Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-15T22:41:54.934778Z
Paper Citation Record · LEDGER
As of 24 August 2026, this Paper Citation Record lists 42 of 42 outbound references and 1 inbound Pith citation observation for arXiv:2505.06647.
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 2026-08-15T22:41:54.934778Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-23T06:30:58.430688+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-08T18:29:50.299639Z
A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-08T18:29:53.190306Z
42 of 42 outbound references displayed
External citation measurements
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Observation c70cd850-a0dd-4be0-8603-1b5e85243561 · outbound
Dataset Distillation with Probabilistic Latent Features Im- age2stylegan: How to embed images into the stylegan latent space? In Proceedings of the IEEE/CVF international con- ference on computer vision (ICCV), pages 4432–4441, 2019
Reference 1
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Observation 2b56d23b-f631-4d1d-838d-5465437de6f3 · outbound
Dataset Distillation with Probabilistic Latent Features All are worth words: A vit back- bone for diffusion models
Reference 2
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Observation 1573882d-af62-4f52-a189-20c66fd1d4a9 · outbound
Dataset Distillation with Probabilistic Latent Features Dataset distillation by matching training trajectories
Reference 3
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Observation b825c808-c184-40b4-8574-62b4dd2ccf88 · outbound
Dataset Distillation with Probabilistic Latent Features Generalizing dataset distillation via deep generative prior
Reference 4
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Observation 5ef47b34-87bd-4d1d-b4b3-e0b92f44e922 · outbound
Dataset Distillation with Probabilistic Latent Features Imagenet: A large-scale hierarchical image database
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Observation 81f19a61-1430-4500-984e-fcb9ec5bdd48 · outbound
Dataset Distillation with Probabilistic Latent Features An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
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Observation 185931f6-48fd-4c6d-8f40-9609a9348289 · outbound
Dataset Distillation with Probabilistic Latent Features Minimizing the accumulated trajectory error to improve dataset distillation
Reference 7
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Observation 28ba4a15-7fb5-455d-9d8a-2ddb73182ffc · outbound
Dataset Distillation with Probabilistic Latent Features Reliable mutual distillation for medical image seg- mentation under imperfect annotations
Reference 8
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Observation 1093512d-675f-4a8d-8994-0dbc23d230b4 · outbound
Dataset Distillation with Probabilistic Latent Features On calibration of modern neural networks
Reference 9
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Observation 5a8fed0a-a8aa-4c9e-9da9-c1f470510b96 · outbound
Dataset Distillation with Probabilistic Latent Features Vision trans- formers for small histological datasets learned through knowledge distillation
Reference 10
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Observation 778622af-f8f4-4833-bf4d-08bd9c8a8fa4 · outbound
Dataset Distillation with Probabilistic Latent Features What uncertainties do we need in bayesian deep learning for computer vision? Advances in neural information processing systems, 30, 2017
Reference 11
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Observation 9d289b26-4c69-4c8e-ab0d-963277cb0d97 · outbound
Dataset Distillation with Probabilistic Latent Features Learning multiple layers of features from tiny images
Reference 12
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Observation b7de620a-e9ff-4a83-a806-aa4758ea8193 · outbound
Dataset Distillation with Probabilistic Latent Features A Comprehensive Survey of Dataset Distillation
Reference 13
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Observation 03ff1718-68ee-4743-a0eb-f62e712fd3e6 · outbound
Dataset Distillation with Probabilistic Latent Features Soft-label anonymous gastric x-ray image distillation
Reference 14
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Observation e2f13908-1e60-4113-87bc-25603af07f3f · outbound
Dataset Distillation with Probabilistic Latent Features Compressed gastric image generation based on soft-label dataset distillation for medical data sharing.Computer Meth- ods and Programs in Biomedicine, 227:107189, 2022
Reference 15
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Observation d16f793c-86dd-4457-aa54-77477dd17682 · outbound
Dataset Distillation with Probabilistic Latent Features Dataset Distillation for Medical Dataset Sharing
Reference 16
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Observation 663954b8-d433-4c90-9880-926e981514e2 · outbound
Dataset Distillation with Probabilistic Latent Features Image Distillation for Safe Data Sharing in Histopathology
Reference 17
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Observation f069197a-93ba-4d82-acb3-892b232ea290 · outbound
Dataset Distillation with Probabilistic Latent Features Few-shot dataset dis- tillation via translative pre-training
Reference 18
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Observation 8632c0f3-0d76-4673-ba13-624a3f1a301c · outbound
Dataset Distillation with Probabilistic Latent Features Dataset distillation via factorization
Reference 19
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Observation 4ff2bb3d-271d-4fc1-9632-19b540ff9cf2 · outbound
Dataset Distillation with Probabilistic Latent Features Dream: Efficient dataset distillation by repre- sentative matching
Reference 20
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Observation e0507d91-e2bd-40c5-9eeb-8cbecca8bd39 · outbound
Dataset Distillation with Probabilistic Latent Features Predictive uncertainty es- timation via prior networks
Reference 21
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Observation 0705d0c8-df5d-4e1e-a1fb-786a65fa1cf9 · outbound
Dataset Distillation with Probabilistic Latent Features Reverse kl-divergence training of prior networks: Improved uncertainty and adver- sarial robustness
Reference 22
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Observation 1631147d-6f7f-4f2d-a94e-f33f1b74b615 · outbound
Dataset Distillation with Probabilistic Latent Features Stochastic seg- mentation networks: Modelling spatially correlated aleatoric uncertainty
Reference 23
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Observation 9f0f5016-e212-4aa8-91c6-ced89ca63c54 · outbound
Dataset Distillation with Probabilistic Latent Features Dataset Meta-Learning from Kernel Ridge-Regression
Reference 24
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Observation 9a803da6-d459-40c4-a55d-b943d473942a · outbound
Dataset Distillation with Probabilistic Latent Features Liu, Yuri A
Reference 25
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Observation 04dddd71-7423-476a-8ab3-42ef9cba13e6 · outbound
Dataset Distillation with Probabilistic Latent Features Stylegan- xl: Scaling stylegan to large diverse datasets
Reference 26
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Observation b54fd8df-131e-4a66-a7ba-16f9d81e134f · outbound
Dataset Distillation with Probabilistic Latent Features Eviden- tial deep learning to quantify classification uncertainty
Reference 27
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Observation 0f3ad953-315a-4398-a8a5-a22d1027f98f · outbound
Dataset Distillation with Probabilistic Latent Features Generative teaching networks: Accelerating neural architecture search by learning to gener- ate synthetic training data
Reference 28
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Observation 912d68c2-3266-4d9f-b6ab-4ea60c91709d · outbound
Dataset Distillation with Probabilistic Latent Features Cafe: Learning to condense dataset by align- ing features
Reference 29
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Observation adce42fe-b036-4458-80f5-aba05104b301 · outbound
Dataset Distillation with Probabilistic Latent Features Dataset Distillation
Reference 30
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Observation 7fa1b677-f8ab-4111-9518-aaf84dff8753 · outbound
Dataset Distillation with Probabilistic Latent Features Bayesian deep learn- ing and a probabilistic perspective of generalization
Reference 31
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Observation 4b04fc92-1d75-482a-b3e3-1550c4fd59c5 · outbound
Dataset Distillation with Probabilistic Latent Features Medm- nist v2-a large-scale lightweight benchmark for 2d and 3d biomedical image classification
Reference 32
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Observation 04473332-eab8-4b05-b5f3-4013903ba7e0 · outbound
Dataset Distillation with Probabilistic Latent Features Bootstrapping semi-supervised medical image segmentation with anatomical-aware contrastive dis- tillation
Reference 33
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Observation 4d99ac51-e090-4c9d-bac0-38b72c6cc4ee · outbound
Dataset Distillation with Probabilistic Latent Features Dataset Distillation: A Comprehensive Review
Reference 34
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Observation 585071c7-f1df-40b4-bc1e-695c828387a0 · outbound
Dataset Distillation with Probabilistic Latent Features Accelerating dataset distillation via model augmenta- tion
Reference 35
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Observation ff0c2ae4-e6f9-4c64-8e3d-b483430589ee · outbound
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Reference 36
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Observation 04a0bd43-809e-4ddf-8889-83e71d48ef81 · outbound
Dataset Distillation with Probabilistic Latent Features Synthesizing informative train- ing samples with gan
Reference 37
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Observation e52aa5bc-49b1-4478-81bd-f14312c6a8f0 · outbound
Dataset Distillation with Probabilistic Latent Features Dataset condensation with distri- bution matching
Reference 38
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Observation 29fc9e73-511a-4206-a391-3fbf84769fa8 · outbound
Dataset Distillation with Probabilistic Latent Features Dataset condensation with gradient matching
Reference 39
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Observation c42022df-41cb-4fe6-95e6-87bb07798bbe · outbound
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Observation fcb0f980-30f3-4ada-80d9-849a09a805eb · outbound
Dataset Distillation with Probabilistic Latent Features Rethinking data dis- tillation: Do not overlook calibration
Reference 41
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Observation fa54811e-97c9-4592-aa05-15a966221bda · outbound
Dataset Distillation with Probabilistic Latent Features 1; • The main paper can forward reference sub-sections within the supplementary explicitly (e.g
Reference 42
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Observation b78e9c3b-357f-4e6c-86a9-492a8065e207 · inbound
The Evolution of Dataset Distillation: Toward Scalable and Generalizable Solutions Dataset Distillation with Probabilistic Latent Features
Reference 44
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