Image Recognition with Convolutional Neural Networks. Advanced techniques for Deep Learning and Representation learning
Description
Dear friend, welcome to the course “Modern Deep Convolutional Neural Networks”! I tried to do my best in order to share my practical experience in Deep Learning and Computer vision with you.
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The course consists of 4 blocks:
Introduction section, where I remind you, what is Linear layers, SGD, and how to train Deep Networks.
Convolution section, where we discuss convolutions, it’s parameters, advantages and disadvantages.
Regularization and normalization section, where I share with you useful tips and tricks in Deep Learning.
Fine tuning, transfer learning, modern datasets and architectures
If you don’t understand something, feel free to ask equations. I will answer you directly or will make a video explanation.
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Prerequisites:
Matrix calculus, Linear Algebra, Probability theory and Statistics
Basics of Machine Learning: Regularization, Linear Regression and Classification,
Basics of Deep Learning: Linear layers, SGD, Multi-layer perceptron
Python, Basics of PyTorch
| Total Students | 8420 |
|---|---|
| Duration | 2 hours |
| Language | English (US) |
| Number of lectures | 29 |
| Number of quizzes | 0 |
| Total Reviews | 157 |
| Global Rating | 4.31 |
| Instructor Name | Denis Volkhonskiy |
Course Insights (for Students)
Actionable, non-generic pointers before you enroll
Student Satisfaction
86% positive recent sentiment
Momentum
🔥 Trending
Time & Value
- Est. time: 2 hours
- Practical value: 7/10
Roadmap Fit
- Beginner → Beginner → Advanced
Key Takeaways for Learners
- Hands-on practice
- Real-world examples
- Project-based learning
- Hands On
- Clear Explanation
Course Review Summary
Signals distilled from the latest Udemy reviews
What learners praise
- Hands On
- Clear Explanation
- Engaging
- Concise
- Real World
Watch-outs
- Too slow
- Too fast
- Theory only
Difficulty
Best suited for
New learners starting from zero, Learners who like theory + frameworks
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