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DeepLearning.AI

Neural Networks and Deep Learning

In the first course of the Deep Learning Specialization, you will study the foundational concept of neural networks and deep learning. By the end, you will be familiar with the significant technological trends driving the rise of deep learning; build, train, and apply fully connected deep neural networks; implement efficient (vectorized) neural networks; identify key parameters in a neural network’s architecture; and apply deep learning to your own applications. The Deep Learning Specialization is our foundational program that will help you understand the capabilities, challenges, and consequences of deep learning and prepare you to participate in the development of leading-edge AI technology. It provides a pathway for you to gain the knowledge and skills to apply machine learning to your work, level up your technical career, and take the definitive step in the world of AI.

Status: Deep Learning
Status: Applied Machine Learning
IntermediateCourse25 hours

Featured reviews

YM

5.0Reviewed Dec 18, 2018

The best and simplest neural network course i have come across. Andrew Ng makes the mathematical concepts subtle and understandle. Neural network for me is no longer a black box.Thank you Andrew Ng

SD

5.0Reviewed Jun 15, 2019

Thank you so for this wonderful course. Thank you Andrew Sir and the entire team. The forum especially is very lively and helpful. Thank you for making my learning experience exciting and brilliant.

JN

4.0Reviewed Feb 19, 2018

I know this is intended for a broad audience, but I found that the assignments were too easy. Not that they are testing easy material, but that the answers are almost stated directly in the questions.

KT

5.0Reviewed Apr 4, 2020

I gained a foot hold of Neural networks now. I believe that further taking the specialization could strengthen it. Thanks a lot for a great teaching experience. I was able to finish it in 10 days.

JM

5.0Reviewed Nov 27, 2020

I understand forward and backward propagation much better - having done it a lot in the notebooks multiple times. And I have better knowledge of which activation functions to use and when. Thank-you!

AS

4.0Reviewed Oct 7, 2017

Its a great course, but I wish things like multiclass classification and regression were also included, also I think there should be more emphasis on different cost functions and their properties etc.

SV

5.0Reviewed Aug 29, 2018

Nothing can get better than this course from Professor Andrew Ng. A must for every Data science enthusiast. Gets you up to speed right from the fundamentals. Thanks a lot for Prof Andrew and his team.

AN

5.0Reviewed Jul 24, 2021

T​he notation and the description of the course materials are way more comprehensible than that of the ML course. I deeply appreciate all the efforts made so that this course could be presented to us.

SA

5.0Reviewed Jan 24, 2021

Lot of courses teach theory and uses python in built libraries. This is the only course learners are encourage to built the algorithm from scratch to gain more understanding of things under the hood.

JP

5.0Reviewed Feb 11, 2018

I would love some pointers to additional references for each video. Also, the instructor keeps saying that the math behind backprop is hard. What about an optional video with that? Otherwise, awesome!

DM

5.0Reviewed Apr 30, 2020

I was actually a kind of half cooked in neural network. Thanks to Dr.Adnrew for his wonderful explanation, I am directly going to register for convolution neural network as I gained enough confidence

OO

5.0Reviewed Oct 20, 2017

Andrew Ng's presenting style is excellent. Makes the course easy to follow as it gradually moves from the basics to more advanced topics, building gradually. Very good starter course on deep learning.

All reviews

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Vatsal Mehra
3.0
Reviewed Sep 14, 2017
Jonathan Chang
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Mageswaran D
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Saad Hassan
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Reviewed Apr 28, 2019
Md. Nazmul Hoq
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Reviewed Jun 30, 2018
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Okundu Omeni
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Reviewed Oct 21, 2017
Nicolás Andrés Gallinal
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Reviewed Dec 5, 2018
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Martin Paul
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Reviewed Aug 11, 2018
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Sundar Srinivasan
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Reviewed Nov 27, 2017
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Reviewed Apr 7, 2019
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Reviewed Apr 30, 2020
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Reviewed Aug 27, 2017
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Reviewed Jul 15, 2019
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Reviewed Aug 30, 2018