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Sammenlign metoder

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Svakt veiledet diffusjonsmodell×Semi-supervised Diffusion Model×
FagfeltDyp læringDyp læring
FamilieMachine learningMachine learning
Opprinnelsesår2022–20242020–2022
OpphavspersonHo et al. (DDPM foundation); weak supervision integration by multiple groups, 2022–2024Multiple groups (Ho et al., Song et al., and successors)
TypeGenerative model with imperfect supervisionGenerative model with semi-supervised guidance
Opprinnelig kildeHo, J., Jain, A., & Abbeel, P. (2020). Denoising Diffusion Probabilistic Models. Advances in Neural Information Processing Systems (NeurIPS), 33, 6840–6851. link ↗Sohl-Dickstein, J., Weiss, E., Maheswaranathan, N., & Ganguli, S. (2015). Deep Unsupervised Learning using Nonequilibrium Thermodynamics. Proceedings of the 32nd International Conference on Machine Learning (ICML), 2256–2265. link ↗
AliasWS-Diffusion, weakly supervised DDPM, label-efficient diffusion model, noisy-label diffusion trainingSemi-supervised DDPM, Label-guided diffusion model, Semi-supervised score-based generative model, SSL diffusion
Relaterte63
SammendragA weakly supervised diffusion model trains or conditions a denoising diffusion probabilistic model using coarse, noisy, or incomplete supervision signals — such as image-level class labels, bounding boxes, or crowd-sourced annotations — instead of pixel-precise ground truth. This allows high-quality generative and discriminative outputs in annotation-scarce settings where full labeling is infeasible or prohibitively expensive.A semi-supervised diffusion model extends the denoising diffusion probabilistic framework to settings where only a fraction of training samples carry class labels. By combining an unconditional diffusion backbone with a lightweight classifier trained on labeled examples, it learns to generate high-quality, label-conditioned outputs while still exploiting the structure in unlabeled data.
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ScholarGateSammenlign metoder: Weakly Supervised Diffusion Model · Semi-supervised Diffusion Model. Hentet 2026-06-15 fra https://scholargate.app/no/compare