CompTIA DataX DY0-001 (V1) Practice Question

A data science team is analyzing data from a longitudinal study on a new hypertension drug's effectiveness. The dataset includes repeated blood pressure measurements for numerous participants over one year. The primary objective is to model the change in blood pressure over time, specifically accounting for the inherent correlation in measurements from the same individual. The chosen model must differentiate between fixed effects, such as the overall impact of the drug, and the random effects that represent individual variability in blood pressure trajectories. Which analytical approach is MOST suitable for this scenario?

  • Autoregressive Integrated Moving Average (ARIMA) model

  • Repeated Measures ANOVA (RMANOVA)

  • Pooled Ordinary Least Squares (OLS) Regression

  • Linear Mixed-Effects Model (LMM)

CompTIA DataX DY0-001 (V1)
Mathematics and Statistics
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