
Episode 28: Sergey Levine, UC Berkeley, on the bottlenecks to generalization in reinforcement learning, why simulation is doomed to succeed, and how to pick good research problems
Generally Intelligent
How to Scale Up Deep Robotic Learning
I started at Google in 2015. And there we wanted to basically scale up deep robotic learning. We'd intentionally chose not to do all sorts of fancy transfer learning and so on. We went for like the pure brute force thing and we put 18 robots in a room. They collected enormous amounts of data autonomously. That led to the some effort to us the armed farm project.
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