| Literature DB >> 29387291 |
Kenji Mitsuhashi1,1, Joemini Poudel1,1, Thomas P Matthews1,1, Alejandro Garcia-Uribe1,1, Lihong V Wang1, Mark A Anastasio1.
Abstract
Photoacoustic computed tomography (PACT) is an emerging imaging modality that exploits optical contrast and ultrasonic detection principles to form images of the photoacoustically induced initial pressure distribution within tissue. The PACT reconstruction problem corresponds to an inverse source problem in which the initial pressure distribution is recovered from measurements of the radiated wavefield. A major challenge in transcranial PACT brain imaging is compensation for aberrations in the measured data due to the presence of the skull. Ultrasonic waves undergo absorption, scattering and longitudinal-to-shear wave mode conversion as they propagate through the skull. To properly account for these effects, a wave-equation-based inversion method should be employed that can model the heterogeneous elastic properties of the skull. In this work, a forward model based on a finite-difference time-domain discretization of the three-dimensional elastic wave equation is established and a procedure for computing the corresponding adjoint of the forward operator is presented. Massively parallel implementations of these operators employing multiple graphics processing units (GPUs) are also developed. The developed numerical framework is validated and investigated in computer19 simulation and experimental phantom studies whose designs are motivated by transcranial PACT applications.Entities:
Keywords: Photoacoustic computed tomography; elastic wave equation; image reconstruction; transcranial imaging
Year: 2017 PMID: 29387291 PMCID: PMC5788322 DOI: 10.1137/16M1107619
Source DB: PubMed Journal: SIAM J Imaging Sci ISSN: 1936-4954 Impact factor: 2.867