Natural Language Annotation for Machine Learning
James Pustejovsky
Venduto da Kennys Bookstore, Olney, MD, U.S.A.
Venditore AbeBooks dal 9 ottobre 2009
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Aggiungere al carrelloVenduto da Kennys Bookstore, Olney, MD, U.S.A.
Venditore AbeBooks dal 9 ottobre 2009
Condizione: Nuovo
Quantità: 1 disponibili
Aggiungere al carrello2012. 1st Edition. Paperback. Create your own natural language training corpus for machine learning. This example-driven book walks you through the annotation cycle, from selecting an annotation task and creating the annotation specification to designing the guidelines, creating a "gold standard" corpus, and then beginning the actual data creation with the annotation process. Num Pages: 346 pages, Illustrations. BIC Classification: UYQL. Category: (XV) Technical / Manuals. Dimension: 233 x 179 x 19. Weight in Grams: 560. . . . . . Books ship from the US and Ireland.
Codice articolo V9781449306663
Create your own natural language training corpus for machine learning. Whether you're working with English, Chinese, or any other natural language, this hands-on book guides you through a proven annotation development cycle--the process of adding metadata to your training corpus to help ML algorithms work more efficiently. You don't need any programming or linguistics experience to get started.
Using detailed examples at every step, you'll learn how the MATTER Annotation Development Process helps you Model, Annotate, Train, Test, Evaluate, and Revise your training corpus. You also get a complete walkthrough of a real-world annotation project.
This book is a perfect companion to O'Reilly's Natural Language Processing with Python.
James Pustejovsky teaches and does research in Artificial Intelligence and Computational Linguistics in the Computer Science Department at Brandeis University. His main areas of interest include: lexical meaning, computational semantics, temporal and spatial reasoning, and corpus linguistics. He is active in the development of standards for interoperability between language processing applications, and lead the creation of the recently adopted ISO standard for time annotation, ISO-TimeML. He is currently heading the development of a standard for annotating spatial information in language. More information on publications and research activities can be found at his webpage: pusto.com.
Amber Stubbs recently completed her Ph.D. in Computer Science at Brandeis University, and is currently a Postdoctoral Associate at SUNY Albany. Her dissertation focused on creating an annotation methodology to aid in extracting high-level information from natural language files, particularly biomedical texts. Her website can be found at http://pages.cs.brandeis.edu/~astubbs/
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