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Paper Citation Record · LEDGER

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization

As of 18 August 2026, this Paper Citation Record lists 82 of 82 outbound references and 0 inbound Pith citation observations for arXiv:2607.07513.

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

pith.paper-citation-record.v1
2607.07513 v2

Coverage vector

measured 82 of 82 reference resolution

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Source: paper_references, paper_reference_links, observed 2026-08-02T08:13:14.301941Z

measured 82 of 82 standing notices

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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

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Source: cited_works

Reference resolution

82 of 82 outbound references displayed

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Outbound references

Observation e18b19b2-a320-4e10-983b-b679b7bee311 · outbound

This paper cites Asymptotic behavior of.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Asymptotic behavior of

Reference 1

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This paper cites Generalization Performance of Some Learning Problems in Hilbert Functional Spaces , url =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Generalization Performance of Some Learning Problems in Hilbert Functional Spaces , url =

Reference 2

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Stability and Generalization , url =

Reference 3

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This paper cites Generalization Analysis of Fredholm Kernel Regularized Classifiers , url =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Generalization Analysis of Fredholm Kernel Regularized Classifiers , url =

Reference 4

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Observation d6082883-8fc4-46a4-938f-6419381eca90 · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Learning with Fredholm Kernels , url =

Reference 5

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This paper cites On the Effectiveness of Laplacian Normalization for Graph Semi-supervised Learning , url =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization On the Effectiveness of Laplacian Normalization for Graph Semi-supervised Learning , url =

Reference 6

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This paper cites Leave-One-Out Bounds for Kernel Methods , url =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Leave-One-Out Bounds for Kernel Methods , url =

Reference 7

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This paper cites Contrastive and Non-Contrastive Self-Supervised Learning Recover Global and Local Spectral Embedding Methods , url =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Contrastive and Non-Contrastive Self-Supervised Learning Recover Global and Local Spectral Embedding Methods , url =

Reference 8

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This paper cites HaoChen and Colin Wei and Adrien Gaidon and Tengyu Ma , bibsource =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization HaoChen and Colin Wei and Adrien Gaidon and Tengyu Ma , bibsource =

Reference 9

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This paper cites Johnson and Ayoub El Hanchi and Chris J.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Johnson and Ayoub El Hanchi and Chris J

Reference 10

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This paper cites Spectral Inference Networks: Unifying Deep and Spectral Learning.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Spectral Inference Networks: Unifying Deep and Spectral Learning

Reference 11

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This paper cites A kernel theory of modern data augmentation , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization A kernel theory of modern data augmentation , year =

Reference 12

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Concentration inequalities and moment bounds for sample covariance operators , year =

Reference 13

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization On learning with integral operators

Reference 14

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Functional Data Analysis , date-added =

Reference 15

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Linear processes in function spaces: theory and applications , volume =

Reference 16

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Classes of Linear Operator Theory , volume =

Reference 17

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Inference for functional data with applications , volume =

Reference 18

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in neural information processing systems , title =

Reference 19

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Geometric harmonics: a novel tool for multiscale out-of-sample extension of empirical functions , volume =

Reference 20

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Functional analysis , volume =

Reference 21

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization An introductory course in functional analysis , year =

Reference 22

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Partial differential equations with numerical methods , volume =

Reference 23

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Neuralef: Deconstructing kernels by deep neural networks , year =

Reference 24

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Neural Eigenfunctions Are Structured Representation Learners

Reference 25

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization An introduction to the theory of reproducing kernel Hilbert spaces , volume =

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Learning similarity with operator-valued large-margin classifiers , volume =

Reference 27

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization The elements of statistical learning: data mining, inference, and prediction , volume =

Reference 28

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Laplacian eigenmaps for dimensionality reduction and data representation , volume =

Reference 29

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Nonlinear component analysis as a kernel eigenvalue problem , volume =

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Theory of classification: A survey of some recent advances , volume =

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization The connection between regularization operators and support vector kernels , volume =

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Adversarial Boot Camp: label free certified robustness in one epoch

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Razenshteyn and Pengchuan Zhang and Huan Zhang and S

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Cohen and Elan Rosenfeld and J

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization On the mathematical foundations of learning , volume =

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Representation learning: A review and new perspectives , volume =

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in neural information processing systems , title =

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Observation aea1eb96-991d-45db-9d06-1a276504fd99 · outbound

This paper cites Foundations of machine learning , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Foundations of machine learning , year =

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Observation a8815933-e0a0-40f2-aecc-f844095808a3 · outbound

This paper cites Partial differential equations: An introduction , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Partial differential equations: An introduction , year =

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Observation 485d17e4-dc49-4be1-a79e-f3843e7f23ac · outbound

This paper cites Deep clustering for unsupervised learning of visual features , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Deep clustering for unsupervised learning of visual features , year =

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This paper cites Support vector machines , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Support vector machines , year =

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Observation 1f124416-8f93-41ff-a0a4-506e12f4d076 · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization A course in functional analysis , volume =

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Observation 1923cb0c-462f-4350-ab6e-f8c5ffbc8566 · outbound

This paper cites Advances in neural information processing systems , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in neural information processing systems , title =

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Observation a8c7c772-e9e2-4375-ad9b-49a389864697 · outbound

This paper cites Advances in neural information processing systems , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in neural information processing systems , title =

Reference 45

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Observation 6f01ab4a-5c8d-4d15-85fd-0b070ce1e608 · outbound

This paper cites Learning the kernel matrix with semidefinite programming , volume =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Learning the kernel matrix with semidefinite programming , volume =

Reference 46

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Observation abc27051-ad49-4980-afb7-4d13a1b3b75f · outbound

This paper cites Spline models for observational data , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Spline models for observational data , year =

Reference 47

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Observation 19041d47-7cc6-44cc-901e-9befb9edff1d · outbound

This paper cites Learning with kernels: support vector machines, regularization, optimization, and beyond , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Learning with kernels: support vector machines, regularization, optimization, and beyond , year =

Reference 48

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Observation feacb8e7-8403-4d4d-add3-2aee714497dc · outbound

This paper cites Reproducing kernel Hilbert spaces in probability and statistics , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Reproducing kernel Hilbert spaces in probability and statistics , year =

Reference 49

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Observation 73d98540-c6d7-4a21-b813-fb716e9c4bc4 · outbound

This paper cites An introduction to harmonic analysis , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization An introduction to harmonic analysis , year =

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Observation a3e99f62-9300-482b-a8be-68fb625387ea · outbound

This paper cites A primer on PDEs: models, methods, simulations , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization A primer on PDEs: models, methods, simulations , year =

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Observation a30715f7-521f-41f5-88fa-732aae034503 · outbound

This paper cites Harmonic analysis on semigroups: theory of positive definite and related functions , volume =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Harmonic analysis on semigroups: theory of positive definite and related functions , volume =

Reference 52

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Observation 0a9cd06b-de34-4705-a3f4-45738cf95811 · outbound

This paper cites High-dimensional statistics: A non-asymptotic viewpoint , volume =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization High-dimensional statistics: A non-asymptotic viewpoint , volume =

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Observation 58b6d168-1182-442c-bd23-07ebe8f5d714 · outbound

This paper cites A Simple Framework for Contrastive Learning of Visual Representations , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization A Simple Framework for Contrastive Learning of Visual Representations , year =

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Observation 68a12888-497b-4ca1-a5a6-6b2f74052418 · outbound

This paper cites Big Self-Supervised Models are Strong Semi-Supervised Learners , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Big Self-Supervised Models are Strong Semi-Supervised Learners , year =

Reference 55

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Observation 6ec2bfa8-7095-4112-9f08-928b1b6016bc · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Unresolved cited work

Reference 56

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Observation 102e8dc8-071a-4955-a56f-d9b49b71abeb · outbound

This paper cites Journal of Machine Learning Research , volume =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Journal of Machine Learning Research , volume =

Reference 57

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Observation b21d4c29-e964-4908-9808-73e5f57e4876 · outbound

This paper cites Samworth , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Samworth , title =

Reference 58

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Observation 169d823f-bb09-4be8-99fb-ab54f7cebac4 · outbound

This paper cites HaoChen and Colin Wei and Adrien Gaidon and Tengyu Ma , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization HaoChen and Colin Wei and Adrien Gaidon and Tengyu Ma , title =

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Observation a871c559-7576-4cc3-9a2e-d1e6efe15b5d · outbound

This paper cites Advances in Neural Information Processing Systems 35 (NeurIPS) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in Neural Information Processing Systems 35 (NeurIPS) , year =

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Observation a9ede605-d548-45d8-b3e9-b00404e5c676 · outbound

This paper cites Proceedings of the 42nd International Conference on Machine Learning (ICML) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 42nd International Conference on Machine Learning (ICML) , year =

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Observation 39aff17f-235a-4763-9efa-2e929f4f5fc7 · outbound

This paper cites Zico Kolter and Pradeep Ravikumar , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Zico Kolter and Pradeep Ravikumar , title =

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Observation de276d90-b165-469e-9e74-fd5e73f70623 · outbound

This paper cites Proceedings of the 36th International Conference on Machine Learning (ICML) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 36th International Conference on Machine Learning (ICML) , year =

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Observation 34a608d7-1cc5-4bc4-9449-dae5d24b0046 · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 40th International Conference on Machine Learning (ICML) , year =

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Observation d710b1e2-5ff5-481d-897b-0c518104e2e5 · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 36th Conference on Uncertainty in Artificial Intelligence (UAI) , year =

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Observation a55eacd9-df37-4adb-a233-3287238b4314 · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Journal of Machine Learning Research , volume =

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Observation f892375e-9121-4036-bb9f-aa49cd5febbd · outbound

This paper cites Can Semi-Supervised Learning Use All the Data Effectively? A Lower Bound Perspective , booktitle =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Can Semi-Supervised Learning Use All the Data Effectively? A Lower Bound Perspective , booktitle =

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Observation 28b739b3-5303-4e47-9a2f-8f0827010a7d · outbound

This paper cites Journal of Machine Learning Research , volume =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Journal of Machine Learning Research , volume =

Reference 68

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Observation 3a21f747-1998-49f3-a163-8b753841b880 · outbound

This paper cites Advances in Neural Information Processing Systems 31 (NeurIPS) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in Neural Information Processing Systems 31 (NeurIPS) , year =

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Observation 0429075a-16e3-49f9-94ff-af5b150b686c · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 32nd Conference on Learning Theory (COLT) , year =

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Observation b478eb69-d931-4588-b395-434a2948dedf · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 33rd Conference on Learning Theory (COLT) , year =

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Observation ad3a10c9-fc0f-4dac-bac3-93b7dd35eb61 · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 17th Annual Conference on Learning Theory (COLT) , year =

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Observation 9f33ba7f-4d83-4eae-b8b7-225b99395c02 · outbound

This paper cites Proceedings of the 25th International Conference on Machine Learning (ICML) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 25th International Conference on Machine Learning (ICML) , year =

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Observation 49242682-3f54-4df4-9bbe-710a5e6662dc · outbound

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Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 25th ACM SIGKDD International Conference on Knowledge Discovery and Data Mining (KDD) , year =

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Observation af1d1fa6-6780-4869-a338-a9068ae7050a · outbound

This paper cites The Tenth International Conference on Learning Representations (ICLR) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization The Tenth International Conference on Learning Representations (ICLR) , year =

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Observation 2b6258d9-6954-4d15-ac27-867b4220ebc5 · outbound

This paper cites Dhillon and Sujay Sanghavi and Qi Lei , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Dhillon and Sujay Sanghavi and Qi Lei , title =

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Observation ae051906-d296-47f8-9ff7-9fed146630e5 · outbound

This paper cites The Eleventh International Conference on Learning Representations (ICLR) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization The Eleventh International Conference on Learning Representations (ICLR) , year =

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source=arxiv_source observed=2026-08-02T08:13:13.920476Z digest=sha256:acffda5de2d35b2537ce334a9cc94f5054f760c34115714a14cf4e2d1f576feb

Observation 15000a7a-d38e-4414-a27f-652896824193 · outbound

This paper cites Lafferty , title =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Lafferty , title =

Reference 78

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no resolver link, observed 2026-08-02T08:13:14.019088Z

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source=arxiv_source observed=2026-08-02T08:13:14.019088Z digest=sha256:895ef666857c843f003d021c2f8aeb4e6e42bb5c4b4d0dc26b0f08dbb804748d

Observation 17c2be3a-925e-4866-a102-723e3d90288a · outbound

This paper cites Journal of Machine Learning Research , volume =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Journal of Machine Learning Research , volume =

Reference 79

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no resolver link, observed 2026-08-02T08:13:14.106189Z

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source=arxiv_source observed=2026-08-02T08:13:14.106189Z digest=sha256:2b4ea2a8129489b4a7ab03c9af498b4a972d6d1b2858f978c1dd2d6be3e81b66

Observation 1b7a29f2-82f5-4edd-bedc-ccad1fef59dd · outbound

This paper cites Advances in Neural Information Processing Systems 36 (NeurIPS) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Advances in Neural Information Processing Systems 36 (NeurIPS) , year =

Reference 80

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no resolver link, observed 2026-08-02T08:13:14.155022Z

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source=arxiv_source observed=2026-08-02T08:13:14.155022Z digest=sha256:31f2293fe1f58078325823d5c844da5888d97fc1d0ecb34c27d68d0ad13e2bfb

Observation a9c4786b-0769-4395-a3aa-74d5e8a2b7c9 · outbound

This paper cites Proceedings of the 42nd International Conference on Machine Learning (ICML) , year =.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Proceedings of the 42nd International Conference on Machine Learning (ICML) , year =

Reference 81

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no resolver link, observed 2026-08-02T08:13:14.219472Z

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source=arxiv_source observed=2026-08-02T08:13:14.219472Z digest=sha256:3868a8d886a504ba428465a4e00d5fc1244598bb59ca83f2cb5a80998a7d2c41

Observation 2f788ff9-93a9-4b9f-833f-4924089749ca · outbound

This paper cites Oberman and Blake A.

Fast Rates for Semi-Supervised Learning via Data-Augmentation Graph Regularization Oberman and Blake A

Reference 82

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no resolver link, observed 2026-08-02T08:13:14.301941Z

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Pith citing papers

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