Title :
Improved Volumetric MR-HIFU Ablation by Robust Binary Feedback Control
Author :
Enholm, Julia K. ; Köhler, Max O. ; Quesson, Bruno ; Mougenot, Charles ; Moonen, Chrit T W ; Sokka, Shunmugavelu D.
Author_Institution :
Philips Healthcare, Vantaa, Finland
Abstract :
Volumetric high-intensity focused ultrasound (HIFU) guided by multiplane magnetic resonance (MR) thermometry has been shown to be a safe and efficient method to thermally ablate large tissue volumes. However, the induced temperature rise and thermal lesions show significant variability, depending on exposure parameters, such as power and timing, as well as unknown tissue parameters. In this study, a simple and robust feedback-control method that relies on rapid MR thermometry to control the HIFU exposure during heating is introduced. The binary feedback algorithm adjusts the durations of the concentric ablation circles within the target volume to reach an optimal temperature. The efficacy of the binary feedback control was evaluated by performing 90 ablations in vivo and comparing the results with simulations. Feedback control of the sonications improved the reproducibility of the induced lesion size. The standard deviation of the diameter was reduced by factors of 1.9, 7.2, 5.0, and 3.4 for 4-, 8-, 12-, and 16-mm lesions, respectively. Energy efficiency was also improved, as the binary feedback method required less energy to create the desired lesion. These results show that binary feedback improves the quality of volumetric ablation by consistently producing thermal lesions of expected size while reducing the required energy as well.
Keywords :
acoustic magnetic resonance; biological tissues; biology computing; biothermics; optimisation; thermometers; tumours; ultrasonic therapy; MR thermometry; concentric ablation circles; energy efficiency; exposure parameters; feedback-control method; heating; multiplane magnetic resonance thermometry; robust binary feedback control; size 12 mm; size 16 mm; size 4 mm; size 8 mm; sonications; thermal ablation; thermal lesions; volumetric MR-HIFU ablation; volumetric ablation; volumetric high-intensity focused ultrasound; Feedback control; Heating; Lesions; Magnetic resonance; Performance evaluation; Robust control; Temperature control; Temperature dependence; Timing; Ultrasonic imaging; Ablation; MRI; biomedical applications of acoustic radiation; feedback; Algorithms; Animals; Computer Simulation; Feedback; High-Intensity Focused Ultrasound Ablation; Magnetic Resonance Imaging, Interventional; Male; Signal Processing, Computer-Assisted; Swine;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2009.2034636