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论文:https://arxiv.org/abs/2209.00796
github:https://github.com/YangLing0818/Diffusion-Models-Papers-Survey-Taxonomy
目录
Diffusion Models: A Comprehensive Survey of Methods and Applications
1.2.1 Optimized Discretization
2.1. Noise Schedule Optimization
2.2. Reverse Variance Learning
2.3. Exact Likelihood Computation
3. Data with Special Structures
3.1. Data with Manifold Structures
3.2. Data with Invariant Structures
2. Natural Language Processing
8. Medical Image Reconstruction
Connections with Other Generative Models
2. Generative Adversarial Network
Score-Based Generative Modeling through Stochastic Differential Equations
Adversarial score matching and improved sampling for image generation
Score-Based Generative Modeling with Critically-Damped Langevin Diffusion
Gotta Go Fast When Generating Data with Score-Based Models
Elucidating the Design Space of Diffusion-Based Generative Models
Generative modeling by estimating gradients of the data distribution
Denoising Diffusion Implicit Models
gDDIM: Generalized denoising diffusion implicit models
Elucidating the Design Space of Diffusion-Based Generative Models
DPM-Solver: A Fast ODE Solver for Diffusion Probabilistic Model Sampling in Around 10 Step
Pseudo Numerical Methods for Diffusion Models on Manifolds
Fast Sampling of Diffusion Models with Exponential Integrator
Poisson flow generative models
Learning to Efficiently Sample from Diffusion Probabilistic Models
GENIE: Higher-Order Denoising Diffusion Solvers
Learning fast samplers for diffusion models by differentiating through sample quality
Progressive Distillation for Fast Sampling of Diffusion Models
Knowledge Distillation in Iterative Generative Models for Improved Sampling Speed
Accelerating Diffusion Models via Early Stop of the Diffusion Process
Truncated Diffusion Probabilistic Models
Improved denoising diffusion probabilistic models
Analytic-DPM: an Analytic Estimate of the Optimal Reverse Variance in Diffusion Probabilistic Models
Improved denoising diffusion probabilistic models
Stable Target Field for Reduced Variance Score Estimation in Diffusion Models
Score-Based Generative Modeling through Stochastic Differential Equations
Maximum likelihood training of score-based diffusion models
A variational perspective on diffusion-based generative models and score matching
Score-Based Generative Modeling through Stochastic Differential Equations
Maximum Likelihood Training for Score-based Diffusion ODEs by High Order Denoising Score Matching
Maximum Likelihood Training of Implicit Nonlinear Diffusion Models
Riemannian Score-Based Generative Modeling
Score-based generative modeling in latent space
Diffusion priors in variational autoencoders
Hierarchical text-conditional image generation with clip latents
High-resolution image synthesis with latent diffusion models
GeoDiff: A Geometric Diffusion Model for Molecular Conformation Generation
Permutation invariant graph generation via score-based generative modeling
Score-based Generative Modeling of Graphs via the System of Stochastic Differential Equations
DiGress: Discrete Denoising diffusion for graph generation
Learning gradient fields for molecular conformation generation
Graphgdp: Generative diffusion processes for permutation invariant graph generation
SwinGNN: Rethinking Permutation Invariance in Diffusion Models for Graph Generation
Vector quantized diffusion model for text-to-image synthesis
Structured Denoising Diffusion Models in Discrete State-Spaces
Vector Quantized Diffusion Model with CodeUnet for Text-to-Sign Pose Sequences Generation
Deep Unsupervised Learning using Non equilibrium Thermodynamics.
A Continuous Time Framework for Discrete Denoising Models
Conditional Image Generation (Image Super Resolution, Inpainting, Translation, Manipulation)
SRDiff: Single Image Super-Resolution with Diffusion Probabilistic Models
High-Resolution Image Synthesis with Latent Diffusion Models
Repaint: Inpainting using denoising diffusion probabilistic models.
Generative Visual Prompt: Unifying Distributional Control of Pre-Trained Generative Models
Cascaded Diffusion Models for High Fidelity Image Generation.
Conditional image generation with score-based diffusion models
Unsupervised Medical Image Translation with Adversarial Diffusion Models
Solving Inverse Problems in Medical Imaging with Score-Based Generative Models
MR Image Denoising and Super-Resolution Using Regularized Reverse Diffusion
Sdedit: Guided image synthesis and editing with stochastic differential equations
Diffusion-Based Scene Graph to Image Generation with Masked Contrastive Pre-Training
ControlNet: Adding Conditional Control to Text-to-Image Diffusion Models
Image Restoration with Mean-Reverting Stochastic Differential Equations
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