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      Voters’ view of leaders during the Covid‐19 crisis: Quantitative analysis of keyword descriptions provides strength and direction of evaluations

      한글로보기

      https://www.riss.kr/link?id=O111996680

      • 저자
      • 발행기관
      • 학술지명
      • 권호사항
      • 발행연도

        2021년

      • 작성언어

        -

      • Print ISSN

        0038-4941

      • Online ISSN

        1540-6237

      • 등재정보

        SSCI;SCOPUS

      • 자료형태

        학술저널

      • 수록면

        2170-2183   [※수록면이 p5 이하이면, Review, Columns, Editor's Note, Abstract 등일 경우가 있습니다.]

      • 구독기관
        • 전북대학교 중앙도서관  
        • 성균관대학교 중앙학술정보관  
        • 부산대학교 중앙도서관  
        • 전남대학교 중앙도서관  
        • 제주대학교 중앙도서관  
        • 중앙대학교 서울캠퍼스 중앙도서관  
        • 인천대학교 학산도서관  
        • 숙명여자대학교 중앙도서관  
        • 서강대학교 로욜라중앙도서관  
        • 계명대학교 동산도서관  
        • 충남대학교 중앙도서관  
        • 한양대학교 백남학술정보관  
        • 이화여자대학교 중앙도서관  
        • 고려대학교 도서관  
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      다국어 초록 (Multilingual Abstract)

      Previous research suggests that governments usually gain support during crises such as the Covid‐19. However, these findings are based on rating scales that only allow us to measure the strength of this support. This article proposes a new measure of how voters evaluate Prime Ministers (PM) by asking for descriptive keywords that are analyzed by natural language processing.
      By collecting a representative sample of citizens’ own key words describing their PM in 15 countries in Europe during the outbreak of Covid‐19, and analyzing these by latent semantic analysis and a multiple OLS regression, we could quantify the strength and direction of voters’ view.
      The strength analysis supported previous studies that describing the PM with positive words was strongly associated with vote intention. Furthermore, a change in the direction of the attitudes from “good” to “honest” was found. A new finding was that the pandemic was associated with an increase in polarization.
      The keyword evaluation analysis provides opportunities of evaluating both strength and direction of voters’ view of their PM, where we show new results related to increased polarization and shift in the direction of attitudes.
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      Previous research suggests that governments usually gain support during crises such as the Covid‐19. However, these findings are based on rating scales that only allow us to measure the strength of this support. This article proposes a new measure o...

      Previous research suggests that governments usually gain support during crises such as the Covid‐19. However, these findings are based on rating scales that only allow us to measure the strength of this support. This article proposes a new measure of how voters evaluate Prime Ministers (PM) by asking for descriptive keywords that are analyzed by natural language processing.
      By collecting a representative sample of citizens’ own key words describing their PM in 15 countries in Europe during the outbreak of Covid‐19, and analyzing these by latent semantic analysis and a multiple OLS regression, we could quantify the strength and direction of voters’ view.
      The strength analysis supported previous studies that describing the PM with positive words was strongly associated with vote intention. Furthermore, a change in the direction of the attitudes from “good” to “honest” was found. A new finding was that the pandemic was associated with an increase in polarization.
      The keyword evaluation analysis provides opportunities of evaluating both strength and direction of voters’ view of their PM, where we show new results related to increased polarization and shift in the direction of attitudes.

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