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Empirical Methods in Natural Language Generation

Empirical Methods in Natural Language Generation Data-Oriented Methods and Empirical Evaluation - Lecture Notes in Computer Science. Lecture Notes in Artificial Intelligence

2010

Paperback (09 Sep 2010)

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Publisher's Synopsis

Natural language generation (NLG) is a subfield of natural language processing (NLP) that is often characterized as the study of automatically converting non-linguistic representations (e.g., from databases or other knowledge sources) into coherent natural language text. In recent years the field has evolved substantially. Perhaps the most important new development is the current emphasis on data-oriented methods and empirical evaluation. Progress in related areas such as machine translation, dialogue system design and automatic text summarization and the resulting awareness of the importance of language generation, the increasing availability of suitable corpora in recent years, and the organization of shared tasks for NLG, where different teams of researchers develop and evaluate their algorithms on a shared, held out data set have had a considerable impact on the field, and this book offers the first comprehensive overview of recent empirically oriented NLG research.

Book information

ISBN: 9783642155727
Publisher: Springer Berlin Heidelberg
Imprint: Springer
Pub date:
Edition: 2010
DEWEY: 006.35
DEWEY edition: 22
Language: English
Number of pages: 352
Weight: 557g
Height: 235mm
Width: 155mm
Spine width: 19mm