This course introduces you to one of the main types of modeling families of supervised Machine Learning: Classification. You will learn how to train predictive models to classify categorical outcomes and how to use error metrics to compare across different models. The hands-on section of this course focuses on using best practices for classification, including train and test splits, and handling data sets with unbalanced classes.

Supervised Machine Learning: Classification
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Supervised Machine Learning: Classification
This course is part of multiple programs.



Instructors: Mark J Grover
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Intermediate level
Some related experience required
2 weeks to complete
at 10 hours a week
Flexible schedule
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Skills you'll gain
- Business Logic
- Supervised Learning
- Sampling (Statistics)
- Machine Learning
- Decision Tree Learning
- Model Evaluation
- Data Preprocessing
- Statistical Machine Learning
- Predictive Modeling
- Model Optimization
- Model Training
- Data Cleansing
- Regression Analysis
- Machine Learning Methods
- Machine Learning Algorithms
- Logistic Regression
- Applied Machine Learning
- Random Forest Algorithm
Tools you'll learn
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Taught in English
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