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Paper Citation Record · LEDGER

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation

As of 15 August 2026, this Paper Citation Record lists 48 of 48 outbound references and 0 inbound Pith citation observations for arXiv:2411.19946.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2411.19946 v2

Coverage vector

measured 48 of 48 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-12T05:44:25.167665Z

measured 48 of 48 standing notices

One-hop event checks from named stored sources.

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

48 of 48 outbound references displayed

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External citation measurements

No source-named external measurement is stored.

Outbound references

Observation aa970f21-3c1e-413c-97a4-fa0894d72cb5 · outbound

This paper cites Understand- ing and improving early stopping for learning with noisy la- bels.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Understand- ing and improving early stopping for learning with noisy la- bels

Reference 1

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Observation 73bbe83f-7e0a-44d0-80f7-f4cc33149939 · outbound

This paper cites YOLOv4: Optimal Speed and Accuracy of Object Detection.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation YOLOv4: Optimal Speed and Accuracy of Object Detection

Reference 2

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Observation 3912a814-b727-40a4-b2f1-51c97e9782c7 · outbound

This paper cites Dataset distillation by matching training trajectories.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset distillation by matching training trajectories

Reference 3

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Observation 657eb411-d3c9-4df7-9304-abd479da1c5d · outbound

This paper cites Data distillation can be like vodka: Distilling more times for better quality.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Data distillation can be like vodka: Distilling more times for better quality

Reference 4

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Observation d8bceb74-bd9f-4def-a8d9-f1f8c872dd5c · outbound

This paper cites Randaugment: Practical automated data augmen- tation with a reduced search space.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Randaugment: Practical automated data augmen- tation with a reduced search space

Reference 5

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Observation 83207ae4-4e55-4281-a0f9-0a862bd44c3d · outbound

This paper cites Scaling up dataset distillation to imagenet-1k with constant memory.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Scaling up dataset distillation to imagenet-1k with constant memory

Reference 6

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Observation 68c10755-2387-42a9-916b-56b98506dc67 · outbound

This paper cites Imagenet: A large-scale hierarchical image database.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Imagenet: A large-scale hierarchical image database

Reference 7

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Observation c9655ef3-231d-471d-ab77-d228916d80b6 · outbound

This paper cites Diversity-driven synthesis: Enhancing dataset distillation through directed weight adjustment.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Diversity-driven synthesis: Enhancing dataset distillation through directed weight adjustment

Reference 8

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Observation 654b84b2-b138-4e3e-b115-36bf45ec0436 · outbound

This paper cites Fastai/imagenette: A smaller subset of 10 easily clas- sified classes from imagenet, and a little more french.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Fastai/imagenette: A smaller subset of 10 easily clas- sified classes from imagenet, and a little more french

Reference 9

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Observation 6a03bfdb-de59-48d1-904e-73c9d347d158 · outbound

This paper cites Dynamic few-shot visual learning without forgetting.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dynamic few-shot visual learning without forgetting

Reference 10

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Observation 0fa535a2-6f0d-4623-9a77-737a241d607e · outbound

This paper cites Efficient dataset distillation via minimax diffusion.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Efficient dataset distillation via minimax diffusion

Reference 11

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Observation a722bb80-668c-477a-b786-23b1f8331588 · outbound

This paper cites Towards lossless dataset distillation via difficulty-aligned trajectory matching.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Towards lossless dataset distillation via difficulty-aligned trajectory matching

Reference 12

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Observation 78b55875-634a-4a68-809c-771c24a445b3 · outbound

This paper cites Deep residual learning for image recognition.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Deep residual learning for image recognition

Reference 13

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Observation d677ae88-a90f-4727-bb06-2297b6404356 · outbound

This paper cites Multisize dataset condensation.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Multisize dataset condensation

Reference 14

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Observation b2006a84-d1dc-472e-9d09-f1777bfbf68e · outbound

This paper cites Dataset condensation via efficient synthetic- data parameterization.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset condensation via efficient synthetic- data parameterization

Reference 15

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Observation 10158edc-d394-44f2-b87a-926813073f40 · outbound

This paper cites Learning multiple layers of features from tiny images.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Learning multiple layers of features from tiny images

Reference 16

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Observation be2800c8-0d0a-434d-82dc-4655507bd19a · outbound

This paper cites Tiny imagenet visual recognition challenge.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Tiny imagenet visual recognition challenge

Reference 17

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Observation 4bc482ba-d38e-41bf-a0b1-c14a161e8e02 · outbound

This paper cites Dataset condensation with con- trastive signals.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset condensation with con- trastive signals

Reference 18

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Observation 1541e025-2405-4e0d-9947-ab93dc36e37c · outbound

This paper cites Dataset Distillation via the Wasserstein Metric.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset Distillation via the Wasserstein Metric

Reference 19

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Observation 33afb1d7-9266-45b8-8f8e-857de534eda9 · outbound

This paper cites Investigating bi-level optimization for learn- ing and vision from a unified perspective: A survey and be- yond.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Investigating bi-level optimization for learn- ing and vision from a unified perspective: A survey and be- yond

Reference 20

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Observation e3226c04-2762-4245-963b-f368d081bcd6 · outbound

This paper cites Dataset distillation via factorization.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset distillation via factorization

Reference 21

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Observation 3c0c7a93-fc28-4b94-b7b4-cbe0738ecfbf · outbound

This paper cites Learning efficient convolutional networks through network slimming.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Learning efficient convolutional networks through network slimming

Reference 22

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Observation 118490ba-eaf2-4b28-8c1b-92f4676467e0 · outbound

This paper cites Pytorch: An im- perative style, high-performance deep learning library.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Pytorch: An im- perative style, high-performance deep learning library

Reference 23

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Observation 16911afd-970d-404d-b482-66985d4da8e4 · outbound

This paper cites Early stopping-but when? In Neural Net- works: Tricks of the trade, pages 55–69.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Early stopping-but when? In Neural Net- works: Tricks of the trade, pages 55–69

Reference 24

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Observation 8bf5cfd8-65d0-4e11-a383-6b2f3e834d2f · outbound

This paper cites Distributional Dataset Distillation with Subtask Decomposition.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Distributional Dataset Distillation with Subtask Decomposition

Reference 25

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Observation 3d2c61ae-7294-4a64-9fd7-6b74fc22d05a · outbound

This paper cites Designing network design spaces.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Designing network design spaces

Reference 26

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Observation ccb4ebcf-e15b-46e6-bab9-9ef595ccaab1 · outbound

This paper cites Mobilenetv2: Inverted residuals and linear bottlenecks.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Mobilenetv2: Inverted residuals and linear bottlenecks

Reference 27

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Observation 8796a1c6-685e-4f54-b384-7230666586d4 · outbound

This paper cites Generalized large-scale data condensa- tion via various backbone and statistical matching.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Generalized large-scale data condensa- tion via various backbone and statistical matching

Reference 28

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Observation 3d939d33-fbb1-46ce-9341-c22d9ce86fe4 · outbound

This paper cites A fast knowledge distillation framework for visual recognition.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation A fast knowledge distillation framework for visual recognition

Reference 29

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Observation 3c9dbf4e-78e7-4bf8-89b1-841272835937 · outbound

This paper cites Very Deep Convolutional Networks for Large-Scale Image Recognition.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Very Deep Convolutional Networks for Large-Scale Image Recognition

Reference 30

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Observation 70d5c845-dbce-41e5-b119-7aef1edf40ad · outbound

This paper cites Data-free parameter pruning for Deep Neural Networks.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Data-free parameter pruning for Deep Neural Networks

Reference 31

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Observation 3fd82cbf-9728-441f-8ec6-7f0e9dc05626 · outbound

This paper cites On the diversity and realism of distilled dataset: An efficient dataset distilla- tion paradigm.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation On the diversity and realism of distilled dataset: An efficient dataset distilla- tion paradigm

Reference 32

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Observation 759f2c3d-edb2-452c-b010-57f17141e984 · outbound

This paper cites Efficientnet: Rethinking model scaling for convolutional neural networks.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Efficientnet: Rethinking model scaling for convolutional neural networks

Reference 33

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Observation 46e48fe9-b998-414b-bd3c-b5d983620907 · outbound

This paper cites Mnas- net: Platform-aware neural architecture search for mobile.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Mnas- net: Platform-aware neural architecture search for mobile

Reference 34

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Observation 65759490-bda8-486e-9696-4500553789e0 · outbound

This paper cites Con- trastive multiview coding.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Con- trastive multiview coding

Reference 35

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Observation f76dd3ec-64d7-487d-aec7-2af0fcc18ee4 · outbound

This paper cites Dataset Distillation.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset Distillation

Reference 36

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no resolver link, observed 2026-08-12T05:44:25.126205Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-12T05:44:25.126205Z digest=sha256:e55745013f2c7bb0b1bdbaf5e94bd00b82e49f64ea606e8f48b805fc64b97433

Observation 8d6452a9-7fd3-447d-bfe1-a812daa9bacd · outbound

This paper cites Mean squared error: Love it or leave it? a new look at signal fidelity measures.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Mean squared error: Love it or leave it? a new look at signal fidelity measures

Reference 37

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verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.338825Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.130172Z digest=sha256:d679bec3c99f30b8bcb3cc0f7defe5690a641cd495da63aeaf84a7b942177343

Observation 2bbe7bbd-3a23-4e30-81e5-3e661a0c194d · outbound

This paper cites Are large-scale soft labels nec- essary for large-scale dataset distillation? In Advances in neural information processing systems, 2024.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Are large-scale soft labels nec- essary for large-scale dataset distillation? In Advances in neural information processing systems, 2024

Reference 38

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.330055Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.133084Z digest=sha256:1c08401519cb62a652253d2dad9429b525f72b0ed761334b9351caec8ed9abc5

Observation 39b9133c-20c4-4551-8be6-dd490ab52246 · outbound

This paper cites Dataset distillation via cur- riculum data synthesis in large data era.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset distillation via cur- riculum data synthesis in large data era

Reference 39

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verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.320307Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.135969Z digest=sha256:7f69b9e66e52a21780fe2213dd42908f8b115fdb0efd4c44ee88aa78e729670a

Observation 30be7e3a-2eff-468c-a9f9-fd06e297c3ab · outbound

This paper cites Squeeze, recover and relabel: Dataset condensation at imagenet scale from a new perspective.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Squeeze, recover and relabel: Dataset condensation at imagenet scale from a new perspective

Reference 40

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.311443Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.139304Z digest=sha256:de2c6571f428ffeeb04e773f32d76653d397c34828d3e5223711ee831e7c5113

Observation 3d315857-4166-4624-b8a8-6412b5f7ab93 · outbound

This paper cites An Introduction to Bi-level Optimization: Foundations and Applications in Signal Processing and Machine Learning.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation An Introduction to Bi-level Optimization: Foundations and Applications in Signal Processing and Machine Learning

Reference 41

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unresolved
no resolver link, observed 2026-08-12T05:44:25.142689Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-12T05:44:25.142689Z digest=sha256:286919583cf8ff14f87ec3b28c14c7582803a99a774ca1a3f64feee02ba6f8ec

Observation c5dc41cc-b8de-4998-8408-a4cd2d70dfe4 · outbound

This paper cites Dataset condensation with dis- tribution matching.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset condensation with dis- tribution matching

Reference 42

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.302364Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.146575Z digest=sha256:1e45fca75cecdd5cf8e6a27ebc22819d818a5ee50cbef2454161fb301d757846

Observation c1f43320-36dd-4de1-a906-16b1b374ac48 · outbound

This paper cites Dataset Condensation with Gradient Matching.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset Condensation with Gradient Matching

Reference 43

Resolution
unresolved
no resolver link, observed 2026-08-12T05:44:25.149462Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-12T05:44:25.149462Z digest=sha256:00c8efaa94f0431a85038373fc878525756457267c3ba4a85d1140e5b586cf1d

Observation 8baa2740-c68a-4b51-b7cb-30f6a4b51467 · outbound

This paper cites Decoupled knowledge distillation.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Decoupled knowledge distillation

Reference 44

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.292253Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.152752Z digest=sha256:3008cd3c053cd6755f2191113f0361002b1ec01813ad0fc3099c87d09fd27e62

Observation 9d5a3c8c-de70-4bca-adf4-8ba8e562d86e · outbound

This paper cites Im- proved distribution matching for dataset condensation.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Im- proved distribution matching for dataset condensation

Reference 45

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.282764Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.155616Z digest=sha256:53bcc287e11dcfc2cd0d68205ac3622b43a195ff985c87bad6324b1f4dff63ac

Observation 7fa50bc6-4118-460b-aa83-1746b31c2b73 · outbound

This paper cites Self-supervised Dataset Distillation: A Good Compression Is All You Need.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Self-supervised Dataset Distillation: A Good Compression Is All You Need

Reference 46

Resolution
unresolved
no resolver link, observed 2026-08-12T05:44:25.159437Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-12T05:44:25.159437Z digest=sha256:e19760d66c2319dcfdf1abb9eb385db4dda726222298f5e48449e05b83793564

Observation 0bdc9013-31be-42be-912d-eb7dab4f4584 · outbound

This paper cites Dataset distillation using neural feature regression.Advances in Neu- ral Information Processing Systems, 35:9813–9827, 2022.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Dataset distillation using neural feature regression.Advances in Neu- ral Information Processing Systems, 35:9813–9827, 2022

Reference 47

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.273661Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.163520Z digest=sha256:18df889fd853a12145125091cc01af3b41ec2e20ba3de5f2f948934ae7263fc0

Observation 38dd8abc-28da-4472-bc3e-997e59a664c2 · outbound

This paper cites Hyper-parameter settings.

DELT: A Simple Diversity-driven EarlyLate Training for Dataset Distillation Hyper-parameter settings

Reference 48

Resolution
verified fuzzy
raw_fallback, observed 2026-08-12T05:44:25.263863Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

source=pdf_text observed=2026-08-12T05:44:25.167665Z digest=sha256:e2d2e33eac96d81ee97d8fc9515502e11143f9a2cf7e7e674813923486863ebe

Pith citing papers

No inbound Pith citation observations are available.