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9: Categorical Data Analysis

  • Page ID
    29495
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    Now that we’ve looked at the basic theory behind hypothesis testing, it’s time to start looking at specific tests that are commonly used in psychology. So where should we start? Not every textbook agrees on where to start, but this here book is going to start with “\(\chi\)2 tests” (this chapter) and “t-tests” (Chapter ??). Both of these tools are very frequently used in scientific practice, and while they’re not as powerful as “analysis of variance” (Chapter ??) and “regression” (Chapter ??) they’re much easier to understand.

    The term “categorical data” is just another name for “nominal scale data”. It’s nothing that we haven’t already discussed, it’s just that in the context of data analysis people tend to use the term “categorical data” rather than “nominal scale data”. I don’t know why. In any case, categorical data analysis refers to a collection of tools that you can use when your data are nominal scale. However, there are a lot of different tools that can be used for categorical data analysis, and this chapter only covers a few of the more common ones.


    This page titled 9: Categorical Data Analysis is shared under a CC BY-SA 4.0 license and was authored, remixed, and/or curated by Danielle Navarro.