Identifying medication use clusters with the R package tame based on dose, timing and ATC codes
Anna Laksafoss1, Jan Wohlfahrt2,3, Anders Hviid4,5
1Department of Epidemiology Research, Statens Serum Institut, Copenhagen, Denmark. adls@ssi.dk.
The R package tame refines medication use classification beyond simple exposure metrics. It identifies complex patterns in real-world data, improving epidemiological study stratification.
Area of Science:
- Pharmacoepidemiology
- Computational Statistics
- Health Informatics
Background:
- Pharmacoepidemiology often simplifies medication exposure, potentially missing crucial usage complexities.
- Existing methods may not adequately capture nuanced patterns like timing, dosage, and concurrent medication use.
Purpose of the Study:
- Introduce "tame", an R package designed for advanced medication use pattern classification.
- To provide researchers with tools to analyze complex, real-world medication data with greater accuracy.
Main Methods:
- Develop a novel distance measure within the "tame" package for clustering medication use.
- Enable customization of the distance measure using Anatomical Therapeutic Chemical (ATC) codes, timing, and dose.
- Incorporate visualization and application tools for identified medication use clusters.
Main Results:
- The "tame" package successfully identified nuanced antidepressant use patterns in a Danish pregnancy cohort.
- Demonstrated the package's ability to detect complex medication trends and improve data stratification.
- Validated the effectiveness of the bespoke distance measure in uncovering intricate medication use patterns.
Conclusions:
- "tame" offers a significant advancement in classifying medication use patterns in pharmacoepidemiology.
- The package enhances the understanding of real-world medication usage and interactions.
- Facilitates more precise patient stratification for epidemiological research.
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