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A unifying tutorial on Approximate Message Passing
Published 5 May 2021 in math.ST, cs.IT, math.IT, stat.ML, and stat.TH | (2105.02180v1)
Abstract: Over the last decade or so, Approximate Message Passing (AMP) algorithms have become extremely popular in various structured high-dimensional statistical problems. The fact that the origins of these techniques can be traced back to notions of belief propagation in the statistical physics literature lends a certain mystique to the area for many statisticians. Our goal in this work is to present the main ideas of AMP from a statistical perspective, to illustrate the power and flexibility of the AMP framework. Along the way, we strengthen and unify many of the results in the existing literature.
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