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우리는 반복 증폭(iterated amplification)이라는 AI 안전 기법을 제안하고 있는데, 이는 인간 규모를 넘어서는 복잡한 행동과 목표를 지정할 수 있게 해주며, 작업을 분해하는 방법을 시연합니다...
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We’re proposing an AI safety technique called iterated amplification that lets us specify complicated behaviors and goals that are beyond human scale, by demonstrating how to decompose a task into simpler sub-tasks, rather than by providing labeled data or a reward function. Although this idea is in its very early stages and we have only completed experiments on simple toy algorithmic domains, we’ve decided to present it in its preliminary state because we think it could prove to be a scalable approach to AI safety.
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