• DocumentCode
    1233952
  • Title

    Dynamic Model of Communicating Hydrocephalus for Surgery Simulation

  • Author

    Clatz, Olivier ; Litrico, Stéphane ; Delingette, Hervé ; Paquis, Philippe ; Ayache, Nicolas

  • Author_Institution
    INRIA
  • Volume
    54
  • Issue
    4
  • fYear
    2007
  • fDate
    4/1/2007 12:00:00 AM
  • Firstpage
    755
  • Lastpage
    758
  • Abstract
    We propose a dynamic model of cerebrospinal fluid and intracranial pressure regulation. In this model, we investigate the coupling of biological parameters with a 3-D model, to improve the behavior of the brain in surgical simulators. The model was assessed by comparing the simulated ventricular enlargement with a patient case study of communicating hydrocephalus. In our model, cerebro-spinal fluid production-resorption system is coupled with a 3-D representation of the brain parenchyma. We introduce a new bi-phasic model of the brain (brain tissue and extracellular fluid) allowing for fluid exchange between the brain extracellular space and the venous system. The time evolution of ventricular pressure has been recorded on a symptomatic patient after closing the ventricular shunt. A finite element model has been built based on a computed tomography scan of this patient, and quantitative comparisons between experimental measures and simulated data are proposed
  • Keywords
    biological fluid dynamics; biological tissues; brain; finite element analysis; physiological models; surgery; brain parenchyma; cerebro-spinal fluid production-resorption system; communicating hydrocephalus; computed tomography; dynamic model; extracellular fluid; finite element model; fluid exchange; intracranial pressure regulation; surgery simulation; surgical simulators; symptomatic patient; time evolution; venous system; ventricular enlargement; ventricular shunt; Biological system modeling; Brain modeling; Computational modeling; Computed tomography; Cranial pressure; Evolution (biology); Extracellular; Finite element methods; Fluid dynamics; Surgery; Biomechanical model; cerebro-spinal fluid; hydrocephalus; Brain; Cerebrospinal Fluid; Cerebrospinal Fluid Shunts; Cerebrovascular Circulation; Computer Simulation; Humans; Hydrocephalus; Intracranial Pressure; Models, Cardiovascular; Models, Neurological; Neurosurgical Procedures; Surgery, Computer-Assisted; Vascular Surgical Procedures;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2006.890146
  • Filename
    4132928