Literature DB >> 17336133

An atlas-based method to compensate for brain shift: preliminary results.

Prashanth Dumpuri1, Reid C Thompson, Benoit M Dawant, A Cao, Michael I Miga.   

Abstract

Compensating for intraoperative brain shift using computational models has shown promising results. Since computational time is an important factor during neurosurgery, a priori knowledge of the possible sources of deformation can increase the accuracy of model-updated image-guided systems. In this paper, a strategy to compensate for distributed loading conditions in the brain such as brain sag, volume changes due to drug reactions, and brain swelling due to edema is presented. An atlas of model deformations based on these complex loading conditions is computed preoperatively and used with a constrained linear inverse model to predict the intraoperative distributed brain shift. This relatively simple inverse finite-element approach is investigated within the context of a series of phantom experiments, two in vivo cases, and a simulation study. Preliminary results indicate that the approach recaptured on average 93% of surface shift for the simulation, phantom, and in vivo experiments. With respect to subsurface shift, comparisons were only made with simulation and phantom experiments and demonstrated an ability to recapture 85% of the shift. This translates to a remaining surface and subsurface shift error of 0.7+/-0.3 mm, and 1.0+/-0.4 mm, respectively, for deformations on the order of 1cm.

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Year:  2007        PMID: 17336133      PMCID: PMC3819812          DOI: 10.1016/j.media.2006.11.002

Source DB:  PubMed          Journal:  Med Image Anal        ISSN: 1361-8415            Impact factor:   8.545


  33 in total

1.  Registration of 3-D intraoperative MR images of the brain using a finite-element biomechanical model.

Authors:  M Ferrant; A Nabavi; B Macq; F A Jolesz; R Kikinis; S K Warfield
Journal:  IEEE Trans Med Imaging       Date:  2001-12       Impact factor: 10.048

2.  Measurement and analysis of brain deformation during neurosurgery.

Authors:  T Hartkens; D L G Hill; A D Castellano-Smith; D J Hawkes; C R Maurer; A J Martin; W A Hall; H Liu; C L Truwit
Journal:  IEEE Trans Med Imaging       Date:  2003-01       Impact factor: 10.048

3.  Cortical surface registration for image-guided neurosurgery using laser-range scanning.

Authors:  Michael I Miga; Tuhin K Sinha; David M Cash; Robert L Galloway; Robert J Weil
Journal:  IEEE Trans Med Imaging       Date:  2003-08       Impact factor: 10.048

4.  In vivo quantification of retraction deformation modeling for updated image-guidance during neurosurgery.

Authors:  Leah A Platenik; Michael I Miga; David W Roberts; Karen E Lunn; Francis E Kennedy; Alex Hartov; Keith D Paulsen
Journal:  IEEE Trans Biomed Eng       Date:  2002-08       Impact factor: 4.538

5.  Model-Updated Image-Guided Neurosurgery Using the Finite Element Method: Incorporation of the Falx Cerebri.

Authors:  Michael I Miga; Keith D Paulsen; Francis E Kennedy; Alex Hartov; David W Roberts
Journal:  Med Image Comput Comput Assist Interv       Date:  1999-09

6.  Assimilating intraoperative data with brain shift modeling using the adjoint equations.

Authors:  Karen E Lunn; Keith D Paulsen; Daniel R Lynch; David W Roberts; Francis E Kennedy; Alex Hartov
Journal:  Med Image Anal       Date:  2005-06       Impact factor: 8.545

7.  A method to track cortical surface deformations using a laser range scanner.

Authors:  Tuhin K Sinha; Benoit M Dawant; Valerie Duay; David M Cash; Robert J Weil; Reid C Thompson; Kyle D Weaver; Michael I Miga
Journal:  IEEE Trans Med Imaging       Date:  2005-06       Impact factor: 10.048

8.  Brain shift computation using a fully nonlinear biomechanical model.

Authors:  Adam Wittek; Ron Kikinis; Simon K Warfield; Karol Miller
Journal:  Med Image Comput Comput Assist Interv       Date:  2005

9.  Error assessment during "image guided" and "imaging interactive" stereotactic surgery.

Authors:  H J Nauta
Journal:  Comput Med Imaging Graph       Date:  1994 Jul-Aug       Impact factor: 4.790

10.  A mobile computed tomographic scanner with intraoperative and intensive care unit applications.

Authors:  W E Butler; C M Piaggio; C Constantinou; L Niklason; R G Gonzalez; G R Cosgrove; N T Zervas
Journal:  Neurosurgery       Date:  1998-06       Impact factor: 4.654

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  43 in total

1.  A fast and efficient method to compensate for brain shift for tumor resection therapies measured between preoperative and postoperative tomograms.

Authors:  Prashanth Dumpuri; Reid C Thompson; Aize Cao; Siyi Ding; Ishita Garg; Benoit M Dawant; Michael I Miga
Journal:  IEEE Trans Biomed Eng       Date:  2010-02-17       Impact factor: 4.538

2.  Intraoperative brain shift compensation: accounting for dural septa.

Authors:  Ishita Chen; Aaron M Coffey; Siyi Ding; Prashanth Dumpuri; Benoit M Dawant; Reid C Thompson; Michael I Miga
Journal:  IEEE Trans Biomed Eng       Date:  2010-11-22       Impact factor: 4.538

3.  A comprehensive system for intraoperative 3D brain deformation recovery.

Authors:  Christine DeLorenzo; Xenophon Papademetris; Kenneth P Vives; Dennis D Spencer; James S Duncan
Journal:  Med Image Comput Comput Assist Interv       Date:  2007

4.  On the unimportance of constitutive models in computing brain deformation for image-guided surgery.

Authors:  Adam Wittek; Trent Hawkins; Karol Miller
Journal:  Biomech Model Mechanobiol       Date:  2008-02-02

5.  Toward a generic real-time compression correction framework for tracked ultrasound.

Authors:  Thomas S Pheiffer; Michael I Miga
Journal:  Int J Comput Assist Radiol Surg       Date:  2015-04-23       Impact factor: 2.924

6.  Laser range scanning for image-guided neurosurgery: investigation of image-to-physical space registrations.

Authors:  Aize Cao; R C Thompson; P Dumpuri; B M Dawant; R L Galloway; S Ding; M I Miga
Journal:  Med Phys       Date:  2008-04       Impact factor: 4.071

7.  Brain-skull contact boundary conditions in an inverse computational deformation model.

Authors:  Songbai Ji; David W Roberts; Alex Hartov; Keith D Paulsen
Journal:  Med Image Anal       Date:  2009-06-23       Impact factor: 8.545

8.  Android application for determining surgical variables in brain-tumor resection procedures.

Authors:  Rohan C Vijayan; Reid C Thompson; Lola B Chambless; Peter J Morone; Le He; Logan W Clements; Rebekah H Griesenauer; Hakmook Kang; Michael I Miga
Journal:  J Med Imaging (Bellingham)       Date:  2017-03-02

9.  Near Real-Time Computer Assisted Surgery for Brain Shift Correction Using Biomechanical Models.

Authors:  Kay Sun; Thomas S Pheiffer; Amber L Simpson; Jared A Weis; Reid C Thompson; Michael I Miga
Journal:  IEEE J Transl Eng Health Med       Date:  2014-04-30       Impact factor: 3.316

10.  More accurate neuronavigation data provided by biomechanical modeling instead of rigid registration.

Authors:  Revanth Reddy Garlapati; Aditi Roy; Grand Roman Joldes; Adam Wittek; Ahmed Mostayed; Barry Doyle; Simon Keith Warfield; Ron Kikinis; Neville Knuckey; Stuart Bunt; Karol Miller
Journal:  J Neurosurg       Date:  2014-01-24       Impact factor: 5.115

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