Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T18:35:53.600095Z
Paper Citation Record · LEDGER
As of 11 August 2026, this Paper Citation Record lists 36 of 36 outbound references and 0 inbound Pith citation observations for arXiv:2509.09880.
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 2026-08-04T18:35:53.600095Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-11T06:34:44.6726+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
36 of 36 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation c0c777ee-619c-4a03-9fdc-a19bd195a598 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Generative modeling by estimating gradients of the data distribution,
Reference 1
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Observation 9c878c8f-f84e-457e-88a4-772099b757ca · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Denoising diffusion probabilistic models,
Reference 2
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Observation 4d4151ce-3bf3-45e8-b27e-3ade388ae698 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining DiffWave: A versatile diffusion model for audio synthesis,
Reference 3
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Observation 26d9e908-26ce-4f80-8d9d-4e786e0ae2b6 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Denoising diffusion implicit models,
Reference 4
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Observation 7c76ca19-714f-4483-8c5f-1619793e7845 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Video diffusion models,
Reference 5
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Observation 608cc099-429e-4490-bd68-b6dba9fdad7e · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Solving inverse problems in medical imaging with score-based generative mod- els,
Reference 6
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Observation a3305a82-6fe1-44b4-b6ae-e996eb470dcd · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Diffusion posterior sampling for general noisy inverse problems,
Reference 7
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Observation ccbc6bf1-5f52-4d8b-9c00-e65fd1b5f867 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Zero-shot image restoration using denoising diffusion null-space model,
Reference 8
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Observation 548acf25-ab06-4597-a549-794f9b9003ce · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Pseudoinverse- guided diffusion models for inverse problems,
Reference 9
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Observation c89334a6-fe8f-42bd-9938-e1ff3b96d5d4 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Diffusion models beat GANs on image synthesis,
Reference 10
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Observation 043c206e-787e-4f46-89c7-c5f22ddc7c29 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Zero-shot adaptation for approximate posterior sampling of diffusion models in inverse problems,
Reference 11
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Unavailable: canonical work link unavailable.
Observation d13777a0-004a-4212-ae89-87b9efb78391 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Learning a variational network for reconstruction of accelerated MRI data,
Reference 12
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Unavailable: canonical work link unavailable.
Observation b8d6d3f5-4242-446e-a895-7f28a486e47a · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining MoDL: Model- based deep learning architecture for inverse problems,
Reference 13
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Unavailable: canonical work link unavailable.
Observation 114458ab-7024-4540-8d4e-6fdbdb25446c · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Dense recurrent neural networks for accelerated MRI: history-cognizant unrolling of optimization algorithms,
Reference 14
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Observation 6a42e9fe-b296-4a06-8036-8d8a4e336ab6 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Zero-shot self-supervised learning for MRI reconstruction,
Reference 15
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Observation 5c4378b6-675d-4ae2-a691-fa021254e412 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Robust compressed sensing MRI with deep generative priors,
Reference 16
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Observation 40fffa12-9232-49c1-a178-aeb53f3bfcd9 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Decomposed diffusion sampler for accelerating large-scale inverse problems,
Reference 17
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Observation cdb69c6e-844a-4b44-bca1-c13e74bd65d5 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Optimization methods for magnetic resonance image reconstruction,
Reference 18
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Observation 126cc2d6-d098-4ab2-a8f1-f1eb00e0ff49 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Self-supervised physics-guided deep learning reconstruction for high-resolution 3D LGE CMR,
Reference 19
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Observation 98dfaa73-81c9-49a4-97ad-0042bf256a61 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Unsuper- vised deep learning methods for biological image reconstruction and enhancement: An overview from a signal processing per- spective,
Reference 20
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Unavailable: canonical work link unavailable.
Observation 32c1b7c0-8452-4238-817d-6727da89e369 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Fast MRI for all: Bridging equity gaps via training without raw data access,
Reference 21
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Observation abffe061-f39c-4842-b6fe-1fa06383be46 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Deep-learning methods for parallel magnetic resonance imaging reconstruction: A survey of the current approaches, trends, and issues,
Reference 22
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Observation 45c735e5-5b72-4ce6-92a1-a4de042a995c · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Revisitingℓ 1-wavelet compressed-sensing MRI in the era of deep learning,
Reference 23
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Observation 4786b679-bbd9-46fe-a20f-3e3243d3695b · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Deep learning for accelerated and robust MRI reconstruc- tion,
Reference 24
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Unavailable: canonical work link unavailable.
Observation 4b114251-861a-40be-8bff-c9be62226f5d · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Self-supervised learning of physics-guided reconstruction neural networks without fully sampled reference data,
Reference 25
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Observation 9ffbf23c-bac4-4505-ae83-91d0908c2f5e · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Multi-mask self-supervised learning for physics-guided neural networks in highly accelerated magnetic resonance imaging,
Reference 26
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Observation 90e6d5df-123d-42c4-954f-7f5a0029340a · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Tweedie’s formula and selection bias,
Reference 27
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Unavailable: canonical work link unavailable.
Observation a6ca460b-27e5-4938-ba74-83e5b097d48e · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Algorithm unrolling: Interpretable, efficient deep learning for signal and image pro- cessing,
Reference 28
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Observation 2b613d13-af97-401f-a39c-3a85a7fe85a0 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining 20-fold accelerated 7T fMRI using referenceless self-supervised deep learning reconstruction,
Reference 29
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Unavailable: canonical work link unavailable.
Observation 66dfca4f-b700-4874-921a-45746ba3185b · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Physics-driven deep learning for computational magnetic resonance imaging: Combining physics and machine learning for improved medical imaging,
Reference 30
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Unavailable: canonical work link unavailable.
Observation 0616cab6-01cf-45c8-aa16-a4830ee92a76 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining A convex compressibility-inspired unsupervised loss function for physics- driven deep learning reconstruction,
Reference 31
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Observation b8ee82ab-0b2c-4a37-aad5-ce2ffcbb7d1c · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Sparsity-driven parallel imaging consistency for improved self-supervised MRI recon- struction,
Reference 32
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Observation 3f2f7909-3878-4247-b2cb-813635bd0177 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Sparse MRI: The application of compressed sensing for rapid MR imaging,
Reference 33
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Observation 35a90fa7-b5f4-4e95-bea7-82a03c75d360 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining fastMRI: a publicly available raw k-space and DICOM dataset of knee images for accelerated MR image reconstruction using machine learning,
Reference 34
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Observation c106edaf-4dab-4388-9b37-b8926bff26b3 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Assessment of the generalization of learned image reconstruction and the potential for transfer learning,
Reference 35
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Unavailable: canonical work link unavailable.
Observation 18b8a4c0-fbf8-4d52-90ed-133b096a1728 · outbound
Automated Tuning for Diffusion Inverse Problem Solvers without Generative Prior Retraining Diff-Unfolding: A Model-Based Score Learning Framework for Inverse Problems
Reference 36
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No inbound Pith citation observations are available.