Computing Attitude and Affect in Text - Info and Reading Options
Theory and Applications (The Information Retrieval Series)
By James G. Shanahan and Janyce M. Wiebe

"Computing Attitude and Affect in Text" is published by Springer in January 9, 2006, it has 341 pages and the language of the book is English.
“Computing Attitude and Affect in Text” Metadata:
- Title: ➤ Computing Attitude and Affect in Text
- Authors: James G. ShanahanJanyce M. Wiebe
- Language: English
- Number of Pages: 341
- Publisher: Springer
- Publish Date: January 9, 2006
“Computing Attitude and Affect in Text” Subjects and Themes:
- Subjects: ➤ Lexicology - Computational linguistics - Pattern recognition systems - Information storage and retrieval systems - Linguistic models - Data processing - Natural language processing (Computer science) - Computer science - Information systems - Artificial intelligence - Translators (Computer programs) - Computer Science, general - Information Systems Applications (incl.Internet) - Artificial Intelligence (incl. Robotics) - Language Translation and Linguistics - Computer Applications
Edition Specifications:
- Format: Hardcover
- Weight: 1.7 pounds
- Dimensions: 9.5 x 6.3 x 0.8 inches
Edition Identifiers:
- The Open Library ID: OL8371702M - OL18781343W
- Library of Congress Control Number (LCCN): 2006296724
- ISBN-13: 9781402040269
- ISBN-10: 1402040261
- All ISBNs: 1402040261 - 9781402040269
AI-generated Review of “Computing Attitude and Affect in Text”:
"Computing Attitude and Affect in Text" Description:
The Open Library:
Human Language Technology (HLT) and Natural Language Processing (NLP) systems have typically focused on the “factual” aspect of content analysis. Other aspects, including pragmatics, opinion, and style, have received much less attention. However, to achieve an adequate understanding of a text, these aspects cannot be ignored. The chapters in this book address the aspect of subjective opinion, which includes identifying different points of view, identifying different emotive dimensions, and classifying text by opinion. Various conceptual models and computational methods are presented. The models explored in this book include the following: distinguishing attitudes from simple factual assertions; distinguishing between the author’s reports from reports of other people’s opinions; and distinguishing between explicitly and implicitly stated attitudes. In addition, many applications are described that promise to benefit from the ability to understand attitudes and affect, including indexing and retrieval of documents by opinion; automatic question answering about opinions; analysis of sentiment in the media and in discussion groups about consumer products, political issues, etc. ; brand and reputation management; discovering and predicting consumer and voting trends; analyzing client discourse in therapy and counseling; determining relations between scientific texts by finding reasons for citations; generating more appropriate texts and making agents more believable; and creating writers’ aids. The studies reported here are carried out on different languages such as English, French, Japanese, and Portuguese. Difficult challenges remain, however. It can be argued that analyzing attitude and affect in text is an “NLP”-complete problem.
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