Highlights
- •Virtual and augmented reality can offer benefits for surgical planning, navigation and training.
- •NeuroPlanner is a 2D/3D atlas of the human brain useful for surgical planning.
- •Intra-operative Brain Imaging System platform can help surgical navigation.
- •NeuroTouch and ImmersiveTouch have been introduced for surgical training.
Abstract
Keywords
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- A frameless stereotaxic integration of computerized tomographic imaging and the operating microscope.J Neurosurg. 1986; 65: 545-549
- Reality for neurosurgical guidance.AAAI Tech Rep. 1994; : 239-242
- The Exoscope – a frame-based video/graphics system for intraoperative guidance of surgical resection.Stereotact Funct Neurosurg. 1994; 63: 23-25
- Augmentation of reality using an operating microscope for otolaryngology and neurosurgical guidance.J Image Guid Surg. 1995; 1: 172-178
- Augmented reality visualization system for intravascular neurosurgery.Comput Aided Surg. 1998; 3: 239-247
- Endoscopic augmented reality navigation system for endonasal transsphenoidal surgery to treat pituitary tumore: technical note.Neurosurgery. 2002; 50: 1393-1397
- Augmented reality in neurosurgery: a review of current concepts and emerging applications.Can J Neurol Sci. 2017; 44: 235-245
- Virtual reality in brain intervention.Int J Artif Intell Tools. 2006; 15: 741-752
- Simultaneous augmented and virtual reality for surgical navigation.Annu Conf North Am Fuzzy Inf Process Soc – NAFIPS. 2005; 2005: 429-435
- Utilizing virtual and augmented reality for educational and clinical enhancements in neurosurgery.J Clin Neurosci. 2017; 35: 1-4
- Virtual reality simulation in neurosurgery: technologies and evolution.Neurosurgery. 2013; 72: 154-164
- Virtual reality surgery: neurosurgery and the contemporary landscape.Neurosurgery. 2003; 52: 489-497
- Virtual reality neurosurgery: a simulator blueprint.Neurosurgery. 2004; 54: 783-798
- Augmented reality for the surgeon: systematic review.Int J Med Robot Comput Assissted Surg. 2018; 14: 1-13
- Virtual reality training in neurosurgery: review of current status and future applications.Surg Neurol Int. 2011; 2: 52
- Virtual reality and simulation in neurosurgical training.World Neurosurg. 2017; 106: 1015-1029
- Neurosurgical virtual reality simulation for brain tumor using high-definition computer graphics: a review of the literature.Neurol Med Chir (Tokyo). 2017; 57: 513-520
- Virtual reality surgical simulation: implications for resection of intracranial gliomas.Prog Neurol Surg. 2017; 30: 106-116
- Augmented reality in neurosurgery.Arch Med Sci. 2018; 14: 572-578
- Virtual reality applications in neurosurgery.Conf Proc IEEE Eng Med Biol Soc. 2005; 4: 4171-4173
- Augmented reality in neurosurgery: a systematic review.Neurosurg Rev. 2017; 40: 537-548
- The PRISMA extension statement for reporting of systematic reviews incorporating network meta-analyses of health care interventions: checklist and explanations.Ann Intern Med. 2015; 162: 777
- Hormones, radiosurgery and virtual reality: New aspects of meningioma management.Can J Neurol Sci. 1997; 24: 302-306
- Computer-aided stereotactic functional neurosurgery enhanced by the use of the multiple brain atlas database.IEEE Trans Med Imaging. 2000; 19: 62-69
Yang GL, Guo HH, Huang S, Padmanabhan R, Nowinski WL. NeuroBase: a brain atlas-based, multi-platform, multi-dataset-processing neuroimaging system. In: Mun SK (ed). 2000, pp 77–88.
- Observations on growth rates of human tumors.Am J Roentgenol Radium Ther Nucl Med. 1956; 76: 988-1000
- Mathematical biology: I. An introduction, third edition.3rd ed. Springer, 2000 (http://www.ift.unesp.br/users/mmenezes/mathbio.pdf)
- Migration of human glioma cells on myelin.Neurosurgery. 1996; 38: 755-764
- Virtual brain tumours (gliomas) enhance the reality of medical imaging and highlight inadequacies of current.Br J Cancer. 2002; : 14-18
- Virtual and real brain tumors: using mathematical modeling to quantify glioma growth and invasion.J Neurol Sci. 2003; 216: 1-10
- Augmented reality in operating microscopes for neurosurgical interventions.Int IEEE/EMBS Conf Neural Eng NER. 2003; 2003–Janua: 652-655
- IBIS: an OR ready open-source platform for image-guided neurosurgery.Int J Comput Assist Radiol Surg. 2017; 12: 363-378
- The role of simulation in surgical training.J Laparosc Adv Surg Tech. 2017; 27: 169-172
- Simulation in neurosurgery—A brief review and commentary.World Neurosurg. 2016; 89: 583-586
- Robotics in urology.Robot Ann R Coll Surg Engl. 2016; 117: 38-44
- Crisis management simulation: establishing a dual neurosurgery and anesthesia training experience.J Neurosurg Anesthesiol. 2018; 30: 65-70
- General surgery training and robotics: are residents improving their skills?.Surg Endosc Other Interv Tech. 2016; 30: 567-573
- NeuroTouch: a physics-based virtual simulator for cranial microneurosurgery training.Neurosurgery. 2012; 71: 32-42
- Assessing performance in brain tumor resection using a novel virtual reality simulator.Int J Comput Assist Radiol Surg. 2014; 9: 1-9
- Fundamentals of neurosurgery: virtual reality tasks for training and evaluation of technical skills.World Neurosurg. 2013; 80: 9-19
- Proficiency performance benchmarks for removal of simulated brain tumors using a virtual reality simulator neurotouch.J Surg Educ. 2015; 72: 685-696
- Neurosurgical virtual reality simulation metrics to assess psychomotor skills during brain tumor resection.Int J Comput Assist Radiol Surg. 2015; 10: 603-618
- Virtual reality simulator: demonstrated use in neurosurgical oncology.Surg Innov. 2013; 20: 190-197
- Supplementary educational models in Canadian neurosurgery residency programs.Can J Neurol Sci. 2018; 44: 177-183
- Bimanual psychomotor performance in neurosurgical resident applicants assessed using NeuroTouch, a virtual reality simulator.J Surg Educ. 2016; 73: 942-953
- Development of the McGill simulator for endoscopic sinus surgery: a new high-fidelity virtual reality simulator for endoscopic sinus surgery.Am J Rhinol Allergy. 2014; 28: 330-334
- The McGill simulator for endoscopic sinus surgery (MSESS): a validation study.J Otolaryngol Head Neck Surg. 2014; 43: 40
- Validation of virtual reality based simulations for endoscopic sinus surgery.Clin Otolaryngol. 2015; 40: 569-579
- A novel virtual reality simulation for hemostasis in a brain surgical cavity: perceived utility for visuomotor skills in current and aspiring neurosurgery residents.World Neurosurg. 2013; 80: 732-737
- Planning and simulation of neurosurgery in a virtual reality environment.Neurosurgery. 2000; : 118-137
- Stereoscopic virtual reality simulation for microsurgical excision of cerebral arteriovenous malformation: case illustrations.Surg Neurol. 2009; 72: 69-72
- Craniotomy and clipping of intracranial aneurysm in a stereoscopic virtual reality environment.Neurosurgery. 2007; 61: 564-569
- Virtual interactive presence in global surgical education: international collaboration through augmented reality.World Neurosurg. 2016; 86: 103-111
- The force pyramid: a spatial analysis of force application during virtual reality brain tumor resection.J Neurosurg. 2017; 127: 171-181
- Can a virtual reality surgical simulation training provide a self-driven and mentor-free skills learning? Investigation of the practical influence of the performance metrics from the virtual reality robotic surgery simulator on the skill learning and asso.Surg Endosc Other Interv Tech. 2018; 32: 62-72
- Current clinical brain tumor imaging.Neurosurgery. 2017; 81: 397-415
- Preoperative estimation of residual volume for WHO grade II glioma resected with intraoperative functional mapping.Neuro Oncol. 2007; 9: 63-69
- Functional magnetic resonance imaging in glioma patients: from clinical applications to future perspectives.Q J Nucl Med Mol Imaging. 2018; https://doi.org/10.23736/S1824-4785.18.03101-1
- Role of diffusion tensor imaging in brain tumor surgery.Asian J Neurosurg. 2018; 13: 302-306
- Brain tumors in eloquent areas: a European multicenter survey of intraoperative mapping techniques, intraoperative seizures occurrence, and antiepileptic drug prophylaxis.Neurosurg Rev. 2017; 40: 287-298
- The state of the art of visualization in mixed reality image guided surgery.Comput Med Imaging Graph. 2013; 37: 98-112
- DVV: a taxonomy for mixed reality visualization in image guided surgery.IEEE Trans Vis Comput Graph. 2012; 18: 332-352
- Coping up with the information overload in the medical profession.J Biosci Med. 2015; 3: 124-127
Davis D, Ciurea I, Flanagan T. Solving the information overload problem: a letter from Canada. 2004, www.agreecollaboration.org (accessed 3 Sep2018).
- Global neurosurgery: the current capacity and deficit in the provision of essential neurosurgical care. Executive summary of the global neurosurgery initiative at the program in global surgery and social change.J Neurosurg. 2018; : 1-10
- 30 years of neurosurgical robots: review and trends for manipulators and associated navigational systems.Ann Biomed Eng. 2016; 44: 836-846
- Laboratory evaluation of a robotic operative microscope – visualization platform for neurosurgery.Cureus. 2018; https://doi.org/10.7759/cureus.3072
- Augmented-reality integrated robotics in neurosurgery: are we there yet?.Neurosurg Focus. 2017; 42: E3
- A systematic review of serious games in medical education: quality of evidence and pedagogical strategy.Med Educ Online. 2018; 23: 1438718
- Clinical evaluation and follow-up outcome of presurgical plan by Dextroscope: a prospective controlled study in patients with skull base tumors.Surg Neurol. 2009; 72: 682-689
- Stereoscopic virtual reality models for planning tumor resection in the sellar region.BMC Neurol. 2012; : 12https://doi.org/10.1186/1471-2377-12-146
- Virtual reality presurgical planning for cerebral gliomas adjacent to motor pathways in an integrated 3-D stereoscopic visualization of structural MRI and DTI tractography.Acta Neurochir (Wien). 2010; 152: 1847-1857
- Assessing bimanual performance in brain tumor resection with NeuroTouch, a virtual reality simulator.Neurosurgery. 2015; 11: 89-98
- Impact of virtual and augmented reality based on intraoperative magnetic resonance imaging and functional neuronavigation in glioma surgery involving eloquent areas.World Neurosurg. 2016; 96: 375-382
- Presurgical planning of feeder resection with realistic three-dimensional virtual operation field in patient with cerebellopontine angle meningioma.Acta Neurochir (Wien). 2013; 155: 1391-1399
- Training for planning tumour resection: augmented reality and human factors.IEEE Trans Biomed Eng. 2015; 62: 1466-1477
- Easy-to-use augmented reality neuronavigation using a wireless tablet PC.Stereotact Funct Neurosurg. 2014; 92: 17-24
- Preliminary study on the clinical application of augmented reality neuronavigation.J Neurol Surgery, Part A Cent Eur Neurosurg. 2013; 74: 71-76
- A novel augmented reality system of image projection for image-guided neurosurgery.Acta Neurochir (Wien). 2013; 155: 943-947