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[Interactive Virtual Simulation with Haptics for Neurosurgery].

Makoto Oishi1, Ryosuke Ogura

  • 1Department of Neurosurgery, Brain Research Institute, Niigata University.

No Shinkei Geka. Neurological Surgery
|March 21, 2024
PubMed
Summary

This study introduces an interactive virtual simulation (IVS) for pre-surgical planning. The IVS enhances surgical strategy, improves spatial understanding, and trains neurosurgical residents in complex microsurgical procedures.

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Area of Science:

  • Neurosurgery
  • Medical Simulation
  • Virtual Reality

Context:

  • Microsurgical procedures require precise anatomical understanding and surgical planning.
  • Traditional training methods may not fully replicate the complexities of skull-base surgery.
  • Accurate pre-surgical visualization is crucial for optimizing surgical approaches.

Purpose:

  • To develop and evaluate an interactive virtual simulation (IVS) method for pre-surgical planning in neurosurgery.
  • To utilize multi-fusion 3D imaging data for high-fidelity visualization of microsurgical anatomy.
  • To provide a realistic training environment for improving microsurgical skills and decision-making.

Summary:

  • The IVS method employs multi-fusion 3D imaging for detailed anatomical visualization and realistic surgical manipulation simulation.
  • It incorporates tactile and kinesthetic feedback via a haptic device, enabling practice of bone dissection, tissue retraction, and tumor removal.
  • The system facilitates optimal surgical window creation and understanding of lesion-bone relationships, particularly for skull-base tumors and meningiomas.

Impact:

  • Enables personalized pre-surgical planning for craniotomy and bone resection, tailored to individual patient anatomy.
  • Improves the spatial understanding and working space for complex neurosurgical interventions.
  • Offers a non-risky, repeatable environment for neurosurgical trainees to enhance microsurgical senses and skills.