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I just discovered the ggstatspackage which is really amazing.

I wonder if there is a way to have assumptions checks for ANOVA or t-tests? (like levene test and shapiro tests)

Also, I wonder if there is a way to automatically remove outliers when performing the inferential statistics?

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  • It's easier to help you if you include a simple reproducible example with sample input and desired output that can be used to test and verify possible solutions. The assumptions you make when model fitting or identifying a sample as an outlier are dependent on a deep understanding of your data, where it came from, and what type of inference you want to make about your data. The practice of statistics has not yet been automated.
    – MrFlick
    Oct 14, 2021 at 17:23

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I wonder if there is a way to have assumptions checks for ANOVA or t-tests? (like levene test and shapiro tests)

No. You can check out {performance} package to check model assumptions:

https://easystats.github.io/performance/reference/index.html#section-check-model-assumptions-or-properties

Also, I wonder if there is a way to automatically remove outliers when performing the inferential statistics?

No, this is not possible. {ggstatsplot} provides two ways to deal with outliers:

  • visually highlight them (using outlier.tagging = TRUE) in plots
  • use robust statistics (type = "robust"), which is robust to presence of outliers

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