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PUBMED FOR HANDHELDS

Journal Abstract Search


547 related items for PubMed ID: 19699056

  • 1. From medical images to minimally invasive intervention: Computer assistance for robotic surgery.
    Lee SL, Lerotic M, Vitiello V, Giannarou S, Kwok KW, Visentini-Scarzanella M, Yang GZ.
    Comput Med Imaging Graph; 2010 Jan; 34(1):33-45. PubMed ID: 19699056
    [Abstract] [Full Text] [Related]

  • 2. EndoCAS navigator platform: a common platform for computer and robotic assistance in minimally invasive surgery.
    Megali G, Ferrari V, Freschi C, Morabito B, Cavallo F, Turini G, Troia E, Cappelli C, Pietrabissa A, Tonet O, Cuschieri A, Dario P, Mosca F.
    Int J Med Robot; 2008 Sep; 4(3):242-51. PubMed ID: 18698670
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  • 3. Robotic and imaging in urological surgery.
    Teber D, Baumhauer M, Guven EO, Rassweiler J.
    Curr Opin Urol; 2009 Jan; 19(1):108-13. PubMed ID: 19057226
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  • 4. Gaze-contingent control for minimally invasive robotic surgery.
    Mylonas GP, Darzi A, Yang GZ.
    Comput Aided Surg; 2006 Sep; 11(5):256-66. PubMed ID: 17127651
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  • 5. Computer guidance system for single-incision bimanual robotic surgery.
    Carbone M, Turini G, Petroni G, Niccolini M, Menciassi A, Ferrari M, Mosca F, Ferrari V.
    Comput Aided Surg; 2012 Sep; 17(4):161-71. PubMed ID: 22687053
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  • 16. Precision-guided surgical navigation system using laser guidance and 3D autostereoscopic image overlay.
    Liao H, Ishihara H, Tran HH, Masamune K, Sakuma I, Dohi T.
    Comput Med Imaging Graph; 2010 Jan; 34(1):46-54. PubMed ID: 19674871
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  • 17. Patient specific surgical simulator for the evaluation of the movability of bimanual robotic arms.
    Moglia A, Turini G, Ferrari V, Ferrari M, Mosca F.
    Stud Health Technol Inform; 2011 Jan; 163():379-85. PubMed ID: 21335823
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  • 18. Stereo image-based arm tracking for in vivo surgical robotics.
    Psota E, Strabala K, Dumpert J, Pérez LC, Farritor S, Oleynikov D.
    Stud Health Technol Inform; 2011 Jan; 163():454-60. PubMed ID: 21335838
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