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Research Article

A computer-assisted robotic platform for vascular procedures exploiting 3D US-based tracking

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References

  • WHO. World Health Organization. Cardiovascular diseases (CVDs) Fact sheet No 317 2015. Available from: http://www.who.int/mediacentre/factsheets/fs317/en/.
  • Dotter CT, Judkins MP. Transluminal treatment of arteriosclerotic obstruction description of a new technic and a preliminary report of its application. Circulation. 1964;30:654–670.
  • Seldinger SI. Catheter replacement of the needle in percutaneous arteriography: a new technique. Acta Radiologica [Old Series]. 1953;39:368–376.
  • Bloss P, Rothe W, Wünsche P, et al. Investigations of the pushability behavior of cardiovascular angiographic catheters. Bio-Med Mater Eng. 2003;13:327–343.
  • Sensei TM. Robotic Navigation System; [cited 2013 Sept 30]. Available from: http://www.hansenmedical.com/sensei.
  • CorPath 200 System; [cited 2013 Sept 30]. Available from: http://www.corindus.com/products/CorPath200.aspx.
  • Niobe TM Remote Controlled Magnetic Navigation System; [cited 2013 Sept 30]. Available from: http://www.stereotaxis.com/.
  • Arcese L, Cherry A, Fruchard M, et al., editors. Optimal trajectory for a microrobot navigating in blood vessels. Engineering in Medicine and Biology Society (EMBC), 2010 Annual International Conference of the IEEE; 2010: IEEE.
  • Martel S, Mohammadi M, Felfoul O, et al. Flagellated magnetotactic bacteria as controlled MRI-trackable propulsion and steering systems for medical nanorobots operating in the human microvasculature. Int J Robot Res. 2009;28:571–582.
  • Choi J, Choi H, Cha K, et al., editors. Two-dimensional locomotive permanent magnet using electromagnetic actuation system with two pairs stationary coils. In: 2009 IEEE International Conference on Robotics and Biomimetics (ROBIO). New York: IEEE; 2009.
  • Fountain TW, Kailat PV, Abbott JJ, editors. Wireless control of magnetic helical microrobots using a rotating-permanent-magnet manipulator. In: 2010 IEEE International Conference on Robotics and Automation (ICRA). New York: IEEE; 2010.
  • Pan Q, Guo S, Okada T, editors. Development of a wireless hybrid microrobot for biomedical applications. In: 2010 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS). New York: IEEE; 2010.
  • Yesin KB, Vollmers K, Nelson BJ. Modeling and control of untethered biomicrorobots in a fluidic environment using electromagnetic fields. Int J Robot Res. 2006;25:527–536.
  • Nakamura S, Harada K, Sugita N, et al., editors. Electromagnetic drive of microrobot geometrically constrained in blood vessel. In: Engineering in Medicine and Biology Society, EMBC, 2011 Annual International Conference of the IEEE. New York: IEEE; 2011.
  • Plotner P, Harada K, Sugita N, et al., editors. Theoretical analysis of magnetically propelled microrobots in the cardiovascular system. In: Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE. New York: IEEE; 2014.
  • Koizumi N, Funamoto T, Seo J, et al., editors. A novel robust template matching method to track and follow body targets for NIUTS. In: 2014 IEEE International Conference on Robotics and Automation (ICRA). New York: IEEE; 2014.
  • Krupa A, Fichtinger G, Hager GD. Real-time motion stabilization with B-mode ultrasound using image speckle information and visual servoing. Int J Robotics Res. 2009;28:1334–1354.
  • Abolmaesumi P, Salcudean SE, Zhu W-H, et al. Image-guided control of a robot for medical ultrasound. IEEE Trans Robotics Autom. 2002;18:11–23.
  • Martel S. Microrobotics in the vascular network: present status and next challenges. J Micro-Bio Robot. 2013;8:41–52.
  • Tognarelli S, Miloro P, Verbeni A, et al., editors. Low invasive therapy under robotic guidance in the vascular district: a case study. In: 3rd Joint Workshop on New Technologies for Computer/Robot Assisted Surgery; 2013: Proceeding of the Workshop on New Technologies for Computer/Robot Assisted Surgery.
  • Miloro P, Llewellyn MK, Tognarelli S, et al., editors. An innovative platform for treatment of vascular obstructions: system design and preliminary results. In: 2012 4th IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics (BioRob). New York: IEEE; 2012.
  • Tognarelli S, Castelli V, Ciuti G, et al. Magnetic propulsion and ultrasound tracking of endovascular devices. J Robot Surg. 2012;6:5–12.
  • Moore JT, Chu MW, Kiaii B, et al. A navigation platform for guidance of beating heart transapical mitral valve repair. IEEE Trans Bio-Med Eng. 2013;60:1034–1040.
  • Lange T, Eulenstein S, Hünerbein M, et al. Augmenting intraoperative 3D ultrasound with preoperative models for navigation in liver surgery. In: Barillot C, Haynor D, Hellier P, editors. Medical image computing and computer-assisted intervention–MICCAI 2004. Lecture Notes in Computer Science, vol. 3217. Berlin, Heidelberg: Springer; 2004. p. 534–541.
  • Cannon JW, Stoll JA, Salgo IS, et al. Real-time three-dimensional ultrasound for guiding surgical tasks. Comput Aided Surg. 2003;8:82–90.
  • Mura M, Ciuti G, Ferrari V, et al. Ultrasound-based tracking strategy for endoluminal devices in cardiovascular surgery. Int J Med Robot Comput Assist Surg. 2015;11:319–330.
  • Zhang L, Parrini S, Freschi C, et al. 3D ultrasound centerline tracking of abdominal vessels for endovascular navigation. Int J Comput Assist Radiol Surg. 2013:1–9.
  • Erbel R, Eggebrecht H. Aortic dimensions and the risk of dissection. Heart. 2006;92:137–142.
  • Bloomfield PE, Lo W-J, Lewin PA. Experimental study of the acoustical properties of polymers utilized to construct PVDF ultrasonic transducers and the acousto-electric properties of PVDF and P (VDF/TrFE) films. IEEE Trans Ultrason Ferroelectrics Freq Control. 2000;47:1397–1405.
  • Goss S, Frizzell L, Dunn F. Ultrasonic absorption and attenuation in mammalian tissues. Ultrasound Med Biol. 1979;5:181–186.
  • Freschi C, Troia E, Ferrari V, et al. Ultrasound guided robotic biopsy using augmented reality and human-robot cooperative control. In: Conference Proceedings: Annual International Conference of the IEEE Engineering in Medicine and Biology Society IEEE Engineering in Medicine and Biology Society Annual Conference. 2009;2009:5110-3.
  • Martin: FPaB. Robot Sensor Calibration: Solving AX = XB on the Euclidean Group. IEEE Trans Robot Autom. 1994;10:117–721.
  • Viswanathan A, Boctor EM, Taylor RH, et al., editors. Immediate ultrasound calibration with three poses and minimal image processing. Lecture Notes in Computer Science; 2004.
  • Freschi C, Parrini S, Dinelli N, et al. Hybrid simulation using mixed reality for interventional ultrasound imaging training. Int J Comput Assist Radiol Surg. 2015;10:1109–1115.
  • Lo Presti G, Freschi C, Sinceri S, et al. Virtual reality surgical navigation system for holmium laser enucleation of the prostate. Lecture Notes Comput Sci (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics); 2014. p. 79–89.
  • Kim HS, Choi YJ. The kinematic error bound analysis of the Stewart platform. J Robot Syst. 2000;17:63–73.
  • Parrini S, Cutolo F, Freschi C, et al., editors. Augmented reality system for freehand guide of magnetic endovascular devices. Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE. New York: IEEE; 2014.
  • Strobl KH, Hirzinger G, editors. Optimal hand-eye calibration. In: 2006 IEEE/RSJ International Conference on Intelligent Robots and Systems. New York: IEEE; 2006.