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Introduction to Python for Data Analysis

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Dive Deeper into Visualization

Let's imagine that it is essential for you to sort out the user continued subscription after the trial period. Let's move to the dataset that we use, for example:

Look at the code:

12345678910
import pandas as pd import matplotlib.pyplot as plt import seaborn as sns df = pd.read_csv('https://codefinity-content-media.s3.eu-west-1.amazonaws.com/783d7288-e86b-4b89-9966-a2fe97995277/section_2_dataset_upd.csv', index_col = 0) df = df.groupby(['plan', 'trial']).sum().reset_index() sns.barplot(data = df, x = 'plan', y = 'price', hue = 'trial') plt.show()
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As you can see, we just add the hue parameter, which helps you sort out data by categories. For instance, here, hue = 'trial', the column 'trial' has two categories: True and False.

And here is the output:

barplot

Opgave

Swipe to start coding

Visualize the sum of money you receive from users depending on their subscription plan. Take into account if the user continued the subscription after the trial period.

  1. Import the seaborn with the sns alias.
  2. Import the matplotlib.pyplot with the plt alias.
  3. Prepare data for visualization using the .groupby() function:
  • Extract columns 'plan', 'price', 'trial' for grouping
  • Group by column 'plan' and then by 'trial'.
  • Calculate the sum of all prices for each plan.
  • Reset indices.
  1. Create the barplot using the seaborn:
  • Use df as the data argument.
  • Use the 'plan' column for x-axis.
  • Use the 'price' column for y-axis.
  • Use the 'trial' column for hue variable.
  1. Display the plot.

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?

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Sektion 3. Kapitel 17

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Dive Deeper into Visualization

Let's imagine that it is essential for you to sort out the user continued subscription after the trial period. Let's move to the dataset that we use, for example:

Look at the code:

12345678910
import pandas as pd import matplotlib.pyplot as plt import seaborn as sns df = pd.read_csv('https://codefinity-content-media.s3.eu-west-1.amazonaws.com/783d7288-e86b-4b89-9966-a2fe97995277/section_2_dataset_upd.csv', index_col = 0) df = df.groupby(['plan', 'trial']).sum().reset_index() sns.barplot(data = df, x = 'plan', y = 'price', hue = 'trial') plt.show()
copy

As you can see, we just add the hue parameter, which helps you sort out data by categories. For instance, here, hue = 'trial', the column 'trial' has two categories: True and False.

And here is the output:

barplot

Opgave

Swipe to start coding

Visualize the sum of money you receive from users depending on their subscription plan. Take into account if the user continued the subscription after the trial period.

  1. Import the seaborn with the sns alias.
  2. Import the matplotlib.pyplot with the plt alias.
  3. Prepare data for visualization using the .groupby() function:
  • Extract columns 'plan', 'price', 'trial' for grouping
  • Group by column 'plan' and then by 'trial'.
  • Calculate the sum of all prices for each plan.
  • Reset indices.
  1. Create the barplot using the seaborn:
  • Use df as the data argument.
  • Use the 'plan' column for x-axis.
  • Use the 'price' column for y-axis.
  • Use the 'trial' column for hue variable.
  1. Display the plot.

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!

Sektion 3. Kapitel 17
Switch to desktopSkift til skrivebord for at øve i den virkelige verdenFortsæt der, hvor du er, med en af nedenstående muligheder
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