Image-guided surgery in otolaryngology: A review of current applications and future directions in head and neck surgery.

augmented reality image-guided surgery literature review surgical navigation transoral surgery

Journal

Head & neck
ISSN: 1097-0347
Titre abrégé: Head Neck
Pays: United States
ID NLM: 8902541

Informations de publication

Date de publication:
08 2021
Historique:
revised: 20 02 2021
received: 14 10 2020
accepted: 04 05 2021
pubmed: 26 5 2021
medline: 11 8 2021
entrez: 25 5 2021
Statut: ppublish

Résumé

Image-guided surgery (IGS) has become a widely adopted technology in otolaryngology. Since its introduction nearly three decades ago, IGS technology has developed rapidly and improved real-time intraoperative visualization for a diverse array of clinical indications. As usability, accessibility, and clinical experiences with IGS increase, its potential applications as an adjunct in many surgical procedures continue to expand. Here, we describe the basic components of IGS and review both the current state and future directions of IGS in otolaryngology, with attention to current challenges to its application in surgery of the nonrigid upper aerodigestive tract.

Identifiants

pubmed: 34032338
doi: 10.1002/hed.26743
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

2534-2553

Informations de copyright

© 2021 Wiley Periodicals LLC.

Références

Preim B, Botha CP. Visual Computing for Medicine: Theory, Algorithms, and Applications. 2nd ed. Waltham, MA: Morgan Kaufmann; 2013.
Orlandi RR, Petersen E. Image guidance: a survey of attitudes and use. Am J Rhinol. 2006;20(4):406-411. https://doi.org/10.2500/ajr.2006.20.2884.
Justice JM, Orlandi RR. An update on attitudes and use of image-guided surgery. Int Forum Allergy Rhinol. 2012;2(2):155-159. https://doi.org/10.1002/alr.20107.
Roxbury CR, Lobo BC, Kshettry VR, et al. Perioperative management in endoscopic endonasal skull-base surgery: a survey of the North American Skull Base society. Int Forum Allergy Rhinol. 2018;8(5):631-640. https://doi.org/10.1002/alr.22066.
Citardi MJ, Batra PS. Image-guided sinus surgery: current concepts and technology. Otolaryngol Clin North Am. 2005;38(3):439-452.vi.
Lombard B, Céruse P. Robotics and Digital Guidance in ENT-H&N Surgery: Rapport SFORL 2017. France: Elsevier Health Sciences; 2017.
Fitzpatrick JM. The role of registration in accurate surgical guidance. Proc Inst Mech Eng H. 2010;224(5):607-622.
Labadie RF, Davis BM, Fitzpatrick JM. Image-guided surgery: what is the accuracy? Curr Opin Otolaryngol Head Neck Surg. 2005;13(1):27-31.
Michael Fitzpatrick J. Fiducial registration error and target registration error are uncorrelated. Medical Imaging 2009: Visualization, Image-Guided Procedures, and Modeling. Vol 7261. International Society for Optics and Photonics; 2009. https://doi.org/10.1117/12.813601.
Shamir RR, Joskowicz L. Geometrical analysis of registration errors in point-based rigid-body registration using invariants. Med Image Anal. 2011;15(1):85-95.
West JB, Fitzpatrick JM, Toms SA, Maurer CR Jr, Maciunas RJ. Fiducial point placement and the accuracy of point-based, rigid body registration. Neurosurgery. 2001;48(4):810-816.discussion 816-817.
Wang M, Song Z. Guidelines for the placement of fiducial points in image-guided neurosurgery. Int J Med Robot Comput Assist Surg. 2010;6:142-149. https://doi.org/10.1002/rcs.299.
Hamming NM, Daly MJ, Irish JC, Siewerdsen JH. Effect of fiducial configuration on target registration error in intraoperative cone-beam CT guidance of head and neck surgery. Conf Proc IEEE Eng Med Biol Soc. 2008;2008:3643-3648.
Wellborn PS, Dillon NP, Russell PT, Webster RJ. Coffee: the key to safer image-guided surgery-a granular jamming cap for non-invasive, rigid fixation of fiducial markers to the patient. Int J Comput Assist Radiol Surg. 2017;12(6):1069-1077. https://doi.org/10.1007/s11548-017-1569-6.
Freysinger W, Gunkel AR, Thumfart WF. Image-guided endoscopic ENT surgery. Eur Arch Otorhinolaryngol. 1997;254(7):343-346.
Shahidi R, Wang B, Epitaux M, Grzeszczuk R, Adler J. Volumetric image guidance via a stereotactic endoscope. In: Wells WM, Colchester A, Delp S, eds. Medical Image Computing and Computer-Assisted Intervention - MICCAI’98. MICCAI 1998. Lecture Notes in Computer Science. Vol. 1496. Berlin, Heidelberg: Springer; 1998:241-252. https://doi.org/10.1007/BFb0056207.
Li L, Yang J, Chu Y, et al. A novel augmented reality navigation system for endoscopic sinus and Skull Base surgery: a feasibility study. PLoS One. 2016;11(1):e0146996.
Winne C, Khan M, Stopp F, Jank E, Keeve E. Overlay visualization in endoscopic ENT surgery. Int J Comput Assist Radiol Surg. 2011;6(3):401-406.
Citardi MJ, Agbetoba A, Bigcas J-L, Luong A. Augmented reality for endoscopic sinus surgery with surgical navigation: a cadaver study. Int Forum Allergy Rhinol. 2016;6(5):523-528.
healthpolicy. Position Statement: Intra-Operative Use of Computer Aided Surgery. American Academy of Otolaryngology-Head and Neck Surgery; March 20, 2014. https://www.entnet.org/content/intra-operative-use-computer-aided-surgery. Accessed July 4, 2020
Tschopp KP, Thomaser EG. Outcome of functional endonasal sinus surgery with and without CT-navigation. Rhinology. 2008;46(2):116-120.
Kingdom TT, Orlandi RR. Image-guided surgery of the sinuses: current technology and applications. Otolaryngol Clin North Am. 2004;37(2):381-400.
Ramakrishnan VR, Kingdom TT, Nayak JV, Hwang PH, Orlandi RR. Nationwide incidence of major complications in endoscopic sinus surgery. Int Forum Allergy Rhinol. 2012;2(1):34-39.
Dalgorf DM, Sacks R, Wormald P-J, et al. Image-guided surgery influences perioperative morbidity from endoscopic sinus surgery: a systematic review and meta-analysis. Otolaryngol Head Neck Surg. 2013;149(1):17-29.
Vreugdenburg TD, Lambert RS, Atukorale YN, Cameron AL. Stereotactic anatomical localization in complex sinus surgery: a systematic review and meta-analysis. Laryngoscope. 2016;126(1):51-59.
Sunkaraneni VS, Yeh D, Qian H, Javer AR. Computer or not? Use of image guidance during endoscopic sinus surgery for chronic rhinosinusitis at St Paul's Hospital, Vancouver, and meta-analysis. J Laryngol Otol. 2013;127(4):368-377. https://doi.org/10.1017/s0022215113000261.
Metson R, Cosenza M, Gliklich RE, Montgomery WW. The role of image-guidance systems for head and neck surgery. Arch Otolaryngol Head Neck Surg. 1999;125(10):1100-1104.
Gibbons MD, Gunn CG, Niwas S, Sillers MJ. Cost analysis of computer-aided endoscopic sinus surgery. Am J Rhinol. 2001;15(2):71-75. https://doi.org/10.2500/105065801781543709.
Tabaee A, Hsu AK, Shrime MG, Rickert S, Close LG. Quality of life and complications following image-guided endoscopic sinus surgery. Otolaryngol Head Neck Surg. 2006;135(1):76-80.
Fried MP, Moharir VM, Shin J, Taylor-Becker M, Morrison P. Comparison of endoscopic sinus surgery with and without image guidance. Am J Rhinol. 2002;16(4):193-197.
Al-Swiahb JN, Al Dousary SH. Computer-aided endoscopic sinus surgery: a retrospective comparative study. Ann Saudi Med. 2010;30(2):149-152.
Mueller SA, Caversaccio M. Outcome of computer-assisted surgery in patients with chronic rhinosinusitis. J Laryngol Otol. 2010;124(5):500-504. https://doi.org/10.1017/s0022215109992325.
Dubin MR, Tabaee A, Scruggs JT, Kazim M, Close LG. Image-guided endoscopic orbital decompression for Graves' orbitopathy. Ann Otol Rhinol Laryngol. 2008;117(3):177-185.
Samaha M, Cosenza MJ, Metson R. Endoscopic frontal sinus drillout in 100 patients. Arch Otolaryngol Head Neck Surg. 2003;129(8):854-858.
Ahn SH, Lee EJ, Kim JW, et al. Better surgical outcome by image-guided navigation system in endoscopic removal of sinonasal inverted papilloma. J Craniomaxillofac Surg. 2018;46(6):937-941.
Jiang R-S, Liang K-L. Image-guided sphenoidotomy in revision functional endoscopic sinus surgery. Allergy Rhinol. 2014;5(3):116-119.
Giotakis AΙ, Kral F, Freysinger W, Markart S, Riechelmann H. Missed paranasal sinus compartments in sinus surgery with and without image-guidance systems: a pilot feasibility study. Int J Comput Assist Radiol Surg. 2019;14(5):895-902. https://doi.org/10.1007/s11548-019-01930-4.
Galletti B, Gazia F, Freni F, Sireci F, Galletti F. Endoscopic sinus surgery with and without computer assisted navigation: a retrospective study. Auris Nasus Larynx. 2019;46(4):520-525. https://doi.org/10.1016/j.anl.2018.11.004.
Javer AR, Genoway KA. Patient quality of life improvements with and without computer assistance in sinus surgery: outcomes study. J Otolaryngol. 2006;35(6):373-379.
Metson RB, Cosenza MJ, Cunningham MJ, Randolph GW. Physician experience with an optical image guidance system for sinus surgery. Laryngoscope. 2000;110(6):972-976. https://doi.org/10.1097/00005537-200006000-00017.
Vicaut E, Bertrand B, Betton J-L, et al. Use of a navigation system in endonasal surgery: impact on surgical strategy and surgeon satisfaction. A prospective multicenter study. Eur Ann Otorhinolaryngol Head Neck Dis. 2019;136(6):461-464. https://doi.org/10.1016/j.anorl.2019.08.002.
Dixon BJ, Chan H, Daly MJ, Vescan AD, Witterick IJ, Irish JC. The effect of augmented real-time image guidance on task workload during endoscopic sinus surgery. Int Forum Allergy Rhinol. 2012;2(5):405-410.
Manzey D, Röttger S, Elin Bahner-Heyne J, et al. Image-guided navigation: the surgeon's perspective on performance consequences and human factors issues. Int J Med Robot Comput Assist Surg. 2009;5(3):297-308. https://doi.org/10.1002/rcs.261.
Theodoraki MN, Ledderose GJ, Becker S, et al. Mental distress and effort to engage an image-guided navigation system in the surgical training of endoscopic sinus surgery: a prospective, randomised clinical trial. Eur Arch Otorhinolaryngol. 2015;272(4):905-913.
Stelter K, Theodoraki MN, Becker S, Tsekmistrenko V, Olzowy B, Ledderose G. Specific stressors in endonasal skull base surgery with and without navigation. Eur Arch Otorhinolaryngol. 2015;272(3):631-638.
Stelter K, Ertl-Wagner B, Luz M, et al. Evaluation of an image-guided navigation system in the training of functional endoscopic sinus surgeons. A prospective, randomised clinical study. Rhinol J. 2011;49(4):429-437. https://doi.org/10.4193/rhin11.035.
Dixon BJ, Daly MJ, Chan H, Vescan A, Witterick IJ, Irish JC. Augmented image guidance improves skull base navigation and reduces task workload in trainees: a preclinical trial. Laryngoscope. 2011;121(10):2060-2064.
Wise SK, Harvey RJ, Goddard JC, Sheahan PO, Schlosser RJ. Combined image guidance and intraoperative computed tomography in facilitating endoscopic orientation within and around the Paranasal sinuses. Am J Rhinol. 2008;22(6):635-641. https://doi.org/10.2500/ajr.2008.22.3242.
Prisman E, Daly MJ, Chan H, Siewerdsen JH, Vescan A, Irish JC. Real-time tracking and virtual endoscopy in cone-beam CT-guided surgery of the sinuses and skull base in a cadaver model. Int Forum Allergy Rhinol. 2011;1(1):70-77. https://doi.org/10.1002/alr.20007.
Benoit MM, Silvera VM, Nichollas R, Jones D, McGill T, Rahbar R. Image guidance systems for minimally invasive sinus and skull base surgery in children. Int J Pediatr Otorhinolaryngol. 2009;73(10):1452-1457.
Laedrach K, Remonda L, Lukes A, Schroth G, Raveh J. Evaluation of the contribution of CAS in combination with the subcranial/subfrontal approach in anterior skull base surgery. Skull Base. 2001;11(1):59-76.
Franz L, Isola M, Bagatto D, Tuniz F, Robiony M. A novel approach to skull-base and orbital osteotomies through virtual planning and navigation. Laryngoscope. 2019;129(4):823-831.
Wiltfang J, Rupprecht S, Ganslandt O, et al. Intraoperative image-guided surgery of the lateral and anterior skull base in patients with tumors or trauma. Skull Base. 2004;13(1):21-30. https://doi.org/10.1055/s-2003-37550.
Sure U, Alberti O, Petermeyer M, Becker R, Bertalanffy H. Advanced image-guided skull base surgery. Surg Neurol. 2000;53(6):563-572. https://doi.org/10.1016/s0090-3019(00)00243-3.
Schipper J, Maier W, Arapakis I, Spetzger U, Laszig R. Navigation as a tool to visualize bone-covered hidden structures in transfrontal approaches. J Laryngol Otol. 2004;118(11):849-856.
Van Havenbergh T, Koekelkoren E, De Ridder D, Van De Heyning P, Verlooy J. Image guided surgery for petrous apex lesions. Acta Neurochir. 2003;145(9):737-742.discussion 742.
Stelter K, Ledderose G, Hempel JM, et al. Image guided navigation by intraoperative CT scan for cochlear implantation. Comput Aided Surg. 2012;17(3):153-160.
Jones M, Johans S, Ziegler A, et al. Outcomes of patients undergoing endoscopic endonasal skull base surgery at a VA hospital. JAMA Surg. 2016;151(12):1186-1187. https://doi.org/10.1001/jamasurg.2016.2916.
Nakamura M, Stöver T, Rodt T, et al. Neuronavigational guidance in craniofacial approaches for large (para)nasal tumors involving the anterior skull base and upper clival lesions. Eur J Surg Oncol. 2009;35(6):666-672.
Rohde V, Spangenberg P, Mayfrank L, Reinges M, Gilsbach JM, Coenen VA. Advanced neuronavigation in skull base tumors and vascular lesions. Minim Invasive Neurosurg. 2005;48(1):13-18.
Cheng L, Cao R, Meng G, Huang Q, Hou D, Hu L. Application of computer assisted navigation system in endoscopic sinus and skull base surgery. Lin Chung Er Bi Yan Hou Tou Jing Wai Ke Za Zhi. 2012;26(17):796-798.
Zhu ZJ, Cheng L, Yang J. Transnasal endoscopic repair of adult spontaneous cerebrospinal fluid rhinorrhea with assistance of computer-assisted navigation system: an analysis of 21 cases. Eur Arch Otorhinolaryngol. 2019;276(10):2835-2841.
Koele W, Stammberger H, Lackner A, Reittner P. Image guided surgery of paranasal sinuses and anterior skull base-five years experience with the InstaTrak-System. Rhinology. 2002;40(1):1-9.
Kurtsoy A, Menku A, Tucer B, Oktem IS, Akdemir H. Neuronavigation in skull base tumors. Minim Invasive Neurosurg. 2005;48(1):7-12. https://doi.org/10.1055/s-2004-830151
Bohnstedt BN, Tubbs RS, Cohen-Gadol AA. The use of intraoperative navigation for percutaneous procedures at the skull base including a difficult-to-access foramen ovale. Neurosurgery. 2012;70(2 Suppl Operative):177-180.
Al Qudah M, Alfaqih M, Al-Shboul O, Saadeh R, Al-Dwairi A. Effect of cytokine treatment on the expression and secretion of brain derived neurotrophic factor in the smooth muscle of the rat colon. Biomed Rep. 2020;13(1):55-60.
Azarmehr I, Stokbro K, Bell RB, Thygesen T. Surgical navigation: a systematic review of indications, treatments, and outcomes in Oral and maxillofacial surgery. J Oral Maxillofac Surg. 2017;75(9):1987-2005.
Cai EZ, Koh YP, Hing ECH, et al. Computer-assisted navigational surgery improves outcomes in orbital reconstructive surgery. J Craniofac Surg. 2012;23(5):1567-1573.
Bly RA, Chang S-H, Cudejkova M, Liu JJ, Moe KS. Computer-guided orbital reconstruction to improve outcomes. JAMA Facial Plast Surg. 2013;15(2):113-120.
Mazzoni S, Badiali G, Lancellotti L, Babbi L, Bianchi A, Marchetti C. Simulation-guided navigation: a new approach to improve intraoperative three-dimensional reproducibility during orthognathic surgery. J Craniofac Surg. 2010;21(6):1698-1705.
Sun Y, Luebbers H-T, Agbaje JO, Lambrichts I, Politis C. The accuracy of image-guided navigation for maxillary positioning in bimaxillary surgery. J Craniofac Surg. 2014;25(3):1095-1099.
Xing L, Duan Y, Zhu F, et al. Computed tomography navigation combined with endoscope guidance for the removal of projectiles in the maxillofacial area: a study of 24 patients. Int J Oral Maxillofac Surg. 2015;44(3):322-328.
Gerbino G, Zavattero E, Berrone M, Berrone S. Management of needle breakage using intraoperative navigation following inferior alveolar nerve block. J Oral Maxillofac Surg. 2013;71(11):1819-1824.
Campbell A, Costello BJ. Retrieval of a displaced third molar using navigation and active image guidance. J Oral Maxillofac Surg. 2010;68(2):480-485.
Enislidis G, Wagner A, Ploder O, Ewers R. Computed intraoperative navigation guidance-a preliminary report on a new technique. Br J Oral Maxillofac Surg. 1997;35(4):271-274.
Gröbe A, Weber C, Schmelzle R, Heiland M, Klatt J, Pohlenz P. The use of navigation (BrainLAB Vector vision2) and intraoperative 3D imaging system (Siemens Arcadis Orbic 3D) in the treatment of gunshot wounds of the maxillofacial region. Oral Maxillofac Surg. 2009;13(3):153-158. https://doi.org/10.1007/s10006-009-0166-4.
Yu H, Shen SG, Wang X, Zhang L, Zhang S. The indication and application of computer-assisted navigation in oral and maxillofacial surgery-Shanghai's experience based on 104 cases. J Cranio-Maxillofac Surg. 2013;41(8):770-774. https://doi.org/10.1016/j.jcms.2013.01.016.
Yu H, Wang X, Zhang S, Zhang L, Xin P, Shen SG. Navigation-guided en bloc resection and defect reconstruction of craniomaxillary bony tumours. Int J Oral Maxillofac Surg. 2013;42(11):1409-1413.
Wang X, Lin Y, Yu H, et al. Image-guided navigation in optimizing surgical management of craniomaxillofacial fibrous dysplasia. J Craniofac Surg. 2011;22(5):1552-1556.
Feichtinger M, Pau M, Zemann W, Aigner RM, Kärcher H. Intraoperative control of resection margins in advanced head and neck cancer using a 3D-navigation system based on PET/CT image fusion. J Cranio-Maxillofac Surg. 2010;38(8):589-594. https://doi.org/10.1016/j.jcms.2010.02.004.
Guo R, Guo YX, Feng Z, Guo CB. Application of a computer-aided navigation technique in surgery for recurrent malignant Infratemporal fossa tumors. J Craniofac Surg. 2015;26(2):e126-e132. https://doi.org/10.1097/scs.0000000000001350.
Yeh DH, Tam S, Fung K, et al. Transoral robotic surgery vs. radiotherapy for management of oropharyngeal squamous cell carcinoma-a systematic review of the literature. Eur J Surg Oncol. 2015;41(12):1603-1614.
Li H, Torabi SJ, Park HS, et al. Clinical value of transoral robotic surgery: Nationwide results from the first 5 years of adoption. Laryngoscope. 2019;129(8):1844-1855.
Zevallos JP, Mitra N, Swisher-McClure S. Patterns of care and perioperative outcomes in transoral endoscopic surgery for oropharyngeal squamous cell carcinoma. Head Neck. 2016;38(3):402-409.
Persky MJ, Albergotti WG, Rath TJ, et al. Positive margins by oropharyngeal subsite in transoral robotic surgery for T1/T2 squamous cell carcinoma. Otolaryngol Head Neck Surg. 2018;158(4):660-666. https://doi.org/10.1177/0194599817742852.
Asher SA, White HN, Kejner AE, Rosenthal EL, Carroll WR, Magnuson JS. Hemorrhage after transoral robotic-assisted surgery. Otolaryngol Head Neck Surg. 2013;149(1):112-117.
Aubry K, Vergez S, de Mones E, et al. Morbidity and mortality revue of the French group of transoral robotic surgery: a multicentric study. J Robot Surg. 2016;10(1):63-67.
Weinstein GS, O'Malley BW Jr, Magnuson JS, et al. Transoral robotic surgery: a multicenter study to assess feasibility, safety, and surgical margins. Laryngoscope. 2012;122(8):1701-1707.
Vergez S, Lallemant B, Ceruse P, et al. Initial multi-institutional experience with transoral robotic surgery. Otolaryngol Head Neck Surg. 2012;147(3):475-481.
Chia SH, Gross ND, Richmon JD. Surgeon experience and complications with transoral robotic surgery (TORS). Otolaryngol Head Neck Surg. 2013;149(6):885-892.
Weinstein GS, O'Malley BW Jr, Rinaldo A, Silver CE, Werner JA, Ferlito A. Understanding contraindications for transoral robotic surgery (TORS) for oropharyngeal cancer. Eur Arch Otorhinolaryngol. 2015;272(7):1551-1552.
Gleysteen J, Troob S, Light T, et al. The impact of prophylactic external carotid artery ligation on postoperative bleeding after transoral robotic surgery (TORS) for oropharyngeal squamous cell carcinoma. Oral Oncology. 2017;70:1-6. https://doi.org/10.1016/j.oraloncology.2017.04.014.
White HN, Frederick J, Zimmerman T, Carroll WR, Magnuson JS. Learning curve for transoral robotic surgery: a 4-year analysis. JAMA Otolaryngol Head Neck Surg. 2013;139(6):564-567.
Gross ND, Holsinger FC, Magnuson JS, et al. Robotics in otolaryngology and head and neck surgery: recommendations for training and credentialing: a report of the 2015 AHNS education committee, AAO-HNS robotic task force and AAO-HNS sleep disorders committee. Head Neck. 2016;38(Suppl 1):E151-E158.
Albergotti WG, Gooding WE, Kubik MW, et al. Assessment of surgical learning curves in transoral robotic surgery for squamous cell carcinoma of the oropharynx. JAMA Otolaryngol Head Neck Surg. 2017;143(6):542-548.
Lee SY, Park YM, Byeon HK, Choi EC, Kim S-H. Comparison of oncologic and functional outcomes after transoral robotic lateral oropharyngectomy versus conventional surgery for T1 to T3 tonsillar cancer. Head Neck. 2014;36(8):1138-1145.
White H, Ford S, Bush B, et al. Salvage surgery for recurrent cancers of the oropharynx: comparing TORS with standard open surgical approaches. JAMA Otolaryngol Head Neck Surg. 2013;139(8):773-778.
Bleier BS, Mirza N. Image guided transoral approach to the pterygopalatine fossa. Laryngoscope. 2006;116(10):1927-1929.
Desai SC, Sung C-K, Genden EM. Transoral robotic surgery using an image guidance system. Laryngoscope. 2008;118(11):2003-2005.
Wu X, Paydarfar JA, Halter RJ. Quantifying anatomic deformations during laryngoscopy. Ann Biomed Eng. 2018;46(6):912-925.
Ma AK, Daly M, Qiu J, et al. Intraoperative image guidance in transoral robotic surgery: a pilot study. Head Neck. 2017;39(10):1976-1983.
Kahng PW, Wu X, Ramesh NP, Pastel DA, Halter RJ, Paydarfar JA. Improving target localization during trans-oral surgery with use of intraoperative imaging. Int J Comput Assist Radiol Surg. 2019;14(5):885-893.
Siewerdsen JH, Chan Y, Rafferty MA, Moseley DJ, Jaffray DA, Irish JC. Cone-beam CT with a flat-panel detector on a mobile C-arm: preclinical investigation in image-guided surgery of the head and neck. Proc. SPIE 5744, Medical Imaging 2005: Visualization, Image-Guided Procedures, and Display. 2005. https://doi.org/10.1117/12.595690.
Siewerdsen JH. Cone-beam CT with a flat-panel detector: from image science to image-guided surgery. Nucl Instrum Methods Phys Res A. 2011;648(S1):S241-S250.
Daly MJ, Siewerdsen JH, Moseley DJ, Jaffray DA, Irish JC. Intraoperative cone-beam CT for guidance of head and neck surgery: assessment of dose and image quality using a C-arm prototype. Med Phys. 2006;33(10):3767-3780.
Nitsch J, Klein J, Dammann P, et al. Automatic and efficient MRI-US segmentations for improving intraoperative image fusion in image-guided neurosurgery. Neuroimage Clin. 2019;22:101766.
Raabe A, Krishnan R, Wolff R, Hermann E, Zimmermann M, Seifert V. Laser surface scanning for patient registration in intracranial image-guided surgery. Neurosurgery. 2002;50(4):797-801.discussion 802-803.
Chan HHL, Siewerdsen JH, Vescan A, Daly MJ, Prisman E, Irish JC. 3D rapid prototyping for otolaryngology-head and neck surgery: applications in image-guidance, surgical simulation and patient-specific modeling. PLoS One. 2015;10(9):e0136370. https://doi.org/10.1371/journal.pone.0136370.
Paydarfar JA, Wu X, Halter RJ. MRI- and CT-compatible polymer laryngoscope: a step toward image-guided transoral surgery. Otolaryngol Head Neck Surg. 2016;155(2):364-366.
Paydarfar JA, Wu X, Halter RJ. Initial experience with image-guided surgical navigation in transoral surgery. Head & Neck. 2018;41:E1-E10. https://doi.org/10.1002/hed.25380.
Besl PJ, McKay ND. Method for registration of 3-D shapes. Sensor Fusion IV: Control paradigms and Data Structures; 1992. https://www.spiedigitallibrary.org/conference-proceedings-of-spie/1611/0000/Method-for-registration-of-3-D-shapes/10.1117/12.57955.short?casa_token=ZWhbTiyfybYAAAAA:FddNhg27HLHnHSQwv0De1-7EvCO6RCOD8YAn6hPI62XPR1sL8-y0Yo7UmRwTK3zFgQyVeYKB. Accessed April 19, 2021.
Myronenko A, Song X. Point set registration: coherent point drift. IEEE Trans Pattern Anal Mach Intell. 2010;32(12):2262-2275.
Pennec X, Cachier P, Ayache N. Understanding the “Demon’s Algorithm”: 3D Non-rigid Registration by Gradient Descent. In: Taylor C, Colchester A, eds. Medical Image Computing and Computer-Assisted Intervention - MICCAI’99. MICCAI 1999. Lecture Notes in Computer Science. Vol. 1679. Berlin, Heidelberg: Springer; 1999. https://doi.org/10.1007/10704282_64.
Lloyd JE, Stavness I, Fels S. ArtiSynth: a fast interactive biomechanical modeling toolkit combining multibody and finite element simulation. In: Payan Y, ed. Soft Tissue Biomechanical Modeling for Computer Assisted Surgery. Springer: Berlin Heidelberg; 2012:355-394.
Reaungamornrat S, Liu WP, Wang AS, et al. Deformable image registration for cone-beam CT guided transoral robotic base-of-tongue surgery. Phys Med Biol. 2013;58(14):4951-4979.
Liu WP, Reaugamornrat S, Sorger JM, Siewerdsen JH, Taylor RH, Richmon JD. Intraoperative image-guided transoral robotic surgery: pre-clinical studies. Int J Med Robot Comput Assist Surg. 2015;11(2):256-267. https://doi.org/10.1002/rcs.1602.
Liu WP, Reaugamornrat S, Deguet A, et al. Toward intraoperative image-guided transoral robotic surgery. J Robot Surg. 2013;7(3):217-225.
Liu WP, Richmon JD, Sorger JM, Azizian M, Taylor RH. Augmented reality and cone beam CT guidance for transoral robotic surgery. J Robot Surg. 2015;9(3):223-233.
Wu XD. Towards Accurate Surgical Navigation Using Intraoperative Imaging and Deformable Models in Trans-oral Surgery; 2019. http://search.proquest.com/openview/8607bc488d91076ecf563c21fe2abc4e/1?pq-origsite=gscholar&cbl=18750&diss=y. Accessed May 6, 2020.
Wu X, Antonio Sánchez C, Lloyd J, et al. Estimating tongue deformation during laryngoscopy using hybrid FEM-multibody model and intraoperative tracking: a cadaver pilot study. Medical Imaging 2020: Image-Guided Procedures, Robotic Interventions, and Modeling. Vol 11315. International Society for Optics and Photonics; 2020. https://doi.org/10.1117/12.2550471.
Linte CA, Yaniv Z. When change happens: computer assistance and image guidance for minimally invasive therapy. Healthc Technol Lett. 2014;1(1):2-5.

Auteurs

Sarah Y Bessen (SY)

Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.

Xiaotian Wu (X)

Massachussetts General Hospital, Boston, Massachusetts, USA.

Michael T Sramek (MT)

Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.

Yuan Shi (Y)

Thayer School of Engineering at Dartmouth, Hanover, New Hampshire, USA.

David Pastel (D)

Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.
Department of Otolaryngology, Dartmouth-Hitchcock Medical Center, Lebanon, New Hampshire, USA.
Department of Radiology, Dartmouth-Hitchcock Medical Center, Lebanon, New Hampshire, USA.

Ryan Halter (R)

Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.
Thayer School of Engineering at Dartmouth, Hanover, New Hampshire, USA.

Joseph A Paydarfar (JA)

Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.
Thayer School of Engineering at Dartmouth, Hanover, New Hampshire, USA.
Department of Otolaryngology, Dartmouth-Hitchcock Medical Center, Lebanon, New Hampshire, USA.

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