Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T00:42:11.205155Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 73 of 73 outbound references and 0 inbound Pith citation observations for arXiv:2506.13083.
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 2026-08-07T00:42:11.205155Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+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
73 of 73 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 5bf01033-9e0c-4308-819a-db99c6c2f710 · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Graphboot: Quantifying uncertainty in node feature learning on large networks,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Graph Attention Networks
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Graph self-supervised learning: A survey,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Accurate prediction of protein structures and interactions using a three- track neural network,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Concrete Problems in AI Safety
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Trustworthy Graph Neural Networks: Aspects, Methods and Trends
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach On calibration of modern neural networks,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Posterior network: Uncertainty estimation without ood samples via density-based pseudo- counts,
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Observation 86daa382-dd93-4d2a-8b18-363a9894a0ba · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Predictive uncertainty estimation via prior networks,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Bayesian graph convo- lutional neural networks for semi-supervised classification,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Trusted multi-view classi- fication with dynamic evidential fusion,
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Observation ec6e16cf-48ac-4a5e-93cf-54a39bd6d6f3 · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Evidential deep learning to quantify classification uncertainty,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Trusted Multi-View Classification
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Uncertainty aware semi- supervised learning on graph data,
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Observation 28ed9e4f-7ce4-4e34-8ec7-3532c815eef5 · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Be confident! towards trust- worthy graph neural networks via confidence calibration,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Uncertainty aware graph gaussian process for semi-supervised learning,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Graph posterior network: Bayesian predictive uncertainty for node classification,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Com- bining graph neural networks with expert knowledge for smart contract vulnerability detection,
Reference 22
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Geometric deep learning on graphs and manifolds using mixture model cnns,
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Neural message passing for quantum chemistry,
Reference 24
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Unifying Unsupervised Graph-Level Anomaly Detection and Out-of-Distribution Detection: A Benchmark
Reference 25
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Semi-Supervised Classification with Graph Convolutional Networks
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Inductive representation learning on large graphs,
Reference 27
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Observation 8544fcf6-119a-4874-b52d-8a0a4cc8cd46 · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Towards deeper graph neural networks,
Reference 28
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Arc: A generalist graph anomaly detector with in-context learning,
Reference 29
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Observation 699725e3-a6e8-4cb0-8895-a3e8d83300d6 · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Noise-resilient unsupervised graph representation learning via multi-hop feature quality estimation,
Reference 30
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Observation f39056b9-d891-4e67-a224-c6f614eb73cb · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Predict then Propagate: Graph Neural Networks meet Personalized PageRank
Reference 31
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Adaptive propagation graph convolutional network,
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Reference 33
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach SIGN: Scalable Inception Graph Neural Networks
Reference 34
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Observation 12f79480-6637-4024-9044-923f4a6905b4 · outbound
Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Learning to drop: Robust graph neural network via topological denois- ing,
Reference 35
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Reference 36
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Are graph convolutional networks with random weights feasible?
Reference 37
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Auto-HeG: Automated Graph Neural Network on Heterophilic Graphs
Reference 38
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Uncertainty-Aware Graph Neural Networks: A Multi-Hop Evidence Fusion Approach Goodat: towards test-time graph out-of-distribution detection,
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Reference 51
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Observation 9ba583af-8c84-4556-8f3d-29f9c41ea75f · outbound
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Reference 52
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Reference 53
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Reference 66
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Reference 67
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Reference 68
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Reference 69
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Reference 71
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Reference 72
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Reference 73
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