BOOK-CHAPTER

An Instance-Specific Algorithm for Learning the Structure of Causal Bayesian Networks Containing Latent Variables

Fattaneh JabbariGregory F. Cooper

Year: 2020 Society for Industrial and Applied Mathematics eBooks Pages: 433-441   Publisher: Society for Industrial and Applied Mathematics

Abstract

Almost all of the existing algorithms for learning a causal Bayesian network structure (CBN) from observational data recover a structure that models the causal relationships that are shared by the instances in a population. Although learning such population-wide CBNs accurately is useful, it is important to learn CBNs that are specific to each instance in domains in which different instances may have varying causal structures, such as in human biology. For example, a breast cancer tumor in a patient (instance) is often a composite of causal mechanisms, where each of these individual causal mechanisms may appear relatively frequently in breast-cancer tumors of other patients, but the particular combination of mechanisms is unique to the current tumor. Therefore, it is critical to discover the specific set of causal mechanisms that are operating in each patient to understand and treat that particular patient effectively.We previously introduced an instance-specific CBN structure learning method that builds a causal model for a given instance T from the features we know about T and from a training set of data on many other instances [12]. However, that method assumes that there are no latent (hidden) confounders, that is, there are no latent variables that cause two or more of the measured variables. Unfortunately, this assumption rarely holds in practice. In the current paper, we introduce a novel instance-specific causal structure learning algorithm that uses partial ancestral graphs (PAGs) to model latent confounders. Simulations support that the proposed instance-specific method improves structure-discovery performance compared to an existing PAG-learning method called GFCI, which is not instance-specific. We also report results that provide support for instance-specific causal relationships existing in real-world datasets.

Keywords:
Bayesian network Latent variable Computer science Artificial intelligence Causal structure Bayesian probability Machine learning Algorithm Pattern recognition (psychology) Physics

Metrics

9
Cited By
1.83
FWCI (Field Weighted Citation Impact)
27
Refs
0.87
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Bayesian Modeling and Causal Inference
Physical Sciences →  Computer Science →  Artificial Intelligence
Data Quality and Management
Social Sciences →  Decision Sciences →  Management Science and Operations Research
Data Mining Algorithms and Applications
Physical Sciences →  Computer Science →  Information Systems

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