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Aprende Challenge: Count Duplicates | Foundations of Data Cleaning
Python for Data Cleaning

bookChallenge: Count Duplicates

Duplicate data occurs when the same row appears more than once in a dataset. These duplicate entries can skew your analysis by overrepresenting certain values, leading to inaccurate statistics, misleading trends, and unreliable results. Detecting and quantifying duplicate rows is a fundamental part of data cleaning, as it helps you understand the extent of the problem and informs your next steps—such as removing or consolidating these duplicates.

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import pandas as pd data = { "Name": ["Alice", "Bob", "Alice", "Charlie", "Bob", "Alice"], "Age": [25, 30, 25, 35, 30, 25], "City": ["NY", "LA", "NY", "SF", "LA", "NY"] } df = pd.DataFrame(data) print(df)
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Tarea

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Write a function that returns the number of duplicate rows in the given DataFrame. Use pandas methods to identify duplicates. The function must return an integer representing the total count of duplicate rows found in the DataFrame.

Solución

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Sección 1. Capítulo 4
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bookChallenge: Count Duplicates

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Duplicate data occurs when the same row appears more than once in a dataset. These duplicate entries can skew your analysis by overrepresenting certain values, leading to inaccurate statistics, misleading trends, and unreliable results. Detecting and quantifying duplicate rows is a fundamental part of data cleaning, as it helps you understand the extent of the problem and informs your next steps—such as removing or consolidating these duplicates.

123456789
import pandas as pd data = { "Name": ["Alice", "Bob", "Alice", "Charlie", "Bob", "Alice"], "Age": [25, 30, 25, 35, 30, 25], "City": ["NY", "LA", "NY", "SF", "LA", "NY"] } df = pd.DataFrame(data) print(df)
copy
Tarea

Swipe to start coding

Write a function that returns the number of duplicate rows in the given DataFrame. Use pandas methods to identify duplicates. The function must return an integer representing the total count of duplicate rows found in the DataFrame.

Solución

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¿Todo estuvo claro?

¿Cómo podemos mejorarlo?

¡Gracias por tus comentarios!

Sección 1. Capítulo 4
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single

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