Abk�rzung zur Hauptnavigation Abk�rzung zu den Newsmeldungen Abk�rzung zu den Topstories  
  Barrierefreiheit    Kontakt MedUni Wien    Intranet    MedUni Wien - Shop    Universitätsbibliothek    Universitätsklinikum AKH Wien  
 
ccc_logo_en.gif
 
AKH Wien
 
 
Hauptnavigation
  • Home
  • Über das CCC
    • Allgemeines
    • Leitung der Organisationseinheit
    • CCC-Office Team
    • Kliniken und Partner
    • Qualitätsmanagement
    • Kontakt
  • PatientInnen
    • Covid-19
    • Allgemeines
    • Cancer School
    • Terminvereinbarung
    • Pflegeambulanz
    • PatientInnenvertretung
    • Links
  • Klinischer Bereich
    • Allgemeines
    • CCC Tumorboards
  • Wissenschaft & Forschung
    • Young CCC
    • CCC-ExpertInnenvideos
    • CCC Forschungscluster
    • CCC Units
    • CCC Platforms
    • Translationale Forschung
    • CCC Best Paper Award
    • CCC-TRIO Symposium
    • Kontakt/Links
  • Lehre
    • CCC Cancer School
    • CCC Cancer Update
    • Vienna International Summer School on Clinical and Experimental Oncology - VSSO
    • Interdisziplinäre onkologische Ausbildung
    • Klinisch-Praktisches Jahr (KPJ)
    • PhD Programme
    • Postgraduelle Fort- und Weiterbildung
    • Information/Contact
 
 
Subnavigation
    Inhaltsbereich


    Zurück zur Übersicht
    Medical physics. 1999 Feb 5.
    Systematic distortions in magnetic position digitizers.
    Birkfellner W1,  Watzinger F,  Wanschitz F,  Enislidis G,  Kollmann C,  Rafolt D,  Nowotny R,  Ewers R,  Bergmann H
    Author information
    1Department of Biomedical Engineering and Physics, University of Vienna General Hospital, Austria. wbirk@bmtp.akh-wien.ac.at
    Abstract

    Medical devices equipped with position sensors enable applications like image guided surgical interventions, reconstruction of three-dimensional 3D ultrasound (US) images, and virtual or augmented reality systems. The acquisition of three-dimensional position data in real time is one of the key technologies in this field. The systematic distortions induced by various metals, surgical tools, and US scan probes in different commercial electromagnetic tracking systems were assessed in the presented work. A precise nonmetallic six degree-of-freedom measurement rack was built that allowed a quantitative comparison of different electromagnetic trackers. Also, their performance in the presence of large metallic structures was quantified in a phantom study on an acrylic skull model in an operating room (OR). The trackers used were alternating current (ac) and direct current (dc) based systems. The ac trackers were, on average, distorted by 0.7 mm and 0.5 degree by metallic objects positioned at a distance greater than 120 mm between the geometrical center of the sample and the sensor. In the OR environment, the ac system exhibits mean errors of 3.2 +/- 2.4 mm and 2.9 degrees +/- 1.9 degrees. The dc trackers are more sensitive to distortions caused by ferromagnetic materials (averaged value: 1.6 mm and 0.5 degree beyond a distance of 120 mm). The dc tracker shows no distortions from other conductive materials but was less accurate in the OR environment (typical error: 6.4 +/- 2.5 mm and 4.9 degrees +/- 2.0 degrees). At distances smaller than approximately 100 mm between sample and sensor error increases quickly. It is also apparent from our measurements that the influence of US scan probes is governed by their shielding material. The results show that surgical instruments not containing conductive material are to be preferred when using an ac tracker. Nonferromagnetic instruments should be used with dc trackers. Static distortions caused by the OR environment have to be compensated by precise calibration methods.


    Publikations ID: 9829253
    Quelle: öffnen
     
    Drucken
     
    ccc_logo_en.gif
    ccc_logo_en.gif
    ccc_logo_en.gif

    Schnellinfo

     
    -- Initiative Krebsforschung / Krebsforschungslauf

    -- Cancer Care
    -- Kliniken und Partner
    -- CCC Cancer School
    -- Young CCC
    -- CCC Tumorboards
    -- CCC Forschungscluster
    -- CCC Units
    -- CCC Platforms
    -- SOPs / Leitlinien
    -- Kontakt
    Zuklappen
     
    Ausklappen
     
     

    Featured

     
     
     
     
     
     
     
     
     
     
     
     
     
    © MedUni Wien |
     Impressum | Nutzungsbedingungen | Kontakt