Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-08T23:29:54.970180Z
Paper Citation Record · LEDGER
As of 13 August 2026, this Paper Citation Record lists 41 of 41 outbound references and 1 inbound Pith citation observation for arXiv:2502.04131.
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 2026-08-08T23:29:54.970180Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-13T06:32:02.005865+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-06T19:52:25.828589Z
A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-06T19:52:25.924217Z
41 of 41 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 7f030d39-eefd-40f0-84ab-3d856aba0890 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Learning similarities between irregularly sampled short multivariate time series from ehrs,
Reference 1
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Observation db14d5a2-c5af-4624-a183-9847ee8bda2d · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Arma modelled time-series classification for structural health monitoring of civil infrastructure,
Reference 2
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Observation 68c8e93c-1efb-4ee1-a008-155602425cd1 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Emotion recognition from speech signals via a probabilistic echo-state network,
Reference 3
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Observation ed52b187-52fe-4df2-8dca-7435705b87c0 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Multi- variate time-series classification using the hidden-unit logistic model,
Reference 4
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Observation f42f6e6d-aec3-4969-982c-a07d54829cd1 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Reservoir computing approaches for representation and classification of multivari- ate time series,
Reference 5
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Observation 6051d986-ae66-4fb7-a496-c4897d90e802 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Multiclass sparse centroids with application to fast time series classification,
Reference 6
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Observation 4406c14a-857a-493b-aa78-6d751b58d47b · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Classification framework for partially observed dynamical systems,
Reference 7
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Observation 7ca5b8ea-a8a9-4dcd-acc5-e2a272a88ccd · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Aleatory and epistemic uncertainty in probability elicita- tion with an example from hazardous waste management,
Reference 8
Source-reported events for the cited work
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Observation 02155094-db9c-47e0-b057-0ccc7894ba7c · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Aleatory or epistemic? does it matter?,
Reference 9
Source-reported events for the cited work
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Observation d3867204-a1af-4bdf-a250-f7d857e6e683 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Aleatoric and epistemic uncertainty in machine learning: an introduction to concepts and methods,
Reference 10
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Observation 6ea7b47b-31f2-4ab5-8508-5dba3217b267 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems On structural identifiability,
Reference 11
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Observation 6018e0ee-6a23-464a-a6ec-d453b7b61920 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems System identifiability based on the power series ex- pansion of the solution,
Reference 12
Source-reported events for the cited work
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Observation aa63b52f-e2d5-41b6-8aac-8ad9f9236ba3 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems On the identifiability and distinguishability of nonlinear parametric models,
Reference 13
Source-reported events for the cited work
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Observation e61ccb9d-d31f-427a-a482-2a5f060fb0c4 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems New results for identifiability of nonlinear systems,
Reference 14
Source-reported events for the cited work
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Observation b241566d-ab88-4740-a63e-06c87ce4cdb3 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems State isomorphism approach to global identifi- ability of nonlinear systems,
Reference 15
Source-reported events for the cited work
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Observation 7b33bb7f-7bde-4bee-8919-801d67a9caff · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Existence and uniqueness of minimal realizations of nonlinear systems,
Reference 16
Source-reported events for the cited work
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Observation 4694447e-574f-4dc9-8ce5-e03b398ecc36 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Nonlinear observability, identifiability, and per- sistent trajectories,
Reference 17
Source-reported events for the cited work
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Observation d4044cce-e3d4-4d4a-a057-ba6b9ce14756 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems On global identifiability for arbitrary model parametrizations,
Reference 18
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Observation 3f4b8c9a-a08d-4012-8df2-0e33d5043a10 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems A priori parameter identi- fiability in models with non-rational functions,
Reference 19
Source-reported events for the cited work
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Observation 2fce606e-6e83-4249-a279-b5b0d3bb8761 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems On structural and practical identifiability,
Reference 20
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Observation b5cf21f4-6f56-4904-ae15-e398f3d9b89a · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Autorepar: A method to obtain identifiable and observable reparameterizations of dynamic models with mechanistic insights,
Reference 21
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Observation c49a7a56-613f-459a-83a8-4eaa6fa25d62 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Structural Identifiability of Dynamic Systems Biology Models,
Reference 22
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Observation 03ed9434-26fe-45b7-9b67-2c77e93e9b9c · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Finding and breaking lie symmetries: Implications for structural identifiability and observability in biological modelling,
Reference 23
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Observation 18018a37-8769-4809-b434-66ed2ed2633e · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Web-based structural identifiability analyzer,
Reference 24
Source-reported events for the cited work
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Observation f371002a-eb38-4163-9bfd-28799ca0ee64 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems On finding and using identifiable parameter combinations in nonlinear dynamic systems biology models and combos: a novel web implementation,
Reference 25
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Observation 8402e8bd-25a2-4039-ac3c-c527879eb6ed · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Differential elimination for dynamical models via projections with applications to structural identifiability,
Reference 26
Source-reported events for the cited work
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Observation aac14371-8431-4adc-9602-836409f086ce · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Benchmarking tools for a priori identifiability analysis,
Reference 27
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Observation 03c0b88f-fa03-43fd-b807-df407497e614 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems A bayesian framework for parameter estimation in dynamical models,
Reference 28
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Observation b55f18d2-c339-4f0f-b650-3053099d4495 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Bayesian parameter esti- mation for dynamical models in systems biology,
Reference 29
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Observation e952bc5c-39ad-47b9-8f18-ab39f4b83320 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Unresolved cited work
Reference 30
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Observation cad4f81a-ceca-40f5-a1e7-3b2fb498eaf3 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Usefulness of the two-compartment open model in pharmacokinetics,
Reference 31
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Observation c2486960-9d86-45e3-81f6-e2dd2592b672 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Phys- iologically based pharmacokinetic (pbpk) modeling and simulation ap- proaches: A systematic review of published models, applications, and model verification,
Reference 32
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Observation b8412768-b324-4779-a46b-a6b361e34070 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Algorithms for the identifiable parameter combinations and parameter bounds of uniden- tifiable catenary compartmental models,
Reference 33
Source-reported events for the cited work
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Observation 7bfcfaa9-7861-44af-ab03-9ca0ab92c10c · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Learning pharmacokinetic models for in vivo glucocorticoid activation,
Reference 34
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Observation 62821e4a-9204-45b8-bf07-71f696e70869 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Identifiable reparametrizations of lin- ear compartment models,
Reference 35
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Observation ee14ac7c-bf7a-4e76-bb51-aa764fd93b18 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Kinetics of nutrient-limited transport and microbial growth,
Reference 36
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Observation 603d8bd0-2047-46e3-9727-6dccb1c9a178 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems On the practical identifiability of microbial growth mod- els incorporating michaelis-menten type nonlinearities,
Reference 37
Source-reported events for the cited work
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Observation 504ae8bb-444d-4415-8321-a04f87422271 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Structural identifiability of the pa- rameters of a nonlinear batch reactor model,
Reference 38
Source-reported events for the cited work
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Observation 8d28ecbb-66b1-4330-851f-c388fa636858 · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Extensions to a procedure for gener- ating locally identifiable reparameterisations of unidentifiable systems,
Reference 39
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Observation 1420005e-a836-42c3-891f-67278c0abcfc · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Physics-informed neural networks: A deep learning framework for solving forward and inverse problems involving nonlinear partial differential equations,
Reference 40
Source-reported events for the cited work
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Observation da44c3e3-4be1-4aef-8845-e179f2bd022b · outbound
On the importance of structural identifiability for machine learning with partially observed dynamical systems Deep learning for time series classification: a review,
Reference 41
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Observation dcbf8d98-625f-470a-9f21-58f61a7eda61 · inbound
Structural Identifiability of Compartmental Models: Recent Progress and Future Directions On the importance of structural identifiability for machine learning with partially observed dynamical systems
Reference 41
Source-reported events for the cited work
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