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[conference paper]

dc.contributor.authorZielinski, Andreade
dc.contributor.authorMutschke, Peterde
dc.date.accessioned2018-06-28T08:17:25Z
dc.date.available2018-06-28T08:17:25Z
dc.date.issued2017de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/57722
dc.description.abstractResearch 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.en
dc.languageende
dc.relationinfo:eu-repo/grantAgreement/EC/H2020/654021de
dc.rightsinfo:eu-repo/semantics/openAccessde
dc.subject.ddcLiteratur, Rhetorik, Literaturwissenschaftde
dc.subject.ddcLiterature, rhetoric and criticismen
dc.subject.ddcNews media, journalism, publishingen
dc.subject.ddcPublizistische Medien, Journalismus,Verlagswesende
dc.subject.otherOpenMinTedde
dc.titleMining Social Science Publications for Survey Variablesde
dc.typeinfo:eu-repo/semantics/conferenceObjectde
dc.description.reviewbegutachtet (peer reviewed)de
dc.description.reviewpeer revieweden
dc.identifier.urlhttp://www.aclweb.org/anthology/W17-2907de
dc.source.collectionProceedings of the Second Workshop on NLP and Computational Social Sciencede
dc.publisher.countryMISC
dc.subject.classozInformation Scienceen
dc.subject.classozLiteraturwissenschaft, Sprachwissenschaft, Linguistikde
dc.subject.classozInformationswissenschaftde
dc.subject.classozScience of Literature, Linguisticsen
dc.subject.thesozpublicationen
dc.subject.thesoztechnical literatureen
dc.subject.thesozDatengewinnungde
dc.subject.thesozkünstliche Intelligenzde
dc.subject.thesozartificial intelligenceen
dc.subject.thesozcomputational linguisticsen
dc.subject.thesozsurveyen
dc.subject.thesozsocial scienceen
dc.subject.thesozBegriffde
dc.subject.thesozconcepten
dc.subject.thesozAlgorithmusde
dc.subject.thesozComputerlinguistikde
dc.subject.thesozBefragungde
dc.subject.thesozPublikationde
dc.subject.thesozSozialwissenschaftde
dc.subject.thesozFachliteraturde
dc.subject.thesozalgorithmen
dc.subject.thesozperiodicalen
dc.subject.thesozIndikatorenbildungde
dc.subject.thesozconstruction of indicatorsen
dc.subject.thesozdata captureen
dc.subject.thesozZeitschriftde
dc.identifier.urnurn:nbn:de:0168-ssoar-57722-7
dc.rights.licenceCreative Commons - Namensnennung, Nicht-kommerz., Weitergabe unter gleichen Bedingungen 4.0de
dc.rights.licenceCreative Commons - Attribution-NonCommercial-ShareAlike 4.0en
ssoar.contributor.institutionGESISde
internal.statusformal und inhaltlich fertig erschlossende
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dc.type.stockincollectionde
dc.type.documentKonferenzbeitragde
dc.type.documentconference paperen
dc.source.pageinfo47-52de
internal.identifier.classoz30200
internal.identifier.classoz1080500
internal.identifier.document16
dc.contributor.corporateeditorAssociation for Computational Linguistics (ACL)
dc.event.cityVancouverde
internal.identifier.corporateeditor1020
internal.identifier.ddc800
internal.identifier.ddc070
dc.date.conference2017de
dc.description.pubstatusPostprinten
dc.description.pubstatusPostprintde
internal.identifier.licence36
internal.identifier.pubstatus2
internal.identifier.review1
dc.subject.classhort30200de
dc.subject.classhort50200de
ssoar.wgl.collectiontruede
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internal.pdf.wellformedtrue
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internal.check.abstractlanguageharmonizerCERTAIN
internal.check.languageharmonizerCERTAIN_RETAINED


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