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Lære Challenge: Preprocessing the Dataset | Core Concepts
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Challenge: Preprocessing the Dataset

Opgave

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You are given a synthetic dataset stored in the data variable.

  • Replace missing values in the 'Age' column with the mean value of this column and store the result in this column.
  • Create an instance of an appropriate encoder, which will be used for the 'City' column and store it in the city_encoder variable. Make sure to specify the removal of the first column.
  • Encode the values in the 'City' column using city_encoder and store the result in the city_encoded variable.
  • Create an instance of an appropriate encoder, which will be used for the 'Income' column and store it in the income_encoder variable. Note that 'High' > 'Middle' > 'Low'.
  • Encode the values in the 'Income' column using income_encoder and store the result in the 'Income' column.

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Challenge: Preprocessing the Dataset

Opgave

Swipe to start coding

You are given a synthetic dataset stored in the data variable.

  • Replace missing values in the 'Age' column with the mean value of this column and store the result in this column.
  • Create an instance of an appropriate encoder, which will be used for the 'City' column and store it in the city_encoder variable. Make sure to specify the removal of the first column.
  • Encode the values in the 'City' column using city_encoder and store the result in the city_encoded variable.
  • Create an instance of an appropriate encoder, which will be used for the 'Income' column and store it in the income_encoder variable. Note that 'High' > 'Middle' > 'Low'.
  • Encode the values in the 'Income' column using income_encoder and store the result in the 'Income' column.

Løsning

Switch to desktopSkift til skrivebord for at øve i den virkelige verdenFortsæt der, hvor du er, med en af nedenstående muligheder
Var alt klart?

Hvordan kan vi forbedre det?

Tak for dine kommentarer!

close

Awesome!

Completion rate improved to 2.94

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