• DocumentCode
    996244
  • Title

    Automated 3-D reconstruction of the surface of live early-stage amphibian embryos

  • Author

    Bootsma, Gregory J. ; Brodland, G. Wayne

  • Author_Institution
    Image Guided Therapy Group, Princess Margaret Hosp., Toronto, Ont., Canada
  • Volume
    52
  • Issue
    8
  • fYear
    2005
  • Firstpage
    1407
  • Lastpage
    1414
  • Abstract
    Although three-dimensional (3-D) reconstructions of the surfaces of live embryos are vital to understanding embryo development, morphogenetic tissue movements and other factors have prevented the automation of this task. Here, we report an integrated set of software algorithms that overcome these challenges, making it possible to completely automate the reconstruction of embryo surfaces and other textured surfaces from multiview images. The process involves: 1) building accurate point correspondences using a robust deformable template block matching algorithm; 2) removing outliers using fundamental matrix calculations in conjunction with a RANSAC algorithm; 3) generating 3-D point clouds using a bundle adjustment algorithm that includes camera position and distortion corrections; 4) meshing the point clouds into triangulated surfaces using a Tight Cocone algorithm that produces water tight models; 5) refining surfaces using midpoint insertion and Laplacian smoothing algorithms; and 6) repeating these steps until a measure of convergence G, the rms difference between successive reconstructions, is below a specified threshold. Reconstructions were made of 2.2-mm diameter, neurulation-stage axolotl (amphibian) embryos using 44 multiview images collected with a robotic microscope. A typical final model (sixth iteration) contained 3787 points and 7562 triangles and had an error measure of G=5.9 μm.
  • Keywords
    Laplace equations; image matching; image reconstruction; image texture; medical image processing; mesh generation; obstetrics; physiological models; smoothing methods; 2.2 mm; 3-D point clouds; Laplacian smoothing; RANSAC algorithm; Tight Cocone algorithm; automated 3D surface reconstruction; camera position correction; distortion correction; embryo development; fundamental matrix calculations; live early-stage amphibian embryos; mesh; midpoint insertion; morphogenetic tissue movements; neurulation-stage axolotl; point correspondences; robotic microscope; robust deformable template block matching algorithm; surface refining; water tight models; Automation; Cameras; Clouds; Embryo; Image reconstruction; Robustness; Software algorithms; Surface reconstruction; Surface texture; Three dimensional displays; Bundle adjustment; deformable template matching; mesh refinement; multiview images; robotic microscope; Algorithms; Ambystoma; Animals; Artificial Intelligence; Embryo, Nonmammalian; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Information Storage and Retrieval; Microscopy; Pattern Recognition, Automated;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2005.851500
  • Filename
    1463329