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dc.contributor.authorPellert, Maxde
dc.contributor.authorLechner, Clemensde
dc.contributor.authorWagner, Claudiade
dc.contributor.authorRammstedt, Beatricede
dc.contributor.authorStrohmaier, Markusde
dc.date.accessioned2024-02-01T11:31:31Z
dc.date.available2024-02-01T11:31:31Z
dc.date.issued2023de
dc.identifier.issn1745-6924de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/91776
dc.description.abstractWe illustrate how standard psychometric inventories originally designed for assessing noncognitive human traits can be repurposed as diagnostic tools to evaluate analogous traits in large language models (LLMs). We start from the assumption that LLMs, inadvertently yet inevitably, acquire psychological traits (metaphorically speaking) from the vast text corpora on which they are trained. Such corpora contain sediments of the personalities, values, beliefs, and biases of the countless human authors of these texts, which LLMs learn through a complex training process. The traits that LLMs acquire in such a way can potentially influence their behavior, that is, their outputs in downstream tasks and applications in which they are employed, which in turn may have real-world consequences for individuals and social groups. By eliciting LLMs' responses to language-based psychometric inventories, we can bring their traits to light. Psychometric profiling enables researchers to study and compare LLMs in terms of noncognitive characteristics, thereby providing a window into the personalities, values, beliefs, and biases these models exhibit (or mimic). We discuss the history of similar ideas and outline possible psychometric approaches for LLMs. We demonstrate one promising approach, zero-shot classification, for several LLMs and psychometric inventories. We conclude by highlighting open challenges and future avenues of research for AI Psychometrics.de
dc.languageende
dc.subject.ddcSoziologie, Anthropologiede
dc.subject.ddcSociology & anthropologyen
dc.subject.otherlarge language model; natural language processing; natural language inference; personality; values; moral foundations; gender/sex diversity beliefsde
dc.titleAI Psychometrics: Assessing the Psychological Profiles of Large Language Models Through Psychometric Inventoriesde
dc.description.reviewbegutachtet (peer reviewed)de
dc.description.reviewpeer revieweden
dc.source.journalPerspectives on Psychological Science
dc.publisher.countryGBRde
dc.source.issueOnlineFirstde
dc.subject.classozWissenschaftssoziologie, Wissenschaftsforschung, Technikforschung, Techniksoziologiede
dc.subject.classozSociology of Science, Sociology of Technology, Research on Science and Technologyen
dc.subject.thesozkünstliche Intelligenzde
dc.subject.thesozartificial intelligenceen
dc.subject.thesozPsychometriede
dc.subject.thesozpsychometricsen
dc.subject.thesozWertorientierungde
dc.subject.thesozvalue-orientationen
dc.subject.thesozMoralde
dc.subject.thesozmoralityen
dc.subject.thesozStereotypde
dc.subject.thesozstereotypeen
dc.rights.licenceCreative Commons - Namensnennung 4.0de
dc.rights.licenceCreative Commons - Attribution 4.0en
ssoar.contributor.institutionGESISde
internal.statusformal und inhaltlich fertig erschlossende
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dc.type.stockarticlede
dc.type.documentZeitschriftenartikelde
dc.type.documentjournal articleen
internal.identifier.classoz10220
internal.identifier.journal2076
internal.identifier.document32
internal.identifier.ddc301
dc.identifier.doihttps://doi.org/10.1177/17456916231214460de
dc.description.pubstatusVeröffentlichungsversionde
dc.description.pubstatusPublished Versionen
internal.identifier.licence16
internal.identifier.pubstatus1
internal.identifier.review1
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