• DocumentCode
    1365237
  • Title

    GPU-based Real-Time Approximation of the Ablation Zone for Radiofrequency Ablation

  • Author

    Rieder, Christian ; Kroeger, Thorben ; Schumann, Christian ; Hahn, Horst K.

  • Volume
    17
  • Issue
    12
  • fYear
    2011
  • Firstpage
    1812
  • Lastpage
    1821
  • Abstract
    Percutaneous radiofrequency ablation (RFA) is becoming a standard minimally invasive clinical procedure for the treatment of liver tumors. However, planning the applicator placement such that the malignant tissue is completely destroyed, is a demanding task that requires considerable experience. In this work, we present a fast GPU-based real-time approximation of the ablation zone incorporating the cooling effect of liver vessels. Weighted distance fields of varying RF applicator types are derived from complex numerical simulations to allow a fast estimation of the ablation zone. Furthermore, the heat-sink effect of the cooling blood flow close to the applicator´s electrode is estimated by means of a preprocessed thermal equilibrium representation of the liver parenchyma and blood vessels. Utilizing the graphics card, the weighted distance field incorporating the cooling blood flow is calculated using a modular shader framework, which facilitates the real-time visualization of the ablation zone in projected slice views and in volume rendering. The proposed methods are integrated in our software assistant prototype for planning RFA therapy. The software allows the physician to interactively place virtual RF applicator models. The real-time visualization of the corresponding approximated ablation zone facilitates interactive evaluation of the tumor coverage in order to optimize the applicator´s placement such that all cancer cells are destroyed by the ablation.
  • Keywords
    approximation theory; biomedical electrodes; blood vessels; cancer; cellular biophysics; computer graphic equipment; coprocessors; data visualisation; haemodynamics; interactive systems; liver; medical image processing; numerical analysis; patient treatment; physiological models; rendering (computer graphics); tumours; GPU based real time approximation; RFA therapy; applicator placement planning; blood vessels; cancer cells; cooling blood flow; graphic card; heat sink effect; invasive clinical procedure; liver parenchyma; liver tumor treatment; liver vessels; malignant tissue; modular shader framework; numerical simulation; percutaneous radiofrequency ablation zone; projected slice views; real time visualization; rendering; software assistant prototype; thermal equilibrium representation; weighted distance field; Ablation; Blood flow; Electrodes; Graphics processing unit; Heat sinks; Mathematical model; Radio frequency; Rendering (computer graphics); GPU; Radiofrequency ablation; ablation zone visualization; distance field; interaction.; volume rendering; Catheter Ablation; Computer Graphics; Computer Simulation; Computer Systems; Humans; Liver Neoplasms; Mathematical Concepts; Software; Surgery, Computer-Assisted;
  • fLanguage
    English
  • Journal_Title
    Visualization and Computer Graphics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1077-2626
  • Type

    jour

  • DOI
    10.1109/TVCG.2011.207
  • Filename
    6064944