Stanford CS236: Deep Generative Models I 2023 I Lecture 9 - Normalizing Flows

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Stanford Online

Stanford Online

19 күн бұрын

For more information about Stanford's Artificial Intelligence programs visit: stanford.io/ai
To follow along with the course, visit the course website:
deepgenerativemodels.github.io/
Stefano Ermon
Associate Professor of Computer Science, Stanford University
cs.stanford.edu/~ermon/
Learn more about the online course and how to enroll: online.stanford.edu/courses/c...
To view all online courses and programs offered by Stanford, visit: online.stanford.edu/

Пікірлер: 2
@CPTSMONSTER
@CPTSMONSTER 4 күн бұрын
15:15 High likelihood and bad samples, garbage component is a constant in log-likelihood 40:00? Expectation on p data and p theta, how was this chosen 46:35 Note optimization of phi (discriminator) and theta (generator of fake samples) 50:45 Likelihood model in discriminator, but GANs can avoid likelihoods 1:00:15? Expectation on p data and p theta, added? 1:06:50 Minimax training objective 1:15:00 GANs no longer state of the art, very hard to train, mode collapse, no clean loss function to evaluate
@user-zr4ns3hu6y
@user-zr4ns3hu6y 6 күн бұрын
I think the titles of lecture 8 and lecture 9 have been switched.
Stanford CS236: Deep Generative Models I 2023 I Lecture 10 - GANs
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