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Introducing Adjoint Sampling, a new learning algorithm that trains generative models based on scalar rewards. Based on theoretical foundations developed by FAIR, Adjoint Sampling leads to a highly scalable practical algorithm, and can become the foundation for further research into highly scalable sampling methods. Read our research paper on...

36,987 Aufrufe • vor 1 Jahr •via X (Twitter)

8 Kommentare

Profilbild von bearants thinks only approved thoughts
bearants thinks only approved thoughtsvor 1 Jahr

how long before you can apply AI methods to human schooling, to replace current snails pace obedience training?

Profilbild von Rainmaker
Rainmakervor 1 Jahr

Can reinforcement learning handle stock market swings? In my latest free Substack, find out how SARSA reinforcement learning algorithm can help create adaptive strategies and improve performance.

Profilbild von 𝐉𝐢𝐧 𝕏
𝐉𝐢𝐧 𝕏vor 1 Jahr

Scalable sampling, promising research 👀

Profilbild von Max Petrusenko
Max Petrusenkovor 1 Jahr

this is fascinating, can't wait to dig into the paper

Profilbild von Jilong | We provide AI marketer - 24/7 marketing
Jilong | We provide AI marketer - 24/7 marketingvor 1 Jahr

Exciting potential! How does it handle real-time data optimization?

Profilbild von David Miller
David Millervor 1 Jahr

Meta is a slave like company.

Profilbild von Vishal
Vishalvor 1 Jahr

Adjoint Sampling is a new way to train models using simple rewards. It’s practical and based on solid research.

Profilbild von Spencer Baker
Spencer Bakervor 1 Jahr

Finally, a way to train models that won't ghost me after the first date!

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