• DocumentCode
    1246910
  • Title

    Shape modeling with front propagation: a level set approach

  • Author

    Malladi, Ravikanth ; Sethian, James A. ; Vemuri, Baba C.

  • Author_Institution
    Lawrence Berkeley Lab., California Univ., Berkeley, CA, USA
  • Volume
    17
  • Issue
    2
  • fYear
    1995
  • fDate
    2/1/1995 12:00:00 AM
  • Firstpage
    158
  • Lastpage
    175
  • Abstract
    Shape modeling is an important constituent of computer vision as well as computer graphics research. Shape models aid the tasks of object representation and recognition. This paper presents a new approach to shape modeling which retains some of the attractive features of existing methods and overcomes some of their limitations. The authors´ techniques can be applied to model arbitrarily complex shapes, which include shapes with significant protrusions, and to situations where no a priori assumption about the object´s topology is made. A single instance of the authors´ model, when presented with an image having more than one object of interest, has the ability to split freely to represent each object. This method is based on the ideas developed by Osher and Sethian (1988) to model propagating solid/liquid interfaces with curvature-dependent speeds. The interface (front) is a closed, nonintersecting, hypersurface flowing along its gradient field with constant speed or a speed that depends on the curvature. It is moved by solving a “Hamilton-Jacobi” type equation written for a function in which the interface is a particular level set. A speed term synthesized from the image is used to stop the interface in the vicinity of object boundaries. The resulting equation of motion is solved by employing entropy-satisfying upwind finite difference schemes. The authors present a variety of ways of computing the evolving front, including narrow bands, reinitializations, and different stopping criteria. The efficacy of the scheme is demonstrated with numerical experiments on some synthesized images and some low contrast medical images
  • Keywords
    computer vision; entropy; object recognition; piecewise-linear techniques; Hamilton-Jacobi type equation; arbitrarily complex shapes; closed nonintersecting hypersurface; computer graphics; computer vision; curvature-dependent speeds; entropy-satisfying upwind finite difference schemes; equation of motion; front propagation; level set approach; low contrast medical images; object recognition; object representation; propagating solid/liquid interfaces; protrusions; reinitializations; shape modeling; stopping criteria; synthesized images; Biomedical imaging; Computer graphics; Computer vision; Difference equations; Finite difference methods; Level set; Narrowband; Shape; Solid modeling; Topology;
  • fLanguage
    English
  • Journal_Title
    Pattern Analysis and Machine Intelligence, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0162-8828
  • Type

    jour

  • DOI
    10.1109/34.368173
  • Filename
    368173