Noise and Edge Artifacts in Maximum-Likelihood Reconstructions for Emission Tomography
Donald L. Snyder, Michael I. Miller, Lewis J. Thomas, David G. Politte
Abstract
Donald L. Snyder, Michael I. Miller, Lewis J. Thomas, David G. Politte
Abstract
Images produced in emission tomography with the expectation-maximization algorithm have been observed to become more noisy and to have large distortions near edges as iterations proceed and the images converge towards the maximum-likelihood estimate. It is our conclusion that these artifacts are fundamental to reconstructions based on maximum-likelihood estimation as it has been applied usually; they are not due to the use of the expectation-maximization algorithm, which is but one numerical approach for finding the maximum-likelihood estimate. In this paper, we develop a mathematical approach for suppressing both the noise and edge artifacts by modifying the maximum-likelihood approach to include constraints which the estimate must satisfy.
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Images produced in emission tomography with the expectation-maximization algorithm have been observed to become more noisy and to have large distortions near edges as iterations proceed and the images converge towards the maximum-likelihood estimate. It is our conclusion that these artifacts are fundamental to reconstructions based on maximum-likelihood estimation as it has been applied usually; they are not due to the use of the expectation-maximization algorithm, which is but one numerical approach for finding the maximum-likelihood estimate. In this paper, we develop a mathematical approach for suppressing both the noise and edge artifacts by modifying the maximum-likelihood approach to include constraints which the estimate must satisfy.
Key concepts: Expectation–maximization algorithm, Maximum likelihood, Maximum likelihood sequence estimation, Noise (video), Maximization, Enhanced Data Rates for GSM Evolution, Estimation theory, Iterative reconstruction