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A digital brain atlas for surgical planning, model-driven segmentation, and teaching

  • Ron Kikinis
  • , Martha E. Shenton
  • , Dan V. Losifescu
  • , Robert W. McCarley
  • , Pairash Saiviroonporn
  • , Hiroto H. Hokama
  • , Andre Robatino
  • , David Metcalf
  • , Cynthia G. Wible
  • , Chiara M. Portas
  • , Robert M. Donnino
  • , Ferenc A. Jolesz
  • Surgical Planning Laboratory

Research output: Contribution to journalArticlepeer-review

219 Citations (Scopus)

Abstract

We developed a three-dimensional (3D) digitized atias of the human brain to visualize spatially complex structures. It was designed for use with magnetic resonance (MR) imaging data sets. Thus far, we have used this atlas for surgical planning, model-driven segmentation, and teaching. We used a combination of automated and supervised segmentation methods to define regions of interest based on neuroanatomical knowledge. We also used 3D surface rendering techniques to create a brain atlas that would allow us to visualize complex 3D brain structures. We further linked this information to script files in order to preserve both spatia! information and neuroanatomical knowledge. We present here the application of the atlas for visualization in surgical planning for model-driven segmentation and for the teaching of neuroanatomy. This digitized human brain has the potential to provide important reference information for the planning of surgical procedures. It can also serve as a poweiful teaching tool, since spatial relationships among neuroanatomical structures can be more readily envisioned when the user is able to view and rotate the structures in 3D space. Moreover, each element of the brain atlas is associated with a name tag, displayed by a user-controlled pointer. The atlas holds a major promise as a template for model-driven segmentation. Using this technique, many regions of interest can be characterized simultaneously on new brain images.

Original languageEnglish
Pages (from-to)232-241
Number of pages10
JournalIEEE Transactions on Visualization and Computer Graphics
Volume2
Issue number3
DOIs
Publication statusPublished - 1996
Externally publishedYes

Keywords

  • 3d surface rendering
  • 3d visualization
  • Biomédical visualization
  • Brain atlas
  • Magnetic resonance imaging (mri)

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