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The actual paper for DALL-E was released only a few days after we published our episode 2, so in this episode we re-visit DALL-E in its full published glory. Joining us as a special guest for this episode is Aditya Ramesh from OpenAI, the lead author of DALL-E.
DALL-E blog post: https://openai.com/blog/dall-e/
DALL-E paper: https://arxiv.org/abs/2102.12092
DALL-E code (encoder/decoder model only, so far): https://github.com/openai/dall-e
Deep Learning Deep Dive is also available on YouTube, where we scroll through relevant parts of the paper and code while talking about them:
https://www.youtube.com/watch?v=PtdpWC7Sr98We reached out and collected written consent from all participating audience speakers.
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Andrej Karpathy and Justin Johnson deep dive into OpenAI's DALL-E and use it as an anchor point to recurse into some of the recent work in AI on image generation. Approximate agenda:
DALL-E Blog Post:
https://openai.com/blog/dall-e/ImageGPT
https://openai.com/blog/image-gpt/VQ-VAE
https://arxiv.org/abs/1711.00937VQ-VAE-2
https://arxiv.org/abs/1906.00446Gumbel-Softmax / Concrete Distribution
https://arxiv.org/abs/1611.01144
https://arxiv.org/abs/1611.00712VQGAN
https://arxiv.org/abs/2012.09841Andrej's attempted re-implementation of VQVAE and GumbelSoftmax:
https://github.com/karpathy/deep-vector-quantization/blob/main/model.pyYou can see a video version of this episode on YouTube:
https://www.youtube.com/watch?v=gMc90bqHMSMWe reached out to all speakers and obtained their written consent to appear in this recording.
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