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Back to Supervised Machine Learning: Regression and Classification

Learner Reviews & Feedback for Supervised Machine Learning: Regression and Classification by DeepLearning.AI

4.9
stars
22,170 ratings

About the Course

In the first course of the Machine Learning Specialization, you will: • Build machine learning models in Python using popular machine learning libraries NumPy and scikit-learn. • Build and train supervised machine learning models for prediction and binary classification tasks, including linear regression and logistic regression The Machine Learning Specialization is a foundational online program created in collaboration between DeepLearning.AI and Stanford Online. In this beginner-friendly program, you will learn the fundamentals of machine learning and how to use these techniques to build real-world AI applications. This Specialization is taught by Andrew Ng, an AI visionary who has led critical research at Stanford University and groundbreaking work at Google Brain, Baidu, and Landing.AI to advance the AI field. This 3-course Specialization is an updated and expanded version of Andrew’s pioneering Machine Learning course, rated 4.9 out of 5 and taken by over 4.8 million learners since it launched in 2012. It provides a broad introduction to modern machine learning, including supervised learning (multiple linear regression, logistic regression, neural networks, and decision trees), unsupervised learning (clustering, dimensionality reduction, recommender systems), and some of the best practices used in Silicon Valley for artificial intelligence and machine learning innovation (evaluating and tuning models, taking a data-centric approach to improving performance, and more.) By the end of this Specialization, you will have mastered key concepts and gained the practical know-how to quickly and powerfully apply machine learning to challenging real-world problems. If you’re looking to break into AI or build a career in machine learning, the new Machine Learning Specialization is the best place to start....

Top reviews

JM

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Specacular course to learn the basics of ML. I was able to do it thanks to finnancial aid and I'm very grateful because this was really a great oportunity to learn. Looking forward to the next courses

MR

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Teaching is an art and Andrew Ng is a great artist. He explained everything in the course in the details and with examples easy to comprehend. Thanks a lot for helping thousands of students like me.

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3026 - 3050 of 4,570 Reviews for Supervised Machine Learning: Regression and Classification

By Shaktiman C

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May 24, 2023

The videos are easy to understand.

By Mradul B

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May 21, 2023

Great course to start from scratch

By Prabhat R

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Mar 29, 2023

Awesome lecture on regularization.

By Yuxi Z

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Mar 1, 2023

This course really helps me a lot!

By Ezedin M

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Jan 28, 2023

An excellent course for beginners.

By Arijit G

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Nov 28, 2022

the course was absolutely awesome.

By Ali A

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Nov 7, 2022

This was a flawless course for me.

By Ankita R

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Oct 17, 2022

Amazing labs and lab assignments!

By Ivanhoe A

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Oct 12, 2022

Excellent course, very insightful

By Oleksii K

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Aug 30, 2022

The best introductory course ever.

By harshit r

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Jul 30, 2024

very helpful course for begineers

By Haitam B

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Jul 29, 2024

thank you for this amazing course

By Ishaan J

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May 10, 2024

Epic course By the GOAT Andrew NG

By Eranda J

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Apr 23, 2024

Great course. Highly recommended.

By ANINDYA M

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Jan 24, 2024

A great course to kick off the ML

By Quynh A N

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Dec 22, 2023

Great course, easy to understand!

By JL

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Nov 29, 2023

easy to understand all the things

By Jin

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Nov 3, 2023

Great learning materials! Thanks!

By Vishal K G

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Oct 14, 2023

loved it.. very nice explanation.

By Fahrul A N

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Oct 5, 2023

Andrew Ng is the best instructor!

By Mohit K

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Sep 13, 2023

The Way of explaining is too good

By Tiong W

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Aug 26, 2023

help to build my basics stronger.

By Everton D

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Aug 15, 2023

Difficult but excellent course!!!

By Muttakin K

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Aug 12, 2023

A very good course for begineers.

By Emin A

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Jul 29, 2023

very entertaining and educational