Title :
Identification of Reduced-Order Thermal Therapy Models Using Thermal MR Images: Theory and Validation
Author :
Niu, Ran ; Skliar, Mikhail
Author_Institution :
Dept. of Chem. Eng., Univ. of Utah, Salt Lake City, UT, USA
fDate :
7/1/2012 12:00:00 AM
Abstract :
In this paper, we develop and validate a method to identify computationally efficient site- and patient-specific models of ultrasound thermal therapies from MR thermal images. The models of the specific absorption rate of the transduced energy and the temperature response of the therapy target are identified in the reduced basis of proper orthogonal decomposition of thermal images, acquired in response to a mild thermal test excitation. The method permits dynamic reidentification of the treatment models during the therapy by recursively utilizing newly acquired images. Such adaptation is particularly important during high-temperature therapies, which are known to substantially and rapidly change tissue properties and blood perfusion. The developed theory was validated for the case of focused ultrasound heating of a tissue phantom. The experimental and computational results indicate that the developed approach produces accurate low-dimensional treatment models despite temporal and spatial noises in MR images and slow image acquisition rate.
Keywords :
biological tissues; biomedical MRI; biomedical ultrasonics; biothermics; haemorheology; noise; patient treatment; phantoms; physiological models; MR thermal image; absorption rate; blood perfusion; computationally efficient site-specific model; dynamic reidentification; focused ultrasound heating; high-temperature therapy; image acquisition rate; low-dimensional treatment models; mild thermal test excitation; orthogonal decomposition; patient-specific models; reduced-order thermal therapy models; spatial noise; temperature response; temporal noise; tissue phantom; tissue properties; transduced energy; ultrasound thermal therapy; Computational modeling; Data models; Eigenvalues and eigenfunctions; Equations; Mathematical model; Medical treatment; Temperature measurement; Magnetic resonance imaging (MRI); thermal therapies; tissue modeling; ultrasound specific absorption rate; Absorption; Computer Simulation; Humans; Image Processing, Computer-Assisted; Magnetic Resonance Imaging; Models, Theoretical; Neoplasms; Phantoms, Imaging; Reproducibility of Results; Temperature; Ultrasonic Therapy;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2012.2194720