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Item Response Theory and Health Outcomes Measurement in the 21st Century

Medical Care · 2000 · Vol. 38(9 Suppl) · pp. II–28
Ron D. HaysLeo S. MoralesSteve P. Reise

Abstract

Item response theory (IRT) has a number of potential advantages over classical test theory in assessing self-reported health outcomes. IRT models yield invariant item and latent trait estimates (within a linear transformation), standard errors conditional on trait level, and trait estimates anchored to item content. IRT also facilitates evaluation of differential item functioning, inclusion of items with different response formats in the same scale, and assessment of person fit and is ideally suited for implementing computer adaptive testing. Finally, IRT methods can be helpful in developing better health outcome measures and in assessing change over time. These issues are reviewed, along with a discussion of some of the methodological and practical challenges in applying IRT methods.

Psychometric Methodologies and TestingGrit, Self-Efficacy, and MotivationAdvanced Statistical Modeling TechniquesItem response theoryDifferential item functioningComputerized adaptive testingClassical test theoryTraitEconometricsTest theoryRasch modelPsychologyComputer science

MeSH terms

Activities of Daily LivingData Interpretation, StatisticalHealth Services ResearchHealth SurveysHumansMathematical ComputingResearch DesignUnited StatesModels, StatisticalOutcome Assessment, Health Care

Funding

  • National Institute for Health and Care Research
  • National Institutes of Health
  • Health Resources and Services Administration
  • National Institute on Aging
  • National Institute of Mental Health
  • National Institute on Drug Abuse
Citations
861
FWCI
27.24
field-weighted impact
References
58
Percentile
100%
vs. same field & year
Citations per year
References
The MOS 36-ltem Short-Form Health Survey (SF-36)
Medical Care · 1992 · 29,431 citations
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