Evaluating Large Language Models in Generating Synthetic HCI Research Data: a Case Study

Tutkimustuotos: Artikkeli kirjassa/konferenssijulkaisussaConference contributionScientificvertaisarvioitu

2 Sitaatiot (Scopus)
219 Lataukset (Pure)

Abstrakti

Collecting data is one of the bottlenecks of Human-Computer Interaction (HCI) research. Motivated by this, we explore the potential of large language models (LLMs) in generating synthetic user research data.We use OpenAI’s GPT-3 model to generate open-ended questionnaire responses about experiencing video games as art, a topic not tractable with traditional computational user models. We test whether synthetic responses can be distinguished from real responses, analyze errors of synthetic data, and investigate content similarities between synthetic and real data. We conclude that GPT-3 can, in this context, yield believable accounts of HCI experiences. Given the low cost and high speed of LLM data generation, synthetic data should be useful in ideating and piloting new experiments, although any fndings must obviously always be validated with real data. The results also raise concerns: if employed by malicious users of crowdsourcing services, LLMs may make crowdsourcing of self-report data fundamentally unreliable.
AlkuperäiskieliEnglanti
OtsikkoProceedings of the 2023 CHI Conference on Human Factors in Computing Systems (CHI ’23)
KustantajaACM
Sivumäärä19
ISBN (elektroninen)978-1-4503-9421-5
DOI - pysyväislinkit
TilaJulkaistu - 19 huhtik. 2023
OKM-julkaisutyyppiA4 Artikkeli konferenssijulkaisussa
TapahtumaACM SIGCHI Annual Conference on Human Factors in Computing Systems - Hamburg, Saksa
Kesto: 23 huhtik. 202328 huhtik. 2023
https://chi2023.acm.org/

Conference

ConferenceACM SIGCHI Annual Conference on Human Factors in Computing Systems
LyhennettäACM CHI
Maa/AlueSaksa
KaupunkiHamburg
Ajanjakso23/04/202328/04/2023
www-osoite

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