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Percent of variance explained

From the pca_output, you can retrieve the standard deviation explained by each principal component. Then, use these values to compute the variance explained and the cumulative variance explained, and glue together these values into a tibble.

The pca_output object is loaded for you.

Acest exercițiu face parte din cursul

Feature Engineering in R

Vezi cursul

Instrucțiuni pentru exercițiu

  • Calculate percentage of variance explained leveraging the standard deviation vector.
  • Create a tibble with principal components, variance explained and cumulative variance explained.

Exercițiu interactiv practic

Încearcă acest exercițiu completând acest cod de exemplu.

sdev <- pca_output$steps[[3]]$res$sdev
# Calculate percentage of variance explained
var_explained <- ___

# Create a tibble with principal components, variance explained and cumulative variance explained
PCA = tibble(PC = 1:length(sdev), var_explained = ___, 
       cumulative = ___) 
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