Time-domain reconstruction algorithms and numerical simulations for thermoacoustic tomography in various geometries
Top Cited Papers
- 11 August 2003
- journal article
- research article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Biomedical Engineering
- Vol. 50 (9) , 1086-1099
- https://doi.org/10.1109/tbme.2003.816081
Abstract
In this paper, we present time-domain reconstruction algorithms for the thermoacoustic imaging of biological tissues. The algorithm for a spherical measurement configuration has recently been reported in another paper. Here, we extend the reconstruction algorithms to planar and cylindrical measurement configurations. First, we generalize the rigorous reconstruction formulas by employing Green's function technique. Then, in order to detect small (compared with the measurement geometry) but deeply buried objects, we can simplify the formulas when two practical conditions exist: 1) that the high-frequency components of the thermoacoustic signals contribute more to the spatial resolution than the low-frequency ones, and 2) that the detecting distances between the thermoacoustic sources and the detecting transducers are much greater than the wavelengths of the high-frequency thermoacoustic signals (i.e., those that are useful for imaging). The simplified formulas are computed with temporal back projections and coherent summations over spherical surfaces using certain spatial weighting factors. We refer to these reconstruction formulas as modified back projections. Numerical results are given to illustrate the validity of these algorithms.Keywords
This publication has 22 references indexed in Scilit:
- Microwave‐induced thermoacoustic tomography using multi‐sector scanningMedical Physics, 2001
- Temporal backward projection of optoacoustic pressure transients using Fourier transform methodsPhysics in Medicine & Biology, 2001
- Scanning microwave-induced thermoacoustic tomography: Signal, resolution, and contrastMedical Physics, 2001
- Optimal statistical approach to optoacoustic image reconstruction.Applied Optics, 2000
- Image reconstruction for photoacoustic scanning of tissue structuresApplied Optics, 2000
- Optoacoustic infrared spectroscopy of soft tissueJournal of Applied Physics, 2000
- Microscopic mechanisms of laser ablation of organic solids in the thermal and stress confinement irradiation regimesJournal of Applied Physics, 2000
- Sensitivity of laser opto-acoustic imaging in detection of small deeply embedded tumorsIEEE Journal of Selected Topics in Quantum Electronics, 1999
- Ultrasonic imaging of the human bodyReports on Progress in Physics, 1999
- Nonionizing electromagnetic wave effects in biological materials and systemsProceedings of the IEEE, 1972