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"Everyone wants to do the model work, not the data work": Data Cascades in High-Stakes AI


Metadata FieldValueLanguage
dc.contributorAli Krzton, alk0043@auburn.eduen_US
dc.creatorKrzton, Ali
dc.date.accessioned2022-04-13T18:51:06Z
dc.date.available2022-04-13T18:51:06Z
dc.date.created2022-01
dc.identifier.urihttps://aurora.auburn.edu/handle/11200/50059
dc.identifier.urihttp://dx.doi.org/10.35099/aurora-128
dc.description.abstractThose who work with data have learned the importance of provenance, documentation, standardization, context, and metadata in maintaining the quality of datasets. This was historically done to preserve their utility for human reuse and re-examination, but in recent years the emphasis on machine-readability of datasets has increased, in part to allow for their use in AI (artificial intelligence) applications. Just as those involved in creating and maintaining datasets benefit from an improved understanding of how they might be used with AI, the developers of AI systems should pay attention to issues that affect the data upon which their models rely. Several Google researchers present this perspective in “‘Everyone wants to do the model work, not the data work’: Data Cascades in High-Stakes AI”, a conference paper based on their qualitative study of AI practitioners (Sambasivan et al., 2021).en_US
dc.formatPDFen_US
dc.publisherResearch Data Access and Preservation Associationen_US
dc.relation.ispartofRDAP Happeningsen_US
dc.rightsCC-BYen_US
dc.subjectartificial intelligenceen_US
dc.subjectmachine learningen_US
dc.subjectdata qualityen_US
dc.subjectmodel erroren_US
dc.title"Everyone wants to do the model work, not the data work": Data Cascades in High-Stakes AIen_US
dc.typeTexten_US
dc.type.genreBook Reviewen_US
dc.citation.volume2022en_US
dc.citation.issue1en_US
dc.citation.spage3en_US
dc.citation.epage5en_US
dc.description.statusPublisheden_US
dc.description.peerreviewNoen_US
dc.creator.alternateKrzton, Alicia
dc.creator.orcid0000-0001-9979-2471en_US

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