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            Revealing Media Bias in News Articles

            NLP Techniques for Automated Frame Analysis

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            Auteur
            Hamborg, Felix
            Language
            English
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            Résumé
            This open access book presents an interdisciplinary approach to reveal biases in English news articles reporting on a given political event. The approach named person-oriented framing analysis identifies the coverage’s different perspectives on the event by assessing how articles portray the persons involved in the event. In contrast to prior automated approaches, the identified frames are more meaningful and substantially present in person-oriented news coverage. The book is structured in seven chapters: Chapter 1 presents a few of the severe problems caused by slanted news coverage and identifies the research gap that motivated the research described in this thesis. Chapter 2 discusses manual analysis concepts and exemplary studies from the social sciences and automated approaches, mostly from computer science and computational linguistics, to analyze and reveal media bias. This way, it identifies the strengths and weaknesses of current approaches for identifying and revealing media bias. Chapter 3 discusses the solution design space to address the identified research gap and introduces person-oriented framing analysis (PFA), a new approach to identify substantial frames and to reveal slanted news coverage. Chapters 4 and 5 detail target concept analysis and frame identification, the first and second component of PFA. Chapter 5 also introduces the first large-scale dataset and a novel model for target-dependent sentiment classification (TSC) in the news domain. Eventually, Chapter 6 introduces Newsalyze, a prototype system to reveal biases to non-expert news consumers by using the PFA approach. In the end, Chapter 7 summarizes the thesis and discusses the strengths and weaknesses of the thesis to derive ideas for future research on media bias. This book mainly targets researchers and graduate students from computer science, computational linguistics, political science, and further social sciences who want to get an overview of the relevant state of the art in the other related disciplines and understand and tackle the issue of bias from a more effective, interdisciplinary viewpoint.
            URI
            https://doab-dev.siscern.org/handle/20.500.12854/157849
            Keywords
            Natural Language Processing; Deep Learning; Media Bias; Content Analysis; Frame Analysis; Social Aspects of Computing; Information Retrieval; thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence::UYQL Natural language and machine translation; thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence::UYQM Machine learning; thema EDItEUR::J Society and Social Sciences::JB Society and culture: general::JBC Cultural and media studies::JBCT Media studies; thema EDItEUR::C Language and Linguistics::CB Language: reference and general::CBX Language: history and general works; thema EDItEUR::J Society and Social Sciences::JP Politics and government::JPA Political science and theory
            DOI
            10.1007/978-3-031-17693-7
            ISBN
            9783031176937
            Publisher
            Springer Nature
            Publisher website
            http://www.springernature.com/oabooks
            Publication date and place
            Cham, 2023
            Grantor
            • Heidelberger Akademie der Wissenschaften
            Imprint
            Springer Nature Switzerland
            Pages
            238
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              This project received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 871069.

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