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Latent Tree Approximation in Linear Model

Published 5 Oct 2017 in cs.IT and math.IT | (1710.01838v1)

Abstract: We consider the problem of learning underlying tree structure from noisy, mixed data obtained from a linear model. To achieve this, we use the expectation maximization algorithm combined with Chow-Liu minimum spanning tree algorithm. This algorithm is sub-optimal, but has low complexity and is applicable to model selection problems through any linear model.

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