9781598298345-1598298348-Recognizing Textual Entailment: Models and Applications (Synthesis Lectures on Human Language Technologies, 23)

Recognizing Textual Entailment: Models and Applications (Synthesis Lectures on Human Language Technologies, 23)

ISBN-13: 9781598298345
ISBN-10: 1598298348
Edition: 1
Author: Dan Roth, Ido Dagan, Mark Sammons, Fabio Massimo Zanzotto
Publication date: 2013
Publisher: Morgan & Claypool Publishers
Format: Paperback 220 pages
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Book details

ISBN-13: 9781598298345
ISBN-10: 1598298348
Edition: 1
Author: Dan Roth, Ido Dagan, Mark Sammons, Fabio Massimo Zanzotto
Publication date: 2013
Publisher: Morgan & Claypool Publishers
Format: Paperback 220 pages

Summary

Recognizing Textual Entailment: Models and Applications (Synthesis Lectures on Human Language Technologies, 23) (ISBN-13: 9781598298345 and ISBN-10: 1598298348), written by authors Dan Roth, Ido Dagan, Mark Sammons, Fabio Massimo Zanzotto, was published by Morgan & Claypool Publishers in 2013. With an overall rating of 3.7 stars, it's a notable title among other AI & Machine Learning (Linguistics, Words, Language & Grammar , Computer Science) books. You can easily purchase or rent Recognizing Textual Entailment: Models and Applications (Synthesis Lectures on Human Language Technologies, 23) (Paperback) from BooksRun, along with many other new and used AI & Machine Learning books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $0.36.

Description

In the last few years, a number of NLP researchers have developed and participated in the task of Recognizing Textual Entailment (RTE). This task encapsulates Natural Language Understanding capabilities within a very simple interface: recognizing when the meaning of a text snippet is contained in the meaning of a second piece of text. This simple abstraction of an exceedingly complex problem has broad appeal partly because it can be conceived also as a component in other NLP applications, from Machine Translation to Semantic Search to Information Extraction. It also avoids commitment to any specific meaning representation and reasoning framework, broadening its appeal within the research community. This level of abstraction also facilitates evaluation, a crucial component of any technological advancement program.

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