Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-12T17:30:09.307285Z
Paper Citation Record · LEDGER
As of 14 August 2026, this Paper Citation Record lists 65 of 65 outbound references and 1 inbound Pith citation observation for arXiv:2411.12523.
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 2026-08-12T17:30:09.307285Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-14T06:32:32.682623+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-05-10T08:37:37.238541Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-10T08:37:53.889324Z
65 of 65 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f1edcb5f-5508-4f13-a65b-4e1a58e6fe09 · outbound
Data Pruning in Generative Diffusion Models Effective pruning of web-scale datasets based on complexity of concept clusters
Reference 1
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Observation 706747ab-9f5b-4473-b90c-f4721a157c51 · outbound
Data Pruning in Generative Diffusion Models Dall- eval: Probing the reasoning skills and social biases of text-to-image generation models
Reference 2
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Observation 5a82698f-7abf-4ba9-b832-1f23e07d8f5a · outbound
Data Pruning in Generative Diffusion Models Selection via Proxy: Efficient Data Selection for Deep Learning
Reference 3
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Observation b8605dc5-f5c7-4e4d-9c82-4b91ba34e334 · outbound
Data Pruning in Generative Diffusion Models Diffusion models beat gans on image synthesis
Reference 4
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Observation 4f34ce16-dc39-478b-a80f-21bc154ee1c5 · outbound
Data Pruning in Generative Diffusion Models Ethi- cal considerations and policy interventions concern- ing the impact of generative ai tools in the economy and in society
Reference 5
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Observation b5d80656-af61-4539-b740-44f2905ddebd · outbound
Data Pruning in Generative Diffusion Models What neural networks memorize and why: Discovering the long tail via influence estimation
Reference 6
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Observation eb61f89c-0f1d-4994-b6d6-0d68155b4811 · outbound
Data Pruning in Generative Diffusion Models Sparsegpt: Mas- sive language models can be accurately pruned in one-shot
Reference 7
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Observation b82118b2-7808-40a9-a5b1-bc100fa803b4 · outbound
Data Pruning in Generative Diffusion Models The Vendi Score: A Diversity Evaluation Metric for Machine Learning
Reference 8
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Observation 54cd503f-9411-4692-90ca-e53eb39feaf1 · outbound
Data Pruning in Generative Diffusion Models Generative adversar- ial nets
Reference 9
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Observation ee80b8c1-c307-4657-9c98-687387d782a4 · outbound
Data Pruning in Generative Diffusion Models Data and parameter scaling laws for neural machine translation
Reference 10
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Observation 62cb2e88-45f9-44d9-ae92-d8b93da86e19 · outbound
Data Pruning in Generative Diffusion Models Im- proved training of wasserstein gans
Reference 11
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Observation 00ca2062-cf26-478e-8d8a-2bcbaf535b7a · outbound
Data Pruning in Generative Diffusion Models Safety and Fairness for Content Moderation in Generative Models
Reference 12
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Observation 348f8bb3-4b21-48b9-9fd3-9dd511733512 · outbound
Data Pruning in Generative Diffusion Models Smaller coresets for k-median and k-means clustering
Reference 13
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Observation 829efd60-95a3-4c4e-b3a7-a4648cbde12f · outbound
Data Pruning in Generative Diffusion Models Large-scale dataset pruning with dynamic un- certainty
Reference 14
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Observation c869c407-b12a-4de7-a2a0-9bb6c0a6be87 · outbound
Data Pruning in Generative Diffusion Models Imagen Video: High Definition Video Generation with Diffusion Models
Reference 15
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Observation e545fd51-19b7-44fd-9ea4-42fa547d74c5 · outbound
Data Pruning in Generative Diffusion Models Denois- ing diffusion probabilistic models
Reference 16
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Observation 1620967c-09da-41a0-b344-83c135b367a6 · outbound
Data Pruning in Generative Diffusion Models Training Compute-Optimal Large Language Models
Reference 17
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Observation f064620a-fe59-4339-acaa-ae9fd5d1b0c7 · outbound
Data Pruning in Generative Diffusion Models Data distribution search to select core-set for machine learning
Reference 18
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Observation 1945f1a6-08c0-40e8-9d08-d4ee00c30fa5 · outbound
Data Pruning in Generative Diffusion Models Scaling Laws for Neural Language Models
Reference 19
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Observation 1d8c9931-7ea3-41ed-9be0-9e30872e3905 · outbound
Data Pruning in Generative Diffusion Models PRISM: A Rich Class of Parameterized Submodular Information Measures for Guided Subset Selection
Reference 20
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Observation 42ff20d7-3b9c-47d3-ae22-4a4f5c60a608 · outbound
Data Pruning in Generative Diffusion Models Denoising diffusion restoration mod- 13 els
Reference 21
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Observation df471151-2abc-486c-8d79-b5910530ea7b · outbound
Data Pruning in Generative Diffusion Models Grad-match: Gradient matching based data subset selection for efficient deep model training
Reference 22
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Observation 49064f17-4c05-430b-9dea-d47e4bc0bcfb · outbound
Data Pruning in Generative Diffusion Models Harmful biases in artificial intelli- gence
Reference 23
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Observation 2c493c8c-3d5e-4578-b8cd-28a3fb60a85f · outbound
Data Pruning in Generative Diffusion Models Auto-Encoding Variational Bayes
Reference 24
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Observation 22e03b06-adcd-4641-a1ac-65f3ff21cba4 · outbound
Data Pruning in Generative Diffusion Models VideoPoet: A Large Language Model for Zero-Shot Video Generation
Reference 25
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Observation 771b6c92-75fd-49f7-a166-3dd80f520010 · outbound
Data Pruning in Generative Diffusion Models Improved precision and recall metric for assessing generative models.Ad- vances in neural information processing systems , 32,
Reference 26
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Observation 528c687c-8f99-4dbc-a15b-1b5990a9ca42 · outbound
Data Pruning in Generative Diffusion Models Holistic evaluation of text-to-image models
Reference 27
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Observation 1b81c39b-c540-4eeb-bcf9-dd9f4a9ef0da · outbound
Data Pruning in Generative Diffusion Models Diffusion models for image restoration and enhancement–a comprehensive survey
Reference 28
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Observation 9d275999-016c-41b6-987f-717b61e1d381 · outbound
Data Pruning in Generative Diffusion Models Flow Matching for Generative Modeling
Reference 29
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Observation 7a1ca663-8098-4f50-bdde-afb665c06df6 · outbound
Data Pruning in Generative Diffusion Models SiT: Exploring Flow and Diffusion-based Generative Models with Scalable Interpolant Transformers
Reference 30
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Observation 147ff7e2-7fd1-465c-9580-fb6c0a07a615 · outbound
Data Pruning in Generative Diffusion Models Analyzing Quality, Bias, and Performance in Text-to-Image Generative Models
Reference 31
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Observation e9f8cd84-d22f-4703-bf6e-a37308112d15 · outbound
Data Pruning in Generative Diffusion Models A non-parametric test to detect data- copying in generative models
Reference 32
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Observation 77c38a07-6ceb-4846-8d03-1901cc60a8dc · outbound
Data Pruning in Generative Diffusion Models Rdcgan: Un- supervised representation learning with regularized deep convolutional generative adversarial networks
Reference 33
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Observation dbfa4190-dd5d-4ce2-b3d7-4d0e769fe5c6 · outbound
Data Pruning in Generative Diffusion Models Coresets for data-efficient training of ma- chine learning models
Reference 34
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Observation 6dbe5422-e468-473e-8519-9e3bbd86e459 · outbound
Data Pruning in Generative Diffusion Models Geometry- complete diffusion for 3d molecule generation and optimization
Reference 35
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Observation 19e811bd-49af-4722-8ada-17ae09302d11 · outbound
Data Pruning in Generative Diffusion Models Diffusion models, image super- resolution, and everything: A survey
Reference 36
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Observation 5cbb2c48-ad27-4e0b-ba29-d368d19fa788 · outbound
Data Pruning in Generative Diffusion Models Unresolved cited work
Reference 37
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Observation 045afcb0-897f-44d1-b2a1-4304929c640a · outbound
Data Pruning in Generative Diffusion Models Deep learning on a data diet: Finding im- portant examples early in training
Reference 38
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Observation e99725ae-4bd0-409c-86b5-fc3db14f87eb · outbound
Data Pruning in Generative Diffusion Models Scalable Diffusion Models with Transformers
Reference 39
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Observation b782cc25-25ad-4c92-8a91-c426425728f6 · outbound
Data Pruning in Generative Diffusion Models Learning transferable visual models 14 from natural language supervision
Reference 40
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Observation e38ccc65-49c4-4b1b-af57-bea08916e8a7 · outbound
Data Pruning in Generative Diffusion Models Neural synthesis of binaural speech from mono audio
Reference 41
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Observation e74fadd4-5e91-4d49-b06a-e7a5b35f4bf5 · outbound
Data Pruning in Generative Diffusion Models High- resolution image synthesis with latent diffusion mod- els, 2021
Reference 42
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Observation 92bbfd92-20c8-4b01-8186-c245c7b8c3d4 · outbound
Data Pruning in Generative Diffusion Models Assessing gen- erative models via precision and recall
Reference 43
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Observation 6d9f93b3-8059-4263-909e-d1bfdeedb72a · outbound
Data Pruning in Generative Diffusion Models What Matters In The Structured Pruning of Generative Language Models?
Reference 44
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Data Pruning in Generative Diffusion Models Generative model- ing by estimating gradients of the data distribution
Reference 45
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Observation 74edff51-6ea7-4da7-bff5-f4a23b2ba5e0 · outbound
Data Pruning in Generative Diffusion Models Solving Inverse Problems in Medical Imaging with Score-Based Generative Models
Reference 46
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Observation de57d2f7-3e3e-428b-9475-c5a956923f11 · outbound
Data Pruning in Generative Diffusion Models Score-Based Generative Modeling through Stochastic Differential Equations
Reference 47
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Data Pruning in Generative Diffusion Models Beyond neural scal- ing laws: beating power law scaling via data pruning
Reference 48
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Observation bdb2453f-0539-4d46-bc2c-da28fd469843 · outbound
Data Pruning in Generative Diffusion Models A Simple and Effective Pruning Approach for Large Language Models
Reference 49
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Observation 553a3d8d-0ad5-4540-a032-f4e793600d76 · outbound
Data Pruning in Generative Diffusion Models Autoregressive Model Beats Diffusion: Llama for Scalable Image Generation
Reference 50
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Data Pruning in Generative Diffusion Models Data pruning via moving-one-sample-out
Reference 51
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Data Pruning in Generative Diffusion Models Struc- tured pruning for efficient generative pre-trained lan- guage models
Reference 52
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Reference 53
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Data Pruning in Generative Diffusion Models Fair generative models via trans- fer learning
Reference 54
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Observation cee222b3-624c-4200-9cfd-9c0ebb902cea · outbound
Data Pruning in Generative Diffusion Models An Empirical Study of Example Forgetting during Deep Neural Network Learning
Reference 55
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Data Pruning in Generative Diffusion Models Neural discrete representation learning
Reference 56
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Observation f7ef9d55-2e58-466c-8f76-19ac1ad2c8a2 · outbound
Data Pruning in Generative Diffusion Models Diffusion models for medical image reconstruction
Reference 57
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Observation d89fe1a7-9b6d-40e1-975e-0dcdbdebdad0 · outbound
Data Pruning in Generative Diffusion Models Moderate coreset: A universal method of data selection for real-world data-efficient deep learning
Reference 58
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Observation a7ffc02c-45a8-4989-bf3a-1272a3c66e98 · outbound
Data Pruning in Generative Diffusion Models GeoDiff: a Geometric Diffusion Model for Molecular Conformation Generation
Reference 59
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Observation 0978cd7c-9510-4b85-81ae-579a07f6a89a · outbound
Data Pruning in Generative Diffusion Models Mind the boundary: Coreset selection via reconstructing the decision boundary
Reference 60
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Data Pruning in Generative Diffusion Models Dataset Pruning: Reducing Training Data by Examining Generalization Influence
Reference 61
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Data Pruning in Generative Diffusion Models A generalized dual-domain gen- erative framework with hierarchical consistency for 15 medical image reconstruction and synthesis
Reference 62
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Data Pruning in Generative Diffusion Models The unreasonable ef- fectiveness of deep features as a perceptual metric
Reference 63
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Observation 1f3bb838-4a15-4e8f-bb78-d02fc884e4a4 · outbound
Data Pruning in Generative Diffusion Models Energy-efficient high-fidelity image reconstruction with memristor arrays for medical di- agnosis
Reference 64
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Observation 7d5cd2d2-1bc0-428b-bab4-29c560d59292 · outbound
Data Pruning in Generative Diffusion Models Coverage-centric Coreset Selection for High Pruning Rates
Reference 65
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Observation 59dfb9e8-0460-4583-8369-135db21b8058 · inbound
The Amazing Stability of Flow Matching Data Pruning in Generative Diffusion Models
Reference 5
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