Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T10:34:52.370923Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 56 of 56 outbound references and 0 inbound Pith citation observations for arXiv:2506.05032.
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 2026-08-07T10:34:52.370923Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+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
56 of 56 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 9c3b8ac7-00e6-4b05-8e11-a2ac00e47022 · outbound
Identifying and Understanding Cross-Class Features in Adversarial Training write newline
Reference 1
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Identifying and Understanding Cross-Class Features in Adversarial Training and Flammarion, N
Reference 2
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Identifying and Understanding Cross-Class Features in Adversarial Training Obfuscated gradients give a false sense of security: Circumventing defenses to adversarial examples
Reference 3
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Identifying and Understanding Cross-Class Features in Adversarial Training Clustering effect of adversarial robust models
Reference 4
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Identifying and Understanding Cross-Class Features in Adversarial Training Improving adversarial robustness via channel-wise activation suppressing
Reference 5
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Identifying and Understanding Cross-Class Features in Adversarial Training Robust classification via a single diffusion model
Reference 6
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Identifying and Understanding Cross-Class Features in Adversarial Training Robust overfitting may be mitigated by properly learned smoothening
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Identifying and Understanding Cross-Class Features in Adversarial Training Cat: Customized adversarial training for improved robustness
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Identifying and Understanding Cross-Class Features in Adversarial Training M., Rosenfeld, E., and Kolter, J
Reference 9
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Identifying and Understanding Cross-Class Features in Adversarial Training Label noise in adversarial training: A novel perspective to study robust overfitting
Reference 10
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Identifying and Understanding Cross-Class Features in Adversarial Training Exploring memorization in adversarial training
Reference 11
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Identifying and Understanding Cross-Class Features in Adversarial Training On the Role of Discrete Tokenization in Visual Representation Learning
Reference 12
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Identifying and Understanding Cross-Class Features in Adversarial Training A., and Mann, T
Reference 14
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Identifying and Understanding Cross-Class Features in Adversarial Training ContraNorm: A Contrastive Learning Perspective on Oversmoothing and Beyond
Reference 15
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Identifying and Understanding Cross-Class Features in Adversarial Training Identity mappings in deep residual networks
Reference 16
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Identifying and Understanding Cross-Class Features in Adversarial Training Distilling the Knowledge in a Neural Network
Reference 17
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Identifying and Understanding Cross-Class Features in Adversarial Training Boosting accuracy and robustness of student models via adaptive adversarial distillation
Reference 18
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Observation 06f5ee13-070e-4f1d-a37f-cf63ef02ab0c · outbound
Identifying and Understanding Cross-Class Features in Adversarial Training M., Gu, Q., Bailey, J., and Ma, X
Reference 19
Source-reported events for the cited work
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Identifying and Understanding Cross-Class Features in Adversarial Training Adversarial examples are not bugs, they are features
Reference 20
Source-reported events for the cited work
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Identifying and Understanding Cross-Class Features in Adversarial Training Fantastic generalization measures and where to find them
Reference 21
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Identifying and Understanding Cross-Class Features in Adversarial Training Understanding catastrophic overfitting in single-step adversarial training
Reference 22
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Identifying and Understanding Cross-Class Features in Adversarial Training Learning multiple layers of features from tiny images
Reference 23
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Identifying and Understanding Cross-Class Features in Adversarial Training and Aila, T
Reference 24
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Identifying and Understanding Cross-Class Features in Adversarial Training Adversarial examples are not real features
Reference 25
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Identifying and Understanding Cross-Class Features in Adversarial Training and Li, Y
Reference 26
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Identifying and Understanding Cross-Class Features in Adversarial Training and Spratling, M
Reference 27
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Identifying and Understanding Cross-Class Features in Adversarial Training Towards deep learning models resistant to adversarial attacks
Reference 28
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Identifying and Understanding Cross-Class Features in Adversarial Training Unresolved cited work
Reference 29
Source-reported events for the cited work
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Identifying and Understanding Cross-Class Features in Adversarial Training When adversarial training meets vision transformers: Recipes from training to architecture
Reference 30
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Identifying and Understanding Cross-Class Features in Adversarial Training Bag of tricks for adversarial training
Reference 31
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Identifying and Understanding Cross-Class Features in Adversarial Training Distillation as a defense to adversarial perturbations against deep neural networks
Reference 32
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Identifying and Understanding Cross-Class Features in Adversarial Training A., Stimberg, F., Wiles, O., and Mann, T
Reference 33
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Identifying and Understanding Cross-Class Features in Adversarial Training Overfitting in adversarially robust deep learning
Reference 34
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Identifying and Understanding Cross-Class Features in Adversarial Training R., Cogswell, M., Das, A., Vedantam, R., Parikh, D., and Batra, D
Reference 35
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Identifying and Understanding Cross-Class Features in Adversarial Training A., Xu, Z., Dickerson, J., Studer, C., Davis, L
Reference 36
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Identifying and Understanding Cross-Class Features in Adversarial Training Training data-efficient image transformers & distillation through attention
Reference 37
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Identifying and Understanding Cross-Class Features in Adversarial Training Robustness may be at odds with accuracy
Reference 38
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Identifying and Understanding Cross-Class Features in Adversarial Training and Wang, Y
Reference 39
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Identifying and Understanding Cross-Class Features in Adversarial Training On the convergence and robustness of adversarial training
Reference 40
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Identifying and Understanding Cross-Class Features in Adversarial Training Improving adversarial robustness requires revisiting misclassified examples
Reference 41
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Identifying and Understanding Cross-Class Features in Adversarial Training Balance, imbalance, and rebalance: Understanding robust overfitting from a minimax game perspective
Reference 42
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Identifying and Understanding Cross-Class Features in Adversarial Training Better diffusion models further improve adversarial training
Reference 43
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Identifying and Understanding Cross-Class Features in Adversarial Training Cfa: Class-wise calibrated fair adversarial training
Reference 44
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Identifying and Understanding Cross-Class Features in Adversarial Training Unresolved cited work
Reference 45
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Identifying and Understanding Cross-Class Features in Adversarial Training Adversarial weight perturbation helps robust generalization
Reference 46
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Identifying and Understanding Cross-Class Features in Adversarial Training Annealing self-distillation rectification improves adversarial training
Reference 47
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Identifying and Understanding Cross-Class Features in Adversarial Training Robust weight perturbation for adversarial training
Reference 48
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Identifying and Understanding Cross-Class Features in Adversarial Training Understanding robust overfitting of adversarial training and beyond
Reference 49
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Identifying and Understanding Cross-Class Features in Adversarial Training Revisiting adversarial robustness distillation from the perspective of robust fairness
Reference 50
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Identifying and Understanding Cross-Class Features in Adversarial Training Theoretically principled trade-off between robustness and accuracy
Reference 51
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Identifying and Understanding Cross-Class Features in Adversarial Training On the duality between sharpness-aware minimization and adversarial training
Reference 52
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Identifying and Understanding Cross-Class Features in Adversarial Training Reliable adversarial distillation with unreliable teachers
Reference 53
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Identifying and Understanding Cross-Class Features in Adversarial Training Revisiting adversarial robustness distillation: Robust soft labels make student better
Reference 54
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Identifying and Understanding Cross-Class Features in Adversarial Training @esa (Ref
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Identifying and Understanding Cross-Class Features in Adversarial Training Unresolved cited work
Reference 56
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Identifying and Understanding Cross-Class Features in Adversarial Training Explaining and Harnessing Adversarial Examples
Reference 57
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No inbound Pith citation observations are available.