Jarvis / Crossley | Approaching Language Transfer through Text Classification | E-Book | www.sack.de
E-Book

E-Book, Englisch, Band 64, 208 Seiten

Reihe: Second Language Acquisition

Jarvis / Crossley Approaching Language Transfer through Text Classification

Explorations in the Detection-based Approach
Erscheinungsjahr 2012
ISBN: 978-1-84769-700-4
Verlag: Multilingual Matters
Format: EPUB
Kopierschutz: 6 - ePub Watermark

Explorations in the Detection-based Approach

E-Book, Englisch, Band 64, 208 Seiten

Reihe: Second Language Acquisition

ISBN: 978-1-84769-700-4
Verlag: Multilingual Matters
Format: EPUB
Kopierschutz: 6 - ePub Watermark



Recent work has pointed to the need for a detection-based approach to transfer capable of discovering elusive crosslinguistic effects through the use of human judges and computer classifiers that can learn to predict learners’ language backgrounds based on their patterns of language use. This book addresses that need. It details the nature of the detection-based approach, discusses how this approach fits into the overall scope of transfer research, and discusses the few previous studies that have laid the groundwork for this approach. The core of the book consists of five empirical studies that use computer classifiers to detect the native-language affiliations of texts written by foreign language learners of English. The results highlight combinations of language features that are the most reliable predictors of learners’ language backgrounds.

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Weitere Infos & Material


1 Scott Jarvis: The Detection-Based Approach: An Overview

2 Scott Jarvis, Gabriela Castañeda-Jiménez and Rasmus Nielsen: Detecting L2 Writers’ L1s on the Basis of their Lexical Styles

3 Scott Jarvis and Magali Paquot: Exploring the Role of N-Grams in L1 Identification

4 Scott A. Crossley and Danielle S. McNamara: Detecting the First Language of Second Language Writers Using Automated Indices of Cohesion, Lexical Sophistication, Syntactic Complexity, and Conceptual Knowledge

5 Yves Bestgen, Sylviane Granger and Jennifer Thewissen: Error Patterns and Automatic L1 Identification

6 Scott Jarvis, Yves Bestgen, Scott A. Crossley, Sylviane Granger, Magali Paquot, Jennifer Thewissen and Danielle S. McNamara: The Comparative and Combined Contributions of N-grams, Coh-Metrix Indices, and Error Types in the L1 Classification of Learner Texts

7 Scott A. Crossley: Detection-Based Approaches: Methods, Theories and Applications


Jarvis, Scott
Scott Jarvis is Professor of Linguistics at the University of Utah, USA. His areas of research include crosslinguistic influence and lexical diversity. He is the co-editor (with Scott Crossley) of Approaching Language Transfer through Text Classification (2012).

Crossley, Scott A.
Scott A. Crossley is an Assistant Professor at Georgia State University. His work involves the application of natural language processing theories and approaches for investigating second language acquisition, text readability, and writing proficiency. His current research interests include lexical proficiency, writing quality, and text coherence and processing.

Scott Jarvis (Ph.D., Indiana University) holds the title of Professor in the Department of Linguistics at Ohio University, where his main research interests include crosslinguistic influence, cognitive linguistics, and research methods related to the investigation of language proficiency and the measurement of lexical diversity. His work in these areas has appeared in several authored and edited books, numerous book chapters and journal papers in the fields of second language acquisition and multilingualism. Professor Jarvis is also Associate Executive Director for the journal Language Learning.

Scott A. Crossley is an Assistant Professor at Georgia State University. His work involves the application of natural language processing theories and approaches for investigating second language acquisition, text readability, and writing proficiency. His current research interests include lexical proficiency, writing quality, and text coherence and processing.



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