52sec snip

The 80000 Hours Podcast on Artificial Intelligence cover image

One: Brian Christian on the alignment problem

The 80000 Hours Podcast on Artificial Intelligence

NOTE

Reward States, Not Actions

Modifying a reward function in reinforcement learning involves rewarding states of the environment, not actions of an agent. By rewarding the agent's position and symmetrically subtracting points for moving away from the goal, the focus is on outcomes rather than the process. This approach, stemming from theoretical work in the 90s, has implications not only in AI but also in understanding human incentives and parenting strategies.

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