• DocumentCode
    2999612
  • Title

    FlowGraph: A compound hierarchical graph for flow field exploration

  • Author

    Jun Ma ; Chaoli Wang ; Ching-Kuang Shene

  • Author_Institution
    Michigan Technol. Univ., Houghton, MI, USA
  • fYear
    2013
  • fDate
    Feb. 27 2013-March 1 2013
  • Firstpage
    233
  • Lastpage
    240
  • Abstract
    Visual exploration of large and complex 3D flow fields is critically important for understanding many aero- and hydro-dynamical systems that dominate various physical and natural phenomena in the world. In this paper, we introduce the FlowGraph, a novel compound graph representation that organizes streamline clusters and spatial regions hierarchically for occlusion-free and controllable visual exploration. Our approach works with any seeding strategies as long as the domain is well covered and important flow features are captured. By transforming a flow field to a graph representation, we enable observation and exploration of the relationships among streamline clusters, spatial regions and their interconnection in the transformed space. The FlowGraph not only provides a visual mapping that abstracts streamline clusters and spatial regions in various levels of detail, but also serves as a navigation tool that guides flow field exploration and understanding. Through brushing and linking in conjunction with the spatial streamline view, we demonstrate the effectiveness of FlowGraph with several visual exploration and comparison tasks that can not be well accomplished using the streamline view alone. As occlusion and clutter are almost ubiquitous in 3D flows, the FlowGraph represents a promising direction for enhancing our ability to understand large and complex flow field data.
  • Keywords
    aerodynamics; data visualisation; flow visualisation; graph theory; hydrodynamics; mechanical engineering computing; FlowGraph; aerodynamical systems; complex 3D flow field data; compound graph representation; compound hierarchical graph; controllable visual exploration; flow field exploration; hydrodynamical systems; navigation tool; occlusion-free exploration; seeding strategy; spatial regions; spatial streamline view; streamline clusters; visual mapping; Complexity theory; Compounds; Data visualization; Layout; Three-dimensional displays; Vectors; Visualization;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Visualization Symposium (PacificVis), 2013 IEEE Pacific
  • Conference_Location
    Sydney, NSW
  • ISSN
    2165-8765
  • Type

    conf

  • DOI
    10.1109/PacificVis.2013.6596150
  • Filename
    6596150