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Abstract

In this work we propose the combination of large interactive displays with personal head-mounted Augmented Reality (AR) for information visualization to facilitate data exploration and analysis. Even though large displays provide more display space, they are challenging with regard to perception, effective multi-user support, and managing data density and complexity. To address these issues and illustrate our proposed setup, we contribute an extensive design space comprising first, the spatial alignment of display, visualizations, and objects in AR space. Next, we discuss which parts of a visualization can be augmented. Finally, we analyze how AR can be used to display personal views in order to show additional information and to minimize the mutual disturbance of data analysts. Based on this conceptual foundation, we present a number of exemplary techniques for extending visualizations with AR and discuss their relation to our design space. We further describe how these techniques address typical visualization problems that we have identified during our literature research. To examine our concepts, we introduce a generic AR visualization framework as well as a prototype implementing several example techniques. In order to demonstrate their potential, we further present a use case walkthrough in which we analyze a movie data set. From these experiences, we conclude that the contributed techniques can be useful in exploring and understanding multivariate data. We are convinced that the extension of large displays with AR for information visualization has a great potential for data analysis and sense-making.

Research Article


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Accompanying Research Video

Full video of PARVis.

In a hurry? We also have a 30-second preview video.

u2vis: Universal Unity Visualization Framework

One of the main contributions of the paper is u2vis, our data-driven visualization framework for Unity which natively supports Augmented Reality applications.

The framework can be configured completely in the Unity editor, is easily extendable, and is publicly available on GitHub: github.com/imldresden/u2vis

Presentation @ IEEE VIS 2020 (12 Min.)

Full video of PARVis Talk.

Slide Deck

We presented our work at the IEEE VIS conference on Oct 29 in the Immersion session (8:00 Mountain Time, 15:00 CET).

Publication

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