Nonparametric Statistics Course
This course equips you with nonparametric statistics skills for challenging skewed and zero-heavy data. Delve into robust testing, effect sizes, bootstrapping methods, and streamlined R/Python workflows to produce dependable analyses and professional reports suited to rigorous real-world research demands.

from 4 to 360h flexible workload
valid certificate in your country
What will I learn?
Gain expertise in nonparametric techniques for handling skewed, zero-inflated, and censored data in clinical settings through this practical course. You will explore robust estimators, rank tests, quantile regression, cluster methods, and effect measures, while applying exploratory data analysis, sensitivity analysis, bootstrapping, permutation testing, and reproducible reporting for authentic clinical datasets.
Elevify advantages
Develop skills
- Apply reliable nonparametric tests including Wilcoxon, Kruskal-Wallis, and Dunn procedures.
- Develop bootstrap and permutation strategies tailored to skewed, zero-heavy clinical datasets.
- Calculate sturdy effect sizes such as Hodges-Lehmann, Cliff’s delta, and rank-biserial correlation.
- Construct quantile and rank regression models incorporating categorical variables.
- Generate reproducible reports in R or Python featuring robust tables, visuals, and scripts.
Suggested summary
Before starting, you can change the chapters and the workload. Choose which chapter to start with. Add or remove chapters. Increase or decrease the course workload.What our students say
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