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Machine Learning and AI Foundations: Classification Modeling

Via LinkedIn Learning

LinkedIn Learning based on 587 ratings

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Overview

"Machine Learning and AI Foundations: Classification Modeling" is a foundational course focused on teaching the principles and techniques behind classification models, a core aspect of machine learning and AI. This course is ideal for beginners and professionals seeking to build a solid understanding of how classification algorithms work and how to apply them effectively. You’ll explore various classification methods such as logistic regression, decision trees, support vector machines, and k-nearest neighbors. The course covers critical concepts including feature selection, model training,...

Syllabus

Introduction

  • Classification problems in machine learning
  • What you should know
  • Defining terms

1. The Big Picture: Defining Your Classification Strategy

  • The importance of binary classification
  • Binary vs. multinomial
  • So-called black box techniques
  • One task, many algorithms
  • Statistics vs. machine learning
  • Model assessment vs. business evaluation

2. How Do I Choose a "Winner"?

  • Training and test partitions
  • Lift Charts
  • Gains tables
  • Confusion matrix

3. Algorithms on Parade

  • Overview
  • Discriminant with three categories
  • Discriminant with two categories
  • Stepwise discriminant
  • Logistic regression
  • Stepwise logistic regression
  • Decision Trees
  • KNN
  • Linear SVM
  • Neural nets
  • Bayesian networks
  • Heterogenous ensembles
  • Bagging and random forest
  • Boosting and XGBoost

4. Common Modeling Challenges

  • Imbalanced target categories
  • Interactions
  • Missing data
  • Bias-variance trade-off and overfitting
  • Data reduction
  • AutoML

Conclusion

  • Next steps
Machine Learning and AI Foundations: Classification Modeling
Go to Class

via LinkedIn Learning

2 hours 5 minutes

Certificate Available

English

On-Demand

Instructor

Keith McCormick

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