Sentiment analysis in social networks
(eBook)

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Published
Cambridge, MA : Morgan Kaufmann, 2017.
ISBN
9780128044384, 0128044381
Physical Desc
1 online resource
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Format
eBook
Language
English

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Bibliography
Includes bibliographical references and index.
Description
The aim of Sentiment Analysis is to define automatic tools able to extract subjective information from texts in natural language, such as opinions and sentiments, in order to create structured and actionable knowledge to be used by either a decision support system or a decision maker. Sentiment analysis has gained even more value with the advent and growth of social networking. Sentiment Analysis in Social Networks begins with an overview of the latest research trends in the field. It then discusses the sociological and psychological processes underling social network interactions. The book explores both semantic and machine learning models and methods that address context-dependent and dynamic text in online social networks, showing how social network streams pose numerous challenges due to their large-scale, short, noisy, context- dependent and dynamic nature. Further, this volume: Takes an interdisciplinary approach from a number of computing domains, including natural language processing, machine learning, big data, and statistical methodologiesProvides insights into opinion spamming, reasoning, and social network analysisShows how to apply sentiment analysis tools for a particular application and domain, and how to get the best results for understanding the consequencesServes as a one-stop reference for the state-of-the-art in social media analytics.
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O'Reilly,O'Reilly Online Learning Platform: Academic Edition (EZproxy Access)

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Citations

APA Citation, 7th Edition (style guide)

Pozzi, F. A., Fersini, E., Messina, E., & Liu, B. (2017). Sentiment analysis in social networks . Morgan Kaufmann.

Chicago / Turabian - Author Date Citation, 17th Edition (style guide)

Federico Alberto, Pozzi et al.. 2017. Sentiment Analysis in Social Networks. Morgan Kaufmann.

Chicago / Turabian - Humanities (Notes and Bibliography) Citation, 17th Edition (style guide)

Federico Alberto, Pozzi et al.. Sentiment Analysis in Social Networks Morgan Kaufmann, 2017.

MLA Citation, 9th Edition (style guide)

Pozzi, Federico Alberto,, Elisabetta Fersini, Enza Messina, and Bing Liu. Sentiment Analysis in Social Networks Morgan Kaufmann, 2017.

Note! Citations contain only title, author, edition, publisher, and year published. Citations should be used as a guideline and should be double checked for accuracy. Citation formats are based on standards as of August 2021.