1. VROffice: interactive and immersive 3D visualization, manipulation and correlation of multivariable georeferenced datasets in virtual reality (Demo Paper)

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      cover image ACM Conferences
      SIGSPATIAL '19: Proceedings of the 27th ACM SIGSPATIAL International Conference on Advances in Geographic Information Systems
      November 2019
      648 pages
      Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the Owner/Author.

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      New York, NY, United States

      Publication History

      Published: 05 November 2019

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      Author Tags

      1. Biology
      2. Data Visualization
      3. Geology
      4. Hand Tracking
      5. Head Mounted Display
      6. Immersive
      7. Presence
      8. Virtual Reality
      9. Virtual Workspace

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      SIGSPATIAL '19 Paper Acceptance Rate 34 of 161 submissions, 21%;
      Overall Acceptance Rate 257 of 1,238 submissions, 21%

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      View all
      • (2023)An Immersive Virtual Field Experience Structuring Method for Geoscience EducationIEEE Transactions on Learning Technologies10.1109/TLT.2022.320708916:1(121-132)Online publication date: 1-Feb-2023
      • (2021)Mosis Lab Hyperspectral - Visualization and Correlation of Hyperspectral Data on Immersive Virtual Reality2021 IEEE International Geoscience and Remote Sensing Symposium IGARSS10.1109/IGARSS47720.2021.9554529(5747-5750)Online publication date: 11-Jul-2021

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