INVERSE MONTE-CARLO AS A UNIFIED RECONSTRUCTION ALGORITHM FOR ECT
- 1 October 1986
- journal article
- research article
- Vol. 27 (10) , 1577-1585
Abstract
Tomographic reconstruction for single photon emission computed tomography (SPECT) with simultaneous compensation for attenuation, scatter, and distance dependent collimator resolution is provided by an Inverse Monte Carlo (IMOC) reconstruction algorithm. A detection probability matrix is formed by Monte Carlo solution to the photon transport equation for SPECT acquisition from a unit source activity in each reconstruction source voxel. The measured projection vector will equal the product of this detection probability matrix with the unknown source distribution vector. The resulting large, nonsparse system of equations is solved for the source distribution using an iterative Maximum Likelihood EM estimator. Reconstruction of experimentally acquired projections from phantoms shows quantitative compensation for scatter and attenuation. Comparison with filtered backprojection (FBP) reconstruction shows an improvement in resolution recovery, contrast, and signal-to-noise for the IMOC algorithm. Reconstruction of clinical studies shows improved contrast, structural resolution, and noise characteristics.This publication has 9 references indexed in Scilit:
- On the determination of functions from their integral values along certain manifoldsIEEE Transactions on Medical Imaging, 1986
- DECONVOLUTION OF COMPTON SCATTER IN SPECT1985
- Energy and spatial distribution of multiple order Compton scatter in SPECT: a Monte Carlo investigationPhysics in Medicine & Biology, 1984
- EM RECONSTRUCTION ALGORITHMS FOR EMISSION AND TRANSMISSION TOMOGRAPHY1984
- IMPROVED SPECT QUANTIFICATION USING COMPENSATION FOR SCATTERED PHOTONS1984
- An overview of a camera‐based SPECT systemMedical Physics, 1982
- Attenuation Correction in Gamma Emission Computed TomographyJournal of Computer Assisted Tomography, 1981
- Cylindrical and Section Radioisotope Scanning of the Liver and BrainRadiology, 1964
- Strip Integration in Radio AstronomyAustralian Journal of Physics, 1956