Adaptive real-time bioheat transfer models for computer-driven MR-guided laser induced thermal therapy

David Fuentes, Yusheng Feng, Andrew Elliott, Anil Shetty, Roger J. McNichols, J. Tinsley Oden, R. J. Stafford

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

The treatment times of laser induced thermal therapies (LITT) guided by computational prediction are determined by the convergence behavior of partial differential equation (PDE)-constrained optimization problems. In this paper, we investigate the convergence behavior of a bioheat transfer constrained calibration problem to assess the feasibility of applying to real-time patient specific data. The calibration techniques utilize multiplanar thermal images obtained from the nondestructive in vivo heating of canine prostate. The calibration techniques attempt to adaptively recover the biothermal heterogeneities within the tissue on a patient-specific level and results in a formidable PDE constrained optimization problem to be solved in real time. A comprehensive calibration study is performed with both homogeneous and spatially heterogeneous biothermal model parameters with and without constitutive nonlinearities. Initial results presented here indicate that the calibration problems involving the inverse solution of thousands of model parameters can converge to a solution within three minutes and decrease the ∥ · ∥2L21(0,T;L2(Ω)) norm of the difference between computational prediction and the measured temperature values to a patient-specific regime.

Original languageEnglish (US)
Article number5406092
Pages (from-to)1024-1030
Number of pages7
JournalIEEE Transactions on Biomedical Engineering
Volume57
Issue number5
DOIs
StatePublished - May 2010

Keywords

  • Magnetic resonance (MR) temperature imaging
  • PDE-constrained optimization
  • Real-time computing

ASJC Scopus subject areas

  • Biomedical Engineering

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