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[conference paper]

dc.contributor.authorMakhortykh, Mykolade
dc.contributor.authorUrman, Aleksandrade
dc.contributor.authorUlloa, Robertode
dc.contributor.editorBoratto, Ludovicode
dc.contributor.editorFaralli, Stefanode
dc.contributor.editorMarras, Mirkode
dc.contributor.editorStilo, Giovannide
dc.date.accessioned2021-11-03T18:50:19Z
dc.date.available2021-11-03T18:50:19Z
dc.date.issued2021de
dc.identifier.isbn978-3-030-78818-6de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/75528
dc.description.abstractWeb search engines influence perception of social reality by filtering and ranking information. However, their outputs are often subjected to bias that can lead to skewed representation of subjects such as professional occupations or gender. In our paper, we use a mixed-method approach to investigate presence of race and gender bias in representation of artificial intelligence (AI) in image search results coming from six different search engines. Our findings show that search engines prioritize anthropomorphic images of AI that portray it as white, whereas non-white images of AI are present only in non-Western search engines. By contrast, gender representation of AI is more diverse and less skewed towards a specific gender that can be attributed to higher awareness about gender bias in search outputs. Our observations indicate both the need and the possibility for addressing bias in representation of societally relevant subjects, such as technological innovation, and emphasize the importance of designing new approaches for detecting bias in information retrieval systems.de
dc.languageende
dc.publisherSpringerde
dc.subject.ddcNews media, journalism, publishingen
dc.subject.ddcPublizistische Medien, Journalismus,Verlagswesende
dc.subject.otherweb search; bias; artificial intelligencede
dc.titleDetecting Race and Gender Bias in Visual Representation of AI on Web Search Enginesde
dc.description.reviewnicht begutachtetde
dc.description.reviewnot revieweden
dc.source.collectionAdvances in Bias and Fairness in Information Retrievalde
dc.source.volume1418de
dc.publisher.countryCHEde
dc.source.seriesCommunications in Computer and Information Science
dc.subject.classozInteractive, electronic Mediaen
dc.subject.classozinteraktive, elektronische Mediende
dc.subject.thesozRepräsentationde
dc.subject.thesozkünstliche Intelligenzde
dc.subject.thesozonline serviceen
dc.subject.thesozartificial intelligenceen
dc.subject.thesozinformation retrievalen
dc.subject.thesozAlgorithmusde
dc.subject.thesozalgorithmen
dc.subject.thesozOnline-Dienstde
dc.subject.thesozTrendde
dc.subject.thesozrepresentationen
dc.subject.thesozsearch engineen
dc.subject.thesozSuchmaschinede
dc.subject.thesoztrenden
dc.subject.thesozinformation retrievalde
dc.identifier.urnurn:nbn:de:0168-ssoar-75528-7
dc.rights.licenceDeposit Licence - Keine Weiterverbreitung, keine Bearbeitungde
dc.rights.licenceDeposit Licence - No Redistribution, No Modificationsen
ssoar.contributor.institutionGESISde
internal.statusformal und inhaltlich fertig erschlossende
internal.identifier.thesoz10035039
internal.identifier.thesoz10056648
internal.identifier.thesoz10042413
internal.identifier.thesoz10068114
internal.identifier.thesoz10043031
internal.identifier.thesoz10047326
internal.identifier.thesoz10064826
dc.type.stockincollectionde
dc.type.documentKonferenzbeitragde
dc.type.documentconference paperen
dc.source.pageinfo1-16de
internal.identifier.classoz1080404
internal.identifier.document16
dc.source.conferenceSecond International Workshop on Algorithmic Bias in Search and Recommendation, BIAS 2021de
dc.event.cityLucca, Italyde
internal.identifier.ddc070
dc.identifier.doihttps://doi.org/10.1007/978-3-030-78818-6_5de
dc.description.pubstatusPreprintde
dc.description.pubstatusPreprinten
internal.identifier.licence3
internal.identifier.pubstatus3
internal.identifier.review3
internal.identifier.series1846
dc.subject.classhort10800de
ssoar.wgl.collectiontruede
internal.pdf.wellformedtrue
internal.pdf.encryptedfalse


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