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The Acquisition of Lexical Knowledge from the Web for Aspects of Semantic Interpretation

Author : Hansen A. Schwartz
Publisher :
Page : 160 pages
File Size : 31,85 MB
Release : 2011
Category : Commonsense reasoning
ISBN :

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This work investigates the effective acquisition of lexical knowledge from the Web to perform semantic interpretation. The Web provides an unprecedented amount of natural language from which to gain knowledge useful for semantic interpretation. The knowledge acquired is described as common sense knowledge, information one uses in his or her daily life to understand language and perception. Novel approaches are presented for both the acquisition of this knowledge and use of the knowledge in semantic interpretation algorithms. The goal is to increase accuracy over other automatic semantic interpretation systems, and in turn enable stronger real world applications such as machine translation, advanced Web search, sentiment analysis, and question answering. The major contributions of this dissertation consist of two methods of acquiring lexical knowledge from the Web, namely a database of common sense knowledge and Web selectors. The first method is a framework for acquiring a database of concept relationships. To acquire this knowledge, relationships between nouns are found on the Web and analyzed over WordNet using information-theory, producing information about concepts rather than ambiguous words. For the second contribution, words called Web selectors are retrieved which take the place of an instance of a target word in its local context. The selectors serve for the system to learn the types of concepts that the sense of a target word should be similar. Web selectors are acquired dynamically as part of a semantic interpretation algorithm, while the relationships in the database are useful to stand-alone programs. A final contribution of this dissertation concerns a novel semantic similarity measure and an evaluation of similarity and relatedness measures on tasks of concept similarity. Such tasks are useful when applying acquired knowledge to semantic interpretation. Applications to word sense disambiguation, an aspect of semantic interpretation, are used to evaluate the contributions. Disambiguation systems which utilize semantically annotated training data are considered supervised. The algorithms of this dissertation are considered minimally-supervised; they do not require training data created by humans, though they may use human-created data sources. In the case of evaluating a database of common sense knowledge, integrating the knowledge into an existing minimally-supervised disambiguation system significantly improved results -- a 20.5\% error reduction. Similarly, the Web selectors disambiguation system, which acquires knowledge directly as part of the algorithm, achieved results comparable with top minimally-supervised systems, an F-score of 80.2\% on a standard noun disambiguation task. This work enables the study of many subsequent related tasks for improving semantic interpretation and its application to real-world technologies. Other aspects of semantic interpretation, such as semantic role labeling could utilize the same methods presented here for word sense disambiguation. As the Web continues to grow, the capabilities of the systems in this dissertation are expected to increase. Although the Web selectors system achieves great results, a study in this dissertation shows likely improvements from acquiring more data. Furthermore, the methods for acquiring a database of common sense knowledge could be applied in a more exhaustive fashion for other types of common sense knowledge. Finally, perhaps the greatest benefits from this work will come from the enabling of real world technologies that utilize semantic interpretation.

Linked Lexical Knowledge Bases

Author : Iryna Gurevych
Publisher : Morgan & Claypool Publishers
Page : 202 pages
File Size : 31,43 MB
Release : 2016-07-19
Category : Computers
ISBN : 1681731843

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This book conveys the fundamentals of Linked Lexical Knowledge Bases (LLKB) and sheds light on their different aspects from various perspectives, focusing on their construction and use in natural language processing (NLP). It characterizes a wide range of both expert-based and collaboratively constructed lexical knowledge bases. Only basic familiarity with NLP is required and this book has been written for both students and researchers in NLP and related fields who are interested in knowledge-based approaches to language analysis and their applications. Lexical Knowledge Bases (LKBs) are indispensable in many areas of natural language processing, as they encode human knowledge of language in machine readable form, and as such, they are required as a reference when machines attempt to interpret natural language in accordance with human perception. In recent years, numerous research efforts have led to the insight that to make the best use of available knowledge, the orchestrated exploitation of different LKBs is necessary. This allows us to not only extend the range of covered words and senses, but also gives us the opportunity to obtain a richer knowledge representation when a particular meaning of a word is covered in more than one resource. Examples where such an orchestrated usage of LKBs proved beneficial include word sense disambiguation, semantic role labeling, semantic parsing, and text classification. This book presents different kinds of automatic, manual, and collaborative linkings between LKBs. A special chapter is devoted to the linking algorithms employing text-based, graph-based, and joint modeling methods. Following this, it presents a set of higher-level NLP tasks and algorithms, effectively utilizing the knowledge in LLKBs. Among them, you will find advanced methods, e.g., distant supervision, or continuous vector space models of knowledge bases (KB), that have become widely used at the time of this book's writing. Finally, multilingual applications of LLKB's, such as cross-lingual semantic relatedness and computer-aided translation are discussed, as well as tools and interfaces for exploring LLKBs, followed by conclusions and future research directions.

The Semantic Web

Author : Vipul Kashyap
Publisher : Springer Science & Business Media
Page : 415 pages
File Size : 40,55 MB
Release : 2008-09-27
Category : Computers
ISBN : 3540764526

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The Semantic Web is a vision – the idea of having data on the Web defined and linked in such a way that it can be used by machines not just for display purposes but for automation, integration and reuse of data across various applications. However, there is a widespread misconception that the Semantic Web is a rehash of existing AI and database work. Kashyap, Bussler, and Moran dispel this notion by presenting the multi-disciplinary technological underpinnings such as machine learning, information retrieval, service-oriented architectures, and grid computing. Thus they combine the informational and computational aspects needed to realize the full potential of the Semantic Web vision.

Cross-Disciplinary Advances in Applied Natural Language Processing: Issues and Approaches

Author : Boonthum-Denecke, Chutima
Publisher : IGI Global
Page : 439 pages
File Size : 50,31 MB
Release : 2011-12-31
Category : Computers
ISBN : 1613504489

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"This book defines the role of advanced natural language processing within natural language processing, and alongside other disciplines such as linguistics, computer science, and cognitive science"--Provided by publisher.

Semantics - Typology, Diachrony and Processing

Author : Klaus Heusinger
Publisher : Walter de Gruyter GmbH & Co KG
Page : 704 pages
File Size : 40,34 MB
Release : 2019-02-19
Category : Language Arts & Disciplines
ISBN : 3110587327

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Now available in paperback for the first time since its original publication, the material in this book provides a broad, accessible guide to semantic typology, crosslinguistic semantics and diachronic semantics. Coming from a world-leading team of authors, the book also deals with the concept of meaning in psycholinguistics and neurolinguistics, and the understanding of semantics in computer science. It is packed with highly cited, expert guidance on the key topics in the field, making it a bookshelf essential for linguists, cognitive scientists, philosophers, and computer scientists working on natural language.

The Acquisition of Syntactic Knowledge

Author : Robert C. Berwick
Publisher : MIT Press
Page : 396 pages
File Size : 49,6 MB
Release : 1985
Category : Computers
ISBN : 9780262022262

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The computer model. Computation and language acquisition. The acquisition model. Learning phrase structure. Learning transformations. A theory of acquisition. Acquisition complexity. Learning theory: applications. Locality principles and acquisition.

The Acquisition of Dutch

Author : Steven Gillis
Publisher : John Benjamins Publishing
Page : 457 pages
File Size : 41,96 MB
Release : 1998-01-01
Category : Language Arts & Disciplines
ISBN : 9027250650

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In the present-day context of cross-linguistic perspectives on language acquisition, The Acquisition of Dutch offers a much needed overview of the wealth of Dutch child language research that was hitherto lacking. Its comprehensive coverage in terms of topics, its many new theoretical contributions and its focus on providing a solid basis for cross-linguistic comparisons will be of interest to linguists and psycholinguists studying child language everywhere.The volume consists of four thematic chapters preceded by an introductory overview. The thematic chapters cover early speech development in the first year of life, the acquisition of phonology, the lexicon and syntax. The consolidated list of references cover most of the work on Dutch child language in the last few decades.

L2 vocabulary acquisition, knowledge and use

Author : Camilla Bardel
Publisher : Lulu.com
Page : 179 pages
File Size : 23,5 MB
Release : 2013-08-08
Category : Education
ISBN : 130088407X

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This book is intended for researchers and students in the field of second language (L2) acquisition. As its title suggests, the book discusses L2 vocabulary acquisition, knowledge and use, and examines them from the perspectives of assessment and corpus analysis. The chapters also address some additional central research issues: the role of word frequency in the input, the difference between single words and multiword units, and the distinction between vocabulary of oral and written language. The first three chapters of the book present critical reviews of different aspects of vocabulary acquisition. The other four chapters contain empirical studies that relate to the central themes of the book. The data in the studies draw on a variety of source and target languages: English, French, Italian, Swedish, Hebrew and Japanese. The book offers some new insights into the field of vocabulary and suggests avenues of research.

Lexical Semantics and Knowledge Representation

Author : James Pustejovsky
Publisher : Springer
Page : 388 pages
File Size : 24,3 MB
Release : 1992-09-10
Category : Computers
ISBN : 9783540558019

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Recent work on formal methods in computational lexical semantics has had theeffect of bringing many linguistic formalisms much closer to the knowledge representation languages used in artificial intelligence. Formalisms are now emerging which may be more expressive and formally better understood than many knowledge representation languages. The interests of computational linguists now extend to include such domains as commonsense knowledge, inheritance, default reasoning, collocational relations, and even domain knowledge. With such an extension of the normal purview of "linguistic" knowledge, one may question whether there is any logical justification for distinguishing between lexical semantics and commonsense reasoning. This volume explores the question from several methodologicaland theoretical perspectives. What emerges is a clear consensus that the notion of the lexicon and lexical knowledge assumed in earlier linguistic research is grossly inadequate and fails to address the deeper semantic issues required for natural language analysis.