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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462 reviews
Skills you'll gain
- Machine Learning Methods
- Decision Tree Learning
- Sampling (Statistics)
- Applied Machine Learning
- Model Optimization
- Predictive Modeling
- Model Training
- Machine Learning Algorithms
- Random Forest Algorithm
- Business Logic
- Data Preprocessing
- Statistical Machine Learning
- Data Cleansing
- Model Evaluation
- Supervised Learning
- Machine Learning
- Logistic Regression
- Regression Analysis
Tools you'll learn
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Showing 3 of 462
Reviewed on Nov 7, 2020
Great course and very well structured. I'm really impressed with the instructor who give thorough walkthrough to the code.
Reviewed on Feb 5, 2023
Well-structured learning path. If you dont have previous python experience you can catch up after a couple of weeks as the workflow is similar regardless of the algorithmn you are using
Reviewed on Jul 17, 2023
Wonderful course but too many syntax and classification types - keeping focused and attentive helps achieve or succeed.
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