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Information field theory

Non-linear image reconstruction and signal analysis deal with complex inverse problems. To tackle such problems in a systematic way, I present information field theory (IFT) as a means of Bayesian, data based inference on spatially distributed signal fields. IFT is a statistical field theory, which permits the construction of optimal signal recovery algorithms even for non-linear and non-Gaussian signal inference problems. IFT algorithms exploit spatial correlations of the signal fields and benefit from techniques developed to investigate quantum and statistical field theories, such as Feynman diagrams, re-normalisation calculations, and thermodynamic potentials. The theory can be used in many areas, and applications in cosmology and numerics are presented.

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Related contextRelated contextRelated contextAuthorshipTopic signalTopic signalTopic signalTopic signalTopic signalWInformation field theorypreprint / 2013ATorsten EnßlinResearcherTMachine Learning49008 worksTastro-ph.IM4506 worksTInformation Theory6710 worksTmath.IT6610 worksTphysics.data-an1229 works
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Information field theory

preprint / 2013

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