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Paper Citation Record · LEDGER

Eight Methods to Evaluate Robust Unlearning in LLMs

As of 14 August 2026, this Paper Citation Record lists 0 of 0 outbound references and 45 inbound Pith citation observations for arXiv:2402.16835.

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

pith.paper-citation-record.v1
2402.16835 v1

Coverage vector

measured 0 of 0 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links

measured 45 of 45 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-14T06:32:32.682623+00:00

measured 45 of 45 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-12T17:58:45.218633Z

measured 1 of 1 external citation measurements

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

Source: arxiv_reference, observed 2026-08-05T02:28:24.338817Z

Reference resolution

0 of 0 outbound references displayed

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External citation measurements

1
arxiv_reference, observed 2026-08-05T02:28:24.338817Z

Outbound references

No outbound reference observations are available for this paper version.

Pith citing papers

Observation e8a1823c-f786-44f6-ad72-3eafd0b1ab40 · inbound

Does Unlearning Truly Unlearn? A Black Box Evaluation of LLM Unlearning Methods cites this paper.

Does Unlearning Truly Unlearn? A Black Box Evaluation of LLM Unlearning Methods Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 7

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source=arxiv_source observed=2026-08-12T17:58:45.218633Z digest=sha256:366de73ee6704ace13d8b51a4c0b165489fdc756c3c9ad42ff6e49dd5e6939fe

Observation 8dbf8d2e-8839-4cec-bc2f-736dbae5716d · inbound

Open Problems in Machine Unlearning for AI Safety cites this paper.

Open Problems in Machine Unlearning for AI Safety Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 86

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source=arxiv_source observed=2026-08-10T21:24:10.399556Z digest=sha256:ce2fc0a1499517b2db9c92a90b90fa095d187c36f1dd933964650f1ded432ca2

Observation 8d91bc83-c5cd-45f3-8f9f-e9592643b36c · inbound

Improving LLM Unlearning Robustness via Random Perturbations cites this paper.

Improving LLM Unlearning Robustness via Random Perturbations Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 23

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arxiv_id, observed 2026-05-23T04:42:33.325730Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-23T04:41:47.910423Z digest=sha256:097edb9b313487903fd77f82d65c1747199f123edb02f2886b76b36453603654

Observation 09464478-4391-473e-8841-14bc97c76f50 · inbound

Tool Unlearning for Tool-Augmented LLMs cites this paper.

Tool Unlearning for Tool-Augmented LLMs Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 44

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source=arxiv_source observed=2026-08-09T16:44:01.280227Z digest=sha256:277ac66794f017953ce5fe27aa2c8e80e0069993f27ef29c6759b92529ce3550

Observation 454a228c-d659-4fdd-933f-f208ce6eb42d · inbound

Position: Adversarial ML for LLMs Is Not Making Any Progress cites this paper.

Position: Adversarial ML for LLMs Is Not Making Any Progress Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 32

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source=pdf_text observed=2026-08-09T12:47:21.706721Z digest=sha256:836ebb20266f16b1709006bab323ec4eeeb281d3279abe38cccf67deb6e6e859

Observation c24c5f8c-9705-45b0-b204-b9a06d97a898 · inbound

Model Tampering Attacks Enable More Rigorous Evaluations of LLM Capabilities cites this paper.

Model Tampering Attacks Enable More Rigorous Evaluations of LLM Capabilities Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 47

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source=arxiv_source observed=2026-08-09T14:47:15.221048Z digest=sha256:766944125150dfe6e98de11b27103cf330dec8ce25a44ceceb5134f9056a7c00

Observation cef5dec4-b8d3-4e03-b3d1-38559e1168bc · inbound

Towards LLM Unlearning Resilient to Relearning Attacks: A Sharpness-Aware Minimization Perspective and Beyond cites this paper.

Towards LLM Unlearning Resilient to Relearning Attacks: A Sharpness-Aware Minimization Perspective and Beyond Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 13

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source=pdf_text observed=2026-08-08T19:40:31.579573Z digest=sha256:360eba314c9dc5f202888e4f8b25152fc6a6d19a0983419c606f4456f5a7c6e6

Observation 4a22999c-94a0-46e0-ad4a-bc36abb9a758 · inbound

DUSK: Do Not Unlearn Shared Knowledge cites this paper.

DUSK: Do Not Unlearn Shared Knowledge Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 44

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no resolver link, observed 2026-08-07T15:26:23.822928Z

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source=pdf_text observed=2026-08-07T15:26:23.822928Z digest=sha256:61a728b9fecc25dc531589c04e11cfb12e1e97a9842e670b4141062b8bb5612b

Observation d13f4b89-378c-41c3-8406-1e121e1c40df · inbound

Unlearning Isn't Deletion: Investigating Reversibility of Machine Unlearning in LLMs cites this paper.

Unlearning Isn't Deletion: Investigating Reversibility of Machine Unlearning in LLMs Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 26

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arxiv_id, observed 2026-05-22T13:31:36.619543Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-22T13:26:47.663124Z digest=sha256:a50f8e4df39747e3f7048d462c8e5d5761d092a1cf048ef4df7b016c28286367

Observation 2765cbc7-1e9a-44c4-8c2f-9b208adf5640 · inbound

Existing Large Language Model Unlearning Evaluations Are Inconclusive cites this paper.

Existing Large Language Model Unlearning Evaluations Are Inconclusive Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 40

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source=pdf_text observed=2026-08-07T12:05:55.328390Z digest=sha256:c0e4d33afc807875a7176a9553426cb750e1404236b635bc7c38b52a07684a0f

Observation 0e6b7dd7-f26c-45f9-8206-51f47a7f8468 · inbound

Unlearning's Blind Spots: Over-Unlearning and Prototypical Relearning Attack cites this paper.

Unlearning's Blind Spots: Over-Unlearning and Prototypical Relearning Attack Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 20

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source=pdf_text observed=2026-08-07T11:52:53.603231Z digest=sha256:4e9f8ed8df84901834ed29e27c9c68c39f729f3fbce2d35d5014769bdcc79a44

Observation 2781febf-fda4-4eb4-bcc0-edcda9f96fee · inbound

LLM Unlearning Should Be Form-Independent cites this paper.

LLM Unlearning Should Be Form-Independent Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 16

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source=pdf_text observed=2026-08-07T05:33:34.723226Z digest=sha256:0c0ad3dd6590102b11196d005e52ee3e922d314636a8868f587def9e707ad1e0

Observation 14620483-7a98-41d3-8f62-091906cdee59 · inbound

SoK: Machine Unlearning for Large Language Models cites this paper.

SoK: Machine Unlearning for Large Language Models Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 83

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source=pdf_text observed=2026-08-07T04:58:54.748386Z digest=sha256:16ee2f0d92ab6039b892993c0abab65b8b67238825bb57afd406f3b81443c8e7

Observation fa825a17-919c-4dcf-a4ee-b15251b88615 · inbound

Prompt Attacks Reveal Superficial Knowledge Removal in Unlearning Methods cites this paper.

Prompt Attacks Reveal Superficial Knowledge Removal in Unlearning Methods Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 9

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source=pdf_text observed=2026-08-07T04:37:07.250365Z digest=sha256:4ce481ccc1e59bb522efb527a434849998ff2f96ceead4b97b82b0e610737f70

Observation d5307c7e-ff97-4704-8c77-78e97c1551e8 · inbound

Unlearning Isn't Invisible: Detecting Unlearning Traces in LLMs from Model Outputs cites this paper.

Unlearning Isn't Invisible: Detecting Unlearning Traces in LLMs from Model Outputs Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 15

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source=pdf_text observed=2026-08-07T00:29:36.619568Z digest=sha256:26d4c10c6410d940df35933c5247e1271f38e4d2f901e9a36c01c957256ba0df

Observation ea4f52e7-7913-49a3-ba43-62e99b0532a1 · inbound

BLUR: A Benchmark for LLM Unlearning Robust to Forget-Retain Overlap cites this paper.

BLUR: A Benchmark for LLM Unlearning Robust to Forget-Retain Overlap Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 10

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source=pdf_text observed=2026-08-07T13:01:32.243922Z digest=sha256:32517b95c6cf60579760a68582a94baef2816681e197dd016f5534819784e9e8

Observation 978c6968-bb87-44a6-88ef-92275a37f82d · inbound

Step-by-Step Reasoning Attack: Revealing 'Erased' Knowledge in Large Language Models cites this paper.

Step-by-Step Reasoning Attack: Revealing 'Erased' Knowledge in Large Language Models Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 12

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source=pdf_text observed=2026-08-07T00:56:31.579425Z digest=sha256:633e7bacbc136ced3bc05fd6d160451518bb4fb6edb7b96be5f23320b33c7dfd

Observation c2c5c5b7-91af-46bc-bc00-bf47481cf5e4 · inbound

Model Collapse Is Not a Bug but a Feature in Machine Unlearning for LLMs cites this paper.

Model Collapse Is Not a Bug but a Feature in Machine Unlearning for LLMs Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 2019

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source=pdf_text observed=2026-08-06T19:59:52.738444Z digest=sha256:7c60fdaaf02d71f4ee3db9a053a63e50497ee301e48389233a3c8f53c3f901b6

Observation bf415a3a-3e94-472a-923f-1ea5981a13af · inbound

What Should LLMs Forget? Quantifying Personal Data in LLMs for Right-to-Be-Forgotten Requests cites this paper.

What Should LLMs Forget? Quantifying Personal Data in LLMs for Right-to-Be-Forgotten Requests Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 37

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source=pdf_text observed=2026-08-06T17:21:33.670555Z digest=sha256:afae34f24b251744e36145a0824277bf394f433dc53d6a830f566f7b423b1e11

Observation 32238566-cc39-47bd-868c-dbd8e7220f39 · inbound

Do Not Mimic My Voice: Speaker Identity Unlearning for Zero-Shot Text-to-Speech cites this paper.

Do Not Mimic My Voice: Speaker Identity Unlearning for Zero-Shot Text-to-Speech Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 11

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source=pdf_text observed=2026-08-06T13:47:42.330926Z digest=sha256:4157864975fc82173e56411a15aed3182d6433a7e3362989fe34a685d4d1430f

Observation dd0318e0-c1f1-4481-b45c-e0443650f693 · inbound

Reliable Unlearning Harmful Information in LLMs with Metamorphosis Representation Projection cites this paper.

Reliable Unlearning Harmful Information in LLMs with Metamorphosis Representation Projection Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 27

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source=arxiv_source observed=2026-08-05T17:56:10.337136Z digest=sha256:c22d7c6ebd094a6face3c164c3d5d653a8b95e84fffb2f2fa5df3f1b28405462

Observation 52c763c6-87fe-4940-8232-20bd3358fa39 · inbound

Module-Aware Parameter-Efficient Machine Unlearning on Transformers cites this paper.

Module-Aware Parameter-Efficient Machine Unlearning on Transformers Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 36

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source=pdf_text observed=2026-08-05T17:06:12.714754Z digest=sha256:f1d32373035160ac368d412c471c4779b86e2a3ef90b7bcfb0724a9c346ef0f9

Observation 5d1c0ac1-11ef-4305-b917-987005718562 · inbound

Downgrade to Upgrade: Optimizer Simplification Enhances Robustness in LLM Unlearning cites this paper.

Downgrade to Upgrade: Optimizer Simplification Enhances Robustness in LLM Unlearning Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 13

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arxiv_id, observed 2026-05-18T10:46:16.891848Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-18T10:44:53.516653Z digest=sha256:6c1fc7f61922b42e4233692a7df8f537d1e0f0c4192cf2ba15a4478cd4692c53

Observation 7c398949-171e-4658-96d7-5b041eccaad3 · inbound

RippleBench: Capturing Ripple Effects Using Existing Knowledge Repositories cites this paper.

RippleBench: Capturing Ripple Effects Using Existing Knowledge Repositories Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 9

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source=pdf_text observed=2026-08-03T18:41:33.358328Z digest=sha256:78cc496eaa9cb0e68b2b8221d4c832146ab96518f232a24f69e541fdad0e6a2c

Observation 8483f593-be0a-40b4-8705-2a866d3d73a6 · inbound

Is your algorithm unlearning or untraining? cites this paper.

Is your algorithm unlearning or untraining? Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 21

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arxiv_id, observed 2026-05-11T05:30:59.012199Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-10T18:06:08.962042Z digest=sha256:9c052d62658af00b4d7c8a23a14682211e896248d42f4373d617c4b34aa40e1b

Observation f841165d-13b5-48cd-988b-304df86ecde0 · inbound

Efficient Unlearning through Maximizing Relearning Convergence Delay cites this paper.

Efficient Unlearning through Maximizing Relearning Convergence Delay Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 39

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arxiv_id, observed 2026-05-11T08:30:56.604294Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-10T16:37:24.974659Z digest=sha256:3deb96290b56294592ce672d7424d52012042a460a51c09336599a0e3c2ffd84

Observation fd593adb-5fe6-4609-a2d4-8530070c184c · inbound

Latent Instruction Representation Alignment: defending against jailbreaks, backdoors and undesired knowledge in LLMs cites this paper.

Latent Instruction Representation Alignment: defending against jailbreaks, backdoors and undesired knowledge in LLMs Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 24

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arxiv_id, observed 2026-05-11T08:21:00.018926Z

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source=arxiv_source observed=2026-05-10T16:41:52.440793Z digest=sha256:a6b92ab53b445bfe5e9d07a0f0b43fcd8a90a7fafd5c649028887d4c284ab175

Observation 88058c8d-1944-47e1-8f13-05a2f2dbb99a · inbound

WIN-U: Woodbury-Informed Newton-Unlearning as a retain-free Machine Unlearning Framework cites this paper.

WIN-U: Woodbury-Informed Newton-Unlearning as a retain-free Machine Unlearning Framework Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 13

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arxiv_id, observed 2026-05-10T14:30:31.174543Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

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Observation d1d6e17b-826e-4795-be4e-758b17726bea · inbound

Representation-Guided Parameter-Efficient LLM Unlearning cites this paper.

Representation-Guided Parameter-Efficient LLM Unlearning Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 142

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arxiv_id, observed 2026-05-10T06:06:19.192457Z

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source=arxiv_source observed=2026-05-10T06:01:46.885030Z digest=sha256:70e268b01b71bc3807284a929162da2778d079feea2999fab979e727a1c5d5fe

Observation 9fec93fd-8154-4381-a790-777f518cb2d7 · inbound

Probe-Geometry Alignment: Erasing the Cross-Sequence Memorization Signature Below Chance cites this paper.

Probe-Geometry Alignment: Erasing the Cross-Sequence Memorization Signature Below Chance Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 17

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arxiv_id, observed 2026-05-09T05:55:30.156857Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-08T19:24:04.945551Z digest=sha256:76a5c8d590d1afef5f20c72cb05f7958962023378f0cf94f1286ffda6ecbf1c2

Observation 9a585a78-c189-4497-af2b-a46196ef1b28 · inbound

DurableUn: Quantization-Induced Recovery Attacks in Machine Unlearning cites this paper.

DurableUn: Quantization-Induced Recovery Attacks in Machine Unlearning Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 43

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arxiv_id, observed 2026-05-09T06:10:42.147631Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-08T18:49:53.432959Z digest=sha256:40c7853df5fca03772b97e05736d9051233de1fe91aead3ba203dd2fff9c2aef

Observation 97e84efd-f2c6-4984-9b94-a47f2551ec4b · inbound

DurableUn: Quantization-Induced Recovery Attacks in Machine Unlearning cites this paper.

DurableUn: Quantization-Induced Recovery Attacks in Machine Unlearning Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 43

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arxiv_id, observed 2026-05-11T01:50:51.152125Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-11T01:49:51.021741Z digest=sha256:bfb90132cd99ac5de8ff38f1e2a61fbc2c7a141f9db5253bd4eae4c14ae673b4

Observation 224771bb-623b-4a19-b09b-7238f659527b · inbound

Locking Pretrained Weights via Deep Low-Rank Residual Distillation cites this paper.

Locking Pretrained Weights via Deep Low-Rank Residual Distillation Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 32

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arxiv_id, observed 2026-05-12T06:16:28.240944Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=arxiv_source observed=2026-05-12T04:26:13.390232Z digest=sha256:db34a62be89b2ef53def891e142e3de951cce0381b4e81bd52740389b15beea9

Observation 6f634a67-74e8-48e7-ba1b-34a814217426 · inbound

Robust LLM Unlearning Against Relearning Attacks: The Minor Components in Representations Matter cites this paper.

Robust LLM Unlearning Against Relearning Attacks: The Minor Components in Representations Matter Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 6

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arxiv_id, observed 2026-05-13T01:07:00.010333Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

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Observation 2dab090c-995f-4c7b-8c82-2651e2304507 · inbound

Distinguishable Deletion: Unifying Knowledge Erasure and Refusal for Large Language Model Unlearning cites this paper.

Distinguishable Deletion: Unifying Knowledge Erasure and Refusal for Large Language Model Unlearning Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 29

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arxiv_id, observed 2026-05-19T21:52:48.343135Z

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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=arxiv_source observed=2026-05-19T21:49:07.440832Z digest=sha256:d3b12505e59bfaebb777dc966c93e321ab3d9b44cc2576e414e3cfdb1304f083

Observation 8e21b990-2990-46af-a4f0-b38205b2c20a · inbound

Auditing Reasoning-Trace Memorization Claims after Unlearning with Head-Conditioned Canaries cites this paper.

Auditing Reasoning-Trace Memorization Claims after Unlearning with Head-Conditioned Canaries Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 9

Resolution
metadata mismatch
arxiv_id, observed 2026-05-20T14:13:21.266235Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-05-20T14:10:50.885027Z digest=sha256:2078d125cab71943d204e37cb354f43ceb1107b591bbe525d7c4e4749e37443c

Observation dd34cfb5-a42c-443a-b12b-606080907459 · inbound

Measuring the Depth of LLM Unlearning via Activation Patching cites this paper.

Measuring the Depth of LLM Unlearning via Activation Patching Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 23

Resolution
verified exact
arxiv_id, observed 2026-06-30T13:34:39.855279Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=arxiv_source observed=2026-06-30T13:34:08.624308Z digest=sha256:82c60b101ae8b926aa785aca5e51d06f69105bc454b51d75916783a86a3dced0

Observation 7ccfb302-3dd1-422f-94db-17e7c20537a5 · inbound

Multilingual Unlearning in LLMs: Transfer, Dynamics, and Reversibility cites this paper.

Multilingual Unlearning in LLMs: Transfer, Dynamics, and Reversibility Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 21

Resolution
verified exact
arxiv_id, observed 2026-07-02T03:06:30.396031Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-06-28T10:17:01.170338Z digest=sha256:ea7e574688328dbed1fda4c6afc97923dc4351ac7d07e9adefe06ec14c267c0d

Observation 9b042b5b-81dc-4716-a16a-d3ec83838044 · inbound

RepSelect: Robust LLM Unlearning via Representation Selectivity cites this paper.

RepSelect: Robust LLM Unlearning via Representation Selectivity Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 26

Resolution
metadata mismatch
arxiv_id, observed 2026-07-03T17:58:47.239934Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=arxiv_source observed=2026-06-27T03:34:32.388152Z digest=sha256:476975a392cf42b8295cbae2163b94e9580294fbeaf5a21d4987a680807fcca0

Observation 41e88a88-1f60-4c55-8ce4-57d776ed3cca · inbound

Reinforcing Dual-Path Reasoning in Spatial Vision Language Models cites this paper.

Reinforcing Dual-Path Reasoning in Spatial Vision Language Models Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 103

Resolution
metadata mismatch
arxiv_id, observed 2026-07-03T20:08:55.576901Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=arxiv_source observed=2026-06-27T01:42:30.005911Z digest=sha256:b12410af574ad65ad6c19187d3e69c9922ef95425f75fe776a8289d34c8612bf

Observation 3c7c239a-f7af-49a2-99fa-8393385898ff · inbound

Position: The Term "Machine Unlearning" Is Overused in LLMs cites this paper.

Position: The Term "Machine Unlearning" Is Overused in LLMs Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 12

Resolution
metadata mismatch
arxiv_id, observed 2026-07-01T13:25:44.911576Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.

source=pdf_text observed=2026-06-30T23:21:28.103297Z digest=sha256:08a02b8f3aed6ec0ddd4f04104ee376dc575cc23cd4a825342da830761e0121d

Observation 8888c868-11a5-4c60-8a99-7de2a31183be · inbound

Forget Narrowly, Retain Broadly: Unlearning as an Asymmetric Generalization Problem cites this paper.

Forget Narrowly, Retain Broadly: Unlearning as an Asymmetric Generalization Problem Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 28

Resolution
unresolved
no resolver link, observed 2026-07-13T04:30:23.082717Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-13T04:30:23.082717Z digest=sha256:5ce18886bb34da9cb8528ee7069dd0203acd9a5a0c2faddc7f4a60f5cd103bc6

Observation 911b0ced-9238-476e-bee8-7b64758dd8f9 · inbound

Understanding Machine Unlearning Through the Lens of Mode Connectivity cites this paper.

Understanding Machine Unlearning Through the Lens of Mode Connectivity Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 49

Resolution
unresolved
no resolver link, observed 2026-07-31T23:27:28.211990Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-07-31T23:27:28.211990Z digest=sha256:9ddc97727c50323e5505d76e7abcf187bef8165dd6b14c1ed24894294edea33e

Observation 3d83ad0b-9b84-4acb-8e24-0f6db23e9f82 · inbound

Crossing the Margin Cliff: Toward Relearn-Robust LLM Unlearning via Margin Calibration cites this paper.

Crossing the Margin Cliff: Toward Relearn-Robust LLM Unlearning via Margin Calibration Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 8

Resolution
unresolved
no resolver link, observed 2026-08-01T00:35:50.151033Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-01T00:35:50.151033Z digest=sha256:9f98bd1d02cac6c0ee9c66f07d99d2eaa414af566e0f3a31d3cf58f2f80848c1

Observation 45632c32-b47d-4a4b-9a55-74c1b203f729 · inbound

Suppression Sticks, Locality Is Fragile: A Closed-Loop Target-and-Control Audit of Task-Vector Negation in VLA Policies cites this paper.

Suppression Sticks, Locality Is Fragile: A Closed-Loop Target-and-Control Audit of Task-Vector Negation in VLA Policies Eight Methods to Evaluate Robust Unlearning in LLMs

Reference 42

Resolution
unresolved
no resolver link, observed 2026-08-06T18:54:46.557292Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-08-06T18:54:46.557292Z digest=sha256:f9956d645f4989b14067dd2c220887a8619045acc32c2902dc3f62827c0458ff