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Corpus Linguistics and Statistics with R : Introduction to Quantitative Methods in Linguistics / by Guillaume Desagulier
(Quantitative Methods in the Humanities and Social Sciences. ISSN:21990964)
版 | 1st ed. 2017. |
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出版者 | Cham : Springer International Publishing : Imprint: Springer |
出版年 | 2017 |
大きさ | XIII, 353 p. 98 illus., 55 illus. in color : online resource |
著者標目 | *Desagulier, Guillaume author SpringerLink (Online service) |
件 名 | LCSH:Mathematical statistics—Data processing LCSH:Linguistics LCSH:Computational linguistics LCSH:Social sciences—Statistical methods FREE:Statistics and Computing FREE:Theoretical Linguistics / Grammar FREE:Computational Linguistics FREE:Statistics in Social Sciences, Humanities, Law, Education, Behavorial Sciences, Public Policy |
一般注記 | Introduction -- R Fundamentals -- Digital Corpora -- Processing and Manipulating Character Strings -- Applied Character String Processing -- Summary Graphics for Frequency Data -- Descriptive Statistics -- Notions of Statistical Testing -- Association and Productivity -- Clustering Methods This textbook examines empirical linguistics from a theoretical linguist’s perspective. It provides both a theoretical discussion of what quantitative corpus linguistics entails and detailed, hands-on, step-by-step instructions to implement the techniques in the field. The statistical methodology and R-based coding from this book teach readers the basic and then more advanced skills to work with large data sets in their linguistics research and studies. Massive data sets are now more than ever the basis for work that ranges from usage-based linguistics to the far reaches of applied linguistics. This book presents much of the methodology in a corpus-based approach. However, the corpus-based methods in this book are also essential components of recent developments in sociolinguistics, historical linguistics, computational linguistics, and psycholinguistics. Material from the book will also be appealing to researchers in digital humanities and the many non-linguistic fields that use textual data analysis and text-based sensorimetrics. Chapters cover topics including corpus processing, frequencing data, and clustering methods. Case studies illustrate each chapter with accompanying data sets, R code, and exercises for use by readers. This book may be used in advanced undergraduate courses, graduate courses, and self-study HTTP:URL=https://doi.org/10.1007/978-3-319-64572-8 |
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電子ブック | 配架場所 | 資料種別 | 巻 次 | 請求記号 | 状 態 | 予約 | コメント | ISBN | 刷 年 | 利用注記 | 指定図書 | 登録番号 |
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電子ブック | オンライン | 電子ブック |
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Springer eBooks | 9783319645728 |
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EB00200149 |
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データ種別 | 電子ブック |
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分 類 | LCC:QA276.4-.45 DC23:519.5 |
書誌ID | 4000116019 |
ISBN | 9783319645728 |
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※2017年9月4日以降