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Semantic Relations Between Nominals, Nastase Vivi, Szpakowicz Stan, Nakov Preslav


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Автор: Nastase Vivi, Szpakowicz Stan, Nakov Preslav
Название:  Semantic Relations Between Nominals
ISBN: 9781636390888
Издательство: Mare Nostrum (Eurospan)
Классификация:

ISBN-10: 1636390889
Обложка/Формат: Hardback
Страницы: 234
Вес: 0.62 кг.
Дата издания: 30.04.2021
Серия: Synthesis lectures on human language technologies
Язык: English
Издание: 2 revised edition
Размер: 23.50 x 19.05 x 0.89 cm
Читательская аудитория: Professional and scholarly
Ключевые слова: linguistics,Natural language & machine translation, COMPUTERS / Natural Language Processing,LANGUAGE ARTS & DISCIPLINES / Linguistics / General
Рейтинг:
Поставляется из: Англии
Описание:

Opportunity and Curiosity find similar rocks on Mars. One can generally understand this statement if one knows that Opportunity and Curiosity are instances of the class of Mars rovers, and recognizes that, as signalled by the word on, ROCKS are located on Mars. Two mental operations contribute to understanding: recognize how entities/concepts mentioned in a text interact and recall already known facts (which often themselves consist of relations between entities/concepts). Concept interactions one identifies in the text can be added to the repository of known facts, and aid the processing of future texts. The amassed knowledge can assist many advanced language-processing tasks, including summarization, question answering and machine translation.

Semantic relations are the connections we perceive between things which interact. The book explores two, now intertwined, threads in semantic relations: how they are expressed in texts and what role they play in knowledge repositories. A historical perspective takes us back more than 2000 years to their beginnings, and then to developments much closer to our time: various attempts at producing lists of semantic relations, necessary and sufficient to express the interaction between entities/concepts. A look at relations outside context, then in general texts, and then in texts in specialized domains, has gradually brought new insights, and led to essential adjustments in how the relations are seen. At the same time, datasets which encompass these phenomena have become available. They started small, then grew somewhat, then became truly large. The large resources are inevitably noisy because they are constructed automatically. The available corpora-to be analyzed, or used to gather relational evidence-have also grown, and some systems now operate at the Web scale. The learning of semantic relations has proceeded in parallel, in adherence to supervised, unsupervised or distantly supervised paradigms. Detailed analyses of annotated datasets in supervised learning have granted insights useful in developing unsupervised and distantly supervised methods. These in turn have contributed to the understanding of what relations are and how to find them, and that has led to methods scalable to Web-sized textual data. The size and redundancy of information in very large corpora, which at first seemed problematic, have been harnessed to improve the process of relation extraction/learning. The newest technology, deep learning, supplies innovative and surprising solutions to a variety of problems in relation learning. This book aims to paint a big picture and to offer interesting details.



Semantic Relations Between Nominals

Автор: Nastase Vivi, Szpakowicz Stan, Nakov Preslav
Название: Semantic Relations Between Nominals
ISBN: 1636390862 ISBN-13(EAN): 9781636390864
Издательство: Mare Nostrum (Eurospan)
Рейтинг:
Цена: 96090.00 T
Наличие на складе: Нет в наличии.
Описание:

Opportunity and Curiosity find similar rocks on Mars. One can generally understand this statement if one knows that Opportunity and Curiosity are instances of the class of Mars rovers, and recognizes that, as signalled by the word on, ROCKS are located on Mars. Two mental operations contribute to understanding: recognize how entities/concepts mentioned in a text interact and recall already known facts (which often themselves consist of relations between entities/concepts). Concept interactions one identifies in the text can be added to the repository of known facts, and aid the processing of future texts. The amassed knowledge can assist many advanced language-processing tasks, including summarization, question answering and machine translation.

Semantic relations are the connections we perceive between things which interact. The book explores two, now intertwined, threads in semantic relations: how they are expressed in texts and what role they play in knowledge repositories. A historical perspective takes us back more than 2000 years to their beginnings, and then to developments much closer to our time: various attempts at producing lists of semantic relations, necessary and sufficient to express the interaction between entities/concepts. A look at relations outside context, then in general texts, and then in texts in specialized domains, has gradually brought new insights, and led to essential adjustments in how the relations are seen. At the same time, datasets which encompass these phenomena have become available. They started small, then grew somewhat, then became truly large. The large resources are inevitably noisy because they are constructed automatically. The available corpora--to be analyzed, or used to gather relational evidence--have also grown, and some systems now operate at the Web scale. The learning of semantic relations has proceeded in parallel, in adherence to supervised, unsupervised or distantly supervised paradigms. Detailed analyses of annotated datasets in supervised learning have granted insights useful in developing unsupervised and distantly supervised methods. These in turn have contributed to the understanding of what relations are and how to find them, and that has led to methods scalable to Web-sized textual data. The size and redundancy of information in very large corpora, which at first seemed problematic, have been harnessed to improve the process of relation extraction/learning. The newest technology, deep learning, supplies innovative and surprising solutions to a variety of problems in relation learning. This book aims to paint a big picture and to offer interesting details.


Semantic Relations Between Nominals

Автор: Vivi Nastase, Preslav Nakov, Diarmuid O. Seaghdha, Stan Szpakowicz
Название: Semantic Relations Between Nominals
ISBN: 1608459799 ISBN-13(EAN): 9781608459797
Издательство: Mare Nostrum (Eurospan)
Рейтинг:
Цена: 41580.00 T
Наличие на складе: Невозможна поставка.
Описание: Discusses the recognition in text of semantic relations which capture interactions between base noun phrases. After a brief historical background, this text introduces a range of relation inventories of varying granularity, which have been proposed by computational linguists.


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