• DocumentCode
    1220610
  • Title

    Accelerated unsteady flow line integral convolution

  • Author

    Liu, Zhanping ; Moorhead, Robert J., II

  • Author_Institution
    ERC/GeoResources Inst., Mississippi State Univ., MS
  • Volume
    11
  • Issue
    2
  • fYear
    2005
  • Firstpage
    113
  • Lastpage
    125
  • Abstract
    Unsteady flow line integral convolution (UFLIC) is a texture synthesis technique for visualizing unsteady flows with high temporal-spatial coherence. Unfortunately, UFLIC requires considerable time to generate each frame due to the huge amount of pathline integration that is computed for particle value scattering. This paper presents accelerated UFLIC (AUFLIC) for near interactive (1 frame/second) visualization with 160,000 particles per frame. AUFLIC reuses pathlines in the value scattering process to reduce computationally expensive pathline integration. A flow-driven seeding strategy is employed to distribute seeds such that only a few of them need pathline integration while most seeds are placed along the pathlines advected at earlier times by other seeds upstream and, therefore, the known pathlines can be reused for fast value scattering. To maintain a dense scattering coverage to convey high temporal-spatial coherence while keeping the expense of pathline integration low, a dynamic seeding controller is designed to decide whether to advect, copy, or reuse a pathline. At a negligible memory cost, AUFLIC is 9 times faster than UFLIC with comparable image quality
  • Keywords
    convolution; data visualisation; flow visualisation; image texture; physics computing; scattering; accelerated unsteady flow line; flow visualization; image convolution; image quality; line integral convolution; pathline integration; temporal-spatial coherence; texture synthesis; vector field visualization; Acceleration; Aerodynamics; Computer Society; Convolution; Costs; Data visualization; Hardware; Low pass filters; Particle scattering; Streaming media; Index Terms- Flow visualization; UFLIC; acceleration.; image convolution; line integral convolution; texture synthesis; unsteady flows; vector field visualization; Acceleration; Algorithms; Computer Graphics; Computer Simulation; Information Storage and Retrieval; Models, Theoretical; Nonlinear Dynamics; Numerical Analysis, Computer-Assisted; Regression Analysis; Rheology; User-Computer Interface;
  • fLanguage
    English
  • Journal_Title
    Visualization and Computer Graphics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1077-2626
  • Type

    jour

  • DOI
    10.1109/TVCG.2005.21
  • Filename
    1388223