This course takes you from understanding the fundamentals of a machine learning project. Learners will understand and implement supervised learning techniques on real case studies to analyze business case scenarios where decision trees, k-nearest neighbours and support vector machines are optimally used. Learners will also gain skills to contrast the practical consequences of different data preparation steps and describe common production issues in applied ML.

Machine Learning Algorithms: Supervised Learning Tip to Tail

Machine Learning Algorithms: Supervised Learning Tip to Tail
This course is part of Machine Learning: Algorithms in the Real World Specialization

Instructor: Anna Koop
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Skills you'll gain
- Regression Analysis
- Model Evaluation
- Applied Machine Learning
- Statistical Machine Learning
- Machine Learning
- Model Optimization
- Data Preprocessing
- Supervised Learning
- Machine Learning Algorithms
- Decision Tree Learning
- Model Training
- Business Solutions
- Classification And Regression Tree (CART)
- Performance Analysis
- Machine Learning Methods
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Reviewed on Sep 29, 2020
Great course, easy to grasp the main idea of how to assess and tune the performance of question-answering machines learned by machine learning algorithms through data
Reviewed on Apr 11, 2020
Excellent course. In which I had in-depth knowledge of all algorithms and the way she explained attracts to listen except for her spontaneity and speed in progressing.
Reviewed on May 14, 2022
This is an excellent course which goes into some depth on the different ML models and underlying complexity but it avoids getting bogged down into the details too much.
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