Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T21:26:16.920522Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 72 of 72 outbound references and 0 inbound Pith citation observations for arXiv:2502.09473.
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 2026-08-07T21:26:16.920522Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+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
72 of 72 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation e217b78c-44e5-4fef-b735-5e3dfd3fdb97 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Lifetime risk of atrial fibrillation by race and socioeconomic status: ARIC study (Atherosclerosis Risk in Communities)
Reference 1
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Observation 4d747394-6b7d-432d-9f3a-206e361eebea · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Global epidemiology of atrial fibrillation: An increasing epidemic and public health challenge
Reference 2
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Observation b581d9a8-3878-48f3-8c57-5a751591663c · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Stroke prevention in atrial fibrillation: Looking forward
Reference 3
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Observation 89b30c6e-e891-4b58-a80d-1e8d5d39f0cc · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Atrial fibrillation in heart failure: Epidemiology, pathophysiology, and rationale for therapy
Reference 4
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Observation cd3a1696-8e75-4c47-a277-3b54e22a93fa · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Impact of atrial fibrillation on mortality, stroke, and medical costs
Reference 5
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Observation 951afd73-9169-417a-8c0e-e56fd35564cc · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Cost of an emerging epidemic: An economic analysis of atrial fibrillation in the UK
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Atrial fibrillation burden and clinical outcomes in heart failure: The CASTLE-AF trial
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Unresolved cited work
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Cryoballoon or radiofrequency ablation for paroxysmal atrial fibrillation
Reference 9
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Observation 52a69be1-7b17-4cd7-8781-a60899afbe74 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Five-year outcome of catheter ablation of persistent atrial fibrillation using termination of atrial fibrillation as a procedural endpoint
Reference 10
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Observation 10639a52-a38f-4b97-ae79-c99efe11ec79 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements The electrical isolation of the left atrial posterior wall in catheter ablation of persistent atrial fibrillation
Reference 11
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Observation de6d4a6d-72f9-42fd-aa4e-d7bff5d3fb4c · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Approaches to catheter ablation for persistent atrial fibrillation
Reference 12
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Observation 02345e7c-2f21-4aae-9be2-a919c25d33f4 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Pulmonary vein isolation versus defragmentation: The CHASE-AF clinical trial
Reference 13
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Narayan et al
Reference 14
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Observation 3529a1b2-5b13-44cc-8920-c07c739c4901 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements No benefit of complex fractionated atrial electrogram ablation in addition to circumferential pulmonary vein ablation and linear ablation: Benefit of complex ablation study
Reference 15
Source-reported events for the cited work
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Observation 28b708fb-28f8-4112-9ef5-e1aab4fce9a5 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Toward mechanism-directed electrophenotype-based treatments for atrial fibrillation
Reference 16
Source-reported events for the cited work
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Observation abf42888-dd5d-404f-9486-d5a7cea2df1a · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements High-density and high coverage composite mapping of repetitive atrial activation patterns
Reference 17
Source-reported events for the cited work
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Observation ca6774f0-97c4-4118-a0ef-cd172a036bff · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Long-term clinical outcomes of focal impulse and rotor modulation for treatment of atrial fibrillation: A multicenter experience
Reference 18
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Observation 0232edb9-7e51-4f64-b2c5-c5c95151a10d · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Noninvasive electrocardiographic imaging
Reference 19
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Observation d7d3a64a-d5a4-42cb-984b-7ad00f09871b · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Spatial resolution requirements for accurate identification of drivers of atrial fibrillation
Reference 20
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Synchronization of pulse-coupled biological oscillators
Reference 21
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Observation 0c5c32ab-b55b-4956-a1cd-b04ed7eb4126 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements The fundamental organization of cardiac mitochondria as a network of coupled oscillators
Reference 22
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Observation ee4f8d50-03d8-4664-8623-52e48617f8c7 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Nonlinear and stochastic dynamics in the heart
Reference 23
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements The graph neural network model
Reference 24
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Observation 46d8cc3d-d637-4c89-b510-75aec8551450 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Geometric deep learning: Going beyond Euclidean data
Reference 25
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Observation 7148f6c7-5bf0-4cea-8b18-a1df20a5ab29 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements A gentle introduction to deep learning for graphs
Reference 26
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Observation 0571e587-e2c9-4ee3-9708-52ad9267c036 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Structured sequence modeling with graph convolutional recurrent networks
Reference 27
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Observation 018e5b30-6d63-4aae-a8e1-1dd2719ea327 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Filling the g_ap_s: Multivariate time series imputation by graph neural networks
Reference 28
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Word embedding for understanding natural language: A survey
Reference 29
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Unresolved cited work
Reference 30
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Observation 92444e3c-aab6-4da5-be28-e0cc27666b21 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Validation of dipole density mapping during atrial fibrillation and sinus rhythm in human left atrium
Reference 31
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Observation 3faed7d9-c8cb-49d5-8b82-d26c172fb237 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Standardised framework for quantitative analysis of fibrillation dynamics
Reference 32
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Observation 34767c37-4f46-4e5e-a795-1f0903ab1cee · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Visualizing data using t-SNE
Reference 33
Source-reported events for the cited work
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Observation 4d6a8147-9a06-49ae-ab80-b1abaca7b7e9 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Recurrence plots for the analysis of complex systems
Reference 34
Source-reported events for the cited work
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Observation 62c0b627-e587-45c1-b5b7-9df785834289 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements V ortex dynamics in three-dimensional continuous myocardium with fiber rotation: Filament instability and fibrillation
Reference 35
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Observation 3556f9a9-ef4d-422c-a312-2eadc9f96477 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Models of cardiac tissue electrophysiology: Progress, challenges and open questions
Reference 36
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Graph-based time series clustering for end-to-end hierarchical forecasting
Reference 37
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Observation 7d6b6672-5dc3-4485-abbe-a2d74c2b732c · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Learning to reconstruct missing data from spatiotemporal graphs with sparse observations
Reference 38
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Graph signal processing: Overview, challenges, and applications
Reference 39
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Reference 40
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Reference 41
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Semi-supervised classification with graph convolutional networks
Reference 42
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Observation a7d9179b-b47f-4270-abe0-374d4fcd8ada · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Deep learning on graphs: A survey
Reference 43
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Graph Deep Learning for Time Series Forecasting
Reference 44
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Observation 6b4803ce-a26a-4bba-a03a-e4ce20e47558 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements A survey on graph neural networks for time series: Forecasting, classification, imputation, and anomaly detection
Reference 45
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Observation ff47e89a-28d9-4558-a8f4-2f05267ddfb6 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements On the equivalence between temporal and static equivariant graph representations
Reference 46
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Observation 03b43292-9d5b-4823-8536-c22795f64aee · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Scalable spatiotemporal graph neural networks
Reference 47
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Observation 67798dd0-e3f5-452a-8b9c-bd4bd991d58b · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Diffusion convolutional recurrent neural network: Data-driven traffic forecasting
Reference 48
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Observation 9d465f91-c511-4669-918c-680442ed3b32 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Graph neural network for traffic forecasting: A survey
Reference 49
Source-reported events for the cited work
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Observation 20568478-cb3e-4dbd-995b-d08e8d7bd00c · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Learning skillful medium-range global weather forecasting
Reference 50
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Observation cb073b49-1f8c-4397-9a00-5057d0143c5e · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Taming local effects in graph-based spatiotemporal forecasting
Reference 51
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Observation 430ddccb-e6ef-4d23-b5db-bc0d996cacf2 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements NodeTrans: A Graph Transfer Learning Approach for Traffic Prediction
Reference 52
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Observation 90e22ec2-1c3c-4e9b-a268-3cf2ffb633a2 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Bayesian probabilistic matrix factorization using Markov chain Monte Carlo
Reference 53
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Algorithms for non-negative matrix factorization
Reference 54
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Graph regularized nonnegative matrix factorization for data representation
Reference 55
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Temporal regularized matrix factorization for high-dimensional time series prediction
Reference 56
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Observation 8ccba2cd-601b-49e2-ad21-6bba8c71b94e · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements BRITS: Bidirectional recurrent imputation for time series
Reference 57
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Observation 3c5f93b0-5b26-43b1-b358-f7963a9c4308 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Time-series generative adversarial networks
Reference 58
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Observation 598f5c9b-1488-4e3e-b9dd-125dfe252d5f · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements NAOMI: Non-autoregressive multiresolution sequence imputation
Reference 59
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Observation 753581bd-8bfe-4def-b634-c85dc2254ea2 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements SAITS: Self-attention-based imputation for time series
Reference 60
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements CSDI: Conditional score-based diffusion models for probabilistic time series imputation
Reference 61
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Observation 4187c99a-df05-4d3b-bc5d-921ee4ce9e36 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Diffusion-based time series imputation and forecasting with structured state space models
Reference 62
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Observation 385c746d-f16e-4b93-94ee-8f36efc9e7b1 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Improving Diffusion Models for ECG Imputation with an Augmented Template Prior
Reference 63
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Principles and algorithms for forecasting groups of time series: Locality and globality
Reference 64
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Residual Gated Graph ConvNets
Reference 65
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Diffusion-convolutional neural networks
Reference 66
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Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Quantile regression
Reference 67
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Observation c66ff37b-1458-43a8-9f66-7a839365cfda · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Laplacian eigenmaps for dimensionality reduction and data representation
Reference 68
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Observation 444847be-15df-499b-802a-b54139339877 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Method for registration of 3-D shapes
Reference 69
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Observation db4f455e-85f7-446e-adf8-4a0bd23e30e0 · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Unresolved cited work
Reference 70
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Observation 286da05b-7d20-49ed-80d6-0c7cff01adfa · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Unresolved cited work
Reference 71
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Observation 5ac8b1ae-6b36-45c7-bf92-ab763f2e41dd · outbound
Learning to Predict Global Atrial Fibrillation Dynamics from Sparse Measurements Mean and MF baseline models are employed solely on the test set due to their transductive nature
Reference 72
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No inbound Pith citation observations are available.