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"Machine Learning and AI Foundations: Clustering and Association" is a foundational course focused on two key unsupervised learning techniques: clustering and association. Designed for beginners and data enthusiasts, this course helps learners understand how to discover hidden patterns and relationships in unlabeled data. You’ll explore clustering methods such as k-means, hierarchical clustering, and DBSCAN, learning how to group similar data points and identify natural data structures. The course also covers association rule mining techniques like the Apriori algorithm, which uncover meaningful...
Introduction
1. What Is Cluster Analysis?
2. K-Means
3. Visualizing and Reporting Cluster Solutions
4. HDBSCAN
5. Cluster Methods for Categorical Variables
6. Anomaly Detection
7. Association Rules and Sequence Detection
Conclusion
Keith McCormick
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