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우리는 에너지 기반 모델(EBM)의 안정적이고 확장 가능한 훈련을 위한 진전을 이루었으며, 기존 모델보다 더 나은 샘플 품질과 일반화 능력을 갖추게 되었습니다. EBM의 세대는...
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We’ve made progress towards stable and scalable training of energy-based models (EBMs) resulting in better sample quality and generalization ability than existing models. Generation in EBMs spends more compute to continually refine its answers and doing so can generate samples competitive with GANs at low temperatures, while also having mode coverage guarantees of likelihood-based models. We hope these findings stimulate further research into this promising class of models.
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