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Sentic Computing

by Cambria, Erik.
Authors: Hussain, Amir.%author. | SpringerLink (Online service) Series: SpringerBriefs in Cognitive Computation, 2212-6023 ; . 2 Physical details: XVIII, 153 p. 39 illus., 35 illus. in color. online resource. ISBN: 9400750706 Subject(s): Medicine. | Data mining. | Mathematics. | Consciousness. | Biomedicine. | Biomedicine general. | Data Mining and Knowledge Discovery. | Mathematics, general. | Linguistics (general). | Cognitive Psychology.
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E-Book E-Book AUM Main Library 610 (Browse Shelf) Not for loan

In this book common sense computing techniques are further developed and applied to bridge the semantic gap between word-level natural language data and the concept-level opinions conveyed by these. In particular, the ensemble application of graph mining and multi-dimensionality reduction techniques is exploited on two common sense knowledge bases to develop a novel intelligent engine for open-domain opinion mining and sentiment analysis. The proposed approach, termed sentic computing, performs a clause-level semantic analysis of text, which allows the inference of both the conceptual and emotional information associated with natural language opinions and, hence, a more efficient passage from (unstructured) textual information to (structured) machine-processable data.

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