Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-10T14:28:17.014453Z
Paper Citation Record · LEDGER
As of 11 August 2026, this Paper Citation Record lists 80 of 80 outbound references and 0 inbound Pith citation observations for arXiv:2501.15348.
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 2026-08-10T14:28:17.014453Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-11T06:34:44.6726+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
80 of 80 outbound references displayed
External citation measurements
No source-named external measurement is stored.
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ReInc: Scaling Training of Dynamic Graph Neural Networks https://dot.ca.gov/programs/ traffic-operations/mpr/pems-source
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ReInc: Scaling Training of Dynamic Graph Neural Networks Structural temporal graph neural networks for anomaly detection in dynamic graphs
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ReInc: Scaling Training of Dynamic Graph Neural Networks Chakaravarthy, Shivmaran S
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ReInc: Scaling Training of Dynamic Graph Neural Networks Convolutional neural networks on graphs with fast localized spectral filtering
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ReInc: Scaling Training of Dynamic Graph Neural Networks Unresolved cited work
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ReInc: Scaling Training of Dynamic Graph Neural Networks Automating incremental graph processing with flexible memoization
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ReInc: Scaling Training of Dynamic Graph Neural Networks Powergraph: Distributed graph-parallel computation on natural graphs
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dynagraph: Dynamic graph neural networks at scale
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ReInc: Scaling Training of Dynamic Graph Neural Networks Attention based spatial-temporal graph convolutional networks for traffic flow forecast- ing
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ReInc: Scaling Training of Dynamic Graph Neural Networks In- ductive representation learning on large graphs
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ReInc: Scaling Training of Dynamic Graph Neural Networks Representation Learning on Graphs: Methods and Applications
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ReInc: Scaling Training of Dynamic Graph Neural Networks Long Short- Term Memory
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Observation 940e5b22-fbb8-4a2e-89bb-b9ead694f30e · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Open Graph Benchmark: Datasets for Machine Learning on Graphs
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ReInc: Scaling Training of Dynamic Graph Neural Networks T-gcn: A sampling based streaming graph neural network system with hybrid ar- chitecture
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ReInc: Scaling Training of Dynamic Graph Neural Networks Lsgcn: Long short-term traffic prediction with graph convolutional networks
Reference 23
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ReInc: Scaling Training of Dynamic Graph Neural Networks ASAP: Fast, approximate graph pattern mining at scale
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ReInc: Scaling Training of Dynamic Graph Neural Networks Gonzalez, and Ion Stoica
Reference 25
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ReInc: Scaling Training of Dynamic Graph Neural Networks Improving the accuracy, scalability, and performance of graph neural networks with roc
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Observation d6496f97-0933-4637-a85c-622b19e1b645 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Examining COVID-19 Forecasting using Spatio-Temporal Graph Neural Networks
Reference 29
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ReInc: Scaling Training of Dynamic Graph Neural Networks A fast and high qual- ity multilevel scheme for partitioning irregular graphs
Reference 30
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Observation 38e13f81-dedf-41df-97b9-725c29ee1d9c · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks A fast and high qual- ity multilevel scheme for partitioning irregular graphs
Reference 31
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Observation 09d68235-2b5a-460f-b9c0-dcdf1195427c · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Representation learning for dynamic graphs: A survey, 2020
Reference 32
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ReInc: Scaling Training of Dynamic Graph Neural Networks Zipg: A memory-efficient graph store for interactive queries
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ReInc: Scaling Training of Dynamic Graph Neural Networks Unresolved cited work
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ReInc: Scaling Training of Dynamic Graph Neural Networks GRIP: A Graph Neural Network Accelerator Architecture
Reference 35
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ReInc: Scaling Training of Dynamic Graph Neural Networks Kipf and Max Welling
Reference 36
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ReInc: Scaling Training of Dynamic Graph Neural Networks Howie Huang
Reference 37
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ReInc: Scaling Training of Dynamic Graph Neural Networks Professor forcing: A new algorithm for training recurrent networks
Reference 38
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dynamic graph convolutional recurrent network for traffic prediction: Benchmark and solution
Reference 39
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ReInc: Scaling Training of Dynamic Graph Neural Networks Cache-based gnn system for dynamic graphs
Reference 40
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dif- fusion convolutional recurrent neural network: Data- driven traffic forecasting
Reference 41
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ReInc: Scaling Training of Dynamic Graph Neural Networks Pagraph: Scaling gnn training on large graphs via computation-aware caching
Reference 42
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Observation 5bb60b51-0268-48e8-9ed7-a8425b7805e8 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Rensi, Wen Torng, and Russ B
Reference 43
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ReInc: Scaling Training of Dynamic Graph Neural Networks Kilmer, and Haim Avron
Reference 44
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dynamic graph convolutional networks
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ReInc: Scaling Training of Dynamic Graph Neural Networks Graphbolt: Dependency-driven synchronous processing of stream- ing graphs
Reference 46
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ReInc: Scaling Training of Dynamic Graph Neural Networks Marius: Learning massive graph embeddings on a single ma- chine
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Reference 48
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Observation 95d7ce89-38c5-4272-86fb-6bc75ae919e1 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Transfer graph neural networks for pandemic forecasting
Reference 49
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ReInc: Scaling Training of Dynamic Graph Neural Networks Schardl, and Charles E
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ReInc: Scaling Training of Dynamic Graph Neural Networks Estimating node impor- tance in knowledge graphs using graph neural networks
Reference 51
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ReInc: Scaling Training of Dynamic Graph Neural Networks Community dis- covery in dynamic networks: A survey
Reference 52
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ReInc: Scaling Training of Dynamic Graph Neural Networks PyTorch Geometric Temporal: Spatiotemporal Signal Processing with Neu- ral Machine Learning Models
Reference 53
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dysat: Deep neural representation learn- ing on dynamic graphs via self-attention networks
Reference 54
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ReInc: Scaling Training of Dynamic Graph Neural Networks Structured sequence modeling with graph convolutional recurrent networks, 2016
Reference 55
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ReInc: Scaling Training of Dynamic Graph Neural Networks Accelerating dynamic graph analytics on gpus
Reference 56
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Observation a2eb9c22-da43-4056-8eda-26f8782cdea3 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Foundations and modelling of dynamic networks using Dynamic Graph Neural Networks: A survey
Reference 57
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ReInc: Scaling Training of Dynamic Graph Neural Networks Session-based social recommendation via dynamic graph attention networks
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ReInc: Scaling Training of Dynamic Graph Neural Networks Session-based social recommendation via dynamic graph attention networks
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Reference 60
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dorylus: Affordable, scalable, and accurate GNN train- ing with distributed CPU servers and serverless threads
Reference 61
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ReInc: Scaling Training of Dynamic Graph Neural Networks Graph attention networks
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ReInc: Scaling Training of Dynamic Graph Neural Networks Pipad: Pipelined and parallel dynamic gnn training on gpus
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ReInc: Scaling Training of Dynamic Graph Neural Networks Flex- graph: A flexible and efficient distributed framework for gnn training
Reference 64
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Observation df00e24b-dcff-4165-b764-f57dff31f921 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Deep Graph Library: A Graph-Centric, Highly-Performant Package for Graph Neural Networks
Reference 65
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ReInc: Scaling Training of Dynamic Graph Neural Networks Unresolved cited work
Reference 66
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ReInc: Scaling Training of Dynamic Graph Neural Networks Williams and David Zipser
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ReInc: Scaling Training of Dynamic Graph Neural Networks Fast and Accu- rate Optimizer for Query Processing over Knowledge Graphs, page 503–517
Reference 68
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ReInc: Scaling Training of Dynamic Graph Neural Networks GNNAdvisor: An adaptive and efficient runtime system for GNN ac- celeration on GPUs
Reference 69
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ReInc: Scaling Training of Dynamic Graph Neural Networks Gnnlab: a factored system for sample-based gnn training over gpus
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Observation 2151fcd2-c2e6-497c-b5e3-01ee5233eb6e · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Hamilton, and Jure Leskovec
Reference 71
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Observation 41c6f802-fa54-42b4-bc68-abf3b466d163 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks How Powerful are Graph Neural Networks?
Reference 72
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ReInc: Scaling Training of Dynamic Graph Neural Networks Agl: A scalable system for industrial-purpose graph machine learning
Reference 73
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Reference 74
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ReInc: Scaling Training of Dynamic Graph Neural Networks Spatio-Temporal Graph Convolutional Networks: A Deep Learning Framework for Traffic Forecasting
Reference 75
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ReInc: Scaling Training of Dynamic Graph Neural Networks Dynamic graph neural networks for sequential recommendation
Reference 76
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Observation a866d3a7-350c-4534-b731-93ccda23fceb · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Exploring the hidden dimension in graph processing
Reference 77
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Observation 317ce46e-a84c-4f8e-b1a8-2641ff57a484 · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks GaAN: Gated Attention Networks for Learning on Large and Spatiotemporal Graphs
Reference 78
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ReInc: Scaling Training of Dynamic Graph Neural Networks T-gcn: A tempo- ral graph convolutional network for traffic prediction
Reference 79
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Observation fbf83907-a8c4-41a5-91be-c8a489dcdc7b · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Tgl: A general framework for temporal gnn training on billion-scale graphs
Reference 80
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Observation c5495be4-1773-4ee8-8339-3b1d1e7f12af · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Egraph: Efficient concurrent gpu-based dynamic graph processing
Reference 81
Source-reported events for the cited work
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Observation 7caf4bcc-72a6-4e03-861d-246909e8e7eb · outbound
ReInc: Scaling Training of Dynamic Graph Neural Networks Unresolved cited work
Reference 549
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