Matrix Factorisation with Linear Filters
Machine Learning
2015-09-08 v1
Abstract
This text investigates relations between two well-known family of algorithms, matrix factorisations and recursive linear filters, by describing a probabilistic model in which approximate inference corresponds to a matrix factorisation algorithm. Using the probabilistic model, we derive a matrix factorisation algorithm as a recursive linear filter. More precisely, we derive a matrix-variate recursive linear filter in order to perform efficient inference in high dimensions. We also show that it is possible to interpret our algorithm as a nontrivial stochastic gradient algorithm. Demonstrations and comparisons on an image restoration task are given.
Cite
@article{arxiv.1509.02088,
title = {Matrix Factorisation with Linear Filters},
author = {Ömer Deniz Akyıldız},
journal= {arXiv preprint arXiv:1509.02088},
year = {2015}
}
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