Title :
Periodic output feedback controller for cancer treatment with optimization
Author :
Kala, Anisha R Selva ; Auxillia, D. Jeraldin
Author_Institution :
Electron. & Commun. Eng., Jayamatha Eng. Coll., Nagercoil, India
Abstract :
The primary goal of hyperthermia controller is to achieve and maintain desired temperatures of ≥43°C within the tumor while limiting temperatures outside the tumor to safe levels ≤410°C from a baseline temperature of 37°C for a time duration of 30-60 minutes (3600 sees). The thermal model of the tissue is obtained by Pennes´ bio-heat transfer equation and solved using finite difference method. A scanned focused ultrasound transducer is used to heat the tumor. The purpose of the controller for ultrasound hyperthermia treatment is to achieve the desired tumor temperature with an optimal rise time of 360 sec, a fast settling time of less than 720 sec with small oscillations. Therefore a Periodic Output Feedback (POF) Controller which is a type of multi-rate output feedback (MROF) technique is proposed. This control algorithm needs the system to be completely controllable and observable and can give the desired performance even in the presence of unmeasured disturbances. The performance of the periodic output feedback controller is tested on the 1-D model of the tissue. Using performance index minimization, the inter-sampling oscillations and the control efforts are reduced. Simulations are done by varying tumor size and thermal conductivity.
Keywords :
biomedical transducers; biomedical ultrasonics; cancer; cellular biophysics; finite difference methods; heat transfer; hyperthermia; medical control systems; optimisation; thermal conductivity; tumours; ultrasonic therapy; ultrasonic transducers; 1D thermal model; Pennes bioheat transfer equation; cancer treatment; control algorithm; finite difference method; hyperthermia controller; multirate output feedback; optimization; periodic output feedback controller; scanned focused ultrasound transducer; thermal conductivity; time 30 min to 60 min; tumor temperature maintenance; ultrasound hyperthermia treatment; Conductivity; Heating; Muscles; Thermal conductivity; Tumors; Bio-heat transfer equation; multi-rate output feedback; periodic output feedback controller; scanned focused ultrasound transducer;
Conference_Titel :
Communication Control and Computing Technologies (ICCCCT), 2010 IEEE International Conference on
Conference_Location :
Ramanathapuram
Print_ISBN :
978-1-4244-7769-2
DOI :
10.1109/ICCCCT.2010.5670567