• DocumentCode
    863318
  • Title

    Optimization of electromagnetic phased-arrays for hyperthermia via magnetic resonance temperature estimation

  • Author

    Kowalski, Marc E. ; Behnia, Babak ; Webb, Andrew G. ; Jin, Jian-Ming

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
  • Volume
    49
  • Issue
    11
  • fYear
    2002
  • Firstpage
    1229
  • Lastpage
    1241
  • Abstract
    A technique for the optimization of electromagnetic annular phased arrays (APAs) for therapeutic hyperthermia has been developed and implemented. The controllable inputs are the amplitudes and phases of the driving signals of each element of the array. Magnetic resonance imaging (MRI) is used to estimate noninvasively the temperature distribution based on the temperature dependence of the proton resonance frequency (PRF). A parametric model of the dynamics that couple the control inputs to the resultant temperature elevations is developed based on physical considerations. The unknown parameters of this model are estimated during a pretreatment identification phase and can be continuously updated as new measurement data become available. Based on the parametric model, a controller automatically chooses optimal phases and amplitudes of the driving signals of the APA. An advantage of this approach to optimizing the APA is that no a priori information is required, eliminating the need for patient-specific computational modeling and optimization. Additionally, this approach represents a first step toward employing temperature feedback to make the optimization of the APA robust with respect to modeling errors and physiological changes. The ability of the controller to choose therapeutically beneficial driving amplitudes and phases is demonstrated via simulation. Experimental results are presented which demonstrate the ability of the controller to choose optimal phases for the APA using only information from magnetic resonance thermometry (MRT).
  • Keywords
    antenna phased arrays; biocontrol; biomedical MRI; dipole antenna arrays; feedback; hyperthermia; optimal control; optimisation; parameter estimation; radiofrequency heating; temperature distribution; annular phased arrays; cancerous tissue; controller; dipole antennae; electromagnetic phased arrays; feedback control; forward finite difference; magnetic resonance imaging; magnetic resonance temperature estimation; modeling errors; optimal amplitudes; optimal phases; optimization; parametric model; pretreatment identification phase; proton resonance frequency; temperature dependence; temperature distribution; temperature feedback; therapeutic hyperthermia; tomographic temperature estimation; Automatic control; Frequency estimation; Hyperthermia; Magnetic resonance; Magnetic resonance imaging; Optimal control; Parametric statistics; Phase estimation; Phased arrays; Temperature; Computer Simulation; Electromagnetic Fields; Feedback; Heat; Humans; Hyperthermia, Induced; Magnetic Resonance Imaging; Microwaves; Models, Biological; Neoplasms; Phantom Limb; Quality Control; Sensitivity and Specificity; Temperature; Thermometers;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2002.804602
  • Filename
    1046931