Computer Science – Computation and Language
Scientific paper
2003-06-10
Intl. Joint Conference on Artificial Intelligence, 2003
Computer Science
Computation and Language
6 pages
Scientific paper
Dynamic Bayesian networks (DBNs) offer an elegant way to integrate various aspects of language in one model. Many existing algorithms developed for learning and inference in DBNs are applicable to probabilistic language modeling. To demonstrate the potential of DBNs for natural language processing, we employ a DBN in an information extraction task. We show how to assemble wealth of emerging linguistic instruments for shallow parsing, syntactic and semantic tagging, morphological decomposition, named entity recognition etc. in order to incrementally build a robust information extraction system. Our method outperforms previously published results on an established benchmark domain.
Peshkin Leonid
Pfeffer Avi
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