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Course overview
Lesson Overview

2.13 – Logistic Regression: Predicting Categories: Logistic regression is used when the goal is to predict categorical outcomes such as yes/no or true/false. It transforms input variables using a sigmoid function to estimate probabilities. The model is widely used for binary classification problems like spam detection, credit approval, or medical diagnosis. Logistic regression provides both simplicity and interpretability, making it valuable for beginners and professionals alike. It remains a cornerstone for comparing performance with complex models. By converting probability into clear decisions, it bridges statistical reasoning with practical AI deployment.

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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