Bayesian Network Learning via Topological Order
January 20, 2017 ยท Declared Dead ยท ๐ Journal of machine learning research
"No code URL or promise found in abstract"
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Authors
Young Woong Park, Diego Klabjan
arXiv ID
1701.05654
Category
stat.ML: Machine Learning (Stat)
Cross-listed
cs.DS
Citations
30
Venue
Journal of machine learning research
Last Checked
4 months ago
Abstract
We propose a mixed integer programming (MIP) model and iterative algorithms based on topological orders to solve optimization problems with acyclic constraints on a directed graph. The proposed MIP model has a significantly lower number of constraints compared to popular MIP models based on cycle elimination constraints and triangular inequalities. The proposed iterative algorithms use gradient descent and iterative reordering approaches, respectively, for searching topological orders. A computational experiment is presented for the Gaussian Bayesian network learning problem, an optimization problem minimizing the sum of squared errors of regression models with L1 penalty over a feature network with application of gene network inference in bioinformatics.
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