EDUCBA
Master Decision Trees in R: Build, Predict & Evaluate

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EDUCBA

Master Decision Trees in R: Build, Predict & Evaluate

EDUCBA

Instructor: EDUCBA

Included with Coursera Plus

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Gain insight into a topic and learn the fundamentals.
7 hours to complete
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
7 hours to complete
Flexible schedule
Learn at your own pace

What you'll learn

  • Preprocess data, engineer features, and train decision tree models in R.

  • Visualize results and evaluate performance using confusion matrix and metrics.

  • Apply classification and regression trees to real-world business and financial cases.

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Recently updated!

September 2025

Assessments

13 assignments

Taught in English

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There are 4 modules in this course

This module introduces learners to the fundamentals of decision tree modeling using R. It covers the basics of tree structure, data preparation, and the creation of classification models. By the end of this module, learners will understand how to preprocess data, construct decision trees, and evaluate model performance effectively.

What's included

8 videos4 assignments1 plugin

This module introduces learners to the fundamentals of Decision Tree modeling and its application in Bank Loan Default Prediction. Participants will explore the basics of analytics, understand the problem statement, and prepare their tools and datasets in R to begin predictive modeling with confidence.

What's included

5 videos3 assignments

This module explores advanced applications of decision trees in R, focusing on real-world datasets, regression trees, and visualization. Learners will practice prediction tasks, implement splitting strategies, and compare R packages for decision tree modeling.

What's included

6 videos3 assignments

This module focuses on applying Decision Tree modeling in R by preparing datasets, training models, and evaluating predictive performance. Learners will gain hands-on experience in coding, interpreting results using a confusion matrix, and understanding how decision trees support financial risk prediction.

What's included

5 videos3 assignments

Instructor

EDUCBA
EDUCBA
311 Courses110,183 learners

Offered by

EDUCBA

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