Data quality of platforms and panels for online behavioral research.

Amazon mechanical turk Attention Comprehension Data quality Honesty Online research Prolific Reliability

Journal

Behavior research methods
ISSN: 1554-3528
Titre abrégé: Behav Res Methods
Pays: United States
ID NLM: 101244316

Informations de publication

Date de publication:
08 2022
Historique:
accepted: 23 08 2021
pubmed: 1 10 2021
medline: 17 8 2022
entrez: 30 9 2021
Statut: ppublish

Résumé

We examine key aspects of data quality for online behavioral research between selected platforms (Amazon Mechanical Turk, CloudResearch, and Prolific) and panels (Qualtrics and Dynata). To identify the key aspects of data quality, we first engaged with the behavioral research community to discover which aspects are most critical to researchers and found that these include attention, comprehension, honesty, and reliability. We then explored differences in these data quality aspects in two studies (N ~ 4000), with or without data quality filters (approval ratings). We found considerable differences between the sites, especially in comprehension, attention, and dishonesty. In Study 1 (without filters), we found that only Prolific provided high data quality on all measures. In Study 2 (with filters), we found high data quality among CloudResearch and Prolific. MTurk showed alarmingly low data quality even with data quality filters. We also found that while reputation (approval rating) did not predict data quality, frequency and purpose of usage did, especially on MTurk: the lowest data quality came from MTurk participants who report using the site as their main source of income but spend few hours on it per week. We provide a framework for future investigation into the ever-changing nature of data quality in online research, and how the evolving set of platforms and panels performs on these key aspects.

Identifiants

pubmed: 34590289
doi: 10.3758/s13428-021-01694-3
pii: 10.3758/s13428-021-01694-3
pmc: PMC8480459
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1643-1662

Commentaires et corrections

Type : ErratumIn

Informations de copyright

© 2021. The Psychonomic Society, Inc.

Références

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Auteurs

Eyal Peer (E)

Federmann School of Public Policy, The Hebrew University of Jerusalem, Jerusalem, Israel. eyal.peer@mail.huji.ac.il.

David Rothschild (D)

Microsoft Research, New York, NY, USA.

Andrew Gordon (A)

Prolific Inc., Newark, CA, 94560, USA.

Zak Evernden (Z)

Prolific Inc., Newark, CA, 94560, USA.

Ekaterina Damer (E)

Prolific Inc., Newark, CA, 94560, USA.

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Classifications MeSH