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Paper Citation Record · LEDGER

Spatiotemporal Imputation with Graph-Informed Flow Matching

As of 22 August 2026, this Paper Citation Record lists 100 of 118 outbound references and 0 inbound Pith citation observations for arXiv:2606.06682.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2606.06682 v1

Coverage vector

measured 100 of 118 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-06-28T02:41:55.647924Z

measured 100 of 100 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-22T06:32:14.747728+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

100 of 118 outbound references displayed

  • verified exact0
  • verified fuzzy0
  • unresolved99
  • parse uncertain0
  • malformed identifier0
  • metadata mismatch1

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation abc3373d-49aa-4e14-9c25-f7beec0ba5a9 · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 1

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Observation ecfd8afe-e63f-4d84-92ad-e16967e6c4bc · outbound

This paper cites S., Goldstein, M., Boffi, N.

Spatiotemporal Imputation with Graph-Informed Flow Matching S., Goldstein, M., Boffi, N

Reference 2

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Observation 2655ff83-b610-415e-b3cc-2810e613472e · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 3

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Observation d75085d2-fb89-4bc2-8425-cb9020f610d4 · outbound

This paper cites Spatio-temporal data mining: A survey of problems and methods.

Spatiotemporal Imputation with Graph-Informed Flow Matching Spatio-temporal data mining: A survey of problems and methods

Reference 4

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Observation e3aa3610-349d-4596-8d84-dd4127762487 · outbound

This paper cites TIDE : Time derivative diffusion for deep learning on graphs.

Spatiotemporal Imputation with Graph-Informed Flow Matching TIDE : Time derivative diffusion for deep learning on graphs

Reference 5

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Observation 21e991dd-797c-4fa6-b994-9e400b0e7bb3 · outbound

This paper cites and Santaniello, A.

Spatiotemporal Imputation with Graph-Informed Flow Matching and Santaniello, A

Reference 6

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Observation 8d914e30-2aca-4c79-9ba6-9d0e72be4bf0 · outbound

This paper cites B., Gripon, V., Tang, J., and Ortega, A.

Spatiotemporal Imputation with Graph-Informed Flow Matching B., Gripon, V., Tang, J., and Ortega, A

Reference 7

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Observation 16d76f02-1e25-4b28-bbf7-0c898ae69eaa · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 8

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:3a1e87f62517295b3ee28a6a6336eb2bcaa725d9f58d62ba5bb5418968ae3de4

Observation 78ff6ee2-923a-4d46-8761-3ec2c095b08c · outbound

This paper cites BRITS : Bidirectional recurrent imputation for time series.

Spatiotemporal Imputation with Graph-Informed Flow Matching BRITS : Bidirectional recurrent imputation for time series

Reference 9

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Observation a9250f0b-271f-4ba2-8405-34786512c031 · outbound

This paper cites Freeway performance measurement system: Mining loop detector data.

Spatiotemporal Imputation with Graph-Informed Flow Matching Freeway performance measurement system: Mining loop detector data

Reference 10

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Observation 571a7627-9112-4bd2-9187-1ffdf0959fda · outbound

This paper cites Filling the g\_ap\_s: Multivariate time series imputation by graph neural networks.

Spatiotemporal Imputation with Graph-Informed Flow Matching Filling the g\_ap\_s: Multivariate time series imputation by graph neural networks

Reference 11

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Observation 98124925-0acb-4653-8746-c9dde4f7bc25 · outbound

This paper cites Graph deep learning for time series forecasting.

Spatiotemporal Imputation with Graph-Informed Flow Matching Graph deep learning for time series forecasting

Reference 12

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Observation d65220fc-b28d-4ad0-85c1-15e297b0d38f · outbound

This paper cites T., and Shah, M.

Spatiotemporal Imputation with Graph-Informed Flow Matching T., and Shah, M

Reference 13

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Observation 1280bb75-ea16-4036-952d-8bbab67e3e32 · outbound

This paper cites Learning from highly sparse spatio-temporal data.

Spatiotemporal Imputation with Graph-Informed Flow Matching Learning from highly sparse spatio-temporal data

Reference 14

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Observation fc236d7d-2866-4515-9abe-dc00c3b25d8d · outbound

This paper cites and Nichol, A.

Spatiotemporal Imputation with Graph-Informed Flow Matching and Nichol, A

Reference 15

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Observation 0ebf69f9-134b-4de5-85b9-4dd48c50f853 · outbound

This paper cites Graph signal processing for machine learning: A review and new perspectives.

Spatiotemporal Imputation with Graph-Informed Flow Matching Graph signal processing for machine learning: A review and new perspectives

Reference 16

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Observation 565d2486-0cee-43b7-bbe2-80e55796e0e9 · outbound

This paper cites SAITS : Self-attention-based imputation for time series.

Spatiotemporal Imputation with Graph-Informed Flow Matching SAITS : Self-attention-based imputation for time series

Reference 17

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Observation 6be59ac9-4aa3-4f3a-a5cb-1441af13efb0 · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 18

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Observation bc590850-f39d-4ef2-9e2a-a9de6fd8889b · outbound

This paper cites H., Mahmood, A., Garcia-Garcia, B., Thanou, D., and Bouwmans, T.

Spatiotemporal Imputation with Graph-Informed Flow Matching H., Mahmood, A., Garcia-Garcia, B., Thanou, D., and Bouwmans, T

Reference 19

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Observation 6479c5cf-d6b3-4709-95d7-9ee32f9ee5c5 · outbound

This paper cites Learning dynamics and heterogeneity of spatial-temporal graph data for traffic forecasting.

Spatiotemporal Imputation with Graph-Informed Flow Matching Learning dynamics and heterogeneity of spatial-temporal graph data for traffic forecasting

Reference 20

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Observation faffed22-9825-4b32-8684-dfcd99f43ca6 · outbound

This paper cites Filling the missings: Spatiotemporal data imputation by conditional diffusion.

Spatiotemporal Imputation with Graph-Informed Flow Matching Filling the missings: Spatiotemporal data imputation by conditional diffusion

Reference 21

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Observation b0fa3c98-62ec-409c-996b-7d7d068cb317 · outbound

This paper cites Denoising diffusion probabilistic models.

Spatiotemporal Imputation with Graph-Informed Flow Matching Denoising diffusion probabilistic models

Reference 22

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Observation 776d6d2c-b60f-44cc-b0e0-ef9836e4f6bd · outbound

This paper cites and Ba, J.

Spatiotemporal Imputation with Graph-Informed Flow Matching and Ba, J

Reference 23

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Observation 1ff58973-1f90-4530-8671-1682ba3fa2ba · outbound

This paper cites u dke, D., Schwinn, L., and G \.

Spatiotemporal Imputation with Graph-Informed Flow Matching u dke, D., Schwinn, L., and G \

Reference 24

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Observation da983bed-c503-4f38-9516-b9e422d35e71 · outbound

This paper cites Diffusion convolutional recurrent neural network: Data-driven traffic forecasting.

Spatiotemporal Imputation with Graph-Informed Flow Matching Diffusion convolutional recurrent neural network: Data-driven traffic forecasting

Reference 25

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Observation 957973b9-431e-44b5-9b48-c405b834d230 · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 26

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Observation 3ddbd93f-bf07-494f-b33d-29fc31970e19 · outbound

This paper cites PriSTI : A conditional diffusion framework for spatiotemporal imputation.

Spatiotemporal Imputation with Graph-Informed Flow Matching PriSTI : A conditional diffusion framework for spatiotemporal imputation

Reference 27

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Observation 0f2b4275-d29c-4386-a338-e3f47cc6aa47 · outbound

This paper cites Flowing from words to pixels: A noise-free framework for cross-modality evolution.

Spatiotemporal Imputation with Graph-Informed Flow Matching Flowing from words to pixels: A noise-free framework for cross-modality evolution

Reference 28

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Observation d1a06c30-eebb-4dd3-a50c-32e75e383ea6 · outbound

This paper cites Flow straight and fast: Learning to generate and transfer data with rectified flow.

Spatiotemporal Imputation with Graph-Informed Flow Matching Flow straight and fast: Learning to generate and transfer data with rectified flow

Reference 29

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Observation 00f92311-4ca4-454f-8e2d-765b7915476a · outbound

This paper cites Naomi: Non-autoregressive multiresolution sequence imputation.

Spatiotemporal Imputation with Graph-Informed Flow Matching Naomi: Non-autoregressive multiresolution sequence imputation

Reference 30

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Observation 3ace30c1-e723-4eff-9098-1d95ce762ab2 · outbound

This paper cites See further when clear: Curriculum consistency model.

Spatiotemporal Imputation with Graph-Informed Flow Matching See further when clear: Curriculum consistency model

Reference 31

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Observation 0d0d3495-ff24-4d40-b273-7b79222e4ce3 · outbound

This paper cites A spatiotemporal industrial soft sensor modeling scheme for quality prediction with missing data.

Spatiotemporal Imputation with Graph-Informed Flow Matching A spatiotemporal industrial soft sensor modeling scheme for quality prediction with missing data

Reference 32

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Observation a3ba62c2-b5d0-4ce9-b539-0c47cc87c15b · outbound

This paper cites Learning to reconstruct missing data from spatiotemporal graphs with sparse observations.

Spatiotemporal Imputation with Graph-Informed Flow Matching Learning to reconstruct missing data from spatiotemporal graphs with sparse observations

Reference 33

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Observation ac7f74fa-17b3-43aa-a6ef-69949727770e · outbound

This paper cites Graph-based forecasting with missing data through spatiotemporal downsampling.

Spatiotemporal Imputation with Graph-Informed Flow Matching Graph-based forecasting with missing data through spatiotemporal downsampling

Reference 34

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Observation 249e2e09-b8b6-43d8-9b54-d8baab215609 · outbound

This paper cites L., Lenssen, J.

Spatiotemporal Imputation with Graph-Informed Flow Matching L., Lenssen, J

Reference 35

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:2ecb32d50bfeca8af72b657e87b8cbbaa439cb45cbe8f50381beaf366d5c85d8

Observation 0d1ffbc8-2129-4cf2-8d07-1550251b81f6 · outbound

This paper cites V., Mohamed, S., and Marwala, T.

Spatiotemporal Imputation with Graph-Informed Flow Matching V., Mohamed, S., and Marwala, T

Reference 36

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:244c205c44e0df7779d2fdb928e1d710bdb681009b8454785cbc57f9f486ab8f

Observation 643b378e-a02a-4d95-92e9-d4d0f0cb66ee · outbound

This paper cites Spatio-temporal graph scattering transform.

Spatiotemporal Imputation with Graph-Informed Flow Matching Spatio-temporal graph scattering transform

Reference 37

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:4d90c07829699742870a2467986872014bf52d299ceab56ce4dd9c8a0077d6ad

Observation 622c62ae-c20c-424c-b647-2c3ea98ee124 · outbound

This paper cites R., El-Kadi, A., Masters, D., Ewalds, T., Stott, J., Mohamed, S., Battaglia, P., et al.

Spatiotemporal Imputation with Graph-Informed Flow Matching R., El-Kadi, A., Masters, D., Ewalds, T., Stott, J., Mohamed, S., Battaglia, P., et al

Reference 38

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:230941556ff8db0e22aeb85bf54daf85dd60cc6718f01057716a6a47d99261d6

Observation f0e827b5-ccc6-4a5c-ae30-92d30a4d77b1 · outbound

This paper cites Time-varying graph signal reconstruction.

Spatiotemporal Imputation with Graph-Informed Flow Matching Time-varying graph signal reconstruction

Reference 39

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:5621edff0654621c7dc1e65f56dc8a044eca541ca2c7a865958806e943d21ac4

Observation 47f36d82-b84c-4d43-ba82-5fe3d8499268 · outbound

This paper cites High-resolution image synthesis with latent diffusion models.

Spatiotemporal Imputation with Graph-Informed Flow Matching High-resolution image synthesis with latent diffusion models

Reference 40

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:8b2a9b48933711af335a8007d11021dadd71dbbde2a91832d8ce9b10151f20d4

Observation fd1edc64-11ae-4621-96ed-78348c31c727 · outbound

This paper cites I., Chamberlain, B.

Spatiotemporal Imputation with Graph-Informed Flow Matching I., Chamberlain, B

Reference 41

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:65916de0617e02adc3e5b7715b7c570c57371625820ad7dc05b27a3ac4b37940

Observation 7704a223-7c34-46bd-ae6f-125a1abc7eb7 · outbound

This paper cites Deep unsupervised learning using nonequilibrium thermodynamics.

Spatiotemporal Imputation with Graph-Informed Flow Matching Deep unsupervised learning using nonequilibrium thermodynamics

Reference 42

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:42b77a7f0f8c1ca37322a0f0144573f1d2fde710d499f92a09c62b5d8a118f03

Observation 1d9fdc20-357b-4cf1-b373-f1e01972bff9 · outbound

This paper cites A., and Nepomuceno-Chamorro, I.

Spatiotemporal Imputation with Graph-Informed Flow Matching A., and Nepomuceno-Chamorro, I

Reference 43

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:b4c678637c10eb226b68f4d3776ae947c90d844fda5962206de4946fe28d1722

Observation 0fe5d9a3-95fc-4960-b4de-37038ff09aa7 · outbound

This paper cites P., Kumar, A., Ermon, S., and Poole, B.

Spatiotemporal Imputation with Graph-Informed Flow Matching P., Kumar, A., Ermon, S., and Poole, B

Reference 44

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:bc9d9899131b8c6e4f400b4de100ed35c4098450ababbf42c64c1e162b7d908f

Observation 620181a1-e0b2-4e0b-b349-1b68413d8a7e · outbound

This paper cites Consistency models.

Spatiotemporal Imputation with Graph-Informed Flow Matching Consistency models

Reference 45

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:2c53649fe10e2ddd388006f5cf932a3d6705b0c742924fb4ae1e66237bacef47

Observation e924571a-64f2-45d0-acc0-5260492775ff · outbound

This paper cites S., Chi, E.

Spatiotemporal Imputation with Graph-Informed Flow Matching S., Chi, E

Reference 46

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:3c2904255cc974a28521cd1f09339b001ed1877a129648e24141bbf59eb24414

Observation bc651acc-ace6-430e-9085-2092318e3a07 · outbound

This paper cites CSDI : Conditional score-based diffusion models for probabilistic time series imputation.

Spatiotemporal Imputation with Graph-Informed Flow Matching CSDI : Conditional score-based diffusion models for probabilistic time series imputation

Reference 47

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:e1c10355e9cefbb993d2f0db50964698900831d74ae44e858ee5f6b375d948f8

Observation 85d04889-3db4-4e5c-8ef0-914008d793f2 · outbound

This paper cites Improving and generalizing flow-based generative models with minibatch optimal transport.

Spatiotemporal Imputation with Graph-Informed Flow Matching Improving and generalizing flow-based generative models with minibatch optimal transport

Reference 48

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:1efc50aac36a7c0f7f6e0b3b90f470787773f8011b65734a46f673a4ea09c53e

Observation 81d5c483-d473-4cba-baa4-c94c683ec7b7 · outbound

This paper cites N., Kaiser, ., and Polosukhin, I.

Spatiotemporal Imputation with Graph-Informed Flow Matching N., Kaiser, ., and Polosukhin, I

Reference 49

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:db122d78d5020b37f4106b6999c26fa4c6ad4909dfe18999d3ccc36fa66813f2

Observation e326c2e2-6ac2-41fe-8c7f-bdf71843bee3 · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 50

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:7907a4bc079b2a44f7cb40ef1861af44472e29f0cfe7fd57ef2357c146525883

Observation 917f37d6-9ef9-4935-a948-95f3c2e7f149 · outbound

This paper cites Transformers in time series: A survey.

Spatiotemporal Imputation with Graph-Informed Flow Matching Transformers in time series: A survey

Reference 51

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:62c25f8117ce60758aef7fdef30415d902e77ff61ff47fd874f028ed26a6dc7f

Observation 2bfd88d3-4dc3-4cfa-bac8-a38479488020 · outbound

This paper cites Simplifying graph convolutional networks.

Spatiotemporal Imputation with Graph-Informed Flow Matching Simplifying graph convolutional networks

Reference 52

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:ebce327e6fbf4d229f65f6b92d425a676542d00a9ae9b18a5e2f48c90facbce3

Observation e71bdb90-de5e-4ddc-ab24-f3f13329abfb · outbound

This paper cites Diffusion models: A comprehensive survey of methods and applications.

Spatiotemporal Imputation with Graph-Informed Flow Matching Diffusion models: A comprehensive survey of methods and applications

Reference 53

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:760dccb8a8470bc3f9c0c5f19ed463cae6b1fec85e18f70b3ace29b27db0f151

Observation 91723f39-dece-4914-9b0d-3b50173eefb1 · outbound

This paper cites ST-MVL : Filling missing values in geo-sensory time series data.

Spatiotemporal Imputation with Graph-Informed Flow Matching ST-MVL : Filling missing values in geo-sensory time series data

Reference 54

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:3f11e099fe60fb6e38aa1d9f3a48f07e63f5bf5560f96e8a158e0be8d7394995

Observation 6cf1aad0-e57a-4072-a851-9489bbd1428a · outbound

This paper cites Forecasting fine-grained air quality based on big data.

Spatiotemporal Imputation with Graph-Informed Flow Matching Forecasting fine-grained air quality based on big data

Reference 55

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:22c85b96532d3e3c8243646615f05053d0139a3c344850e11f29c911eb8cdd2d

Observation d32113e2-95ae-48dc-9b5f-6c731012cf66 · outbound

This paper cites Informer: Beyond efficient transformer for long sequence time-series forecasting.

Spatiotemporal Imputation with Graph-Informed Flow Matching Informer: Beyond efficient transformer for long sequence time-series forecasting

Reference 56

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:7fb16e59fc347309e2de9685e285623b86fada73e03ed464f1ee67b572396183

Observation f436a3c1-aad1-4e75-82ee-26a127b247ca · outbound

This paper cites and Chi, Eric C.

Spatiotemporal Imputation with Graph-Informed Flow Matching and Chi, Eric C

Reference 57

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:f7e3918c43d8991f4c7ac14cf056cadb24b51de8da672cd368e2f274262b5161

Observation db30f11f-d52c-4ca8-80f4-cf518ec286fc · outbound

This paper cites International Conference on Machine Learning , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Machine Learning , year=

Reference 58

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:b9d859f2012de0bb0fb81f347bbf4206c35e6afb6bfee5d436bd06c323d827c6

Observation 59e88e00-255f-4c78-bfea-08cfd8c3a5ab · outbound

This paper cites ACM SIGKDD International Conference on Knowledge Discovery and Data Mining , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching ACM SIGKDD International Conference on Knowledge Discovery and Data Mining , year=

Reference 59

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:313097e72ac4f0f836b24fe43314383fdbbda34d316eea33320dcb36cda22414

Observation eb873a05-d9ea-439c-bb98-67c77ff9bcd1 · outbound

This paper cites ACM SIGKDD Conference on Knowledge Discovery and Data Mining , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching ACM SIGKDD Conference on Knowledge Discovery and Data Mining , year=

Reference 60

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:769f4347ebbcb9f6c6cdace01aeda7d60502c97e858b94e0cb9ea954f8be2113

Observation 0872d121-5664-42eb-b38d-7df55c76928b · outbound

This paper cites Advances in Neural Information Processing Systems , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Advances in Neural Information Processing Systems , year=

Reference 61

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:3390fd8114a81fcee75700c748333d272499d83749486a5e84a71664096e0fd8

Observation 306002b2-d60d-4035-92b7-e60a8d8d73d5 · outbound

This paper cites Transportation Research Record , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Transportation Research Record , volume=

Reference 62

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:61052a0cf3b441f1566f0d3cd8b66a34254988b859f944c3c345ce37e9fcede1

Observation 94a9be67-1f02-4735-84c2-05fcb6aa4226 · outbound

This paper cites IEEE/CVF Conference on Computer Vision and Pattern Recognition , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE/CVF Conference on Computer Vision and Pattern Recognition , year=

Reference 63

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:c5c79f26168b10a9eace66e79ef11abd3a8d68c39d7591898c2f74526148e285

Observation 5aa580ed-b41c-42c8-87fd-34d7a39fe493 · outbound

This paper cites Knowledge-Based Systems , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Knowledge-Based Systems , volume=

Reference 64

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:29458bb9a38f14dab9810469c5244bee619e5fa82aee8b56e6d190dc3c7d2e27

Observation ce212a7c-3b2f-4ffa-886e-c46576a7c72f · outbound

This paper cites Advances in Neural Information Processing Systems , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Advances in Neural Information Processing Systems , year=

Reference 65

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:d5d3bdc4e8a49c6f23c52a77b3a5bfd2c2865e7971fc04f0a1da4e559d7d6ffd

Observation c98b2b43-6297-4541-a9d7-298dbb191363 · outbound

This paper cites Advances in Neural Information Processing Systems , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Advances in Neural Information Processing Systems , year=

Reference 66

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:a8d52e4b8299fb87c7c6221dbf308f0df9048b44cf519c91746f179d7239e2c7

Observation ba9d86fd-0928-497e-81f8-61099efeaf80 · outbound

This paper cites IEEE Signal Processing Magazine , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Signal Processing Magazine , volume=

Reference 67

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:e920ab7332a2557fd2eedb5f50a7c73470c77dd3c46091ae1363f5c13a95adbf

Observation be015ef8-f64d-4fba-9262-eb87fa65c52d · outbound

This paper cites IEEE Transactions on Instrumentation and Measurement , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Transactions on Instrumentation and Measurement , volume=

Reference 68

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:7df76b35c3cf953663d912382dbeaa3f22c8f52e028de1b42e1092dbd45b2686

Observation f8ed7540-6ba9-48f5-9794-f62ece3927cb · outbound

This paper cites International Conference on Machine Learning , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Machine Learning , year=

Reference 69

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:8ba8fd0ef496998f04123a59fe1917d5ab36a0697792ea22db559a3199f1edcb

Observation f78c516f-3197-47c1-bfbb-abc565d70f73 · outbound

This paper cites IEEE Transactions on Knowledge and Data Engineering , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Transactions on Knowledge and Data Engineering , volume=

Reference 70

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:db8c46d2682b1785f1216672205cf0a9b512627fa3e9a8fc962bf64ee12ee320

Observation fccb6195-1e41-4f67-961f-009cb3c19bbd · outbound

This paper cites IEEE Data Science Workshop , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Data Science Workshop , year=

Reference 71

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:5bafc771bfb1ea6fc6186774a01af71a3ab684172efce07e39f661f358daeafd

Observation d41711c9-27d0-4aca-8d86-8592a4b52fcb · outbound

This paper cites Learning on Graphs Conference , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Learning on Graphs Conference , year=

Reference 72

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:984fac895e17d1b678a9466a8b1c153b52e650f7092e9fa5c14a8cbecdd2bec2

Observation 76058b37-e3fa-4e2c-bacb-f18a71c0fe40 · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 73

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:d735d63f0f2ad8349902d1e3e059b244d16715fba78217c107aa47e3456b2929

Observation f6ae9903-b0bc-4f27-bbc8-81571a3deaa7 · outbound

This paper cites Advances in Neural Information Processing Systems , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Advances in Neural Information Processing Systems , year=

Reference 74

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:c71d734e1c1942daf8eca2f3c97800b2cb0213b67cdc42d9102eb5352622a370

Observation 09473052-45cc-4ac4-8d7a-4f8c8ea4cc29 · outbound

This paper cites Expert Systems with Applications , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Expert Systems with Applications , volume=

Reference 75

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:ee6e5888ac812ae36e7f7a486b49e0d958e8e2dff061ff59a8c9413d93abff63

Observation d5a2b849-a8e6-4c71-b32d-86fd7dcbbd0d · outbound

This paper cites Transactions on Machine Learning Research , pages=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Transactions on Machine Learning Research , pages=

Reference 76

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:9b094b36970364565bae58d966de18ead73a3c6fc52be53c676adbf958fe175c

Observation 69a7fe69-e985-4d1d-93aa-86d6531a452a · outbound

This paper cites International Conference on Machine Learning , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Machine Learning , year=

Reference 77

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:8f7b4a414c2c9dca8192c2fc7608f853f11100568e67f8e221ddb7fdd4fec94e

Observation f3ab7790-f049-45de-81e8-926ff8c90c3c · outbound

This paper cites Flow Matching Guide and Code.

Spatiotemporal Imputation with Graph-Informed Flow Matching Flow Matching Guide and Code

Reference 78

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local_arxiv, observed 2026-07-02T11:56:55.616340Z

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:6a564febe668e5e74a78e947b7c025d0a17266d8a59b7934b47a03cdb7f145bb

Observation 1c6952ef-4c52-4e5e-9650-f38b9af78dd7 · outbound

This paper cites International Conference on Learning Representations , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Learning Representations , year=

Reference 79

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Observation 7c84754a-40e7-410f-be1a-090986289be2 · outbound

This paper cites AAAI Conference on Artificial Intelligence , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching AAAI Conference on Artificial Intelligence , year=

Reference 80

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Observation 47e69c05-e7d0-4b32-a055-9ef72898ff7d · outbound

This paper cites International Joint Conference on Artificial Intelligence , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Joint Conference on Artificial Intelligence , year=

Reference 81

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Observation 079c5932-8fc1-428f-830e-312478d34148 · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 82

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Observation 7292b318-7601-49c5-bad3-5e812aad8a50 · outbound

This paper cites Advances in Neural Information Processing Systems , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Advances in Neural Information Processing Systems , year=

Reference 83

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Observation d1beee8f-0fa4-42af-99ca-dac7d791825a · outbound

This paper cites an unresolved cited work.

Spatiotemporal Imputation with Graph-Informed Flow Matching Unresolved cited work

Reference 84

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Observation eb0b1844-b888-4d15-be5b-d187316bccb3 · outbound

This paper cites IEEE Transactions on Knowledge and Data Engineering , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Transactions on Knowledge and Data Engineering , volume=

Reference 85

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Observation 4d2ef641-9dec-467e-9820-c4ace5829b2d · outbound

This paper cites ACM Computing Surveys , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching ACM Computing Surveys , volume=

Reference 86

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Observation 89ed0c3a-fd3c-47c3-bc3b-25e1882b8a79 · outbound

This paper cites IEEE Transactions on Pattern Analysis and Machine Intelligence , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Transactions on Pattern Analysis and Machine Intelligence , volume=

Reference 87

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Observation 78f4e42f-ae18-46e6-b22e-88605aaf2576 · outbound

This paper cites Nature , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Nature , volume=

Reference 88

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Observation f9c00052-5f69-49de-a3dd-bf1454974d84 · outbound

This paper cites BMC Medical Informatics and Decision Making , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching BMC Medical Informatics and Decision Making , volume=

Reference 89

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:cc5810bd11e8e0b8b1d9e193579a6a87a7325205b0557afce9bd9ce4c6480dee

Observation 956e2722-b19c-4eba-b871-355dc05c36ec · outbound

This paper cites Current Science , pages=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Current Science , pages=

Reference 90

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Observation 577074ae-6fbc-4bd9-91c4-d5a722e5935d · outbound

This paper cites Time Series Analysis of Irregularly Observed Data , pages=.

Spatiotemporal Imputation with Graph-Informed Flow Matching Time Series Analysis of Irregularly Observed Data , pages=

Reference 91

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Observation f3cc481b-f022-470b-b695-e9b22ec640b8 · outbound

This paper cites IEEE/CVF Conference on Computer Vision and Pattern Recognition , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE/CVF Conference on Computer Vision and Pattern Recognition , year=

Reference 92

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:6a049f846e5b5be0b621ec80d6262c7e883576a2534b0e8f36da2fa585fa4ecc

Observation 125beb4a-50dd-4f43-adf8-77368515351b · outbound

This paper cites IEEE Journal of Selected Topics in Signal Processing , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Journal of Selected Topics in Signal Processing , volume=

Reference 93

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:b3649c8c8062870d1b5929e72580263eadf025fca5116cb6cc3feb7fc50d1759

Observation 00ebe70b-6372-4b14-99e9-29df5d6514e4 · outbound

This paper cites Reconstruction of time-varying graph signals via.

Spatiotemporal Imputation with Graph-Informed Flow Matching Reconstruction of time-varying graph signals via

Reference 94

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Observation 280e44ab-e9dc-41fc-9952-9a0cc04f960d · outbound

This paper cites International Conference on Learning Representations , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Learning Representations , year=

Reference 95

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:bb77dc7acd5e32e8e479216d4a9c6e86f9e609f158f44a6f748dcf36194dd756

Observation e4bf74ca-7374-45b3-b2aa-3c06e71e7855 · outbound

This paper cites International Conference on Learning Representations , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Learning Representations , year=

Reference 96

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:2a026fbce1bba3010a9a487faf9d9466ca3cf2e4c5ee8a470a8b825849d255d9

Observation 5951b8c1-597e-46f3-aad0-34a45d49357b · outbound

This paper cites ACM Computing Surveys , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching ACM Computing Surveys , volume=

Reference 97

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:76c05961e1707a6f33b4e839fe3b83475625e05fef4fb2dfaf5b0eec3d202efa

Observation 97db04b4-9bfc-4db0-b045-4a530c87331b · outbound

This paper cites IEEE Transactions on Knowledge and Data Engineering , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching IEEE Transactions on Knowledge and Data Engineering , volume=

Reference 98

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:91a5245b28047d2f18e86ca65c320339503724a569b7b2f4109f539054f7cfd7

Observation 8c314d77-f987-4346-b2aa-e8d76639d030 · outbound

This paper cites ACM Computing Surveys , volume=.

Spatiotemporal Imputation with Graph-Informed Flow Matching ACM Computing Surveys , volume=

Reference 99

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source=arxiv_source observed=2026-06-28T02:41:55.647924Z digest=sha256:62ffdfd0df829d687b751006889474d96b826aee1084acd878985c36c42674bd

Observation ed4717ba-7d2e-45ed-8fd6-79165e2ed41f · outbound

This paper cites International Conference on Learning Representations , year=.

Spatiotemporal Imputation with Graph-Informed Flow Matching International Conference on Learning Representations , year=

Reference 100

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