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DAGs with No Curl: An Efficient DAG Structure Learning Approach

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Recently directed acyclic graph (DAG) structure learning is formulated as a constrained continuous optimization problem with continuous acyclicity constraints and was solved iteratively through subproblem optimization. To further improve efficiency, we propose a novel learning framework to model and learn the weighted adjacency matrices in the DAG space directly. Specifically, we first show that the set of weighted adjacency matrices of DAGs are equivalent to the set of weighted gradients of graph potential functions, and one may perform structure learning by searching in this equivalent set of DAGs. To instantiate this idea, we propose a new algorithm, DAG-NoCurl, which solves the optimization problem efficiently with a two-step procedure: 1) first we find an initial cyclic solution to the optimization problem, and 2) then we employ the Hodge decomposition of graphs and learn an acyclic graph by projecting the cyclic graph to the gradient of a potential function. Experimental studies on benchmark datasets demonstrate that our method provides comparable accuracy but better efficiency than baseline DAG structure learning methods on both linear and generalized structural equation models, often by more than one order of magnitude.
Full Title
DAGs with No Curl: An Efficient DAG Structure Learning Approach
Contributor(s)
Creator: Yu, Yue
Creator: Gao, Tian
Creator: Yin, Naiyu
Creator: Ji, Qiang
Publisher
arXiv
Date Issued
2021-06-14
Language
English
Type
Genre
Form
electronic document
Media type
Creator role
Faculty
Identifier
2106.07197
Yu, . Y., Gao, . T., Yin, . N., & Ji, . Q. (2021). DAGs with No Curl: An Efficient DAG Structure Learning Approach (1–). https://preserve.lehigh.edu/lehigh-scholarship/faculty-staff-publications/faculty-publications/dags-no-curl-efficient-dag
Yu, Yue, Tian Gao, Naiyu Yin, and Qiang Ji. 2021. “DAGs With No Curl: An Efficient DAG Structure Learning Approach”. https://preserve.lehigh.edu/lehigh-scholarship/faculty-staff-publications/faculty-publications/dags-no-curl-efficient-dag.
Yu, Yue, et al. DAGs With No Curl: An Efficient DAG Structure Learning Approach. 14 June 2021, https://preserve.lehigh.edu/lehigh-scholarship/faculty-staff-publications/faculty-publications/dags-no-curl-efficient-dag.