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Data Analytics in Cognitive Linguistics: Methods and Insights

✍ Scribed by Tay, Dennis, Pan, Molly Xie


Publisher
De Gruyter Mouton
Year
2022
Tongue
English
Leaves
352
Series
Applications of Cognitive Linguistics [ACL], 41; 41
Category
Library

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✦ Synopsis


Contemporary data analytics involves extracting insights from data and translating them into action. With its turn towards empirical methods and convergent data sources, cognitive linguistics is a fertile context for data analytics. There are key differences between data analytics and statistical analysis as typically conceived. Though the former requires the latter, it emphasizes the role of domain-specific knowledge. Statistical analysis also tends to be associated with preconceived hypotheses and controlled data. Data analytics, on the other hand, can help explore unstructured datasets and inspire emergent questions. This volume addresses two key aspects in data analytics for cognitive linguistic work. Firstly, it elaborates the bottom-up guiding role of data analytics in the research trajectory, and how it helps to formulate and refine questions. Secondly, it shows how data analytics can suggest concrete courses of research-based action, which is crucial for cognitive linguistics to be truly applied. The papers in this volume impart various data analytic methods and report empirical studies across different areas of research and application. They aim to benefit new and experienced researchers alike.

✦ Table of Contents


Contents
Data analytics in cognitive linguistics
Mapping the landscape of exploratory and confirmatory data analysis in linguistics
Time series analysis with python
Structural equation modeling in R: A practical introduction for linguists
Visualizing distributional semantics
Lectal variation in Chinese analytic causative constructions: What trees can and cannot tell us
Personification metaphors in Chinese video ads: Insights from data analytics
The interaction between metaphor use and psychological states: A mix-method analysis of trauma talk in the Chinese context
Prospecting for metaphors in a large text corpus: Combining unsupervised and supervised machine learning approaches
Cognitive linguistics meets computational linguistics: Construction grammar, dialectology, and linguistic diversity
What Cognitive Linguistics can learn from dialectology (and vice versa)
Index


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