Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-01T15:05:41.576996Z
Paper Citation Record · LEDGER
As of 10 August 2026, this Paper Citation Record lists 100 of 111 outbound references and 0 inbound Pith citation observations for arXiv:2607.18567.
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 2026-08-01T15:05:41.576996Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-10T06:31:04.303077+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
100 of 111 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation ec4ca4ed-0de7-4e2b-8167-bbf1070f5573 · outbound
Attacking Graph Foundation Models Through Their Shared Representation IEEE Transactions on Pattern Analysis and Machine Intelligence , year =
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Attacking Graph Foundation Models Through Their Shared Representation Position: Graph Foundation Models are Already Here
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Attacking Graph Foundation Models Through Their Shared Representation A Survey on Self-Supervised Graph Foundation Models: Knowledge-Based Perspective
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Observation ec88d2eb-ccf1-482f-9a53-ba7e1c183fcd · outbound
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Observation bf1bcfe5-1a2c-4f34-bae8-b4d065db4bbf · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 47th International ACM SIGIR Conference on Research and Development in Information Retrieval (SIGIR) , year=
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Attacking Graph Foundation Models Through Their Shared Representation Advances in Neural Information Processing Systems (NeurIPS) , year=
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Attacking Graph Foundation Models Through Their Shared Representation PRODIGY: Enabling In-context Learning Over Graphs
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Attacking Graph Foundation Models Through Their Shared Representation UniGraph: Learning a Unified Cross-Domain Foundation Model for Text-Attributed Graphs
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint=
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Observation 9211a024-d126-4ef9-83f0-58125b05aaca · outbound
Attacking Graph Foundation Models Through Their Shared Representation LLMs as Zero-shot Graph Learners: Alignment of GNN Representations with LLM Token Embeddings
Reference 12
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Observation 4d895c27-9722-4da9-b41b-511e475a9188 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 31st ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD) , year=
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Observation 4653b3e2-00f9-4b7e-8ea9-957f749c18c6 · outbound
Attacking Graph Foundation Models Through Their Shared Representation IEEE Conference on Secure and Trustworthy Machine Learning (SaTML) , year=
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint=
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Observation b0afeee3-126e-451d-8e0c-3b8377ce2df8 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Advances in Neural Information Processing Systems (NeurIPS) , year=
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Observation 9d4ee278-cebf-440e-9258-3e8f98f3b28b · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2023 , eprint=
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Observation d018eab8-f1e0-4987-b3b9-6b1a85d973e6 · outbound
Attacking Graph Foundation Models Through Their Shared Representation International Conference on Learning Representations (ICLR) , year=
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Observation ae002eef-5a2a-47d7-9726-3e4a59720f9f · outbound
Attacking Graph Foundation Models Through Their Shared Representation International Conference on Learning Representations (ICLR) , year=
Reference 19
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Observation 20d77355-0e82-4733-b717-f1799a3c8b17 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Findings of the Association for Computational Linguistics: EACL 2024 , year=
Reference 20
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Observation 65f47d2f-4bd0-402f-a990-2a7cab3c97f5 · outbound
Attacking Graph Foundation Models Through Their Shared Representation HiGPT: Heterogeneous Graph Language Model
Reference 21
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Observation fab759a6-982d-4e31-9992-e01d97700d6f · outbound
Attacking Graph Foundation Models Through Their Shared Representation GITA: Graph to Visual and Textual Integration for Vision-Language Graph Reasoning
Reference 22
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Observation b2035a67-d696-432d-9478-61420cd65b72 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Efficient Tuning and Inference for Large Language Models on Textual Graphs
Reference 23
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Observation ae5e41f1-a5de-473a-ba77-9d8b5669ce0a · outbound
Attacking Graph Foundation Models Through Their Shared Representation Can GNN be Good Adapter for LLMs?
Reference 24
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Observation a4fbdc65-4157-49d3-b531-a2781c1c0494 · outbound
Attacking Graph Foundation Models Through Their Shared Representation International Conference on Learning Representations (ICLR) , year=
Reference 25
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Observation 687cdbfb-17ed-44c9-9956-72aad63f863b · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 30th ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD) , year=
Reference 26
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Observation 3366e8bf-77b9-4a94-a8b5-011ef99c9748 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 24th ACM SIGKDD International Conference on Knowledge Discovery and Data Mining (KDD) , year=
Reference 27
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Observation 6b6762b2-caed-4e49-8664-b2e3aee8ac13 · outbound
Attacking Graph Foundation Models Through Their Shared Representation International Conference on Learning Representations (ICLR) , year=
Reference 28
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Observation 43f65323-492a-45ac-b03c-66fe7a477848 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Topology Attack and Defense for Graph Neural Networks: An Optimization Perspective
Reference 29
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Observation 89a2554c-6eb9-4bd7-b77c-fae9398af9df · outbound
Attacking Graph Foundation Models Through Their Shared Representation Adversarial Attack on Graph Structured Data
Reference 30
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Observation ee983415-ce7e-4554-a5bc-5894ca7cd3f5 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of The Web Conference 2020 , pages =
Reference 31
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Observation 88fdc5a5-01b4-4d6a-b325-0b292f18f604 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Scalable Attack on Graph Data by Injecting Vicious Nodes
Reference 32
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Observation c7c4b156-5645-4e88-8ee0-2a19194014a9 · outbound
Attacking Graph Foundation Models Through Their Shared Representation TDGIA:Effective Injection Attacks on Graph Neural Networks
Reference 33
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Observation 81212ce1-b8aa-45e8-a074-4de4c07175ac · outbound
Attacking Graph Foundation Models Through Their Shared Representation Single Node Injection Attack against Graph Neural Networks
Reference 34
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Observation 40844733-f535-4382-ae75-b27925eb5ff0 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Backdoor Attacks to Graph Neural Networks
Reference 35
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Observation 39be8221-e6f6-45d4-938f-794ce0ba38c8 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 36th International Conference on Machine Learning (ICML) , series=
Reference 36
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Observation e0cb2846-db3f-4703-bbce-ca48c25c22df · outbound
Attacking Graph Foundation Models Through Their Shared Representation ACM SIGKDD Explorations Newsletter , volume=
Reference 37
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Observation bee4ff82-630a-415e-8606-493bc32b4d60 · outbound
Attacking Graph Foundation Models Through Their Shared Representation IEEE Transactions on Knowledge and Data Engineering , year=
Reference 38
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Observation 5ea194f3-63e6-4ff1-8c6e-c72ed578bb0b · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2026 , note=
Reference 39
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Observation 57c181b8-2f09-4781-91b0-634210943e9e · outbound
Attacking Graph Foundation Models Through Their Shared Representation Unveiling the Vulnerability of Graph-
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Observation ab8e92d7-7085-42fc-84b4-066d13479b52 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the ACM Web Conference (WWW) , year =
Reference 41
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Observation e0861622-4966-4004-bff4-91501ed41d0e · outbound
Attacking Graph Foundation Models Through Their Shared Representation IEEE Symposium on Security and Privacy (S&P) , year =
Reference 42
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Observation b667ca4a-1120-43ed-8a57-42669ea1338b · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
Reference 43
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Attacking Graph Foundation Models Through Their Shared Representation 2026 , eprint =
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Observation 08e8f2a6-df10-44ff-9360-e587df560054 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
Reference 45
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Observation 82a76b80-fcfd-462d-a54e-b57c4cbc4c2b · outbound
Attacking Graph Foundation Models Through Their Shared Representation Attacks on Node Attributes in Graph Neural Networks
Reference 46
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Observation ee748542-1dc7-43bb-a8d3-7e5da6539645 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Ignore Previous Prompt: Attack Techniques For Language Models
Reference 47
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Observation b3293a64-86d8-48e8-856e-f4d48f29a644 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Not What You've Signed Up For: Compromising Real-World
Reference 48
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Observation 9289246d-ded1-4dd7-afdc-508c140c1c94 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2023 , eprint =
Reference 49
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Observation c069b7bd-a2dd-4e1d-a0c8-fb1d75411eb7 · outbound
Attacking Graph Foundation Models Through Their Shared Representation AutoDAN: Generating Stealthy Jailbreak Prompts on Aligned Large Language Models
Reference 50
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Observation ac513c44-8f32-4ff8-8997-a30ac9e4aac5 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2023 , eprint =
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Observation fc84b8c4-d1a5-4a83-87cc-c1dba6e166ae · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2023 , eprint =
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Observation a3ef3ddc-a417-4973-b88e-f07d8d3b7513 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2023 , eprint =
Reference 53
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Observation 6ea6715a-b0b1-4230-a605-71fe95847526 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Findings of the Association for Computational Linguistics: ACL 2024 , year =
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Observation 11549ef4-b3f7-4a38-a589-22986462f93d · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 2025 Conference of the North American Chapter of the Association for Computational Linguistics (NAACL) , year =
Reference 55
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Observation 28e87ed3-8bf0-489a-a2b3-8bfa22730bc1 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 2024 Conference of the North American Chapter of the Association for Computational Linguistics (NAACL) , year =
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Observation 99b57c62-c8b3-48b8-989d-fd4c976c5e49 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2024 , eprint =
Reference 57
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Observation 79d480ef-3acc-49c5-af9a-8e5ae6328de5 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Findings of the Association for Computational Linguistics: ACL 2024 , year =
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Observation c478668c-d5fb-42eb-ab6c-d771f1463a95 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
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Observation 642df72d-c130-4c27-9b98-67e75bed8057 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 30th ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD) , year =
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Observation 8e54e692-2f03-4eac-80f4-244709e28812 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
Reference 61
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Observation 14985a44-fb4c-427e-ad88-99902c4ea309 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Are You Using Reliable Graph Prompts? Trojan Prompt Attacks on Graph Neural Networks
Reference 62
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Observation 9b8d7f62-2c32-4f22-a9ca-aca52da31a8b · outbound
Attacking Graph Foundation Models Through Their Shared Representation Cross-Paradigm Graph Backdoor Attacks with Promptable Subgraph Triggers
Reference 63
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Observation ef33e4dc-a817-4bf1-b5fe-40b71ed58fc2 · outbound
Attacking Graph Foundation Models Through Their Shared Representation HeTa: Relation-wise Heterogeneous Graph Foundation Attack Model
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Observation 595df390-0f11-4a3b-9b7d-db93106d02b6 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2024 , eprint=
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Observation 963ab325-f69e-4d57-81c5-23010e04adec · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 28th ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD) , pages=
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Observation cc5f353e-dd38-4593-ac64-6450d12f9bad · outbound
Attacking Graph Foundation Models Through Their Shared Representation GraphPrompt: Unifying Pre-Training and Downstream Tasks for Graph Neural Networks
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Observation 21ee37e3-1625-4f5e-8d4a-a7cea4fc45dc · outbound
Attacking Graph Foundation Models Through Their Shared Representation All in One: Multi-task Prompting for Graph Neural Networks
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Observation 9a7215f0-ff18-4756-b88c-4eaa60ccd9bb · outbound
Attacking Graph Foundation Models Through Their Shared Representation Advances in Neural Information Processing Systems (NeurIPS), Datasets and Benchmarks Track , year=
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Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the AAAI Conference on Artificial Intelligence , author=
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Attacking Graph Foundation Models Through Their Shared Representation 2026 , eprint=
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Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 30th ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD) , year=
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Attacking Graph Foundation Models Through Their Shared Representation OpenGraph: Towards Open Graph Foundation Models
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Attacking Graph Foundation Models Through Their Shared Representation A ny G raph: Graph Foundation Model in the Wild
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint=
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint=
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Attacking Graph Foundation Models Through Their Shared Representation 2024 , eprint =
Reference 77
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
Reference 79
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Observation a4024a2c-2ff0-48f3-9eb0-a1b97f5983c8 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Advances in Neural Information Processing Systems (NeurIPS) , year =
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Observation 6080ec94-e5ad-43e9-9940-c23b09af085d · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the AAAI Conference on Artificial Intelligence (AAAI) , year =
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
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Attacking Graph Foundation Models Through Their Shared Representation 2025 , eprint =
Reference 83
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Attacking Graph Foundation Models Through Their Shared Representation 2026 , eprint =
Reference 84
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Observation 9f8df8a5-2d19-424e-af26-e6bca8de2761 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Text-space Graph Foundation Models: Comprehensive Benchmarks and New Insights
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Observation 9c2420b7-2ad0-4042-bd3d-407e44c5c1fd · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 42nd International Conference on Machine Learning (ICML) , year =
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Observation 2b2ba696-48d2-4eae-9bec-703d973e92f0 · outbound
Attacking Graph Foundation Models Through Their Shared Representation The Platonic Representation Hypothesis
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Observation 46640d3a-ead9-4a33-803e-4d6f3ed1bfc3 · outbound
Attacking Graph Foundation Models Through Their Shared Representation 2026 , eprint =
Reference 88
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Attacking Graph Foundation Models Through Their Shared Representation 2023 , eprint =
Reference 89
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Attacking Graph Foundation Models Through Their Shared Representation Null It Out: Guarding Protected Attributes by Iterative Nullspace Projection
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Attacking Graph Foundation Models Through Their Shared Representation Similarity of Neural Network Representations Revisited
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Attacking Graph Foundation Models Through Their Shared Representation Locating and Editing Factual Associations in
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Observation 143a0968-1bbd-4867-a9b6-0d31df15e836 · outbound
Attacking Graph Foundation Models Through Their Shared Representation On Adaptive Attacks to Adversarial Example Defenses
Reference 93
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Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 35th International Conference on Machine Learning (ICML) , series =
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Attacking Graph Foundation Models Through Their Shared Representation 2017 IEEE Symposium on Security and Privacy (S&P) , pages =
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Observation fe132ff8-ac3a-47d6-8e8c-6a69dbc37f62 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 37th International Conference on Machine Learning (ICML) , series =
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Observation 4765c84f-c278-40d0-9c95-59aad7e6ec8a · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 25th ACM SIGKDD International Conference on Knowledge Discovery and Data Mining (KDD) , pages =
Reference 97
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Observation 7669e888-101b-4896-8812-0e36ad0780bd · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of The Web Conference 2020 (WWW) , pages =
Reference 98
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Observation 51a58521-fdcc-4748-991f-0c6c295c1291 · outbound
Attacking Graph Foundation Models Through Their Shared Representation Proceedings of the 36th International Conference on Machine Learning (ICML) , series =
Reference 99
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Observation bd6f487a-47b5-48d9-bf04-b42e8b7fbe16 · outbound
Attacking Graph Foundation Models Through Their Shared Representation On Evaluating Adversarial Robustness of Large Vision-Language Models
Reference 100
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No inbound Pith citation observations are available.