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Artificial Intelligence in Health                                 Artificial intelligence app for EVD navigation



            34.  Cabrilo I, Sarrafzadeh A, Bijlenga P, Landis B, Schaller K.   2008;108(1):88-91.
               Augmented   reality-assisted  skull  base  surgery.     doi: 10.3171/jns/2008/108/01/0088
               Neurochirurgie. 2014;60(6):304-306.
                                                               44.  Brattain LJ, Pierce TT, Gjesteby LA,  et al. AI-enabled,
               doi: 10.1016/j.neuchi.2014.07.001
                                                                  ultrasound-guided handheld robotic device for femoral
            35.  Molina CA, Phillips FM, Poelstra KA, Colman M, Khoo LT.   vascular access. Biosensors (Basel). 2021;11(12):522.
               151. A  cadaveric precision and accuracy analysis of
               augmented reality mediated percutaneous pedicle implant      doi: 10.3390/bios11120522
               insertion. Spine J. 2020;20(9):S74.             45.  Chilamkurthy S, Ghosh R, Tanamala S, et al. Deep learning
                                                                  algorithms for detection of critical findings in head CT scans:
            36.  Burström G, Persson O, Edström E, Elmi-Terander A.
               Augmented reality navigation in spine surgery: A systematic   A retrospective study. Lancet. 2018;392(10162):2388-2396.
               review. Acta Neurochir (Wien). 2021;163:843-852.     doi: 10.1016/S0140-6736(18)31645-3
               doi: 10.1007/s00701-021-04708-3                 46.  Bevan N.  Classifying and Selecting UX and Usability
            37.  Yuk  FJ,  Maragkos  GA,  Sato  K,  Steinberger  J.  Current   Measures. Toulouse, France: Institute of Research in
               innovation in virtual and augmented reality in spine surgery.   Informatics of Toulouse (IRIT); 2008. p. 13-18.
               Ann Transl Med. 2021;9(1):94.                   47.  Support  A.  About Face ID Advanced Technology.
               doi: 10.21037/atm-20-1132                          Available     from:     https://support.apple.com/
                                                                  en-us/102381#:~:text=Face%20ID%20works%20best%20
            38.  Vadalà G, De Salvatore S, Ambrosio L, Russo F, Papalia R,   when,camera%20can%20see%20your%20eyes  [Last
               Denaro V. Robotic spine surgery and augmented reality   accessed on 2025 Aug 31].
               systems: A state of the art. Neurospine. 2020;17(1):88-100.
                                                               48.  Depth  estimation  Technology  in  Iphones.
               doi: 10.14245/ns.2040060.030                       Available  from:  https://www.opencv.ai/blog/depth-
            39.  Parsons D, MacCallum K. Current perspectives on augmented   estimation#:~:text=Depth%20in%20iPhone,TrueDepth%20
               reality in medical education: Applications, affordances and   camera%2C%20and%20Scene%20Geometry [Last accessed
               limitations. Adv Med Educ Pract. 2021;12:77-91.    on 2025 Aug 31].
               doi: 10.2147/AMEP.S249891                       49.  Sang J, Wu Z, Guo P, et al. An improved YOLOv2 for vehicle
                                                                  detection. Sensors. 2018;18(12):4272.
            40.  Williams MA, McVeigh J, Handa AI, Lee R. Augmented
               reality in surgical training: A  systematic review.  Postgrad      doi: 10.3390/s18124272
               Med J. 2020;96(1139):537-542.                   50.  Kakarla UK, Kim LJ, Chang SW, Theodore N, Spetzler RF.
               doi: 10.1136/postgradmedj-2020-137600              Safety and accuracy of bedside external ventricular drain
                                                                  placement.  Neurosurgery. 2008;63(1  Suppl  1):ONS162-
            41.  Muralidharan  R.  External  ventricular  drains:  ONS166; discussion ONS166-ONS167.
               Management  and complications.  Surg Neurol Int.
               2015;6(Suppl 6):S271-S274.                         doi: 10.1227/01.neu.0000335031.23521.d0
               doi: 10.4103/2152-7806.157620                   51.  Patel EA, Aydin A, Cearns M, Dasgupta P, Ahmed  K.
                                                                  A  systematic review of  simulation-based  training  in
            42.  Chau CYC, Craven CL, Rubiano AM, et al. The evolution of   neurosurgery, part  1: Cranial neurosurgery.  World
               the role of external ventricular drainage in traumatic brain
               injury. J Clin Med. 2019;8(9):1422.                Neurosurg. 2020;133:e850-e873.
                                                                  doi: 10.1016/j.wneu.2019.08.262
               doi: 10.3390/jcm8091422
                                                               52.  Sakai D, Joyce K, Sugimoto M, et al. Augmented, virtual and
            43.  Huyette DR, Turnbow BJ, Kaufman C, Vaslow DF,
               Whiting BB, Oh MY. Accuracy of the freehand pass technique   mixed reality in spinal surgery: A  real-world experience.
               for ventriculostomy catheter placement: Retrospective   J Orthop Surg. 2020;28(3):2309499020952698.
               assessment using computed tomography scans. J Neurosurg.      doi: 10.1177/2309499020952698















            Volume 2 Issue 4 (2025)                        138                               doi: 10.36922/aih.8195
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