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Synapse
January 1, 20032,887 citationsOpen Access

Feature-rich part-of-speech tagging with a cyclic dependency network

KTKristina ToutanovaDKDan KleinCMChristopher D. Manning

Key Points

  • The aim is to develop a part-of-speech tagger that utilizes contextual dependencies and advanced features for improved accuracy.
  • Developed a cyclic dependency network that incorporates both preceding and following tag contexts.
  • Utilized broad lexical features by conditioning on multiple consecutive words.
  • Applied conditional loglinear models with effective use of priors and fine-grained modeling of unknown words.
  • Achieved a 97.24% accuracy on the Penn Treebank WSJ dataset.
  • Demonstrated a 4.4% reduction in errors compared to the previous best automatically learned tagging result.

Abstract

We present a new part-of-speech tagger that demonstrates the following ideas: (i) explicit use of both preceding and following tag contexts via a dependency network representation, (ii) broad use of lexical features, including jointly conditioning on multiple consecutive words, (iii) effective use of priors in conditional loglinear models, and (iv) fine-grained modeling of unknown word features. Using these ideas together, the resulting tagger gives a 97.24% accuracy on the Penn Treebank WSJ, an error reduction of 4.4% on the best previous single automatically learned tagging result.

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Cite This Study

Toutanova et al. (2003) studied this question.

synapsesocial.com/papers/6a0a57998e4d6c81685742echttps://doi.org/10.3115/1073445.1073478
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