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Implement WGAN and WGAN-GP from scratch in PyTorch in this 26-minute tutorial video. Learn about improvements to the GAN loss function aimed at enhancing training stability. Explore the theory behind Wasserstein GANs, dive into implementation details, and code both WGAN and WGAN-GP variants. Gain insights into gradient penalty techniques and their impact on GAN training. Follow along with step-by-step explanations and practical coding demonstrations to deepen your understanding of advanced GAN architectures.
Syllabus
- Introduction
- Understanding WGAN
- WGAN Implementation details
- Coding WGAN
- Understanding WGAN-GP
- Coding WGAN-GP
- Ending
Taught by
Aladdin Persson