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Course overview
Lesson Overview

2.14 – Decision Trees and How They Work: Decision trees mimic human reasoning by dividing data into branches based on feature values. Each node represents a question, and each branch leads to a possible outcome. This visual, rule-based method is easy to interpret and powerful for classification and regression tasks. Decision trees handle both numeric and categorical data efficiently. However, they can overfit if not pruned or regularized. Their intuitive structure makes them ideal for explaining predictions to non-technical users. They form the basis of more advanced ensemble algorithms like random forests and gradient boosting.

About this course

A complete 500+ lesson journey from AI fundamentals to advanced machine learning, deep learning, generative AI, deployment, ethics, business applications, and cutting-edge research. Perfect for both beginners and seasoned AI professionals.

This course includes:
  • Step-by-step AI development and deployment projects
  • Practical coding examples with popular AI frameworks
  • Industry use cases and real-world case studies

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