Page 70 - Read Online
P. 70

Page 400                                                 Sadagopan et al. Art Int Surg 2024;4:387-400  https://dx.doi.org/10.20517/ais.2024.34

               34.      Chenin L, Capel C, Fichten A, Peltier J, Lefranc M. Evaluation of screw placement accuracy in circumferential lumbar arthrodesis
                   using robotic assistance and intraoperative flat-panel computed tomography. World Neurosurg 2017;105:86-94.  DOI  PubMed
               35.      Lefranc M, Peltier J. Evaluation of the ROSA™ Spine robot for minimally invasive surgical procedures. Expert Rev Med Devices
                   2016;13:899-906.  DOI  PubMed
               36.      Jiang B, Karim Ahmed A, Zygourakis CC, et al. Pedicle screw accuracy assessment in ExcelsiusGPS® robotic spine surgery:
                   evaluation of deviation from pre-planned trajectory. Chin Neurosurg J 2018;4:23.  DOI  PubMed  PMC
               37.      Lee NJ, Buchanan I, Boddapati V, et al. P16. Is there a difference in screw accuracy, robot time per screw, robot abandonment, and
                   radiation exposure between the Mazor X and the renaissance? A propensity-matched analysis of 1,179 robot-assisted screws. Spine J
                   2021;21:S147-8.  DOI
               38.      BÄcker HC, Freibott CE, Perka C, Weidenbaum M. Surgeons’ learning curve of renaissance robotic surgical system. Int J Spine Surg
                   2020;14:818-23.  DOI  PubMed  PMC
               39.      Alluri RK, Avrumova F, Sivaganesan A, Vaishnav AS, Lebl DR, Qureshi SA. Overview of robotic technology in spine surgery. HSS J
                   2021;17:308-16.  DOI  PubMed  PMC
               40.      Devito DP, Kaplan L, Dietl R, et al. Clinical acceptance and accuracy assessment of spinal implants guided with SpineAssist surgical
                   robot: retrospective study. Spine 2010;35:2109-15.  DOI
               41.      Connor MJ, Dasgupta P, Ahmed HU, Raza A. Autonomous surgery in the era of robotic urology: friend or foe of the future surgeon?
                   Nat Rev Urol 2020;17:643-9.  DOI  PubMed
               42.      Shademan A, Decker RS, Opfermann JD, Leonard S, Krieger A, Kim PC. Supervised autonomous robotic soft tissue surgery. Sci
                   Transl Med 2016;8:337ra64.  DOI  PubMed
               43.      O’Sullivan S, Nevejans N, Allen C, et al. Legal, regulatory, and ethical frameworks for development of standards in artificial
                   intelligence (AI) and autonomous robotic surgery. Int J Med Robot 2019;15:e1968.  DOI  PubMed
               44.      Bhandari M, Zeffiro T, Reddiboina M. Artificial intelligence and robotic surgery: current perspective and future directions. Curr Opin
                   Urol 2020;30:48-54.  DOI  PubMed
               45.      Moustris GP, Hiridis SC, Deliparaschos KM, Konstantinidis KM. Evolution of autonomous and semi-autonomous robotic surgical
                   systems: a review of the literature. Int J Med Robot 2011;7:375-92.  DOI  PubMed
               46.      Attanasio A, Scaglioni B, De Momi E, Fiorini P, Valdastri P. Autonomy in surgical robotics. Annu Rev Control Robot Auton Syst
                   2021;4:651-79.  DOI
               47.      Lauer M, Barker JP, Solano M, Dubin J. FDA device regulation. Mo Med 2017;114:283-8.  PubMed  PMC
               48.      Gkegkes ID, Mamais IA, Iavazzo C. Robotics in general surgery: a systematic cost assessment. J Minim Access Surg 2017;13:243-55.
                   DOI  PubMed  PMC
               49.      Hashimoto DA, Rosman G, Rus D, Meireles OR. Artificial intelligence in surgery: promises and perils. Ann Surg 2018;268:70-6.  DOI
                   PubMed  PMC
   65   66   67   68   69   70   71   72   73   74   75