This course introduces you to one of the main types of modelling families of supervised Machine Learning: Regression. You will learn how to train regression models to predict continuous outcomes and how to use error metrics to compare across different models. This course also walks you through best practices, including train and test splits, and regularization techniques.

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



Instructors: Mark J Grover
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835 reviews
Skills you'll gain
- Data Preprocessing
- Regression Analysis
- Supervised Learning
- Predictive Modeling
- Statistical Methods
- Model Training
- Machine Learning
- Applied Machine Learning
- Statistical Machine Learning
- Machine Learning Methods
- Model Optimization
- Model Evaluation
- Statistical Modeling
- Statistical Analysis
- Data Presentation
- Machine Learning Algorithms
- Feature Engineering
Tools you'll learn
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Reviewed on Nov 6, 2020
Great course and very well structured. I'm really impressed with the instructor who give thorough walkthrough to the code.
Reviewed on Oct 18, 2023
The course is extremely good in understanding the concepts of regressions. Great work
Reviewed on Jun 3, 2021
very clear contents and explanations. Regression methods are thoroughly explained. Examples of coding are indeed a very good basis to start coding on the project.
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