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Word Association Thematic Analysis : A Social Media Text Exploration Strategy / by Michael Thelwall

By: Thelwall, Mike, autor
Material type: materialTypeLabelE-bookSeries: (Synthesis Lectures on Information Concepts Retrieval and Services, 1947-9468).Publisher: Cham : Springer International Publishing, 2021Edition: 1st edition 2021.Description: 1 recurso en línea (XVII, 111 páginas).ISBN: 9783031023248.Subject: Editores de texto (Programas de ordenador) | Medios de comunicación socialOnline resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources
Contents:
Acknowledgments -- Introduction -- Data Collection with Mozdeh -- Word Association Detection: Term Identification -- Word Association Contextualization: Term Meaning and Context -- Word Association Thematic Analysis: Theme Detection -- Word Association Thematic Analysis Examples -- Comparison Between WATA and Other Methods -- Ethics -- Project Planning -- Summary -- References -- Author Biography.
Summary: Many research projects involve analyzing sets of texts from the social web or elsewhere to get insights into issues, opinions, interests, news discussions, or communication styles. For example, many studies have investigated reactions to Covid-19 social distancing restrictions, conspiracy theories, and anti-vaccine sentiment on social media. This book describes word association thematic analysis, a mixed methods strategy to identify themes within a collection of social web or other texts. It identifies these themes in the differences between subsets of the texts, including female vs. male vs. nonbinary, older vs. newer, country A vs. country B, positive vs. negative sentiment, high scoring vs. low scoring, or subtopic A vs. subtopic B. It can also be used to identify the differences between a topic-focused collection of texts and a reference collection. The method starts by automatically finding words that are statistically significantly more common in one subset than another, then identifies the context of these words and groups them into themes. It is supported by the free Windows-based software Mozdeh for data collection or importing and for the quantitative analysis stages. This book explains the word association thematic analysis method, with examples, and gives practical advice for using it. It is primarily intended for social media researchers and students, although the method is applicable to any collection of short texts.
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Holdings
Item type Current library Collection Call number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias e Ingeniería QA76.76.T49 2021 EB (Browse shelf(Opens below)) Acceso electrónico eBook.01112676
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Acknowledgments -- Introduction -- Data Collection with Mozdeh -- Word Association Detection: Term Identification -- Word Association Contextualization: Term Meaning and Context -- Word Association Thematic Analysis: Theme Detection -- Word Association Thematic Analysis Examples -- Comparison Between WATA and Other Methods -- Ethics -- Project Planning -- Summary -- References -- Author Biography.

Many research projects involve analyzing sets of texts from the social web or elsewhere to get insights into issues, opinions, interests, news discussions, or communication styles. For example, many studies have investigated reactions to Covid-19 social distancing restrictions, conspiracy theories, and anti-vaccine sentiment on social media. This book describes word association thematic analysis, a mixed methods strategy to identify themes within a collection of social web or other texts. It identifies these themes in the differences between subsets of the texts, including female vs. male vs. nonbinary, older vs. newer, country A vs. country B, positive vs. negative sentiment, high scoring vs. low scoring, or subtopic A vs. subtopic B. It can also be used to identify the differences between a topic-focused collection of texts and a reference collection. The method starts by automatically finding words that are statistically significantly more common in one subset than another, then identifies the context of these words and groups them into themes. It is supported by the free Windows-based software Mozdeh for data collection or importing and for the quantitative analysis stages. This book explains the word association thematic analysis method, with examples, and gives practical advice for using it. It is primarily intended for social media researchers and students, although the method is applicable to any collection of short texts.

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