spss how to test for normality
This quick guide will explain how to check if sample data is normally distributed in the SPSS statistical package. There are several different ways to test this claim. We will focus on the Kolmogorov-Smirnov and Shapiro-Wilk tests.
Data
Contents
Our example data, shown above in the SPSS Data View, came from a pretend study that looked at the effect of dog ownership on discus throwing ability. it is usually distributed before deciding which statistical test to use to determine if dog ownership is related to saucer throwing ability.
Normality test
To get started, click Analyze -> Descriptive Statistics -> Explore… This will bring up the Explore dialog box as shown below.The setup here is pretty easy, first you have to toggle the Spindle Throw Distance variable from the left box into the Dependencies List box. You can drag and drop or use the blue arrow in the middle. The Factor List Box allows you to separate your dependent variable on the basis of different levels of your independent variable(s). In our example, Dog Owner, our independent variable, has two levels – owner and not owner – so we can add Dog Owner to the Factor List box and consider our dependent variable separation on that basis. However, since we can fully test normality without this added complexity, we’ll just leave the box blank. Read more: Expert tips to turn you into a confident driver of the Dependency List box, you should click the Plots button. The Plots dialog box will pop up.In this box, you want to make sure that the Standard histogram with test option is ticked, and that you can also select both descriptive statistics options (Stem and Leaf and Histogram). Now click Continue, this will take you back to the Explore Dialog. Now it will look something like this.Now that you are ready to check if your data is distributed normally, press the OK button.
Result
The Explore option in SPSS produces quite a bit of output. This is what you need to assess if your data distribution is normal.SPSS runs two statistical tests for normality – Kolmogorov-Smirnov and Shapiro-Wilk. Read more: how to make jaggery at home If the significance value is greater than the alpha value (we will use 0.05 as the alpha value), there is no reason to think that our data significantly different from the normal distribution – that is, we can reject the null hypothesis that it is not normal. We can be confident that our data is normally distributed. A possible complication here occurs when the results of the two tests do not agree – that is, when one test gives a significant result and the other does not. In this situation, use the Shapiro-Wilk result – in most cases it is more reliable.
Lot QQ
SPSS also provides a regular QQ Plot chart that provides a visual graph of the data distribution.If a distribution is normal, then the dots will follow the trendline. statistical test and we are safe to assume that our data is normally distributed. This means that at least one of the criteria for parametric statistical testing is met. *************** Okay, this tutorial is over and done with. You can now interrogate your data to determine if it is normally distributed. Read more: thank you for teaching me how to love | Top Q&A
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