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Sentic Computing - A Common-Sense-Based Framework for Concept-Level Sentiment Analysis

Englisch · Fester Einband

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Beschreibung

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This volume presents a knowledge-based approach to concept-level sentiment analysis at the crossroads between affective computing, information extraction, and common-sense computing, which exploits both computer and social sciences to better interpret and process information on the Web.
Concept-level sentiment analysis goes beyond a mere word-level analysis of text in order to enable a more efficient passage from (unstructured) textual information to (structured) machine-processable data, in potentially any domain.

Readers will discover the following key novelties, that make this approach so unique and avant-garde, being reviewed and discussed:
- Sentic Computing's multi-disciplinary approach to sentiment analysis-evidenced by the concomitant use of AI, linguistics and psychology for knowledge representation and inference
- Sentic Computing's shift from syntax to semantics-enabled by the adoption of the bag-of-concepts model instead of simply counting word co-occurrence frequencies in text
- Sentic Computing's shift from statistics to linguistics-implemented by allowing sentiments to flow from concept to concept based on the dependency relation between clauses

This volume is the first in the Series Socio-Affective Computing edited by Dr Amir Hussain and Dr Erik Cambria and will be of interest to researchers in the fields of socially intelligent, affective and multimodal human-machine interaction andsystems.

Inhaltsverzeichnis

Introduction.- SenticNet.- Sentic Patterns.- Sentic Applications.- Conclusion.- Index.

Zusammenfassung

This volume presents a knowledge-based approach to concept-level sentiment analysis at the crossroads between affective computing, information extraction, and common-sense computing, which exploits both computer and social sciences to better interpret and process information on the Web.
Concept-level sentiment analysis goes beyond a mere word-level analysis of text in order to enable a more efficient passage from (unstructured) textual information to (structured) machine-processable data, in potentially any domain.
 
Readers will discover the following key novelties, that make this approach so unique and avant-garde, being reviewed and discussed:
•    Sentic Computing's multi-disciplinary approach to sentiment analysis-evidenced by the concomitant use of AI, linguistics and psychology for knowledge representation and inference
•    Sentic Computing’s shift from syntax to semantics-enabled by the adoption of the bag-of-concepts model instead of simply counting word co-occurrence frequencies in text
•    Sentic Computing's shift from statistics to linguistics-implemented by allowing sentiments to flow from concept to concept based on the dependency relation between clauses

This volume is the first in the Series Socio-Affective Computing edited by Dr Amir Hussain and Dr Erik Cambria and will be of interest to researchers in the fields of socially intelligent, affective and multimodal human-machine interaction andsystems.

Produktdetails

Autoren Eri Cambria, Erik Cambria, Amir Hussain
Verlag Springer, Berlin
 
Sprache Englisch
Produktform Fester Einband
Erschienen 01.01.2015
 
EAN 9783319236537
ISBN 978-3-31-923653-7
Seiten 176
Abmessung 161 mm x 13 mm x 242 mm
Gewicht 451 g
Illustration XXII, 176 p. 54 illus., 40 illus. in color.
Serien Socio-Affective Computing
Socio-Affective Computing
Themen Naturwissenschaften, Medizin, Informatik, Technik > Medizin > Nichtklinische Fächer

B, Kognitive Psychologie, Data Mining, Linguistics, Neuroscience, Cognition & cognitive psychology, Neurosciences, cognitive psychology, Data Mining and Knowledge Discovery, Biomedical and Life Sciences, Expert systems / knowledge-based systems, Semantics, discourse analysis, stylistics, Semantics

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