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Computationally efficient methods for fitting mixed models to electronic health records data.

K M Rhodes1, R M Turner1,2, R A Payne3

  • 1MRC Biostatistics Unit, University of Cambridge, Cambridge Institute of Public Health, Cambridge, UK.

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Summary
This summary is machine-generated.

New statistical methods efficiently analyze large healthcare datasets. Weighted regression and meta-analysis offer faster analysis of patient data, providing reliable results comparable to full dataset analysis.

Keywords:
health recordsmeta-analysismixed-effects regression modelsubsamplingtall data

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Area of Science:

  • Biostatistics
  • Health Informatics
  • Epidemiology

Background:

  • Analysis of large healthcare datasets presents computational challenges.
  • Mixed-effects models are suitable for clustered data, like patient records within general practices.
  • Existing methods for large datasets, such as subsampling, may impact statistical power.

Purpose of the Study:

  • To describe novel statistical methods for analyzing large primary care datasets.
  • To investigate associations between patient characteristics and health outcomes while accounting for practice-level variation.
  • To compare the efficiency and accuracy of new methods against existing approaches.

Main Methods:

  • Development and application of weighted regression for large datasets.
  • Utilizing meta-analysis of practice-specific regression coefficients.
  • Comparison with a subsampling approach for mixed-effects model fitting.
  • Inclusion of random intercepts to model heterogeneity among general practices.

Main Results:

  • Weighted regression and meta-analysis significantly reduce dataset size and analysis time.
  • Both methods yield point estimates comparable to analyzing the entire dataset.
  • Weighted regression and meta-analysis provide standard errors similar to full dataset analysis.
  • Subsampling resulted in larger standard errors compared to the proposed methods.

Conclusions:

  • Weighted regression and meta-analysis are efficient and effective for analyzing large primary care datasets.
  • These methods provide accurate estimates and standard errors, facilitating research on patient characteristics and outcomes.
  • The described statistical techniques are readily implementable in standard statistical software.