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Published in: Surgery Today 4/2015

01-04-2015 | Review Article

Clinical application of navigation surgery using augmented reality in the abdominal field

Authors: Tomoyoshi Okamoto, Shinji Onda, Katsuhiko Yanaga, Naoki Suzuki, Asaki Hattori

Published in: Surgery Today | Issue 4/2015

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Abstract

This article presents general principles and recent advancements in the clinical application of augmented reality-based navigation surgery (AR based NS) for abdominal procedures and includes a description of our clinical trial and subsequent outcomes. Moreover, current problems and future aspects are discussed. The development of AR-based NS in the abdomen is delayed compared with another field because of the problem of intraoperative organ deformations or the existence of established modalities. Although there are a few reports on the clinical use of AR-based NS for digestive surgery, sophisticated technologies in urology have often been reported. However, the rapid widespread use of video- or robot assisted surgeries requires this technology. We have worked to develop a system of AR-based NS for hepatobiliary and pancreatic surgery. Then we developed a short rigid scope that enables surgeons to obtain 3D view. We recently focused on pancreatic surgery, because intraoperative organ shifting is minimal. The position of each organ in overlaid image almost corresponded with that of the actual organ with about 5 mm of mean registration errors. Intraoperative information generated from this system provided us with useful navigation. However, AR-based NS has several problems to overcome such as organ deformity, evaluation of utility, portability or cost.
Literature
1.
go back to reference Marescaux J, Clement JM, Tassetti, Koehl C, Cotin S, Russier Y, et al. Virtual reality applied to hepatic surgery simulation: the next revolution. Ann Surg. 1998;228:627–34.CrossRefPubMedCentralPubMed Marescaux J, Clement JM, Tassetti, Koehl C, Cotin S, Russier Y, et al. Virtual reality applied to hepatic surgery simulation: the next revolution. Ann Surg. 1998;228:627–34.CrossRefPubMedCentralPubMed
2.
go back to reference Lamada W, Glombitza G, Ficher L, Chiu P, Cárdenas CE Sr, Thorn M, et al. The impact of 3D reconstruction on operation planning in liver surgery. Arch Surg. 2000;135:1256–61.CrossRef Lamada W, Glombitza G, Ficher L, Chiu P, Cárdenas CE Sr, Thorn M, et al. The impact of 3D reconstruction on operation planning in liver surgery. Arch Surg. 2000;135:1256–61.CrossRef
3.
go back to reference Satou S, Yamanaka J, Miura K, Nakao N, Nagao T, Sugimoto T, et al. A novel 3D hepatectomy simulation based on liver circulation: application to liver resection and transplantation. Hepatology. 2005;41:1297–304.CrossRef Satou S, Yamanaka J, Miura K, Nakao N, Nagao T, Sugimoto T, et al. A novel 3D hepatectomy simulation based on liver circulation: application to liver resection and transplantation. Hepatology. 2005;41:1297–304.CrossRef
4.
go back to reference Yamanaka J, Saito S, Fujimoto J. Impact of preoperative planning using virtual segmental volumetry on liver resection for hepatocellular carcinoma. World J Surg. 2007;31:1249–55.CrossRefPubMed Yamanaka J, Saito S, Fujimoto J. Impact of preoperative planning using virtual segmental volumetry on liver resection for hepatocellular carcinoma. World J Surg. 2007;31:1249–55.CrossRefPubMed
5.
go back to reference Endo I, Shimada H, Sugita M, Fujii Y, Morioka D, Takeda K, et al. Role of 3D imaging in operative planning for hilar cholangiocarcinoma. Surgery. 2007;142:666–75.CrossRefPubMed Endo I, Shimada H, Sugita M, Fujii Y, Morioka D, Takeda K, et al. Role of 3D imaging in operative planning for hilar cholangiocarcinoma. Surgery. 2007;142:666–75.CrossRefPubMed
6.
go back to reference Aggarwal R, Crochet P, Dias A, Misra A, Ziprin P, Darzi A. Development of a virtual reality training curriculum for laparoscopic cholecystectomy. Br J Surg. 2009;96:1086–93.CrossRefPubMed Aggarwal R, Crochet P, Dias A, Misra A, Ziprin P, Darzi A. Development of a virtual reality training curriculum for laparoscopic cholecystectomy. Br J Surg. 2009;96:1086–93.CrossRefPubMed
7.
go back to reference Aoki T, Mise Y, Kokudo N. Hepatic resections assisted by operation planning using a 3D navigation/simulation software (in Japanese). Tan to sui. 2013;34:27–34. Aoki T, Mise Y, Kokudo N. Hepatic resections assisted by operation planning using a 3D navigation/simulation software (in Japanese). Tan to sui. 2013;34:27–34.
8.
go back to reference Lamade W, Vetter M, Hassenphlug P, Thorn M, Meinzer HP, Herfarth C. Navigation and image-guided HBP surgery: a review and preview. J Hepatobiliary Pancreat Sci. 2002;9:592–9.CrossRef Lamade W, Vetter M, Hassenphlug P, Thorn M, Meinzer HP, Herfarth C. Navigation and image-guided HBP surgery: a review and preview. J Hepatobiliary Pancreat Sci. 2002;9:592–9.CrossRef
10.
go back to reference Sugimoto M. Recent advances in visualization, imaging, and navigation in hepatobiliary and pancreatic sciences. J Hepatobiliary Pancreat Sci. 2010;17:574–6.CrossRefPubMed Sugimoto M. Recent advances in visualization, imaging, and navigation in hepatobiliary and pancreatic sciences. J Hepatobiliary Pancreat Sci. 2010;17:574–6.CrossRefPubMed
11.
go back to reference Nicolau S, Soler L, Mutter D, Marescaux J, et al. Augmented reality in laparoscopic surgical oncology. Surg Oncol. 2011;20:189–201.CrossRefPubMed Nicolau S, Soler L, Mutter D, Marescaux J, et al. Augmented reality in laparoscopic surgical oncology. Surg Oncol. 2011;20:189–201.CrossRefPubMed
12.
go back to reference Das M, Sauer F, Schoepf UJ, Khamene A, Vogt SK, Scaller S, et al. Augmented reality visualization for CT-guided interventions: system description, feasibility, and initial evaluation in an abdominal phantom. Radiology. 2006;240:230–5.CrossRefPubMed Das M, Sauer F, Schoepf UJ, Khamene A, Vogt SK, Scaller S, et al. Augmented reality visualization for CT-guided interventions: system description, feasibility, and initial evaluation in an abdominal phantom. Radiology. 2006;240:230–5.CrossRefPubMed
13.
go back to reference Robb RA. Vrsp: virtual reality assisted surgery program. In: 1st International symposium on computer aided surgery 1994; 18–19. Robb RA. Vrsp: virtual reality assisted surgery program. In: 1st International symposium on computer aided surgery 1994; 18–19.
15.
go back to reference Grunert P, Darabi K, Espinosa J, Filippi R. Computer-aided navigation in neurosurgery. Neurosurg Rev. 2003;26:73–99.CrossRefPubMed Grunert P, Darabi K, Espinosa J, Filippi R. Computer-aided navigation in neurosurgery. Neurosurg Rev. 2003;26:73–99.CrossRefPubMed
17.
go back to reference Hohlweg-Majert B, Schon R, Schmelzeisen R, Gellrich NC, Schramm A. Navigational maxillofacial surgery using virtual models. World J Surg. 2005;29:1530–8.CrossRefPubMed Hohlweg-Majert B, Schon R, Schmelzeisen R, Gellrich NC, Schramm A. Navigational maxillofacial surgery using virtual models. World J Surg. 2005;29:1530–8.CrossRefPubMed
18.
go back to reference Hamada H, Hayashi N, Asahi T, Kurimoto M, Hirashima Y, Endo S. Efficacy of a navigation system in neuro-endoscopic surgery. Minim Invasive Neurosurg. 2005;48:197–201.CrossRefPubMed Hamada H, Hayashi N, Asahi T, Kurimoto M, Hirashima Y, Endo S. Efficacy of a navigation system in neuro-endoscopic surgery. Minim Invasive Neurosurg. 2005;48:197–201.CrossRefPubMed
19.
go back to reference Zhou F, Shao JH, Zou SB, Huang MW, Yin XB, Yu X. Laparoscopic hepatectomy is associated with a higher incident frequency in hepatolithiasis patients. Surg Today. 2013;12:1371–81.CrossRef Zhou F, Shao JH, Zou SB, Huang MW, Yin XB, Yu X. Laparoscopic hepatectomy is associated with a higher incident frequency in hepatolithiasis patients. Surg Today. 2013;12:1371–81.CrossRef
20.
21.
go back to reference Mårvik R, Langø T, Tangen GA, Andersen JO, Kaspersen JH, Ystgaard B, et al. Laparoscopic navigation pointer for 3D image-guided surgery. Surg Endosc. 2004;18:1242–8.CrossRefPubMed Mårvik R, Langø T, Tangen GA, Andersen JO, Kaspersen JH, Ystgaard B, et al. Laparoscopic navigation pointer for 3D image-guided surgery. Surg Endosc. 2004;18:1242–8.CrossRefPubMed
22.
go back to reference Okamoto T, Onda S, Matsumoto M, Gocho T, Futagawa Y, Fujioka S, et al. Utility of augmented reality system in hepatobiliary–pancreatic surgery with laparotomy. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2010;12:312–3. Okamoto T, Onda S, Matsumoto M, Gocho T, Futagawa Y, Fujioka S, et al. Utility of augmented reality system in hepatobiliary–pancreatic surgery with laparotomy. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2010;12:312–3.
23.
go back to reference Okamoto T, Onda S, Matsumoto M, Gocho T, Futagawa Y, Fujioka S, et al. Utility of augmented reality system in hepatobiliary surgery. J Hepatobiliary Pancreat Sci. 2013;20:249–53.CrossRefPubMed Okamoto T, Onda S, Matsumoto M, Gocho T, Futagawa Y, Fujioka S, et al. Utility of augmented reality system in hepatobiliary surgery. J Hepatobiliary Pancreat Sci. 2013;20:249–53.CrossRefPubMed
24.
go back to reference Onda S, Okamoto T, Kanehira M, Fujioka S, Suzuki N, Hattori A, et al. Short rigid scope and stereo-scope designed specifically for open abdominal navigation surgery: clinical application for hepatobiliary and pancreatic surgery. J Hepatobiliary Pancreat Sci. 2013;20:448–53.CrossRefPubMed Onda S, Okamoto T, Kanehira M, Fujioka S, Suzuki N, Hattori A, et al. Short rigid scope and stereo-scope designed specifically for open abdominal navigation surgery: clinical application for hepatobiliary and pancreatic surgery. J Hepatobiliary Pancreat Sci. 2013;20:448–53.CrossRefPubMed
25.
go back to reference Onda S, Okamoto T, Matsumoto M, Son K, Gocho T, Futagawa Y, et al. Utility of augmented reality system in pancreatectomy. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2011;13:258–9. Onda S, Okamoto T, Matsumoto M, Son K, Gocho T, Futagawa Y, et al. Utility of augmented reality system in pancreatectomy. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2011;13:258–9.
26.
go back to reference Onda S, Okamoto T, Kanehira M, Ito R, Fujioka S, Yanaga K, et al. Clinical application of a stereoscopic image display system for surgical navigation in hepatobiliary and pancreatic surgery. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2012;14:222–3. Onda S, Okamoto T, Kanehira M, Ito R, Fujioka S, Yanaga K, et al. Clinical application of a stereoscopic image display system for surgical navigation in hepatobiliary and pancreatic surgery. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2012;14:222–3.
27.
go back to reference Onda S, Okamoto T, Kanehira M, Suzuki F, Ito R, Fujioka S, et al. Identification of inferior pancreaticoduodenal artery during pancreaticoduodenectomy using augmented reality-based navigation system. J Hepatobiliary Pancreat Sci. 2013. doi:10.1002/jhbp.25. Onda S, Okamoto T, Kanehira M, Suzuki F, Ito R, Fujioka S, et al. Identification of inferior pancreaticoduodenal artery during pancreaticoduodenectomy using augmented reality-based navigation system. J Hepatobiliary Pancreat Sci. 2013. doi:10.​1002/​jhbp.​25.
28.
go back to reference Ukimura O, Magi-Galluzzi C, Gill IS. Real-time transrectal ultrasound guidance during laparoscopic radical prostatectomy: impact on surgical margins. J Urol. 2006;175:1304–10.CrossRefPubMed Ukimura O, Magi-Galluzzi C, Gill IS. Real-time transrectal ultrasound guidance during laparoscopic radical prostatectomy: impact on surgical margins. J Urol. 2006;175:1304–10.CrossRefPubMed
29.
go back to reference Simpfendörfer T, Baumhauer M, Müller M, Gutt CN, Meinzer HP, Rassweiler JJ, et al. Augmented reality visualization during laparoscopic radical prostatectomy. J Endourol. 2011;25:1841–5.CrossRefPubMed Simpfendörfer T, Baumhauer M, Müller M, Gutt CN, Meinzer HP, Rassweiler JJ, et al. Augmented reality visualization during laparoscopic radical prostatectomy. J Endourol. 2011;25:1841–5.CrossRefPubMed
30.
go back to reference Ukimura O, Gill IS. Image-fusion, augmented reality, and predictive surgical navigation. Urol Clin North Am. 2009;36:115–23.CrossRefPubMed Ukimura O, Gill IS. Image-fusion, augmented reality, and predictive surgical navigation. Urol Clin North Am. 2009;36:115–23.CrossRefPubMed
31.
go back to reference Shekhar R, Dandekar O, Bhat V, Philip M, Lei P, Godinez C, et al. Live augmented reality: a new visualization method for laparoscopic surgery using continuous volumetric computed tomography. Surg Endosc. 2010;24:1976–85.CrossRefPubMed Shekhar R, Dandekar O, Bhat V, Philip M, Lei P, Godinez C, et al. Live augmented reality: a new visualization method for laparoscopic surgery using continuous volumetric computed tomography. Surg Endosc. 2010;24:1976–85.CrossRefPubMed
32.
go back to reference Sugimoto M, Yasuda H, Koda K, Suzuki M, Yamazaki M, Tezuka T, et al. Image overlay navigation by markerless surface registration in gastrointestinal, hepatobiliary and pancreatic surgery. J Hepatobiliary Pancreat Sci. 2010;17:629–36.CrossRefPubMed Sugimoto M, Yasuda H, Koda K, Suzuki M, Yamazaki M, Tezuka T, et al. Image overlay navigation by markerless surface registration in gastrointestinal, hepatobiliary and pancreatic surgery. J Hepatobiliary Pancreat Sci. 2010;17:629–36.CrossRefPubMed
33.
go back to reference Liao H, Inomata T, Sakuma I, Dohi T. 3D augmented reality for MRI-guided surgery using integral videography autostereoscopic image overlay. IEEE Trans Biomed Eng. 2010;57:1476–86.CrossRefPubMed Liao H, Inomata T, Sakuma I, Dohi T. 3D augmented reality for MRI-guided surgery using integral videography autostereoscopic image overlay. IEEE Trans Biomed Eng. 2010;57:1476–86.CrossRefPubMed
34.
go back to reference Hansen C, Wieferich J, Ritter F, Rieder C, Peitgen HO. Illustrative visualization of 3D planning models for augmented reality in liver surgery. Int J Comput Assist Radiol Surg. 2010;5:133–41.CrossRefPubMed Hansen C, Wieferich J, Ritter F, Rieder C, Peitgen HO. Illustrative visualization of 3D planning models for augmented reality in liver surgery. Int J Comput Assist Radiol Surg. 2010;5:133–41.CrossRefPubMed
35.
go back to reference Marescaux J, Rubino F, Arenas M, Mutter D, Soler L. Augmented-reality-assisted laparoscopic adrenalectomy. JAMA. 2004;292:2214–5.PubMed Marescaux J, Rubino F, Arenas M, Mutter D, Soler L. Augmented-reality-assisted laparoscopic adrenalectomy. JAMA. 2004;292:2214–5.PubMed
36.
go back to reference Ieiri S, Uemura M, Konishi K, Souzaki R, Nagao Y, Tsutsumi N, et al. Augmented reality navigation system for laparoscopic splenectomy in children based on preoperative CT image using optical tracking device. Pediatr Surg Int. 2012;28:341–6.CrossRefPubMed Ieiri S, Uemura M, Konishi K, Souzaki R, Nagao Y, Tsutsumi N, et al. Augmented reality navigation system for laparoscopic splenectomy in children based on preoperative CT image using optical tracking device. Pediatr Surg Int. 2012;28:341–6.CrossRefPubMed
37.
go back to reference Herline AJ, Stefansic JD, Debelak JP, Hartmann SL, Pinson CW, Galloway RL, et al. Image-guided surgery: preliminary feasibility studies of frameless stereotactic liver surgery. Arch Surg. 1999;134:644–9.CrossRefPubMed Herline AJ, Stefansic JD, Debelak JP, Hartmann SL, Pinson CW, Galloway RL, et al. Image-guided surgery: preliminary feasibility studies of frameless stereotactic liver surgery. Arch Surg. 1999;134:644–9.CrossRefPubMed
38.
go back to reference Hostettler A, Nicolau SA, Rémond Y, Marescaux J, Soler L. A real-time predictive simulation of abdominal viscera positions during quiet free breathing. Prog Biophys Mol Biol. 2010;103:169–84.CrossRefPubMed Hostettler A, Nicolau SA, Rémond Y, Marescaux J, Soler L. A real-time predictive simulation of abdominal viscera positions during quiet free breathing. Prog Biophys Mol Biol. 2010;103:169–84.CrossRefPubMed
39.
go back to reference Beller S, Eulenstein S, Lange T, Hünerbein M, Schlag PM. Upgrade of an optical navigation system with a permanent electromagnetic position control: a first step towards “navigated control” for liver surgery. J Hepatobiliary Pancreat Surg. 2009;16:165–70.CrossRefPubMed Beller S, Eulenstein S, Lange T, Hünerbein M, Schlag PM. Upgrade of an optical navigation system with a permanent electromagnetic position control: a first step towards “navigated control” for liver surgery. J Hepatobiliary Pancreat Surg. 2009;16:165–70.CrossRefPubMed
40.
go back to reference Cash DM, Miga MI, Sinha TK, Galloway RL, Chapman WC. Compensating for intraoperative soft-tissue deformations using incomplete surface data and finite elements. IEEE Trans Med Imaging. 2005;24:1479–91.CrossRefPubMed Cash DM, Miga MI, Sinha TK, Galloway RL, Chapman WC. Compensating for intraoperative soft-tissue deformations using incomplete surface data and finite elements. IEEE Trans Med Imaging. 2005;24:1479–91.CrossRefPubMed
41.
go back to reference Cash DM, Miga MI, Glasgow SC, Dawant BM, Clements LW, Cao Z, et al. Concepts and preliminary data toward the realization of image-guided liver surgery. J Gastrointest Surg. 2007;11:844–59.CrossRefPubMed Cash DM, Miga MI, Glasgow SC, Dawant BM, Clements LW, Cao Z, et al. Concepts and preliminary data toward the realization of image-guided liver surgery. J Gastrointest Surg. 2007;11:844–59.CrossRefPubMed
42.
go back to reference Konishi K, Hashizume M, Nakamoto M, Kakeji Y, Yoshino I, Taketomi A, et al. Augmented reality navigation system for endoscopic surgery based on three-dimensional ultrasound and computed tomography: application to 20 clinical cases. Inter Congr Ser. 2005;1281:537–42.CrossRef Konishi K, Hashizume M, Nakamoto M, Kakeji Y, Yoshino I, Taketomi A, et al. Augmented reality navigation system for endoscopic surgery based on three-dimensional ultrasound and computed tomography: application to 20 clinical cases. Inter Congr Ser. 2005;1281:537–42.CrossRef
43.
go back to reference Su LM, Vagvolgyi BP, Agarwal R, Reiley CE, Taylor RH, Hager GD. Augmented reality during robot-assisted laparoscopic partial nephrectomy: toward real-time 3D-CT to stereoscopic video registration. Urology. 2009;73:896–900.CrossRefPubMed Su LM, Vagvolgyi BP, Agarwal R, Reiley CE, Taylor RH, Hager GD. Augmented reality during robot-assisted laparoscopic partial nephrectomy: toward real-time 3D-CT to stereoscopic video registration. Urology. 2009;73:896–900.CrossRefPubMed
44.
go back to reference Nakamoto M, Ukimura O, Faber K, Gill IS. Current progress on augmented reality visualization in endoscopic surgery. Curr Opin Urol. 2012;22:121–6.CrossRefPubMed Nakamoto M, Ukimura O, Faber K, Gill IS. Current progress on augmented reality visualization in endoscopic surgery. Curr Opin Urol. 2012;22:121–6.CrossRefPubMed
45.
go back to reference Nicolau SA, Vemuri A, Wu HS, Huang MH, Ho Y, Charnoz A, et al. A cost effective simulator for education of ultrasound image interpretation and probe manipulation. Stud Health Technol Inform. 2011;163:403–7.PubMed Nicolau SA, Vemuri A, Wu HS, Huang MH, Ho Y, Charnoz A, et al. A cost effective simulator for education of ultrasound image interpretation and probe manipulation. Stud Health Technol Inform. 2011;163:403–7.PubMed
46.
go back to reference Harders M, Bianchi G, Knoerlein B, Székely G. Calibration, registration, and synchronization for high precision augmented reality haptics. IEEE Trans Vis Comput Graph. 2009;15:138–49.CrossRefPubMed Harders M, Bianchi G, Knoerlein B, Székely G. Calibration, registration, and synchronization for high precision augmented reality haptics. IEEE Trans Vis Comput Graph. 2009;15:138–49.CrossRefPubMed
47.
go back to reference Teber D, Guven S, Simpfendörfer T, Baumhauer M, Güven EO, Yencilek F, et al. Augmented reality: a new tool to improve surgical accuracy during laparoscopic partial nephrectomy? Preliminary in vitro and in vivo results. Eur Urol. 2009;56:332–8.CrossRefPubMed Teber D, Guven S, Simpfendörfer T, Baumhauer M, Güven EO, Yencilek F, et al. Augmented reality: a new tool to improve surgical accuracy during laparoscopic partial nephrectomy? Preliminary in vitro and in vivo results. Eur Urol. 2009;56:332–8.CrossRefPubMed
48.
go back to reference Gavaghan KA, Peterhans M, Oliveira-Santos T, Weber S. A portable image overlay projection device for computer-aided open liver surgery. IEEE Trans Biomed Eng. 2011;58:1855–64.CrossRefPubMed Gavaghan KA, Peterhans M, Oliveira-Santos T, Weber S. A portable image overlay projection device for computer-aided open liver surgery. IEEE Trans Biomed Eng. 2011;58:1855–64.CrossRefPubMed
49.
go back to reference Baumhauer M, Feuerstein M, Meinzer HP, Rassweiler J. Navigation in endoscopic soft tissue surgery: perspectives and limitations. J Endourol. 2008;22:751–66.CrossRefPubMed Baumhauer M, Feuerstein M, Meinzer HP, Rassweiler J. Navigation in endoscopic soft tissue surgery: perspectives and limitations. J Endourol. 2008;22:751–66.CrossRefPubMed
50.
go back to reference Gavaghan K, Oliveira-Santos T, Peterhans M, Reyes M, Kim H, et al. Evaluation of a portable image overlay projector for the visualisation of surgical navigation data: phantom studies. Int J Comput Assist Radiol Surg. 2012;7:547–56.CrossRefPubMed Gavaghan K, Oliveira-Santos T, Peterhans M, Reyes M, Kim H, et al. Evaluation of a portable image overlay projector for the visualisation of surgical navigation data: phantom studies. Int J Comput Assist Radiol Surg. 2012;7:547–56.CrossRefPubMed
51.
go back to reference Masamune K, Fichtinger G, Deguet A, Matsuka D, Taylor R. An image overlay system with enhanced reality for percutaneous therapy performed inside CT scanner. LNCS. 2002;2489:77–84. Masamune K, Fichtinger G, Deguet A, Matsuka D, Taylor R. An image overlay system with enhanced reality for percutaneous therapy performed inside CT scanner. LNCS. 2002;2489:77–84.
52.
go back to reference Argotti Y, Davis L, Outters V, Rolland JP. Dynamic superimposition of synthetic objects on rigid and simple deformable real objects. Comput Graph. 2002;26:919–30.CrossRef Argotti Y, Davis L, Outters V, Rolland JP. Dynamic superimposition of synthetic objects on rigid and simple deformable real objects. Comput Graph. 2002;26:919–30.CrossRef
53.
go back to reference Ferrari V, Megali G, Troia E, Pietrabissa A, Mosca F. A 3D mixed-reality system for stereoscopic visualization of medical dataset. IEEE Trans Biomed Eng. 2009;56:2627–33.CrossRefPubMed Ferrari V, Megali G, Troia E, Pietrabissa A, Mosca F. A 3D mixed-reality system for stereoscopic visualization of medical dataset. IEEE Trans Biomed Eng. 2009;56:2627–33.CrossRefPubMed
54.
go back to reference Hattori A, Suzuki N, Hashizume M, Akahoshi T, Konishi K, Yamaguchi S, et al. A robotic surgery system (da Vinci) with image guided function system architecture and cholecystectomy. Stud Health Technol Inform. 2003;94:110–6.PubMed Hattori A, Suzuki N, Hashizume M, Akahoshi T, Konishi K, Yamaguchi S, et al. A robotic surgery system (da Vinci) with image guided function system architecture and cholecystectomy. Stud Health Technol Inform. 2003;94:110–6.PubMed
55.
go back to reference Liao H, Ishihara H, Tran HH, Masamune K, Sakuma I, Dohi T. Precision-guided surgical navigation system using laser guidance and 3D autostereoscopic image overlay. Comput Med Imaging Graph. 2010;34:46–54.CrossRefPubMed Liao H, Ishihara H, Tran HH, Masamune K, Sakuma I, Dohi T. Precision-guided surgical navigation system using laser guidance and 3D autostereoscopic image overlay. Comput Med Imaging Graph. 2010;34:46–54.CrossRefPubMed
56.
go back to reference Wong DY, Leveque JC, Brumblay H, Krebsbach PH, Hollister SJ, Lamarca F. Macro-architectures in spinal cord scaffold implants influence regeneration. J Neurotrauma. 2008;25:1027–37.CrossRefPubMedCentralPubMed Wong DY, Leveque JC, Brumblay H, Krebsbach PH, Hollister SJ, Lamarca F. Macro-architectures in spinal cord scaffold implants influence regeneration. J Neurotrauma. 2008;25:1027–37.CrossRefPubMedCentralPubMed
57.
go back to reference Aoki T, Murakami Y, Enami Y, Fujimori T, Koizumi T, Yamada K, et al. Minimally invasive liver surgery using combination of virtual endoscopy and new ultrasound techniques with image fusion or global positioning system (GPS) tracking. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2012;14:164–5. Aoki T, Murakami Y, Enami Y, Fujimori T, Koizumi T, Yamada K, et al. Minimally invasive liver surgery using combination of virtual endoscopy and new ultrasound techniques with image fusion or global positioning system (GPS) tracking. J Jpn Soc Comput Aided Surg (in Japanese with English abstract). 2012;14:164–5.
58.
go back to reference Matsuki M, Okuda J, Kanazawa S, Kanamoto T, Inada Y, Tatsugami F, et al. Virtual CT colectomy by three-dimensional imaging using multidetector-row CT for laparoscopic colorectal surgery. Abdom Imaging. 2005;30:698–708.CrossRefPubMed Matsuki M, Okuda J, Kanazawa S, Kanamoto T, Inada Y, Tatsugami F, et al. Virtual CT colectomy by three-dimensional imaging using multidetector-row CT for laparoscopic colorectal surgery. Abdom Imaging. 2005;30:698–708.CrossRefPubMed
59.
go back to reference Kowalczuk J, Meyer A, Carlson J, Psota ET, Buettner S, Pérez LC, et al. Real-time 3D soft tissue reconstruction for laparoscopic surgery. Surg Endosc. 2012;26:3413–7.CrossRefPubMed Kowalczuk J, Meyer A, Carlson J, Psota ET, Buettner S, Pérez LC, et al. Real-time 3D soft tissue reconstruction for laparoscopic surgery. Surg Endosc. 2012;26:3413–7.CrossRefPubMed
60.
go back to reference Peterhans M, vom Berg A, Dagon B, Inderbitzin D, Baur C, Candinas D, et al. A navigation system for open liver surgery: design, workflow and first clinical applications. Int J Med Robot. 2011;7:7–16.CrossRefPubMed Peterhans M, vom Berg A, Dagon B, Inderbitzin D, Baur C, Candinas D, et al. A navigation system for open liver surgery: design, workflow and first clinical applications. Int J Med Robot. 2011;7:7–16.CrossRefPubMed
Metadata
Title
Clinical application of navigation surgery using augmented reality in the abdominal field
Authors
Tomoyoshi Okamoto
Shinji Onda
Katsuhiko Yanaga
Naoki Suzuki
Asaki Hattori
Publication date
01-04-2015
Publisher
Springer Japan
Published in
Surgery Today / Issue 4/2015
Print ISSN: 0941-1291
Electronic ISSN: 1436-2813
DOI
https://doi.org/10.1007/s00595-014-0946-9

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