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How to Train a Model to Think Causally
The data set articulates human preferences or human approaches to causally reasoning about a problem. And then you have a model that's been specifically trained to kind of answer questions in a causal way. So like for a lot of tasks, we could do away with the bio-imicry and just focus on having its align with some kind of recipe for coming up with a good answer. But I think we still need to understand whether or not it's actually following that recipe when it does that.