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04033nam a2200577 4500 |
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978-3-319-95020-4 |
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20191024191740.0 |
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|a 9783319950204
|9 978-3-319-95020-4
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|a 10.1007/978-3-319-95020-4
|2 doi
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|a 612.8
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|a Poria, Soujanya.
|e author.
|4 aut
|4 http://id.loc.gov/vocabulary/relators/aut
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|a Multimodal Sentiment Analysis
|h [electronic resource] /
|c by Soujanya Poria, Amir Hussain, Erik Cambria.
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|a 1st ed. 2018.
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|a Cham :
|b Springer International Publishing :
|b Imprint: Springer,
|c 2018.
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|a XI, 214 p. 34 illus., 25 illus. in color.
|b online resource.
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|a text
|b txt
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|a computer
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|a online resource
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|a text file
|b PDF
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|a Socio-Affective Computing,
|x 2509-5706 ;
|v 8
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|a Preface -- Introduction and Motivation -- Background -- Literature Survey and Datasets -- Concept Extraction from Natural Text for Concept Level Text Analysis -- EmoSenticSpace: Dense concept-based affective features with common-sense knowledge -- Sentic Patterns: Sentiment Data Flow Analysis by Means of Dynamic Linguistic Patterns -- Combining Textual Clues with Audio-Visual Information for Multimodal Sentiment Analysis -- Conclusion and Future Work -- Index.
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|a This latest volume in the series, Socio-Affective Computing, presents a set of novel approaches to analyze opinionated videos and to extract sentiments and emotions. Textual sentiment analysis framework as discussed in this book contains a novel way of doing sentiment analysis by merging linguistics with machine learning. Fusing textual information with audio and visual cues is found to be extremely useful which improves text, audio and visual based unimodal sentiment analyzer. This volume covers the three main topics of: textual preprocessing and sentiment analysis methods; frameworks to process audio and visual data; and methods of textual, audio and visual features fusion. The inclusion of key visualization and case studies will enable readers to understand better these approaches. Aimed at the Natural Language Processing, Affective Computing and Artificial Intelligence audiences, this comprehensive volume will appeal to a wide readership and will help readers to understand key details on multimodal sentiment analysis.
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|a Neurosciences.
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|a Multimedia information systems.
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|a Optical data processing.
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|a Natural language processing (Computer science).
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|a Translation and interpretation.
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|a Neurosciences.
|0 http://scigraph.springernature.com/things/product-market-codes/B18006
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|a Multimedia Information Systems.
|0 http://scigraph.springernature.com/things/product-market-codes/I18059
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|a Image Processing and Computer Vision.
|0 http://scigraph.springernature.com/things/product-market-codes/I22021
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|a Natural Language Processing (NLP).
|0 http://scigraph.springernature.com/things/product-market-codes/I21040
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|a Translation.
|0 http://scigraph.springernature.com/things/product-market-codes/N47000
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|a Hussain, Amir.
|e author.
|4 aut
|4 http://id.loc.gov/vocabulary/relators/aut
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1 |
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|a Cambria, Erik.
|e author.
|4 aut
|4 http://id.loc.gov/vocabulary/relators/aut
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710 |
2 |
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|a SpringerLink (Online service)
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|t Springer eBooks
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|i Printed edition:
|z 9783319950181
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|i Printed edition:
|z 9783319950198
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|i Printed edition:
|z 9783030069568
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|a Socio-Affective Computing,
|x 2509-5706 ;
|v 8
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|u https://doi.org/10.1007/978-3-319-95020-4
|z Full Text via HEAL-Link
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|a ZDB-2-SBL
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950 |
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|a Biomedical and Life Sciences (Springer-11642)
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