Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-03T20:49:05.860034Z
Paper Citation Record · LEDGER
As of 4 August 2026, this Paper Citation Record lists 46 of 46 outbound references and 0 inbound Pith citation observations for arXiv:2511.18737.
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 2026-08-03T20:49:05.860034Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-04T06:34:03.388597+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
46 of 46 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 794b941d-126d-4603-baee-65a1420f194f · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Improved algorithms for linear stochastic bandits
Reference 1
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Observation 7d8adf75-c998-45b9-9fd6-d78065639dfb · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Regularized estimation in sparse high-dimensional time series models.The Annals of Statistics, 43(4):1535–1567, 2015
Reference 2
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Observation 6e380750-1a71-4a6e-b933-7d92884da551 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Network granger causality with inherent grouping structure.Journal of Machine Learning Research, 16(13):417–453, 2015
Reference 3
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Observation 93523de5-1fc8-4a68-9fa5-278d59a0982c · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Linearized aerodynamic and control law models of the x-29a airplane and comparison with flight data.National Aeronautics and Space Administration, Office of Management
Reference 4
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Observation 502f1498-2284-45c3-acaf-66502bcc412a · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Oxford University Press, 2013
Reference 5
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Observation 6c06681e-4c18-4e9e-a7de-575d87461bec · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Campi and E
Reference 6
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Observation 0c3445a4-63fb-4ec5-b47e-424dddefe47a · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Ospina, Fabio Pasqualetti, and Emiliano Dall’Anese
Reference 7
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Observation 3c9b3800-f083-44b2-ba32-1300fbf5181c · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Cormen, Charles E
Reference 8
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Observation 575e57f5-f344-4a49-aa15-7cafddf162ff · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Learning sparse dynamical systems from a single sample trajectory
Reference 9
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Observation ab780084-e1ef-4372-a4a6-45945cfce915 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Telesford, Alfred B
Reference 10
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Observation ee4c56d0-e881-4685-98ac-6eff9d8b00fa · outbound
Joint learning of a network of linear dynamical systems via total variation penalization A tail inequality for quadratic forms of subgaus- sian random vectors.Electronic Communications in Probability, 17:1–6, 2012
Reference 11
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Observation fe7356ad-c188-427c-a448-3a14ea541769 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Optimal rates for total variation denoising
Reference 12
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Observation bd843fa0-5e4e-474e-8276-7bcaa4a11799 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Finite-time identification of stable linear systems opti- mality of the least-squares estimator
Reference 13
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Observation 93257be7-526e-4082-8c1c-fa132f0fe93b · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Oracle inequalities for high dimensional vector autoregressions.Journal of Econometrics, 186(2):325–344, 2015
Reference 14
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Observation b645bd97-999f-4d46-b773-8600f6da59d1 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Suprema of chaos processes and the restricted isometry property.Communications on Pure and Applied Mathematics, 67(11):1877– 1904, 2014
Reference 15
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Observation f1a6045f-132d-4b0f-8dea-d276cb593368 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Asymptotic properties of general autoregressive models and strong consistency of least-squares estimates of their parameters.Journal of Multivariate Analysis, 13(1):1–23, 1983
Reference 16
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Observation c6b3fc7c-0767-46ae-9a03-575552ba5648 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Extended least squares and their applications to adaptive control and prediction in linear systems.IEEE Transactions on Automatic Control, 31(10):898–906, 1986
Reference 17
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Observation 7eac6bbe-b7af-498c-9a17-84be690521d0 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Least Squares Estimates in Stochastic Regression Models with Applications to Identification and Control of Dynamic Systems.The Annals of Statistics, 10(1):154 – 166, 1982
Reference 18
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Observation 82089b0a-bbdc-4611-96b2-3de22e6f22af · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Variable fusion: A new adaptive signal regression method.Dept
Reference 19
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Observation d9f6159e-b56d-43f8-918c-1942b11838f5 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Graph-based regularization for regression problems with alignment and highly corre- lated designs.SIAM Journal on Mathematics of Data Science, 2(2):480–504, 2020
Reference 20
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Observation 10c377b3-5034-4285-abe3-6ac4c54295fb · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Wainwright
Reference 21
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Observation 0878da73-7668-4795-ac95-2f95a200a654 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Estimating structured vector autoregressive models
Reference 22
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Observation 941baf9f-fc8d-47f5-98f6-241bc4c1c9db · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Joint learning of linear time-invariant dynamical systems.Automatica, 164:111635, 2024
Reference 23
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Observation 4ce1a455-9546-4652-a919-5958a3d9d0ef · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Prediction bounds for higher order total variation regularized least squares.The Annals of Statistics, 49(5):2755–2773, 2021
Reference 24
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Observation 7ffffb87-708d-4d7b-a189-bf0678c4d0b5 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Wainwright, and Bin Yu
Reference 25
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Observation 5c99f3a4-85f7-4a6e-929f-167d80de8d9f · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Total variation classes beyond 1d: Minimax rates, and the limitations of linear smoothers.Advances in Neural Information Processing Systems, 29:3521–3529, 2016
Reference 26
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Observation 587462a2-4f18-4dbb-a362-6d2097d98e27 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Near optimal finite time identification of arbitrary linear dynamical systems
Reference 27
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Observation 08ec994b-19f3-40d4-8f4f-4d223da868e9 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Finite time identification in unstable linear systems.Automatica, 96:342–353, 2018
Reference 28
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Observation 3f80f52f-cfbb-4b68-9ead-1aa7bfbcf46e · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Jordan, and Benjamin Recht
Reference 29
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Observation 9af783aa-162b-4c80-a2cb-046bf6f476c0 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Kim, Harang Ju, Dale Zhou, Cassiano Becker, Fabio Pasqualetti, George J
Reference 30
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Observation 50af4fa8-4eb0-4a7e-9cce-f91a280e45c3 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Wellesley-Cambridge Press, Philadel- phia, PA, 2007
Reference 31
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Observation 6cd08630-48e9-4e22-a661-391864416abf · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Springer, 2005
Reference 32
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Observation 00ca668d-993e-4bbb-b4e1-3c14186dcc65 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Springer, 2014
Reference 33
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Observation 0b1b3d47-2f41-4768-8806-941127e9762b · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Stanford University, 2011
Reference 34
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Observation 3b111177-7d1f-4dc6-b27e-8234fa3cc34c · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Unresolved cited work
Reference 35
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Observation e64d9c8b-9d87-45ea-aeec-e62c7100f0ad · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Joint estimation of smooth graph signals from partial linear measurements
Reference 36
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Observation 1c6605be-09d8-4b12-8c57-3e79d728c72e · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Joint learning of linear dynamical systems under smoothness constraints
Reference 37
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Observation b59fa29b-0ffe-437c-bf12-d5305557e2e8 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Learning linear dynamical systems under convex constraints
Reference 38
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Observation 25c82c57-374c-45b3-9370-8fcd5b858597 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Cambridge University Press, 2025
Reference 39
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Observation bfbdb2d8-5a8b-48f5-ad39-1bc046909021 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Vidyasagar and R.L
Reference 40
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Observation fff1a4a4-e73c-4769-b449-73c8506c3b6c · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Unresolved cited work
Reference 41
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Observation e55bb0f6-bb1f-4569-b4e2-8cdbf5be9328 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Fedsysid: A federated approach to sample-efficient system identification
Reference 42
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Observation 4708afba-6a14-4f57-85cf-e197ab869287 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Trend filtering on graphs.Journal of Machine Learning Research, 17(105):1–41, 2016
Reference 43
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Observation a51dddcd-24a8-43c6-90b5-59c0c44af3f9 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Learning the dynamics of autonomous linear systems from multiple trajectories
Reference 44
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Observation 0df65d8a-d867-465b-aa7f-bf75aaf2e88a · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Chiu, and Shreyas Sundaram
Reference 45
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Observation 5fd047c3-b5d3-44ca-8ada-34eba6089ab3 · outbound
Joint learning of a network of linear dynamical systems via total variation penalization Non-asymptotic identification of linear dynamical systems using multiple trajectories.IEEE Control Systems Letters, 5(5):1693–1698, 2020
Reference 46
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No inbound Pith citation observations are available.