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Machine Learning Quiz

Authored by Asst.Prof.,ECE Chennai

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Professional Development

Machine Learning Quiz
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14 questions

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1.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

Which of the following is NOT a common type of machine learning?

Supervised learning

Unsupervised learning

Reinforcement learning

Statistical learning

2.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

Which of the following is an example of a regression problem?

Classifying images of animals into different species

Predicting the price of a house based on its features

Identifying spam emails

Recommending products to customers based on their purchase history

3.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

What is the purpose of a cost function in machine learning?

To measure the accuracy of the model's predictions

To optimize the model's parameters during training

To prevent overfitting of the model to the training data

To reduce the complexity of the model

4.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

Which of the following is a common method for evaluating the performance of a machine learning model?

Cross-validation

Gradient descent

Feature engineering

Regularization

5.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

What is the difference between a validation set and a test set in machine learning?

A validation set is used to train the model, while a test set is used to evaluate its performance.

A validation set is used to tune the hyperparameters of the model, while a test set is used to evaluate its final performance.

A validation set is used to evaluate the model's generalization performance, while a test set is used to evaluate its training performance.

There is no difference between a validation set and a test set.

6.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

Which of the following is an example of an ensemble learning technique?

Linear regression

Decision trees

Naive Bayes classification

Support vector machines (SVM)

7.

MULTIPLE CHOICE QUESTION

1 min • 1 pt

What is the purpose of feature scaling in machine learning?

To make the model more complex

To reduce the size of the dataset

To improve the accuracy of the model

To normalize the features so they have similar ranges

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