CAM: CAUSAL ADDITIVE MODELS, HIGH-DIMENSIONAL ORDER SEARCH AND PENALIZED REGRESSION

被引:168
作者
Buehlmann, Peter [1 ]
Peters, Jonas [1 ]
Ernest, Jan [1 ]
机构
[1] ETH, Seminar Stat, CH-8092 Zurich, Switzerland
基金
瑞士国家科学基金会;
关键词
Graphical modeling; intervention calculus; nonparametric regression; regularized estimation; sparsity; structural equation model; SELECTION; LASSO; SPARSITY; GRAPHS;
D O I
10.1214/14-AOS1260
中图分类号
O21 [概率论与数理统计]; C8 [统计学];
学科分类号
020208 ; 070103 ; 0714 ;
摘要
We develop estimation for potentially high-dimensional additive structural equation models. A key component of our approach is to decouple order search among the variables from feature or edge selection in a directed acyclic graph encoding the causal structure. We show that the former can be done with nonregularized (restricted) maximum likelihood estimation while the latter can be efficiently addressed using sparse regression techniques. Thus, we substantially simplify the problem of structure search and estimation for an important class of causal models. We establish consistency of the (restricted) maximum likelihood estimator for low- and high-dimensional scenarios, and we also allow for misspecification of the error distribution: Furthermore, we develop an efficient computational algorithm which can deal with many variables, and the new method's accuracy and performance is illustrated on simulated and real data.
引用
收藏
页码:2526 / 2556
页数:31
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