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Source: paper_references, paper_reference_links, observed 2026-08-16T00:30:39.934197Z
Paper Citation Record · LEDGER
As of 18 August 2026, this Paper Citation Record lists 68 of 68 outbound references and 0 inbound Pith citation observations for arXiv:2608.11831.
A citation records a reference. It does not transfer a finding from one paper to another.
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Source: paper_references, paper_reference_links, observed 2026-08-16T00:30:39.934197Z
One-hop event checks from named stored sources.
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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
68 of 68 outbound references displayed
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Observation 22a43843-bf8c-48e3-9c1b-fb1aec3a4e1d · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Adams and J.J.F
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Álvarez, Lorenzo Rosasco, and Neil D
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs An extension of a bound for functions in sobolev spaces, with applications to (m, s)-spline interpolation and smoothing.Numerische Mathematik, 107(2):181–211, 2007
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Extension of sampling inequalities to sobolev semi-norms of fractional order and derivative data.Numerische Mathematik, 121(3):587–608, 2012
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Theory of reproducing kernels.Transactions of the American Mathematical Society, 68:337–404, 1950
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Reference 7
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Observation 8c8ba9ad-aac2-4be3-b49e-2df77c6e3cfc · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Kernel methods are competitive for operator learning.Journal of Computational Physics, 496:112549, 2024
Reference 9
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Observation 9f0fdc64-8b8f-46ca-a95d-878dca99ecbd · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Brezis.Functional Analysis, Sobolev Spaces and Partial Differential Equations
Reference 10
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Vicon: Vision in- context operator networks for multi-physics fluid dynamics prediction.arXiv preprint arXiv:2411.16063, 2024
Reference 11
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Carmeli, E
Reference 12
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Conway.A Course in Functional Analysis, volume 96 ofGraduate Texts in Mathematics
Reference 14
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Springer, New York, 3 edition, 2002
Reference 15
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Duffy.Green’s Functions with Applications
Reference 16
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Evans.Partial Differential Equations, volume 19 ofGraduate Studies in Mathematics
Reference 17
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Cambridge University Press, 2022
Reference 18
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Vector-valued gaussian processes for ap- proximating divergence- or rotation-free vector fields.Journal of Machine Learning Research, 27(74):1– 36, 2026
Reference 19
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Observation 01fed0f2-9252-4e79-b3d1-3ef514e19497 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Kernel methods for bayesian elliptic inverse problems on manifolds.SIAM/ASA Journal on Uncertainty Quantification, 8(4):1414–1445, 2020
Reference 20
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Reference 21
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Sparse learning of dynamical systems in RKHS: An operator-theoretic approach
Reference 22
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Data-efficient kernel methods for learning differential equations and their solution operators: Algorithms and error analysis, 2025
Reference 23
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Minimax optimal kernel operator learning via multilevel training
Reference 24
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Mionet: Learning multiple-input operators via tensor product
Reference 25
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Observation 79a812b8-641c-44b4-b366-c67099895a1e · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Time-series forecasting and refine- ment within a multimodal pde foundation model.Journal of Machine Learning for Modeling and Com- puting, 6(2):77–89, 2025
Reference 26
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Observation fb9103af-5efc-4daa-857a-346014809f5b · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Operator-valued kernels for learning from functional response data.Journal of Machine Learning Research, 17(20):1–54, 2016
Reference 27
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Observation 84f2a63d-d905-4edd-ae05-472cea30ffb9 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Kernel-based operator learning: Error analysis, budget allocation, and a physics- informed extension, 2026
Reference 28
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Operator learning with pca-net: upper and lower complexity bounds.J
Reference 29
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Observation 620abd23-7f25-4923-a710-4491172c7c6c · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Fourier Neural Operator for Parametric Partial Differential Equations
Reference 30
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Observation 95919763-5d60-44bc-9f0a-6c804b3fec7d · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Cauchy Random Features for Operator Learning in Sobolev Space
Reference 31
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Observation eb2c6457-af80-41ad-939e-9c3f7d43f8b6 · outbound
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Reference 32
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Observation 9a9e3029-a931-4261-9d11-23b2ca440eb6 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs BCAT: A Block Causal Transformer for PDE Foundation Models for Fluid Dynamics
Reference 33
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Observation 8348e237-d05c-4a72-a460-c9b52f8aa643 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Prose: Predicting multiple operators and symbolic expressions using multimodal transformers.Neural Networks, 180:106707, 2024
Reference 34
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Observation 4a8cf72e-a3db-438f-b96a-c1e666890c47 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Learning nonlinear operators via deeponet based on the universal approximation theorem of operators.Nature Machine Intelligence, 3(3):218–229, 2021
Reference 35
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Observation c58a1056-b220-47ae-8537-2efa2f86c6b9 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Optimal recovery of functions and their derivatives from Fourier coefficients prescribed with an error.Sbornik
Reference 36
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Observation 8eaece54-9ec6-4e39-bcb7-b3fef13afb6b · outbound
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Reference 37
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Op- erator learning with gaussian processes.Computer Methods in Applied Mechanics and Engineering, 434:117581, 2025
Reference 38
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Observation 8dd92b18-f125-4a22-94df-e1a2456dbd5f · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs A Multimodal PDE Foundation Model for Prediction and Scientific Text Descriptions
Reference 39
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Observation 58e96fa6-a386-49fe-87a4-cbe2a74e0b65 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Nelsen and Andrew M
Reference 40
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Observation 633c75b4-3b99-4308-a580-6a8f917944a0 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs On optimal recovery methods in hardy-sobolev spaces.Sbornik: Mathematics, 192(2):225, feb 2001
Reference 41
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Do ideas have shape? idea registration as the continuous limit of artificial neural networks.Physica D: Nonlinear Phenomena, 444:133592, 2023
Reference 42
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Cam- bridge Monographs on Applied and Computational Mathematics
Reference 43
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Observation caa26fb3-6b15-4885-8a9a-86747bb04cb8 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Robey and J
Reference 44
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Observation 7ddf708a-134b-4571-ae9d-3bd0097cde41 · outbound
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Towards a foundation model for partial differential equations: Multioperator learning and extrapolation.Physical Review E, 111(3):035304, 2025
Reference 46
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Reference 47
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Reference 48
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Non-local observations and information transfer in data assimilation.Frontiers in Applied Mathematics and Statistics, V olume 5 - 2019, 2019
Reference 49
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Reference 50
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Generalization bounds and statistical guarantees for multi-task and multiple operator learning with mno networks, 2026
Reference 51
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Reference 52
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Reference 53
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Reference 54
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Observation 8abfe6a0-c611-451d-948a-763a2972ac50 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs In-context operator learning with data prompts for differential equation problems.Proceedings of the National Academy of Sciences, 120(39):e2310142120, 2023
Reference 55
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Generalization guarantees for multi-input neural operator learning in sobolev spaces, 2026
Reference 57
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Reference 58
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Regularized random fourier features and finite element reconstruction for operator learning in sobolev space.Journal of Machine Learning for Modeling and Computing, 7(3):1–47, 2026
Reference 59
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Probabilistic operator learning: generative modeling and uncertainty quantification for foundation models of differential equations
Reference 60
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Observation 2e330d57-567b-4d35-b9e3-a6832fde2012 · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs Modno: Multi-operator learning with distributed neural operators.Computer Methods in Applied Mechanics and Engineering, 431:117229, 2024
Reference 61
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Observation f5905873-5681-4aeb-9120-01ab15ad980e · outbound
Kernel Methods for Learning Operators with Multiple Inputs and Outputs A discretization-invariant extension and analysis of some deep operator networks.Journal of Computational and Applied Mathematics, 456:116226, 2025
Reference 62
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs D2no: Efficient handling of heterogeneous input function spaces with distributed deep neural operators.Computer Methods in Applied Mechanics and Engineering, 428:117084, 2024
Reference 63
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Deeponet as a multi-operator extrapolation model: Distributed pretraining with physics-informed fine-tuning.Journal of Computa- tional Physics, page 114537, 2025
Reference 64
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Belnet: basis enhanced learning, a mesh-free neural operator.Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences, 479(2276):20230043, 2023
Reference 65
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Pi-mfm: Physics-informed mul- timodal foundation model for solving partial differential equations.arXiv preprint arXiv:2512.23056, 2025
Reference 66
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Kernel Methods for Learning Operators with Multiple Inputs and Outputs Ifx 0∈A S, then (7)A S =x 0 + kerL
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Reference 68
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No inbound Pith citation observations are available.