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A Microsoft HoloLens Mixed Reality Surgical Simulator for Patient-Specific Hip Arthroplasty Training.

, , , , , , , и . AVR (2), том 10851 из Lecture Notes in Computer Science, стр. 201-210. Springer, (2018)

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Augmented Reality Simulator for Laparoscopic Cholecystectomy Training., , , , и . AVR, том 8853 из Lecture Notes in Computer Science, стр. 428-433. Springer, (2014)A Microsoft HoloLens Mixed Reality Surgical Simulator for Patient-Specific Hip Arthroplasty Training., , , , , , , и . AVR (2), том 10851 из Lecture Notes in Computer Science, стр. 201-210. Springer, (2018)Can Liquid Lenses Increase Depth of Field in Head Mounted Video See-Through Devices?, , , , , , , , , и . J. Imaging, 7 (8): 138 (2021)Using of 3D Virtual Reality Electromagnetic Navigation for Challenging Cannulation in FEVAR Procedure., , , , , , и . AVR (2), том 10325 из Lecture Notes in Computer Science, стр. 221-229. Springer, (2017)Proof of Concept: VR Rehabilitation Game for People with Shoulder Disorders., , , , и . AVR (1), том 11613 из Lecture Notes in Computer Science, стр. 344-350. Springer, (2019)A semiautomatic method for in vivo three-dimensional quantitative analysis of fascial layers mobility based on 3D ultrasound scans., , , , , , , и . Int. J. Comput. Assist. Radiol. Surg., 10 (11): 1721-1735 (2015)A 3D sparse motion field filtering for quantitative analysis of fascial layers mobility based on 3D ultrasound scans., , , , , и . EMBC, стр. 775-780. IEEE, (2015)