• DocumentCode
    6100
  • Title

    A Variational Surface Deformation and Subdivision-Based Modeling Framework for Noisy and Small n-Furcated Tube-Like Structures

  • Author

    Feiniu Yuan ; Kai-Hsiang Chuang ; Jimin Liu

  • Author_Institution
    Sch. of Inf. Technol., Jiangxi Univ. of Finance & Econ., Nanchang, China
  • Volume
    60
  • Issue
    6
  • fYear
    2013
  • fDate
    Jun-13
  • Firstpage
    1589
  • Lastpage
    1598
  • Abstract
    It is challenging to construct an accurate and smooth mesh for noisy and small n-furcated tube-like structures, such as arteries, veins, and pathological vessels, due to tiny vessel size, noise, n -furcations, and irregular shapes of pathological vessels. We propose a framework by dividing the modeling process into mesh construction and mesh refinement. In the first step, we focus on mesh topological correctness, and just create an initial rough mesh for the n-furcated tube-like structures. In the second step, we propose a variational surface deformation method to push the initial mesh to structure boundaries for positional accuracy improvement. By iteratively solving Euler-Lagrange equations derived from the minimization of the shell and distance energies, the initial mesh can be gradually pushed to the boundaries. A mesh dilation method is proposed to prevent the extremely deviated initial mesh moving toward wrong boundaries. We combine deformation and subdivision to propose a coarse-to-fine modeling framework for the improvement of efficiency and accuracy. Experiments show our method can construct an accurate and smooth mesh for noisy and small n-furcated tube-like structures, and it is useful in hemodynamics, quantitative measurement, and analysis of vessels.
  • Keywords
    blood vessels; iterative methods; medical computing; mesh generation; physiological models; Euler-Lagrange equation iterative solution; arteries; distance energy minimization; hemodynamics; mesh construction; mesh dilation method; mesh refinement; mesh topological correctness; noisy tube like structures; pathological vessels; positional accuracy improvement; quantitative measurement; shell energy minimization; small n-furcated tube like structures; smooth mesh; structure boundaries; subdivision based modeling framework; variational surface deformation method; veins; vessel analysis; Biological system modeling; Biomedical imaging; Equations; Materials; Minimization; Shape; Smoothing methods; $n$-furcation; Mesh subdivision; tube-like structure modeling; variational surface deformation; vessel modeling; Algorithms; Blood Vessels; Humans; Image Processing, Computer-Assisted; Models, Cardiovascular; Surface Properties;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2013.2238936
  • Filename
    6409425