Which step is essential in handling missing data?单项选择题
A
a. Ignoring the missing values
B
b. Removing the dataset entirely if any data is missing
C
c. Identifying the pattern and extent of missing data
D
d. Replacing all missing values with zero
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In the cat predation study, the majority of owners provided data on the majority of days, but the number of observation days varied. The average number of prey per day was calculated for each cat, so this will be based on a different number of days for different cats. Considering this information, which of the following is true? (Tick as many as apply.)
What is NOT a recommended practice for handling missing data during EDA?
Creating a dummy variable to indicate a missing predictor value is a valid way to handle missing values
In our course, if I don't have any information about a specific Marin Factor I should assign a value of:
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