
eBook - ePub
Linguistic Data Science and the English Passive
Modeling Diachronic Developments and Regional Variation
- English
- ePUB (mobile friendly)
- Available on iOS & Android
eBook - ePub
Linguistic Data Science and the English Passive
Modeling Diachronic Developments and Regional Variation
About this book
The choice between BE and GET as auxiliary verbs, as in "She was promoted" vs "She got promoted", is a central, grammatical feature, yet the many proposed nuances conditioning this phenomenon have escaped large-scale empirical validation to date. This book fills this gap, using multivariate statistical analyses of several large corpora to explore different factors determining the choice of English passive auxiliary.
Addressing both diachronic developments (using the Corpus of Historical American English) and synchronic regional variation (using the Corpus of Global Web-based English), the book employs methods that combine traditional corpus linguistics with newer machine-learning tools in an innovative and intricate manner. To circumscribe the variable context, the authors train a statistical model to distinguish central from peripheral passives. The study tests the influence of various predictors, derived from the previous literature on the passive, with the use of automated sentiment analysis and subject detection, manual animacy coding, distributional semantics, and a mixed-effects regression model.
Putting forward an automatic way of distinguishing more stative from more dynamic passives, the book demonstrates how to examine the passive construction in a much larger dataset than in previous studies, and shows how advanced computational models can be used to productively engage traditional philological questions, such as those related to language change and regional variation.
Addressing both diachronic developments (using the Corpus of Historical American English) and synchronic regional variation (using the Corpus of Global Web-based English), the book employs methods that combine traditional corpus linguistics with newer machine-learning tools in an innovative and intricate manner. To circumscribe the variable context, the authors train a statistical model to distinguish central from peripheral passives. The study tests the influence of various predictors, derived from the previous literature on the passive, with the use of automated sentiment analysis and subject detection, manual animacy coding, distributional semantics, and a mixed-effects regression model.
Putting forward an automatic way of distinguishing more stative from more dynamic passives, the book demonstrates how to examine the passive construction in a much larger dataset than in previous studies, and shows how advanced computational models can be used to productively engage traditional philological questions, such as those related to language change and regional variation.
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Yes, you can access Linguistic Data Science and the English Passive by Axel Bohmann,Julia Müller,Mirka Honkanen,Miriam Neuhausen in PDF and/or ePUB format, as well as other popular books in Languages & Linguistics & Data Processing. We have over one million books available in our catalogue for you to explore.
Information
Table of contents
- Cover
- Half-Title Page
- Dedication
- Title Page
- Language, Data Science and Digital Humanities
- Table of Contents
- List of Figures
- List of Tables
- Acknowledgments
- 1 Introduction
- 2 The English Passive Voice: Be and Get
- 3 Centrality and the Passive Gradient
- 4 Operationalizing Subject Responsibility
- 5 Operationalizing Adversativity and Non-Neutrality
- 6 Distributional Verb Semantics
- 7 Varieties of English and Substrate Influence
- 8 The Structure of the Proposed Models
- 9 Diachronic Developments in the English Passive Alternation
- 10 Regional Variation in the English Passive Alternation
- 11 Discussion and Conclusion
- Notes
- References
- Index
- Copyright Page