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Distributed Linear Model Clustering over Networks: A Tree-Based Fused-Lasso ADMM Approach

28 May 2019
Xin Zhang
Jia Liu
Zhengyuan Zhu
    FedML
ArXiv (abs)PDFHTML
Abstract

In this work, we consider to improve the model estimation efficiency by aggregating the neighbors' information as well as identify the subgroup membership for each node in the network. A tree-based l1l_1l1​ penalty is proposed to save the computation and communication cost. We design a decentralized generalized alternating direction method of multiplier algorithm for solving the objective function in parallel. The theoretical properties are derived to guarantee both the model consistency and the algorithm convergence. Thorough numerical experiments are also conducted to back up our theory, which also show that our approach outperforms in the aspects of the estimation accuracy, computation speed and communication cost.

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