In this short, 1 hour long guided project, we will use a Convolutional Neural Network - the popular VGG16 model, and we will visualize various filters from different layers of the CNN. We will do this by using gradient ascent to visualize images that maximally activate specific filters from different layers of the model.
Visualizing Filters of a CNN using TensorFlow
Instructor: Amit Yadav
Sponsored by Coursera Learning Team
5,768 already enrolled
(75 reviews)
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What you'll learn
Implement gradient ascent algorithm
Visualize image features that maximally activate filters of a CNN
Details to know
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About this Guided Project
Learn step-by-step
In a video that plays in a split-screen with your work area, your instructor will walk you through these steps:
Introduction
Downloading the Model
Get Submodels
Image Visualization
Training Loop
Final Results
Recommended experience
Prior experience in Python, theoretical understanding of Convolutional Neural Networks and optimization algorithms like gradient descent.
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How you'll learn
Skill-based, hands-on learning
Practice new skills by completing job-related tasks.
Expert guidance
Follow along with pre-recorded videos from experts using a unique side-by-side interface.
No downloads or installation required
Access the tools and resources you need in a pre-configured cloud workspace.
Available only on desktop
This Guided Project is designed for laptops or desktop computers with a reliable Internet connection, not mobile devices.
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Learner reviews
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Showing 3 of 75
Reviewed on Oct 23, 2023
Love the way he explain the code in simple and cool manner
Reviewed on Jul 3, 2022
very well prepared and explained. but colab is slow
Reviewed on Apr 13, 2022
instructor explains everything clearly, but an actual application was missing. a quick cats and dogs comparison on how to infer filter activation would have been helpful.
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