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Machine Learning and AI Foundations: Advanced Decision Trees with KNIME

Via LinkedIn Learning

LinkedIn Learning based on 17 ratings

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Overview

"Machine Learning and AI Foundations: Advanced Decision Trees with KNIME" is a focused course for data professionals and analysts seeking to deepen their machine learning expertise using the KNIME Analytics Platform. This course emphasizes advanced decision tree techniques and their practical applications in solving real-world business problems. Learners will explore how to build, interpret, and optimize complex decision tree models using KNIME’s intuitive, drag-and-drop interface. The course covers algorithms such as Random Forest, Gradient Boosted Trees, and Decision Stump Ensembles, while...

Syllabus

Introduction

  • Advanced decision trees
  • What you should know
  • Using the exercise files

1. Exploring the Many Decision Tree Algorithms

  • Why are trees considered greedy algorithms?
  • Why are there so many algorithms?
  • Five low node or no code options in KNIME

2. Using Extensions

  • Installing extensions
  • WEKA LMT demonstration
  • Interpreting the LMT results

3. What Is Rule Induction?

  • Comparing trees and rule induction
  • Rule induction demo
  • Interpreting the rules

4. Low Code Python Options in KNIME

  • Low code options in KNIME
  • Python script node demo
  • CHAID demo in KNIME
  • Advanced code options in KNIME (optimal sparse trees)

5. Ensembles and Random Forests

  • Introducing random forest
  • Random forests demo
  • Comparing two models

6. Advanced Tips and Tricks

  • Data reduction with random forests
  • The XAI view node
  • Deployment

Conclusion

  • Final thoughts and recommendations
Machine Learning and AI Foundations: Advanced Decision Trees with KNIME
Go to Class

via LinkedIn Learning

1 hour 33 minutes

Certificate Available

English

On-Demand

Instructor

Keith McCormick

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