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Sentiment analysismining opinions, s...
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Liu, Bing.
Sentiment analysismining opinions, sentiments, and emotions /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Sentiment analysisBing Liu.
Reminder of title:
mining opinions, sentiments, and emotions /
Author:
Liu, Bing.
Published:
Cambridge :Cambridge University Press,2015.
Description:
367 p. :digital ;24 cm.
Notes:
Title from publisher's bibliographic system (viewed on 05 Oct 2015).
Subject:
Natural language processing (Computer science)
Online resource:
https://doi.org/10.1017/CBO9781139084789
ISBN:
9781139084789$q(electronic bk.)
Sentiment analysismining opinions, sentiments, and emotions /
Liu, Bing.
Sentiment analysis
mining opinions, sentiments, and emotions /[electronic resource] :Bing Liu. - Cambridge :Cambridge University Press,2015. - 367 p. :digital ;24 cm.
Title from publisher's bibliographic system (viewed on 05 Oct 2015).
Machine generated contents note: 1. Introduction; 2. The problem of sentiment analysis; 3. Document sentiment classification; 4. Sentence subjectivity and sentiment classification; 5. Aspect sentiment classification; 6. Aspect and entity extraction; 7. Sentiment lexicon generation; 8. Analysis of comparative opinions; 9. Opinion summarization and search; 10. Analysis of debates and comments; 11. Mining intentions; 12. Detecting fake or deceptive opinions; 13. Quality of reviews.
Sentiment analysis is the computational study of people's opinions, sentiments, emotions, and attitudes. This fascinating problem is increasingly important in business and society. It offers numerous research challenges but promises insight useful to anyone interested in opinion analysis and social media analysis. This book gives a comprehensive introduction to the topic from a primarily natural-language-processing point of view to help readers understand the underlying structure of the problem and the language constructs that are commonly used to express opinions and sentiments. It covers all core areas of sentiment analysis, includes many emerging themes, such as debate analysis, intention mining, and fake-opinion detection, and presents computational methods to analyze and summarize opinions. It will be a valuable resource for researchers and practitioners in natural language processing, computer science, management sciences, and the social sciences.
ISBN: 9781139084789$q(electronic bk.)Subjects--Topical Terms:
200539
Natural language processing (Computer science)
LC Class. No.: QA76.9.N38 / L58 2015
Dewey Class. No.: 006.312
Sentiment analysismining opinions, sentiments, and emotions /
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mining opinions, sentiments, and emotions /
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Machine generated contents note: 1. Introduction; 2. The problem of sentiment analysis; 3. Document sentiment classification; 4. Sentence subjectivity and sentiment classification; 5. Aspect sentiment classification; 6. Aspect and entity extraction; 7. Sentiment lexicon generation; 8. Analysis of comparative opinions; 9. Opinion summarization and search; 10. Analysis of debates and comments; 11. Mining intentions; 12. Detecting fake or deceptive opinions; 13. Quality of reviews.
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Sentiment analysis is the computational study of people's opinions, sentiments, emotions, and attitudes. This fascinating problem is increasingly important in business and society. It offers numerous research challenges but promises insight useful to anyone interested in opinion analysis and social media analysis. This book gives a comprehensive introduction to the topic from a primarily natural-language-processing point of view to help readers understand the underlying structure of the problem and the language constructs that are commonly used to express opinions and sentiments. It covers all core areas of sentiment analysis, includes many emerging themes, such as debate analysis, intention mining, and fake-opinion detection, and presents computational methods to analyze and summarize opinions. It will be a valuable resource for researchers and practitioners in natural language processing, computer science, management sciences, and the social sciences.
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https://doi.org/10.1017/CBO9781139084789
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EB QA76.9.N38 L783 2015 2015
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