I was doing theory of machine learning since maybe seven or eight years ago when the field just got started. At that time, like everyone was doing research on vision models. And for vision, there's a very nice dataset called C-partan,. They only have like 50k images. When you train on those datasets, you can get a pretty high quality image model and they can do all sorts of things. But when we move to this phase of large language model or language model in general, the research just becomes so expensive. We want to keep the authentic of natural language, but just reduce the overall complexity.

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