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  1. Mining Social Science Publications for Survey Variables
    Erschienen: 2018
    Verlag:  MISC

    Research in Social Science is usually based on survey data where individual research questions relate to observable concepts (variables). However, due to a lack of standards for data citations a reliable identification of the variables used is often... mehr

     

    Research in Social Science is usually based on survey data where individual research questions relate to observable concepts (variables). However, due to a lack of standards for data citations a reliable identification of the variables used is often difficult. In this paper, we present a work-in-progress study that seeks to provide a solution to the variable detection task based on supervised machine learning algorithms, using a linguistic analysis pipeline to extract a rich feature set, including terminological concepts and similarity metric scores. Further, we present preliminary results on a small dataset that has been specifically designed for this task, yielding modest improvements over the baseline.

     

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    Quelle: BASE Fachausschnitt AVL
    Sprache: Unbestimmt
    Medientyp: Konferenzveröffentlichung
    Format: Online
    Übergeordneter Titel: Proceedings of the Second Workshop on NLP and Computational Social Science ; 47-52
    DDC Klassifikation: Literatur und Rhetorik (800); Publizistische Medien, Journalismus, Verlagswesen (070)
    Schlagworte: Literatur; Rhetorik; Literaturwissenschaft; Publizistische Medien; Journalismus,Verlagswesen; Literature; rhetoric and criticism; News media; journalism; publishing; OpenMinTed; Information Science; Science of Literature; Linguistics; Sprachwissenschaft; Linguistik; Informationswissenschaft; publication; technical literature; artificial intelligence; computational linguistics; survey; social science; concept; algorithm; periodical; construction of indicators; data capture; Datengewinnung; künstliche Intelligenz; Begriff; Algorithmus; Computerlinguistik; Befragung; Publikation; Sozialwissenschaft; Fachliteratur; Indikatorenbildung; Zeitschrift
    Lizenz:

    Creative Commons - Namensnennung, Nicht-kommerz., Weitergabe unter gleichen Bedingungen 4.0 ; Creative Commons - Attribution-NonCommercial-ShareAlike 4.0 ; info:eu-repo/semantics/openAccess