Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T14:06:18.661273Z
Paper Citation Record · LEDGER
As of 15 August 2026, this Paper Citation Record lists 93 of 93 outbound references and 4 inbound Pith citation observations for arXiv:2412.12456.
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 2026-08-11T14:06:18.661273Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-15T06:32:42.880941+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-06T19:48:40.606729Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-07-03T01:27:31.658024Z
93 of 93 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 19bda759-b032-4ba6-8079-3f596f871c45 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Curriculum GNN-LLM alignment for text-attr ibuted graphs
Reference 1
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Observation 4ce64d84-2ad4-48fe-a411-996f7a2cd105 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks DP-GPL: Differentially private graph prompt learning
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Source-reported events for the cited work
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Observation dc56c2d8-8159-4b73-8248-3c36f95c44ea · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Edge prompt tuning for graph neural networks
Reference 3
Source-reported events for the cited work
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Observation 9087ff93-cdad-4b33-9f24-67c3add10208 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks GFSE: A foundational model for graph structu ral encoding
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks GL-fusion: Rethinking the combination of gr aph neural network and large language model
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Observation 6ebfcc7f-f5a9-490a-8c1c-adaf50997369 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphbridge: Towards arbitrary transfer le arning in GNNs
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks GraphFM: A generalist graph transformer tha t learns transferable representations across diverse doma ins
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphprop: Training the graph foundation mo dels using graph properties
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Observation d934d943-bc61-4669-a1c2-0354d343385a · outbound
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Observation 029689ba-f94a-44e2-a861-345f2527d02f · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Link prediction on text attributed graphs: A new benchmark and efficient LM-nested GNN design
Reference 10
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks LLM as GNN: Graph vocabulary learning for gr aph foundation model
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Observation 84059190-0048-4386-bfa4-e5573db2d0af · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Low-cost enhancer for text attributed grap h learning via graph alignment
Reference 12
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Observation 990cf048-1eea-44ab-8c76-cbe74c12e263 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks One model for one graph: A new perspective fo r pretraining with cross-domain graphs
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Observation 1729f4f8-fdb5-4379-8b0c-6a5e18ceaa84 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Text attributed graph node classification u sing sheaf neural networks and large language models
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Observation 1de29da8-2e5a-42f8-8c35-b1ce402fea74 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Towards graph foundation models: Learning generalities across graphs via task-trees
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Lpnl: Scalable link prediction with large langu age models
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Observation c923b8f3-3f85-4ad7-8d40-9cfe98997043 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Pro tein function prediction via graph kernels
Reference 17
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Observation fb940322-be69-4845-9a3b-04549f318e7d · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Congrat: Self-supe rvised contrastive pre- training for joint graph and text embeddings
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Observation d645862b-20a3-4ee3-9ad2-fdcc54313eb8 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphllm: Boosting grap h reasoning ability of large language model
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Observation 7dbf215c-19fb-45a3-af03-74e6f99f8751 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Llaga: Large language and graph assistant
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Observation 9562bc2b-01bc-43d1-af4a-b74d922c729e · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Hight: Hierarchical graph tokenization for graph-language align- ment
Reference 21
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Label-free node c lassification on graphs with large language models (llms)
Reference 22
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Observation 5d84473c-a3b7-4d92-aca3-3c6817f9961c · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks N ode feature extraction by self-supervised multi-scale neighborhood prediction
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Observation 1c360b49-0eae-43ab-92dd-4d2e4b1ddd74 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Structure-activ ity relationship of mutagenic aromatic and heteroaromatic nitro compounds
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Observation ff30a20e-7c44-4716-8ae5-68f2cf198e7b · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Distinguishing enzyme s tructures from non-enzymes without alignments
Reference 25
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Observation 100108e1-151b-420a-a574-3886ffcf6c0d · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Simteg: A frustratingly simple approach improves textual graph learning
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Observation 8cd22b3a-99e7-4d0d-900d-0495c9e93eac · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Universal prompt tuning for graph neural networks
Reference 27
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Observation fb80f2af-c504-4038-b073-b997e8cd2b4f · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Gaugl lm: Improving graph contrastive learning for text-attribu ted graphs with large language models
Reference 28
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Observation 9623275d-fd82-4ed5-8b44-f36823f5674e · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Ta lk like a graph: Encoding graphs for large language models
Reference 29
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Observation 81cc1c64-61f5-4fce-8112-a7263eb8d737 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Learning Word Vectors for 157 Languages
Reference 30
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Gpt4graph: Can large language models understand g raph structured data? an empirical evaluation and benchmarking
Reference 31
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Observation e0333fe3-5450-4e30-a3a3-0ecf3e261d83 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Harnessing explanations: Llm -to-lm interpreter for enhanced text-attributed graph representation learning
Reference 32
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Observation 61b5aae8-349e-4842-9315-8502b36c691b · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Generalizing graph transformers across diverse g raphs and tasks via pre-training on industrial-scale data, 2024
Reference 33
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Observation 7b5f78e1-a07a-4152-bc11-14286e75ed1e · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Unigraph : Learning a unified cross-domain foundation model for text- attributed graphs
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Observation 6dcc99a7-b44a-4248-9807-db3ed204b307 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks King, Stefan Kramer, and Ashwi n Srinivasan
Reference 35
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Observation 53256aba-00ea-4b58-964b-b25da6b9e1c5 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphalign: Pretraining one graph neural network on multiple graphs via feature alignment
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Op en graph benchmark: Datasets for machine learning on graphs
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Observation 0232618f-ca6d-4cf3-b6bc-f47a47214d5f · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Scalable and accurate graph reasoning with llm-bas ed multi-agents
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Can gnn be good adapter for ll ms? 2024
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Ragraph: A general retrieval-augmented graph learning framework
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Patton: Language model pretraining on text-rich networks
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Gofa: A generative o ne-for-all model for joint graph language modeling
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphs over time: densification laws, shrinking diameters a nd possible explanations
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Snap datasets: Stanfor d large network dataset collection
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Finemo ltex: Towards fine-grained molecular graph-text pre-train ing
Reference 47
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Grenade: Graph- centric language model for self-supervised representatio n learning on text-attributed graphs
Reference 48
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Toloker Graph: Interaction of Crowd Annotators
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Link predict ion on textual edge graphs, 2024
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Gr aphprompt: Unifying pre-training and downstream tasks for graph neural networks
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Unresolved cited work
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Ioannidis, Shen Wang, D a Zheng, Soji Adeshina, Jun Ma, Han Zhao, Christos Faloutsos , and George Karypis
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Tagexplainer: Narrating graph explanati ons for text-attributed graph learning models
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Distilling large language models for text-attributed graph learning
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks L et your graph do the talking: Encoding structured data for llms
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Unleashing the potential of text-attributed graphs: Automatic relation decomposition via large language models
Reference 61
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Pitfalls of Graph Neural Network Evaluation
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks A multi-view mixture-of-experts based on language and grap hs for molecular properties prediction
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Gppt: Graph pre-training and prompt tuning to generali ze graph neural networks
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks All in one: Multi-task prompting for graph neural networks
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Spline-fitting with a genetic algorithm: A method for develo ping classification structure- activity relationships
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Musegraph: Graph-oriented instruction tuning of large language models for generic graph mining
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Walklm: A uniform language model fine-tuning framework for attributed graph embedding
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Reference 69
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Higpt: Heterogeneous graph language m odel
Reference 70
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Reference 71
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Can language models solve graph problems in natural language? 2024
Reference 72
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Instructgraph: Boosting large language m odels via graph-centric instruction tuning and preference alignment
Reference 73
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Reference 74
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Microsoft academic grap h: When experts are not enough
Reference 75
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Learning graph quantized tokenizers for transformers
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Observation d05c8c1e-3698-441d-a4bb-64335d7a9355 · outbound
Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Augmenting low-resource text classification with graph-grounded pre-training and promp ting
Reference 77
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Anygraph: Graph foundatio n model in the wild
Reference 78
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Opengraph: Towar ds open graph foundation models
Reference 79
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Reference 80
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Reference 81
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Reference 82
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Cohen, and Ruslan Salakhutdino v
Reference 83
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Reference 84
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks M ultigprompt for multi-task pre-training and prompting on g raphs
Reference 85
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphtra nslator: Aligning graph model to large language model for open-ended tasks
Reference 86
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Taga: Text-attributed graph self-supervised learning b y synergizing graph and text mutual transformations
Reference 87
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphany: A foundat ion model for node classification on any graph
Reference 88
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Reference 89
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Graphtext: Gra ph reasoning in text space
Reference 90
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Reference 91
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Effici ent tuning and inference for large language models on textua l graphs
Reference 92
Source-reported events for the cited work
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Graph Learning in the Era of LLMs: A Survey from the Perspective of Data, Models, and Tasks Pre training language models with text-attributed heterogene ous graphs
Reference 93
Source-reported events for the cited work
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Reference 27
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Observation faffc647-47aa-460a-b420-43bc6c91b506 · inbound
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Reference 15
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