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Give an example of relatively low precision versus relatively high precision categorical data.

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Final answer:

Relatively low precision categorical data lacks accuracy and consistency, while relatively high precision categorical data is more specific and consistent.

Step-by-step explanation:

Relatively low precision categorical data refers to data that is not very specific or accurate.

An example of this could be a survey question that asks people to rate their satisfaction on a scale of 1 to 10.

The responses may vary widely and lack consistency, leading to low precision.

On the other hand, relatively high precision categorical data is more specific and consistent.

For example, a survey question that asks people whether they prefer red, blue, or green would likely result in more precise data as there are limited options.

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