The Semantics Of Grammatical Dependencies


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The Semantics of Grammatical Dependencies


The Semantics of Grammatical Dependencies

Author: Alastair Butler

language: en

Publisher: BRILL

Release Date: 2010


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This book argues that constraints of interaction from semantic evaluations enforce grammatical dependency patterns that recur across natural languages and within constructions at intra and inter sentential levels as well as discourse levels.

Sentiment Analysis in Social Networks


Sentiment Analysis in Social Networks

Author: Federico Alberto Pozzi

language: en

Publisher: Morgan Kaufmann

Release Date: 2016-10-06


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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 methodologies - Provides insights into opinion spamming, reasoning, and social network analysis - Shows how to apply sentiment analysis tools for a particular application and domain, and how to get the best results for understanding the consequences - Serves as a one-stop reference for the state-of-the-art in social media analytics - Takes an interdisciplinary approach from a number of computing domains, including natural language processing, big data, and statistical methodologies - Provides insights into opinion spamming, reasoning, and social network mining - Shows how to apply opinion mining tools for a particular application and domain, and how to get the best results for understanding the consequences - Serves as a one-stop reference for the state-of-the-art in social media analytics

Inductive Dependency Parsing


Inductive Dependency Parsing

Author: Joakim Nivre

language: en

Publisher: Springer Science & Business Media

Release Date: 2006-08-05


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This book describes the framework of inductive dependency parsing, a methodology for robust and efficient syntactic analysis of unrestricted natural language text. Coverage includes a theoretical analysis of central models and algorithms, and an empirical evaluation of memory-based dependency parsing using data from Swedish and English. A one-stop reference to dependency-based parsing of natural language, it will interest researchers and system developers in language technology, and is suitable for graduate or advanced undergraduate courses.