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Labeled directed acyclic graphs : a generalization of context-specific independence in directed graphical models

Pensar, Johan (author)
Nyman, Henrik (author)
Koski, Timo (author)
KTH,Matematisk statistik
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Corander, Jukka (author)
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 (creator_code:org_t)
2014-06-14
2015
English.
In: Data mining and knowledge discovery. - : Springer Science and Business Media LLC. - 1384-5810 .- 1573-756X. ; 29:2, s. 503-533
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • We introduce a novel class of labeled directed acyclic graph (LDAG) models for finite sets of discrete variables. LDAGs generalize earlier proposals for allowing local structures in the conditional probability distribution of a node, such that unrestricted label sets determine which edges can be deleted from the underlying directed acyclic graph (DAG) for a given context. Several properties of these models are derived, including a generalization of the concept of Markov equivalence classes. Efficient Bayesian learning of LDAGs is enabled by introducing an LDAG-based factorization of the Dirichlet prior for the model parameters, such that the marginal likelihood can be calculated analytically. In addition, we develop a novel prior distribution for the model structures that can appropriately penalize a model for its labeling complexity. A non-reversible Markov chain Monte Carlo algorithm combined with a greedy hill climbing approach is used for illustrating the useful properties of LDAG models for both real and synthetic data sets.

Subject headings

NATURVETENSKAP  -- Data- och informationsvetenskap -- Datavetenskap (hsv//swe)
NATURAL SCIENCES  -- Computer and Information Sciences -- Computer Sciences (hsv//eng)

Keyword

Directed acyclic graph
Graphical model
Context-specific independence
Bayesian model learning
Markov chain Monte Carlo

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Pensar, Johan
Nyman, Henrik
Koski, Timo
Corander, Jukka
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NATURAL SCIENCES
NATURAL SCIENCES
and Computer and Inf ...
and Computer Science ...
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Data mining and ...
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Royal Institute of Technology

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