An Evaluation of Glyph Perception for Real Symmetric Traceless Tensor Properties

A perceptual study of four tensor glyphs for symmetric, real, traceless tensors was performed. Each glyph encodes three properties of the system: Orientation, uniaxiality (alignment along the direction of orientation), and biaxiality (alignment along a vector orthogonal to the orientation). Thirty u...

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Veröffentlicht in:Computer graphics forum Jg. 29; H. 3; S. 1133 - 1142
Hauptverfasser: Jankun-Kelly, T.J., Lanka, Y.S., Swan II, J.E.
Format: Journal Article
Sprache:Englisch
Veröffentlicht: Oxford, UK Blackwell Publishing Ltd 01.06.2010
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ISSN:0167-7055, 1467-8659
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Abstract A perceptual study of four tensor glyphs for symmetric, real, traceless tensors was performed. Each glyph encodes three properties of the system: Orientation, uniaxiality (alignment along the direction of orientation), and biaxiality (alignment along a vector orthogonal to the orientation). Thirty users over two studies were asked to identify these three properties for each glyph type under a variety of permutations in order to evaluate the effectiveness of visually communicating the properties; response time was also measured. We discuss the significant differences found between the methods as guidance to the use of these glyphs for traceless tensor visualization.
AbstractList A perceptual study of four tensor glyphs for symmetric, real, traceless tensors was performed. Each glyph encodes three properties of the system: Orientation, uniaxiality (alignment along the direction of orientation), and biaxiality (alignment along a vector orthogonal to the orientation). Thirty users over two studies were asked to identify these three properties for each glyph type under a variety of permutations in order to evaluate the effectiveness of visually communicating the properties; response time was also measured. We discuss the significant differences found between the methods as guidance to the use of these glyphs for traceless tensor visualization.
A perceptual study of four tensor glyphs for symmetric, real, traceless tensors was performed. Each glyph encodes three properties of the system: Orientation, uniaxiality (alignment along the direction of orientation), and biaxiality (alignment along a vector orthogonal to the orientation). Thirty users over two studies were asked to identify these three properties for each glyph type under a variety of permutations in order to evaluate the effectiveness of visually communicating the properties; response time was also measured. We discuss the significant differences found between the methods as guidance to the use of these glyphs for traceless tensor visualization. [PUBLICATION ABSTRACT]
Author Jankun-Kelly, T.J.
Swan II, J.E.
Lanka, Y.S.
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References_xml – reference: De Gennes P. G.: The Physics of Liquid Crystals. Clarendon, Oxford , 1974.
– reference: Howell D. C.: Statistical Methods for Psychology, 5th ed. Duxbury, Pacific Grove , CA , 2002.
– reference: Collings P. J.: Liquid Crystals: Nature's Delicate Phase of Matter, 2nd. ed. Priceton University Press, Princeton , NJ , 2002.
– reference: Slavin V. A., Pelcovits R. A., Loriot G., Callan-Jones A., Laidlaw D. H.: Techniques for the visualization of topological defect behavior in nematic liquid crystals. IEEE Transactions on Visualization and Computer Graphics (Proceedings Visualization/Information Visualization 2006) 12, 5 (SeptemberOctober 2006), 1323-1328.
– reference: Mukherjee P. K.: Critical behavior of uniaxial-biaxial nematic phase transition. The Journal of Chemical Physics 109, 7 (1998), 2941-2946.
– reference: Healey C. G., Enns J. T.: Large datasets at a glance: Combining textures and colors in scientific visualization. IEEE Transactions on Visualization and Computer Graphics 5, 2 (Apr. 1999).
– reference: Ebert D. S., Rohrer R. M., Shaw C. D., Panda P., Kukla J. M., Roberts D. A.: Procedural shape generation for multi-dimensional data visualization. Computers & Graphics 24, 3 (2000), 375-384.
– reference: Kindlmann G., Weinstein D., Hart D.: Strategies for direct volume rendering of diffusion tensor fields. IEEE Transactions on Visualization and Computer Graphics 6, 2 (2000), 124-138.
– reference: Urness T., Interrante V., Longmire E., Marusic I., O'Neill S., Jones T. W.: Strategies for the visualization of multiple 2D vector fields. IEEE Computer Graphics and Applications 26, 4 (2006), 74-82.
– reference: Anderson J. E., Watson P., Bos P. J.: Comparisons of the vector method and tensor method for simulating liquid crystal devices. Liquid Crystals 28 (2001), 109-115.
– reference: Morrtram N., Newton C.: Introduction to Q-tensor theory. Tech. rep., Dept. of Mathematics, University of Strathclyde, 2004.
– reference: Barr A. H.: Superquadrics and angle-preserving transformations. IEEE Computer Graphics and Applications 1, 1 (April 1981), 11-22.
– reference: Benger W., Hege H.-C.: Tensor splats. In Visualization and Data Analysis 2004, Proc. of SPIE (June 2004), vol. 5295, pp. 151-162.
– reference: Sonnet A., Kilian A., Hess S.: Alignment tensor versus director: Description of defects in nematic liquid crystals. Physical Review E 52 (July 1995), 718-722.
– reference: Barnett V., Lewis T.: Outliers in Statistical Data, 3rd ed. John Wiley and Sons, 1994.
– reference: Jankun-Kelly T. J., Mehta K.: Superellipsoid-based, real symmetric traceless tensor glyphs motivated by nematic liquid crystal alignment visualization. IEEE Transactions on Visualization and Computer Graphics (Proceedings Visualization/Information Visualization 2006) 12, 5 (SeptemberOctober 2006), 1197-1204.
– reference: Ware C.: Information Visualization: Perception for Design, second ed. Morgan Kaufmann Publishers, 2004.
– reference: House D. H., Bair A., Ware C.: An approach to the perceptual optimization of complex visualizations. IEEE Transactions on Visualization and Computer Graphics 12, 4 (2006), 509-521.
– reference: Kim S., Hagh-Shenas H., Interrante V.: Conveying shape with texture: Experimental investigations of texture's effects on shape categorization judgments. IEEE Transactions on Visualization and Computer Graphics 10, 4 (JulyAug. 2004), 471-483.
– reference: Bair A., House D. H., Ware C.: Texturing of layered surfaces for optimal viewing. IEEE Transactions on Visualization and Computer Graphics (Proceedings Visualization/Information Visualization 2006) 12, 5 (2006), 1125-1132.
– reference: Allen M. P.: Molecular graphics and the computer simulation of liquid crystals. Molecular Simulation 2, 4 (February 1989), 301-306.
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  year: June 2004
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  article-title: Tensor splats
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  article-title: Strategies for direct volume rendering of diffusion tensor fields
  publication-title: IEEE Transactions on Visualization and Computer Graphics
– volume: 12
  start-page: 509
  issue: 4
  year: 2006
  end-page: 521
  article-title: An approach to the perceptual optimization of complex visualizations
  publication-title: IEEE Transactions on Visualization and Computer Graphics
– year: March 2008
– volume: 5
  issue: 2
  year: Apr. 1999
  article-title: Large datasets at a glance: Combining textures and colors in scientific visualization
  publication-title: IEEE Transactions on Visualization and Computer Graphics
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  publication-title: IEEE Transactions on Visualization and Computer Graphics (Proceedings Visualization/Information Visualization 2006)
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  year: February 1989
  end-page: 306
  article-title: Molecular graphics and the computer simulation of liquid crystals
  publication-title: Molecular Simulation
– year: 1994
– volume: 1
  start-page: 11
  issue: 1
  year: April 1981
  end-page: 22
  article-title: Superquadrics and angle‐preserving transformations
  publication-title: IEEE Computer Graphics and Applications
– volume: 52
  start-page: 718
  year: July 1995
  end-page: 722
  article-title: Alignment tensor versus director: Description of defects in nematic liquid crystals
  publication-title: Physical Review E
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  publication-title: IEEE Transactions on Visualization and Computer Graphics
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  issue: 5
  year: SeptemberOctober 2006
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  article-title: Superellipsoid‐based, real symmetric traceless tensor glyphs motivated by nematic liquid crystal alignment visualization
  publication-title: IEEE Transactions on Visualization and Computer Graphics (Proceedings Visualization/Information Visualization 2006)
– volume: 26
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  issue: 4
  year: 2006
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  publication-title: IEEE Transactions on Visualization and Computer Graphics (Proceedings Visualization/Information Visualization 2006)
– year: 1974
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– ident: e_1_2_9_27_2
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Snippet A perceptual study of four tensor glyphs for symmetric, real, traceless tensors was performed. Each glyph encodes three properties of the system: Orientation,...
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SubjectTerms Alignment
and object representations
C (programming language)
Computer graphics
I.3.3 [Computer Graphics]: Picture/Image Generation
I.3.5 [Computer Graphics]: Computational Geometry and Object Modeling-Curve
I.3.5 [Computer Graphics]: Computational Geometry and Object Modeling—Curve, surface, solid, and object representations
Mathematical analysis
Orientation
Perception
Perceptions
Performance evaluation
Permutations
solid
Studies
surface
Tensors
Vectors (mathematics)
Title An Evaluation of Glyph Perception for Real Symmetric Traceless Tensor Properties
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Volume 29
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