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"Machine Learning and AI Foundations: Producing Explainable AI (XAI) and Interpretable Machine Learning Solutions" is a comprehensive course designed for professionals looking to deepen their understanding of machine learning and artificial intelligence while focusing on the critical area of explainability. As AI systems become more pervasive, the need for transparency and interpretability in AI models has grown significantly. This course explores the core principles and techniques for building AI systems that not only make predictions but also provide understandable insights...
Introduction
1. What Are XAI and IML?
2. Why Isolating a Variables Contribution Is Difficult
3. Black Box Model 101
4. Introduction to KNIME for XAI and IML
5. XAI Techniques: Global Explanations
6. Techniques for Local Explanations
7. IML Techniques
Conclusion
via LinkedIn Learning
2 hours 10 minutes
Certificate Available
English
On-Demand
Intermediate
Keith McCormick
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