Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T22:46:01.597095Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 100 of 102 outbound references and 1 inbound Pith citation observation for arXiv:2506.21037.
A citation records a reference. It does not transfer a finding from one paper to another.
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Source: paper_references, paper_reference_links, observed 2026-08-06T22:46:01.597095Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-06-30T21:49:36.142405Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-06-30T21:55:06.025305Z
100 of 102 outbound references displayed
External citation measurements
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Observation 1d7f785c-3759-4d31-9acb-40d2261fd07e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment A definition of continual reinforcement learning
Reference 1
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Observation e62a545e-a05b-474f-abeb-f58b2af84fe5 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Vlmo: Unified vision-language pre-training with mixture-of-modality-experts.Advances in Neural Information Processing Systems, 35:32897–32912, 2022
Reference 2
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Observation 8f3835e0-a19c-4583-9c56-0fde56e19bb6 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Scail: Classifier weights scaling for class incremental learning
Reference 3
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Observation 114eceea-9476-4d1e-8873-8b936982a064 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Efros, and Jun-Yan Zhu
Reference 4
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Observation 90b051d2-5db7-4ce2-ad59-50c25e11a50d · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Why Adversarial Training of ReLU Networks Is Difficult?
Reference 5
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 1b6e7aa6-8f9d-48d4-84f4-53f2a5712c5d · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Palm: Scaling language modeling with pathways.Journal of Machine Learning Research, 24(240): 1–113, 2023
Reference 6
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Observation c16b6d6a-24b8-4074-a4b7-d24cb1a8142b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment A Downsampled Variant of ImageNet as an Alternative to the CIFAR datasets
Reference 7
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Observation 7acb0be7-da63-486d-9df8-03f2225a2a93 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Selection via Proxy: Efficient Data Selection for Deep Learning
Reference 8
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Observation 77277328-072e-4d85-8301-8a28d71ada6e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Imagenet: A large-scale hierarchical image database
Reference 9
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Observation 3bb93ac9-ea71-44f5-9840-7ad191d934e6 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
Reference 10
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Observation 883bdea7-2bd4-4b5b-989e-fd12c7deea70 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Minimizing the accumulated trajectory error to improve dataset distillation
Reference 11
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Observation 12d2248a-8e0e-4b4b-97ed-57223adb4dec · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 12
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Observation b7cfd9ae-34e6-4311-a17c-3eebeec68da6 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment What neural networks memorize and why: Discovering the long tail via influence estimation.Advances in Neural Information Processing Sys- tems, 33:2881–2891, 2020
Reference 13
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Observation 56121782-6d0f-4254-904f-7700165bce50 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Vissl.https://github.com/ facebookresearch/vissl, 2021
Reference 14
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Observation d2e8c262-3471-4414-90ce-af529dbf756e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 15
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Observation ab997ffa-0eb5-44f5-8504-5987b6ae4c61 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning
Reference 16
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Observation 00da97ca-072f-481d-b10d-e8126f70e8a9 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Towards Lossless Dataset Distillation via Difficulty-Aligned Trajectory Matching
Reference 17
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Observation 4372fa9f-9b0d-4c6d-985d-017095c6ea10 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Data-Efficient Training of CNNs and Transformers with Coresets: A Stability Perspective
Reference 18
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Observation a45dd16b-0dc1-4593-865c-b16441b02e4d · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Deep residual learning for image recognition
Reference 19
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Observation 75cee0b3-fa59-464e-8f69-0a3096d7eaea · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment You only con- dense once: Two rules for pruning condensed datasets.Ad- vances in Neural Information Processing Systems, 36, 2024
Reference 20
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Observation 758c6cb0-e95e-49a0-a04c-9a384d419269 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment The many faces of robust- ness: A critical analysis of out-of-distribution generalization
Reference 21
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Observation cb460f3d-3f95-4274-98d1-1d4762850458 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Natural adversarial examples
Reference 22
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Observation 5aaafcea-702e-4245-b2cd-9d085bb8b35b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Diversified Batch Selection for Training Acceleration
Reference 23
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Observation f74a5973-2481-495c-b184-2d85b3b3ed80 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment DONOD: Efficient and Generalizable Instruction Fine-Tuning for LLMs via Model-Intrinsic Dataset Pruning
Reference 24
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Observation 657989d9-7467-4baa-bead-07fc94138d60 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Densely connected convolutional net- works
Reference 25
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Observation 24a607f5-fe57-4462-9564-e4e4108a5ebc · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Polynomial bounds for vc dimension of sigmoidal and general pfaffian neural networks.Journal of Computer and System Sciences, 54(1): 169–176, 1997
Reference 26
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Observation cfe58b0c-0de6-4e3c-8baa-85619fe30366 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Grad-match: Gradient matching based data subset selection for efficient deep model training
Reference 27
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Observation 55fe10fc-24c7-4bbd-a354-f63464ff0eb1 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Glister: Generalization based data subset selection for efficient and robust learning
Reference 28
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Observation debf466d-7a7b-45be-a151-a4831a08a84b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Segment any- thing
Reference 29
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Observation 6361aad5-7521-40bc-aba3-94f496a32bac · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Understanding black-box predictions via influence functions
Reference 30
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Observation 027efbde-5693-4bbe-8cef-66addf2be9d3 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Understanding black-box predictions via influence functions
Reference 31
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Observation 04d206c7-02d7-4434-b7db-55eb0da0d109 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Prism: A unified framework of parameterized submodular information measures for tar- geted data subset selection and summarization
Reference 32
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 3f08a32b-6ecc-445f-8cfb-597745813083 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Learning multiple layers of features from tiny images
Reference 33
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Observation 62363d1a-289b-4754-a013-b2246dc74fca · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment DR3: Value-Based Deep Reinforcement Learning Requires Explicit Regularization
Reference 34
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation e95a7e29-9f31-4945-937b-a82bdbba3ad7 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Super- vised pretraining can learn in-context reinforcement learn- ing.Advances in Neural Information Processing Systems, 36, 2024
Reference 35
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Observation 71d5c2c3-5c70-4f06-b344-e789934f35be · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment A Comprehensive Survey of Dataset Distillation
Reference 36
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Observation 20339c3b-dbd2-4138-a9ec-f023d7c9bb02 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Align before fuse: Vision and language representation learn- ing with momentum distillation.Advances in neural infor- mation processing systems, 34:9694–9705, 2021
Reference 37
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Observation 7e9ef7bd-3a8b-400a-9627-5e6262ecb8c0 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Design from policies: Con- servative test-time adaptation for offline policy optimiza- tion.Advances in Neural Information Processing Systems, 36, 2024
Reference 38
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 3d975c5f-eeed-406c-b786-e40d10cbe653 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Swin transformer: Hierarchical vision transformer using shifted windows
Reference 39
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Observation 57516fe2-de92-4c88-988d-d808ca4bb5a5 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Struc- tured state space models for in-context reinforcement learn- ing.Advances in Neural Information Processing Systems, 36, 2024
Reference 40
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Observation 8942c9be-2da6-45e4-a55c-f84ed0cb586e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment D2 Pruning: Message Passing for Balancing Diversity and Difficulty in Data Pruning
Reference 41
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Observation d52f0ced-fe67-41e6-893d-17b3333f64b7 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Language Models are Few-Shot Learners
Reference 42
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Observation 4b39e7ce-b0a6-42e4-9ae4-4f05c65b6227 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Schulze Buschoff, Robert Geirhos, and Felix A
Reference 43
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation b9bdb6ca-15f7-4e74-9892-5258f98e847a · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Coresets for data-efficient training of machine learning mod- els
Reference 44
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 433b45d1-7f48-4c61-9f21-ec257892d076 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Asynchronous Methods for Deep Reinforcement Learning
Reference 45
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Observation e76b24ba-4e88-42f5-bed9-47f283675808 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Asynchronous methods for deep reinforcement learning
Reference 46
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 5db15f97-96d7-42bc-b595-154cb956d87d · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Performance bounds for policy-based average reward rein- forcement learning algorithms.Advances in Neural Infor- mation Processing Systems, 36:19386–19396, 2023
Reference 47
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Observation 53a30719-06d6-444b-b452-d3f4f845354e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Bridging the gap between value and policy based reinforcement learning.Advances in neural informa- tion processing systems, 30, 2017
Reference 48
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Observation 7332f4e7-e5a5-4371-950c-1cf62d23174a · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Data valu- ation without training of a model
Reference 49
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Observation de7d3119-ef20-4115-8fe5-e06648aa3555 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Deep learning on a data diet: Finding important ex- amples early in training.Advances in Neural Information Processing Systems, 34:20596–20607, 2021
Reference 50
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Observation 6b7999bb-6075-49b1-9489-0bf17619a88e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Adaptive second order coresets for data-efficient machine learning
Reference 51
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Observation c76ea08c-374c-4588-99e3-c699b1e0358b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment InfoBatch: Lossless Training Speed Up by Unbiased Dynamic Data Pruning
Reference 52
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Observation 4799d44e-16e9-4864-adcc-e0d98b7009ab · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Language models are unsu- pervised multitask learners.OpenAI blog, 1(8):9, 2019
Reference 53
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Observation 36e64bc2-ccbb-4ebb-9565-dbaabd9708c3 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Learning transferable visual models from natural language supervi- sion
Reference 54
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Observation 8449f8d1-ff33-410a-acd7-1fb22db86278 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Accelerating Deep Learning with Dynamic Data Pruning
Reference 55
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Observation 96691100-8007-47ae-8b62-b01251832e72 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Data-centric green artifi- cial intelligence: A survey.IEEE Transactions on Artificial Intelligence, 2023
Reference 56
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 1bbc9bc1-0050-4607-a756-861674ac5a4c · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Laion-5b: An open large-scale dataset for training next generation image-text models.Advances in Neural In- formation Processing Systems, 35:25278–25294, 2022
Reference 57
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Observation ad0889fd-ee4b-4245-8c59-13991499750b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Active learning for convolu- tional neural networks: A core-set approach
Reference 58
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Observation 8b8662fc-5539-4464-95fb-0b83368c6491 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Reinforcement learning algorithms: A brief survey.Expert Systems with Applications, page 120495, 2023
Reference 59
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Observation c7336274-2974-49be-9562-49f9f4d561c7 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Very Deep Convolutional Networks for Large-Scale Image Recognition
Reference 60
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Observation 6f496b4d-f4ee-4d8c-ab72-f6c824317b1f · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 61
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation e3fd2e8a-14e9-42b2-b66b-da13d20d7415 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment On the depth of deep neural networks: A the- oretical view
Reference 62
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Observation 1ff49d75-f427-41a4-af03-6a1ad8ec5c5b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 63
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Observation 3a94ca87-b5cc-4c21-9da3-af85ad86911a · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Data pruning via moving-one- sample-out.Advances in Neural Information Processing Sys- tems, 36, 2024
Reference 64
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Observation 59fd0781-47d3-47ed-9055-61bae4ab7299 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment D4: Improving llm pretraining via document de- duplication and diversification
Reference 65
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Observation 2049c0e2-7e19-4698-b443-a87f6c19fd46 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Policy-based reinforcement learning for generalisation in interactive text- based environments
Reference 66
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Observation 3c466a90-d7ec-4953-9755-3964be828308 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment An Empirical Study of Example Forgetting during Deep Neural Network Learning
Reference 67
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Observation 5443d804-1ce6-4aab-aa1a-db7ac94fa21a · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Visualizing data using t-sne.J
Reference 68
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Observation 4df00de2-d421-4c1d-9a53-b6797adfb7d9 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Submodularity in data subset selection and active learning
Reference 69
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Observation ff3b0b43-e527-40a8-a322-cd3cdc381a0d · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Herding dynamical weights to learn
Reference 70
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Observation 6c4e3a4a-3eb1-4758-bfb5-47a86b26cbe6 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Scalable trust-region method for deep re- inforcement learning using kronecker-factored approxima- tion.Advances in neural information processing systems, 30, 2017
Reference 71
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Observation 42a13abe-93a8-496e-9ad1-85868addd374 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Moderate coreset: A universal method of data selection for real-world data-efficient deep learning
Reference 72
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Observation 467d9d2f-3356-4177-9f05-2575f5c15d47 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Dataset pruning: Reducing training data by ex- amining generalization influence
Reference 73
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Observation a5d31db3-065d-4aa1-8875-1f47896ec3e3 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Not All Data Matters: An End-to-End Adaptive Dataset Pruning Framework for Enhancing Model Performance and Efficiency
Reference 74
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Observation 0c697fb3-1057-4099-bd62-229d5b9b0e16 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment In- vestigating the effectiveness of data augmentation from simi- larity and diversity: An empirical study.Pattern Recognition, 148:110204, 2024
Reference 75
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Observation f6263b7d-935d-4b9d-9425-85aafa11aa6b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment AdaAugment: A Tuning-Free and Adaptive Approach to Enhance Data Augmentation
Reference 76
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Observation 0fdadc98-eae9-4b48-8e1e-81d6ade9aafb · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Entaugment: Entropy-driven adaptive data augmentation framework for image classification
Reference 77
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Observation f36bed3d-fe36-4a96-871a-01cc7d39aa1f · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment A CLIP-Powered Framework for Robust and Generalizable Data Selection
Reference 78
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Observation 41f0be0b-0fc1-4466-a89b-a3e2d06bb2af · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment When Dynamic Data Selection Meets Data Augmentation
Reference 79
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Observation 9dc560aa-b306-44a1-aaa7-201bd79e6472 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Nearly op- timal vc-dimension and pseudo-dimension bounds for deep neural network derivatives
Reference 80
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Observation a5cd0c3f-029c-4e47-adb5-8f3e4aebfd35 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment $\mathcal{B}$-Coder: Value-Based Deep Reinforcement Learning for Program Synthesis
Reference 81
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Observation aca3617e-a97a-45b6-886c-74f64ea7d918 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Metalight: Value-based meta-reinforcement learning for traffic signal control
Reference 82
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Observation cc4e0b73-f622-47e3-939c-1c9a84a9cb2a · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Accelerating dataset distillation via model augmenta- tion
Reference 83
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Observation 5145a703-5fd9-4d7a-8613-83f7890a8d59 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Spanning training progress: Temporal dual-depth scoring (tdds) for enhanced dataset pruning
Reference 84
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Observation e7412f3e-1c85-4513-b0bb-8fc8d7a372bb · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Selectivity drives productivity: Efficient dataset prun- ing for enhanced transfer learning.Advances in Neural In- formation Processing Systems, 36, 2024
Reference 85
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Observation fb954907-9de4-4d40-90ed-5e4da4bd7c72 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Coverage-centric coreset selection for high pruning rates
Reference 86
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Observation b504299d-eaed-4d2c-92f2-d05f8b63170b · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Dataset quantization
Reference 87
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Observation 49af3629-c284-4a2e-a2c6-37542003e6c9 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Dataset Distillation using Neural Feature Regression
Reference 88
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Observation 820bb129-b97c-4b0f-b838-41a6905dd2c7 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment ˆyi − ˆyj =∥w(x i −x j)∥(12) ≤ ∥w∥ ∥xi −x j∥(13) ≤ϵ∥w∥(14) (15) In the above, the Inequality(13)follows from H ¨older’s inequality
Reference 89
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Observation 4cc18842-905c-412c-868b-ff0323942e68 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 90
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Observation 912c5b4c-e5e8-4a9c-88f4-eb8de8e36629 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 91
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Observation c7eeebbd-b433-478c-b360-1d38c72ba471 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 92
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Observation 8cbbd3d0-0eef-4a09-aa17-db939f8d86d9 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 93
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 5428e772-4ce3-474e-88d1-34e11d76d88f · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment The total epoch is 200, and no warm-up schedule is used
Reference 94
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Observation 7741c6a8-88b1-44d4-b969-cd21e9e76784 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment The A2C network architecture details
Reference 95
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Observation 0aefc2e8-56c9-441a-b2e8-bed2d33e4e1e · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment The complexities of the first two steps areO N 2 k d andO N 2 k , respectively, whereN k is the number of sam- ples in classkanddis the feature dimension (e.g., 512 for ResNet-18)
Reference 96
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Observation c7417447-d8ff-4ca7-a844-ce983a66109c · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Unresolved cited work
Reference 97
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Observation 5748ba80-4ad1-4be4-b1a5-a8716854be97 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment For experiments on Tiny-ImageNet, following [72], we adopt a batch size of 256, an SGD opti- mizer with a momentum of 0.9, weight decay of 1e-4, and an initial learning rate of 0.1
Reference 98
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Observation b6b66a7a-8fa4-44f5-87d9-7117fd9f9489 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment Specifically, once the selected datasets are obtained, only a subset needs to be stored as a replacement for the full dataset, leading to savings in memory costs
Reference 99
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Observation 6a4e3880-05cd-4cad-83e5-7cff299da327 · outbound
RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment As shown in Table 8, our method can achieve superior results
Reference 100
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Observation d8882972-97bc-48d5-b134-5b60ee2487d8 · inbound
Beyond What to Select: A Plug-and-play Oscillatory Data-Volume Scheduling for Efficient Model Training RL-Selector: Reinforcement Learning-Guided Data Selection via Redundancy Assessment
Reference 53
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