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Longitudinal drop-out and weighting against its bias.

Steffen Christian Ekkehard SchmidtAlexander Woll
Published in: BMC medical research methodology (2017)
We conclude that a weighting procedure is important to reduce longitudinal bias in health-oriented epidemiological studies and suggest identifying the most influencing variables in the first step, then use logistic regression modeling to calculate the inverse of the probability of participation in the second step, and finally trim and standardize the weights in the third step.
Keyphrases
  • healthcare
  • public health
  • cross sectional
  • mental health
  • minimally invasive
  • health information
  • social media
  • risk assessment
  • climate change