Why is it important to condition raw data before applying data science techniques?
Data Science 🐍 Prepare Data

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Information Technology (IT), Architecture, Social Studies
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12th Grade - University
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Hard
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10 questions
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1.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
To increase the size of the dataset
To ensure the data is in a usable format
To make the data more colorful
To make the data more complex
2.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
Which library function can be used to drop missing values in a dataset?
Numpy's dropna
Pandas' dropna
Scikit-learn's dropna
Matplotlib's dropna
3.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the purpose of using a box plot in data visualization?
To make the data more complex
To increase the data size
To identify outliers in the data
To add colors to the data
4.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is a limitation of the Grubbs test?
It can only detect a single outlier
It can only detect positive numbers
It can only detect missing values
It can only detect even numbers
5.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
Why is scaling data important for machine learning algorithms?
To make the data more complex
To increase the data size
To ensure algorithms perform optimally
To make the data more colorful
6.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What does the standard scaler do to the data?
It adds random noise
It normalizes data to zero mean and unit variance
It removes all outliers
It duplicates the data
7.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the typical split ratio for training and testing datasets?
50% training, 50% testing
70% training, 30% testing
80% training, 20% testing
90% training, 10% testing
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