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    Back to Apply Generative Adversarial Networks (GANs)

    Learner Reviews & Feedback for Apply Generative Adversarial Networks (GANs) by DeepLearning.AI

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    4.8
    stars
    544 ratings

    About the Course

    In this course, you will: - Explore the applications of GANs and examine them wrt data augmentation, privacy, and anonymity - Leverage the
    image-to-image translation framework and identify applications to modalities beyond images - Implement Pix2Pix, a paired image-to-image
    translation GAN, to adapt satellite images into map routes (and vice versa) - Compare paired image-to-image translation to unpaired
    image-to-image translation and identify how their key difference necessitates different GAN architectures - Implement CycleGAN, an unpaired
    image-to-image translation model, to adapt horses to zebras (and vice versa) with two GANs in one The DeepLearning.AI Ge...
    ...

    Top reviews

    PK

    Feb 3, 2021

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    I really enjoyed the content of the 3rd course in this specialisation. The only wish I have for the future courses is for them to be in HD, it's 2021, come on, apply some SuperRes GANs already ;)

    UD

    Dec 6, 2020

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    I really liked the exposure to preparing various loss functions in paired and non-paired GANs, introduction to other applications, and many great changes to improve the quality of the networks!

    Filter by:

    76 - 100 of 101 Reviews for Apply Generative Adversarial Networks (GANs)

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    By brightmart

    •

    Nov 11, 2020

    GREAT COURSE AT COURSERA!

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    By Cuong N N

    •

    Dec 8, 2020

    This course is very good

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    By 晋习

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    Oct 18, 2021

    data augment is helpful

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    By M. H A P

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    Apr 7, 2021

    What a great course

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    By Diego C N

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    Nov 1, 2020

    An amazing Course

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    By Lakshya T

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    May 9, 2024

    very nice course

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    By Tim C

    •

    Dec 8, 2020

    Incredible! :)

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    By Vishnu N S

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    Jul 26, 2021

    Great Course

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    By Vignesh M

    •

    Nov 26, 2020

    Wonderful!

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    By Kuro N

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    Jul 25, 2021

    Amazing!!

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    By Raymond B S

    •

    Feb 14, 2021

    Thank you

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    By Giang L T

    •

    Feb 5, 2022

    good

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    By Steven W

    •

    Feb 27, 2021

    I would have preferred the assignments spent more time on the training loop, and talking about what's going on with the cost function.

    One of the interesting things about GANs is that your cost function is different for different parts of the network. This is really really important to the workings of a GAN, but we never touched the training loop after the first assignment in course 1. I feel like we should have spent more time nailing that training loop down.

    Also, I don't think any of the classes mentioned the importance of the fact that the cost function is learned, rather than explicit. That's huge! You can do that for any network, not just generative networks, and it seems applicable to all kinds of less-supervised ML. It seems a waste that they didn't draw more attention to that.

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    By Ernest W

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    Jan 9, 2022

    Overall it was good but the final assignments were very confusing in my opinion because there are so many things going on there I still don't understand. I still think there is a lot to supplement, hours of exploration and reading many research papers to meet my expectations so I can create own generative art. Maybe more similar assignments with more detailed explanations (and more tasks) would make me understand more even at the cost of the specialization duration.

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    By Harold S

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    Mar 6, 2021

    It was good, I think it covered a lot of material and get you fast to a point where you can start attacking some real problems with this technology, however I do not fully like some of the exercises that get you stuck with some silly things.

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    By Stanislav K

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    Jan 31, 2021

    The course material is of very good quality. On the other hand, most of the coding exercises are limited to implementation of the loss functions. They are not teaching the students how to design the GAN architectures yourself.

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    By Rishab K

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    Jun 23, 2021

    Very good course, assignment could be made more longer than what is currently here. Should also include a project at the end to implement GAN

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    By Aditya S

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    Oct 6, 2021

    Great course by a great instructor and great team behind! Learned sooooo damn much. Can't wait to go out and apply some of this stuff!

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    By Artod

    •

    Mar 9, 2021

    Not very well structured course. I think there is some room for improvements.

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    By Ibrahim G

    •

    Nov 3, 2020

    The assignments can go more in depth, but the content was great!

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    By Keebeom Y

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    Nov 16, 2021

    For English subtitles, there are many typos and sync of video and subtitles don’t match in some parts. Lecturer speaks too fast. But the content was very good, specifically coding projects.

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    By Mark P

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    Nov 15, 2020

    The programming assignments are too easy. Although the linked papers were useful I felt the optional notebooks should have been compulsory or we should have had to do more ourselves.

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    By Sameer R

    •

    Oct 22, 2021

    Too much repetition. More technical aspects could have been covered, given this is third course.

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    By Liang Y

    •

    Mar 29, 2021

    The Instructor did a great job on scripts and PPTs. However, Instead of teaching you GANs, she reads the scripts in a super fast speed. It is good that if you are reporting or interviewing since your audiences are professors or specialists who are already very familiar with GANs. But I think most of the audiences here know little about GANs. I prefer Andrew Ng's teaching style which guides the audiences and gives them time to think and learn.

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    By Farhad D

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    Nov 15, 2020

    Exercises were so bad. They are very easy, and they are ambiguous a little bit. It seems the creators got tired at the end and they did a bad job. However, I learned a lot and I am thankful, but It could be much better!

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