Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T05:06:05.638607Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 81 of 81 outbound references and 2 inbound Pith citation observations for arXiv:2412.18164.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T05:06:05.638607Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-15T16:44:36.655600Z
A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-08T22:54:25.513562Z
81 of 81 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation fa8d8526-c9d5-4a48-9711-e329351a6f43 · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence A green colored rabbit
Reference 1
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence A survey on deep learning tools dealing with data scarcity: definitions, challenges, solutions, tips, and applications
Reference 2
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence A systematic review on data scarcity problem in deep learning: solution and applications
Reference 3
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence An optimal control perspective on diffusion-based generative modeling
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Improving image generation with better captions
Reference 5
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Four wolves in the park
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Global optimality guarantees for policy gradient methods
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence LQR through the Lens of First Order Methods: Discrete-time Case
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Fast global convergence of natural policy gradient methods with entropy regularization
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Emu: Enhancing Image Generation Models Using Photogenic Needles in a Haystack
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Tutorial on Variational Autoencoders
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Adjoint matching: Fine- tuning flow and diffusion generative models with memoryless stochastic optimal control
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Generative Adversarial Network (GAN): A general review on different variants of GAN and applications
Reference 16
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Optimizing DDPM Sampling with Shortcut Fine-Tuning
Reference 17
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Global convergence of policy gradient methods for the linear quadratic regulator
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Understanding the limita- tions of conditional generative models
Reference 21
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Real analysis: modern techniques and their applications , volume 40
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Reference 23
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Current strategies to address data scarcity in artificial intelligence-based drug discovery: A comprehen- sive review
Reference 24
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Scaling laws for reward model overoptimization
Reference 25
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Observation 429bb7ef-a00d-4b33-93e2-974a1c426035 · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Reward-Directed Score-Based Diffusion Models via q-Learning
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Fast policy learning for linear quadratic regulator with entropy regularization
Reference 27
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Policy Gradient Converges to the Globally Optimal Policy for Nearly Linear-Quadratic Regulators
Reference 29
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Neural tangent kernel: Convergence and general- ization in neural networks
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Hierarchical Text-Conditional Image Generation with CLIP Latents
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Random features for large-scale kernel machines
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Dreambooth: Fine tuning text-to-image diffusion models for subject-driven generation
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence High- resolution image synthesis with latent diffusion models
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Exploration-exploitation trade-off for continuous-time episodic reinforcement learning with linear-convex models
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Feedback efficient online fine- tuning of diffusion models
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Understanding Reinforcement Learning-Based Fine-Tuning of Diffusion Models: A Tutorial and Review
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Reference 63
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Neural policy gradient methods: Global optimality and rates of convergence
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Imagereward: Learning and evaluating human preferences for text-to-image generation
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Some fine properties of backward stochastic differential equations
Reference 71
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Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Policy mirror descent for regularized reinforcement learning: A generalized framework with linear convergence
Reference 72
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Reference 73
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Observation 7be320c7-903d-435c-90a1-538fe2dbc0d1 · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Backward stochastic differential equations
Reference 74
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Observation c0f187bd-8675-4452-9bc2-fd375ebfa5a5 · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Scores as Actions: a framework of fine-tuning diffusion models by continuous-time reinforcement learning
Reference 75
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Observation 26d2adc9-7017-480a-b1f6-663ab75d96a3 · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Provably efficient actor-critic for risk-sensitive and robust adversarial RL: A linear-quadratic case
Reference 76
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Observation 7f7ba3cb-de81-422d-89ca-aa4de99dd92f · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence A Policy Gradient Framework for Stochastic Optimal Control Problems with Global Convergence Guarantee
Reference 77
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Observation f3511787-1050-4708-9488-ff946b21a301 · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Adding Conditional Control to Diffusion Models with Reinforcement Learning
Reference 78
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Observation 18c3c241-21f8-4dea-aaa3-736faae3942a · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Solving Time-Continuous Stochastic Optimal Control Problems: Algorithm Design and Convergence Analysis of Actor-Critic Flow
Reference 79
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Observation 0be7e781-41a6-4c3c-969a-e7849765117d · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Single timescale actor-critic method to solve the linear quadratic regulator with convergence guarantees
Reference 80
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Observation 1dde8b53-9889-4672-af7e-be11d868b13a · outbound
Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence Unresolved cited work
Reference 2024
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Observation f14339bd-36ae-4dd6-914c-2cd9e7c7f5ac · inbound
Statistical guarantees for continuous-time policy evaluation: blessing of ellipticity and new tradeoffs Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence
Reference 10
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Observation 86941e3d-e0ef-4513-8728-6c54adc717d2 · inbound
Is RL fine-tuning harder than regression? A PDE learning approach for diffusion models Stochastic Control for Fine-tuning Diffusion Models: Optimality, Regularity, and Convergence
Reference 19
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