Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T07:55:01.971066Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 27 of 27 outbound references and 0 inbound Pith citation observations for arXiv:2510.23469.
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 2026-08-04T07:55:01.971066Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-06T06:34:29.942622+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
27 of 27 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f7a93049-f24c-4643-a7a2-a089c38e128f · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias This fine-grained gating mechanism is significantly more expressive than simple additive prompts or global transformations
Reference 1
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Observation b9198793-cf84-419b-a0f1-54cff50e088f · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias The Adaptive Message Calibration (AMC) module directly intervenes in this process by injecting a layer-wise, edge-specific structure prompt e(l−1) ij into each message
Reference 2
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Observation fb24d40d-795e-46d1-8552-683fff6b1395 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Learning discrete structures for graph neural networks
Reference 3
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Observation 7e0250bc-4e41-4f43-b8bc-ceabe0021787 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias AMC serves as a layer-wise regularizer by generating edge-specific calibration vectors according to equation
Reference 4
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Observation 03a8230a-e258-411d-859a-b2211a8489de · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Variational Graph Auto-Encoders
Reference 5
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Observation 177dcd4b-c880-4560-950d-75850fa78b65 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Unresolved cited work
Reference 7
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Observation c4a55172-468f-4a4d-8092-b32a75a565b9 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Highway Networks
Reference 11
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Observation ce9aaa85-6780-47ef-b72c-e56ad96f36bd · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Bootstrapped representation learning on graphs
Reference 13
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Observation c7cd3728-7fc0-4725-9505-0478a64a7e56 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias The information bottleneck method
Reference 14
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Observation e1477338-4ce6-4356-bb85-2f8019800dec · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Improving Fairness in Graph Neural Networks via Counterfactual Debiasing
Reference 16
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Observation c450907f-ac58-4729-a405-fe2e76c9d10a · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias How Powerful are Graph Neural Networks?
Reference 17
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Observation d8a73c8f-2169-49cc-acde-66c0e45162e4 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Deep Graph Contrastive Representation Learning
Reference 18
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Observation 4d445a9b-f64c-4cb0-8672-2443cdcff104 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias We demonstrate that ADPrompt can effectively adapt a fixed pre-trained GNNθ∗ to diverse downstream tasks through the learned adaptive dual prompts
Reference 19
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Observation 832f9942-a542-491e-a6b1-d43967d498a9 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Raw node attributesXoften contain sen- sitive information correlated withS, forming the initial source of bias
Reference 22
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Observation ac55b707-fb20-42c4-97e6-e3cc83722b89 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Unresolved cited work
Reference 23
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Observation 9e9c6f38-1f88-4361-8855-74027eaf3787 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias working field
Reference 26
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Observation 2cffe417-0ce9-4027-9cf8-7464c3471e80 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias It incorporates a fixed prompt to represent sensitive group em- beddings and a learnable prompt to bridge the gap between pre-training and downstream tasks
Reference 27
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Observation 617be5d3-3265-4e7a-95d0-91cd21052773 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Temporal Graph Networks for Deep Learning on Dynamic Graphs
Reference 1998
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Observation 53d27dc8-828a-4082-bb7c-f52eb03c2801 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Deep Graph Infomax
Reference 2000
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Observation 8355b832-a498-4ca9-9c3e-e1b83cf38ab0 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Yutai Duan, Jie Liu, Shaowei Chen, Liyi Chen, and Jianhua Wu
Reference 2017
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Observation f0422122-4f74-4997-bcd0-c8a7158878da · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Graph Neural Networks Exponentially Lose Expressive Power for Node Classification
Reference 2018
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Observation 1f809315-5305-4924-adb7-14b6de990dd1 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Auc-oriented graph neural network for fraud detection
Reference 2020
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Observation 04c6b3ee-1f90-412e-8d11-30ce9783a156 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Fairness-aware prompt tuning for graph neural networks
Reference 2021
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Observation d3b00fe2-c482-4d0f-aafc-994d2a015f66 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Graph Prompt Learning: A Comprehensive Survey and Beyond
Reference 2022
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Observation 29ed07e8-0f78-48da-9e81-2aa7d2d420fb · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Edits: Modeling and mitigating data bias for graph neural networks
Reference 2023
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Observation 642e6daa-82cb-4816-84cc-771fb1a20cf0 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Prefix-Tuning: Optimizing Continuous Prompts for Generation
Reference 2024
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Observation 927819af-ea76-43bf-8489-fdccda292691 · outbound
Towards Fair Graph Prompting: A Dual-Prompt Mechanism for Mitigating Attribute and Structural Bias Single Event Effects Assessment of UltraScale+ MPSoC Systems under Atmospheric Radiation
Reference 2025
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No inbound Pith citation observations are available.