Corpora: jmlr-announce: JMLR special issue on shallow parsing is now available

Miles Osborne osborne at cogsci.ed.ac.uk
Tue Mar 19 11:20:52 UTC 2002


The Journal of Machine Learning Research is pleased to announce the Special
Issue on Machine Learning Approaches to Shallow Parsing, available online at
http://www.jmlr.org.

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JMLR Special Issue on Shallow Parsing - contents:

Introduction to Special Issue on Machine Learning Approaches to Shallow
Parsing - James Hammerton, Miles Osborne, Susan Armstrong, Walter Daelemans
pp. 551-558

Memory-Based Shallow Parsing - Erik F. Tjong Kim Sang
pp. 559-594

Shallow Parsing using Specialized HMMs - Antonio Molina, Ferran Pla
pp. 595-613

Text Chunking based on a Generalization of Winnow - Tong Zhang, Fred
Damerau, David Johnson
pp. 615-637

Shallow Parsing with PoS Taggers and Linguistic Features - Beata Megyesi
pp. 639-668

Learning Rules and Their Exceptions - Herve Dejean
pp. 669-693

Shallow Parsing using Noisy and Non-Stationary Training Material - Miles
Osborne
pp. 695-719

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All papers in the special issue, as well as all previous JMLR papers, are
available electronically at http://www.jmlr.org/ in PostScript and PDF
formats. Many are also available in HTML. The papers of Volume 1 are also
available in hardcopy from the MIT Press; please see
http://mitpress.mit.edu/JMLR for details.

-David Cohn, <David.Cohn at acm.org>
 Managing Editor, Journal of Machine Learning Research



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