Exact multiplicative updates for convolutional $\beta$-NMF in 2D

T., Pedro J. Villasana, Gorlow, Stanislaw

arXiv.org Machine Learning 

In this paper, we extend the $\beta$-CNMF to two dimensions and derive exact multiplicative updates for its factors. The new updates generalize and correct the nonnegative matrix factor deconvolution previously proposed by Schmidt and M{\o}rup. We show by simulation that the updates lead to a monotonically decreasing $\beta$-divergence in terms of the mean and the standard deviation and that the corresponding convergence curves are consistent across the most common values for $\beta$.

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