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Course overview
Lesson Overview

2.16 – Gradient Boosting Machines (GBM): Gradient boosting builds models sequentially, where each new tree corrects the errors of the previous one. This iterative process produces highly accurate predictions for complex data patterns. GBM combines flexibility and precision, making it a favorite for competitions and real-world applications alike. It adjusts learning rates and depth to prevent overfitting. The method works exceptionally well on structured datasets, from finance to healthcare. Its success paved the way for more efficient successors like XGBoost and LightGBM. Gradient boosting represents a major advancement in ensemble learning techniques.

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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