Efficient nonparametric bayesian inference for X-ray transforms
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Abstract
We consider the statistical inverse problem of recovering a function flat' geometry and $a=0$ this reduces to the standard Radon transform, but our general setting allows for anisotropic media $M$ and can further model local
attenuation' effects -- both highly relevant in practical imaging problems
such as SPECT tomography. We propose a nonparametric Bayesian inference
approach based on standard Gaussian process priors for
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European Research Council (647812)