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[journal article]

dc.contributor.authorHaunss, Sebastiande
dc.contributor.authorKuhn, Jonasde
dc.contributor.authorPadó, Sebastiande
dc.contributor.authorBlessing, Andrede
dc.contributor.authorBlokker, Nicode
dc.contributor.authorDayanik, Erenayde
dc.contributor.authorLapesa, Gabriellade
dc.date.accessioned2021-03-01T11:30:36Z
dc.date.available2021-03-01T11:30:36Z
dc.date.issued2020de
dc.identifier.issn2183-2463de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/71797
dc.description.abstractThis article investigates the integration of machine learning in the political claim annotation workflow with the goal to partially automate the annotation and analysis of large text corpora. It introduces the MARDY annotation environment and presents results from an experiment in which the annotation quality of annotators with and without machine learning based annotation support is compared. The design and setting aim to measure and evaluate: a) annotation speed; b) annotation quality; and c) applicability to the use case of discourse network generation. While the results indicate only slight increases in terms of annotation speed, the authors find a moderate boost in annotation quality. Additionally, with the help of manual annotation of the actors and filtering out of the false positives, the machine learning based annotation suggestions allow the authors to fully recover the core network of the discourse as extracted from the articles annotated during the experiment. This is due to the redundancy which is naturally present in the annotated texts. Thus, assuming a research focus not on the complete network but the network core, an AI-based annotation can provide reliable information about discourse networks with much less human intervention than compared to the traditional manual approach.de
dc.languageende
dc.subject.ddcSozialwissenschaften, Soziologiede
dc.subject.ddcSocial sciences, sociology, anthropologyen
dc.subject.otherannotation; machine learning; migration discoursede
dc.titleIntegrating Manual and Automatic Annotation for the Creation of Discourse Network Data Setsde
dc.description.reviewbegutachtet (peer reviewed)de
dc.description.reviewpeer revieweden
dc.identifier.urlhttps://www.cogitatiopress.com/politicsandgovernance/article/view/2591de
dc.source.journalPolitics and Governance
dc.source.volume8de
dc.publisher.countryPRT
dc.source.issue2de
dc.subject.classozErhebungstechniken und Analysetechniken der Sozialwissenschaftende
dc.subject.classozMethods and Techniques of Data Collection and Data Analysis, Statistical Methods, Computer Methodsen
dc.subject.thesozDatengewinnungde
dc.subject.thesozdata captureen
dc.subject.thesozAutomatisierungde
dc.subject.thesozautomationen
dc.subject.thesozkünstliche Intelligenzde
dc.subject.thesozartificial intelligenceen
dc.subject.thesozDiskursde
dc.subject.thesozdiscourseen
dc.subject.thesozNetzwerkde
dc.subject.thesoznetworken
dc.subject.thesozTextanalysede
dc.subject.thesoztext analysisen
dc.rights.licenceCreative Commons - Namensnennung 4.0de
dc.rights.licenceCreative Commons - Attribution 4.0en
internal.statusformal und inhaltlich fertig erschlossende
internal.identifier.thesoz10040547
internal.identifier.thesoz10037519
internal.identifier.thesoz10043031
internal.identifier.thesoz10041158
internal.identifier.thesoz10053141
internal.identifier.thesoz10035477
dc.type.stockarticlede
dc.type.documentZeitschriftenartikelde
dc.type.documentjournal articleen
dc.source.pageinfo326-339de
internal.identifier.classoz10105
internal.identifier.journal787
internal.identifier.document32
internal.identifier.ddc300
dc.source.issuetopicPolicy Debates and Discourse Network Analysisde
dc.identifier.doihttps://doi.org/10.17645/pag.v8i2.2591de
dc.description.pubstatusVeröffentlichungsversionde
dc.description.pubstatusPublished Versionen
internal.identifier.licence16
internal.identifier.pubstatus1
internal.identifier.review1
internal.dda.referencehttps://www.cogitatiopress.com/politicsandgovernance/oai/@@oai:ojs.cogitatiopress.com:article/2591
ssoar.urn.registrationfalsede


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