Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T15:32:17.357972Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 52 of 52 outbound references and 0 inbound Pith citation observations for arXiv:2505.15195.
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 2026-08-07T15:32:17.357972Z
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
A source-named dated measurement, never combined with another source.
Source: cited_works
52 of 52 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 14eed45a-2f05-4f1e-aa3e-9277e560210a · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Understanding intermediate layers using linear classifier probes
Reference 1
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Observation 20d4a219-d394-4691-a8f3-2baf046cbe3a · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Self-Training: A Survey
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Observation b4e0e3c6-cb1b-40bc-9f9f-28894f384d01 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 3
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Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
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Observation 6d3e198d-b2d7-4227-b30d-527c8b1645ac · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 5
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Observation 7935bd5f-a0b1-46ff-a6ef-68a01f5011e6 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InEuropean Conference on Computer Vision(2014)
Reference 6
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Observation 1419bfc9-952a-4e47-929f-3739f9950319 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing C., and Liang, P
Reference 7
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Observation 5f0cbba0-f1fa-4df9-86ef-027ebe3c4e71 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 8
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Observation 646644d7-ad3d-4695-86f7-cc3766a5d9db · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Retraining with Predicted Hard Labels Provably Increases Model Accuracy
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Observation 01b9affb-f7a3-4667-b2a5-50856c16a16d · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InInternational Conference on Machine Learning(2023), PMLR, pp
Reference 10
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Observation ef696508-0d27-4960-8dfd-79f7aa889293 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Distillation $\approx$ Early Stopping? Harvesting Dark Knowledge Utilizing Anisotropic Information Retrieval For Overparameterized Neural Network
Reference 11
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Observation 5ea2953b-c183-4095-ad42-a5bb09e3635f · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 12
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Observation 244551c9-4367-438b-a8b1-30ba9ae5526b · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing L., Maleki, A., and Montanari, A.Message-passing algorithms for compressed sensing.Proceedings of the National Academy of Sciences 106, 45 (2009), 18914–18919
Reference 13
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Observation c4dee726-3022-4783-bf34-1019af794c61 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Y., Venkataramanan, R., Rush, C., Samworth, R
Reference 14
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Observation b78f7c89-44c9-4670-bd56-ff4606145a27 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InInternational Conference on Machine Learning(2018), PMLR, pp
Reference 15
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Observation 71e2c0ca-ef6c-4b9c-99c0-a854788cdc98 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing PARS: Pseudo-Label Aware Robust Sample Selection for Learning with Noisy Labels
Reference 16
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Observation 9fd92694-ac80-411d-bb83-3deb0dca7292 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InProceedings of the IEEE/CVF international conference on computer vision(2019), pp
Reference 17
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Observation ee47f185-1feb-424f-8de5-524960b205f0 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 18
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Observation ce9d162d-f5ba-4ce1-bf05-5425f276f6f8 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 19
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Observation a04298ea-8ed5-42f3-b741-d755cbfe374b · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing 1: Distribution theory.London [etc.]: Arnold [etc.](1994)
Reference 20
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Observation 00011c56-f7e2-4161-b391-daa391da8725 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InInternational conference on machine learning(2020), PMLR, pp
Reference 21
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Observation d45f3705-7945-410a-94c4-3086b49a59e9 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Fine-Tuning can Distort Pretrained Features and Underperform Out-of-Distribution
Reference 22
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Observation 367c5886-e7ec-4893-9c8b-f30c072d8891 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InWorkshop on challenges in representation learning, ICML (2013), vol
Reference 23
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Observation ab7cf4fe-e1ef-4889-9558-c05968594538 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing DivideMix: Learning with Noisy Labels as Semi-supervised Learning
Reference 24
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Observation 59da4cfe-e9de-4aaa-9de9-3b7fa8712df5 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InProceedings of the IEEE International Conference on Computer Vision (2017), pp
Reference 25
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Observation 0332856e-5393-44ee-8188-a35565a71e8c · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 26
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Observation fdaf0229-4bce-4aff-b50f-45cc496c62d2 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InInternational Conference on Artificial Intelligence and Statistics(2021), PMLR, pp
Reference 27
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Observation b22101f6-d22a-46f0-a993-7000dfb05297 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 28
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Observation dc88d930-70bf-4197-b6d5-7cff9d094ba3 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 29
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Observation fc920f48-4e52-4551-a950-c702bf1f7a02 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 30
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Observation f8eabbe0-fb06-44e3-b0dc-c6c25b605aa0 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing SELF: Learning to Filter Noisy Labels with Self-Ensembling
Reference 31
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Observation 66bd5ed1-f4d6-466d-818f-5bc84cd59f6e · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Statistical and Algorithmic Insights for Semi-supervised Learning with Self-training
Reference 32
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Observation 4afccefc-daf9-4567-82a8-26183f1d0a04 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Understanding the Gains from Repeated Self-Distillation
Reference 33
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Observation c5922c45-859f-46e5-ae4f-f404cd68607e · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing S., Bandeira, A
Reference 34
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Observation 2db4e211-812b-4ee1-873e-b9d1f3155fd9 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Understanding and Mitigating the Tradeoff Between Robustness and Accuracy
Reference 35
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Observation 247ddbbd-90d8-47f3-b12b-43f59d438c8d · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing In2011 IEEE International Symposium on Information Theory Proceedings(2011), IEEE, pp
Reference 36
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Observation 28d4d9c5-43c5-441c-863a-4d1a65540dc9 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing K.Iterative estimation of constrained rank-one matrices in noise
Reference 37
Source-reported events for the cited work
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Observation 358bdbbb-827d-4b39-b1b5-2dc183bf2a9f · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Training Deep Neural Networks on Noisy Labels with Bootstrapping
Reference 38
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Observation bee1db29-e282-4b10-933f-40229b545e54 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 39
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Observation 3b2fe91e-cecb-44b2-8003-77d0f97ed2f8 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 40
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Observation be88bd01-027c-482f-96cc-c2f83b28bb9f · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing InProceedings of the IEEE conference on computer vision and pattern recognition(2018), pp
Reference 41
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Observation e4c53829-dfec-4a06-a316-d6653c516f9a · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Theoretical Analysis of Self-Training with Deep Networks on Unlabeled Data
Reference 42
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Observation 7a2b75ff-4dbb-466c-9ed9-2595c058849f · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Unresolved cited work
Reference 43
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Observation 97b3b67f-2f97-43d1-baef-a372cb54a55b · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing In 33rd annual meeting of the association for computational linguistics(1995), pp
Reference 44
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Observation 18e56bd9-5d45-40b4-ada2-ed1e9ce8b289 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing How does unlabeled data improve generalization in self-training? A one-hidden-layer theoretical analysis
Reference 45
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Observation 18f2edbf-e13d-4dda-a2d3-ebdf5ed1037b · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Hence, the first step strictly reduces the test error and the next rounds of retraining do not increase the test error
Reference 46
Source-reported events for the cited work
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Observation b61b7a02-9fdd-4c02-8e31-fc05a012c350 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing To this end, we derive a lower bound onF, such that ˜F(u)<F(u) , ∀u≥ 0, and establish condition on the label flipping probabilityp, so that η2 1 ≤ ˜F(η 2
Reference 47
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Observation 77ade01c-c8db-40be-9c35-e2d15e673d49 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing 17 To construct ˜F, recall that˜gis the Bayes-optimal aggregator given by˜g(˜Y ,̂Y)=E[Y∣ ˜Y= ¯ηY+√¯ηG,̂Y]
Reference 48
Source-reported events for the cited work
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Observation 18b30ac9-64d5-4945-9de2-0fb4d06d9493 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing These properties give a clear picture of the function h: it will be positive on[0, p∗), negative on(p∗, 1
Reference 49
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 744af33c-3d5c-4621-9527-4ba8f3289085 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Hence, condition(32), i.e.,h(p)≤0holds ifp∈[p ∗, 1 2), which completes the proof
Reference 50
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 716d3dfc-bb42-4d0f-9895-bf2906bdf019 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing The test set consists of 624 examples
Reference 51
Source-reported events for the cited work
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Observation daabf98b-d982-4cac-a1a4-7ffea1861e44 · outbound
Self-Boost via Optimal Retraining: An Analysis via Approximate Message Passing Ramen( https://www.tensorflow.org/datasets/catalog/food101): Each class in Food-101 has 750 training examples; so the total number of examples for the two classes is 1500
Reference 52
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
No inbound Pith citation observations are available.