Supervised Machine Learning for beginners
- Development
- Jan 04, 2025

Supervised Machine Learning for beginners, available at $44.99, has an average rating of 4.15, with 23 lectures, based on 50 reviews, and has 174 subscribers.
You will learn about scikit-learn machine learning artificial intelligence jupyter python supervised learning regression classification data processing model training model evaluation hands-on experience This course is ideal for individuals who are Beginner in machine learning It is particularly useful for Beginner in machine learning.
Enroll now: Supervised Machine Learning for beginners
Summary
Title: Supervised Machine Learning for beginners
Price: $44.99
Average Rating: 4.15
Number of Lectures: 23
Number of Published Lectures: 23
Number of Curriculum Items: 23
Number of Published Curriculum Objects: 23
Original Price: $24.99
Quality Status: approved
Status: Live
What You Will Learn
Who Should Attend
Target Audiences
If you are a developer, an architect, an engineer, a techie, an IT enthusiast, a student or just a curious person, if you are interested in taking on machine learning but you are not too sure where to start, this is probably the right course for you!!
In this course, we start with the basics and we explain the concept of supervised learning in depth, we also go over the various types of problems that can be solved using supervised learning techniques. Then we get more hands-on and illustrate some concepts relative to data preparation and model evaluation with bits of code that you can easily reuse. And last, we actually train and evaluate several models based on the most common machine learning algorithms for supervised learning such as K-nearest neighbors, logistic regression, decision trees and random forests.
I hope that you find this course fun and easy to follow and that it gives you the machine learning background you need to kick start your journey and be successful in this field!
Course Curriculum
Chapter 1: Introduction
Lecture 1: Greetings!
Lecture 2: Jupyter
Lecture 3: Supervised learning
Chapter 2: Classification problems
Lecture 1: Binary classification
Lecture 2: Multiclass classification
Lecture 3: Regression
Chapter 3: Data analysis and preparation
Lecture 1: Categorical data
Lecture 2: Scaling
Lecture 3: Standardization
Lecture 4: Splitting data
Chapter 4: Model testing and evaluation
Lecture 1: Accuracy
Lecture 2: Confusion Matrix
Lecture 3: Precision and Recall
Lecture 4: Root mean square error
Chapter 5: Linear models
Lecture 1: Linear regression
Lecture 2: Logistic regression
Chapter 6: K nearest neighbors
Lecture 1: KNN for classification
Lecture 2: KNN for regression
Chapter 7: Decision trees and random forests
Lecture 1: Trees for classification
Lecture 2: Trees for regression
Lecture 3: Random forests
Chapter 8: Conclusion
Lecture 1: Conclusion and next steps
Chapter 9: Appendix
Lecture 1: Appendix A
Instructors

Ro Science
Data Science and Machine Learning
Rating Distribution
Frequently Asked Questions
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You can view and review the lecture materials indefinitely, like an on-demand channel.
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