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ICML2023顶会

Adaptive Estimation of Graphical Models under Total Positivity

Jiaxi Ying, José Vinícius de Miranda Cardoso, Daniel P. Palomar

2023年份
6被引次数
2顶会引用

摘要

We consider the problem of estimating (diagonally dominant) M-matrices as precision matrices in Gaussian graphical models. These models exhibit intriguing properties, such as the existence of the maximum likelihood estimator with merely two observations for M-matrices and even one observation for diagonally dominant M-matrices . We propose an adaptive multiple-stage estimation method that refines the estimate by solving a weighted ℓ1\ell_1-regularized problem at each stage. Furthermore, we develop a unified framework based on the gradient projection method to solve the regularized problem, incorporating distinct projections to handle the constraints of M-matrices and diagonally dominant M-matrices. A theoretical analysis of the estimation error is provided. Our method outperforms state-of-the-art methods in precision matrix estimation and graph edge identification, as evidenced by synthetic and financial time-series data sets.

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