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Paper Citation Record · LEDGER

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs

As of 21 August 2026, this Paper Citation Record lists 34 of 34 outbound references and 0 inbound Pith citation observations for arXiv:2504.14930.

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measured 34 of 34 reference resolution

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34 of 34 outbound references displayed

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Outbound references

Observation 4c1953bf-5014-4ada-a60d-61ba62483dd0 · outbound

This paper cites Accelerating algebraic multigrid methods via artificial neural networks.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Accelerating algebraic multigrid methods via artificial neural networks

Reference 1

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This paper cites Algebraic multigrid schemes for high-order nodal discontinuous Galerkin methods.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Algebraic multigrid schemes for high-order nodal discontinuous Galerkin methods

Reference 2

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Observation c497719d-6ada-4dd9-907e-0a9fbc4afd8c · outbound

This paper cites iFEM: an innovative finite element methods package in MATLAB.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs iFEM: an innovative finite element methods package in MATLAB

Reference 3

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This paper cites Gaussian processes for machine learning.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Gaussian processes for machine learning

Reference 4

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This paper cites hypre: A library of high performance preconditioners.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs hypre: A library of high performance preconditioners

Reference 5

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Observation 2dd1eec5-1e84-4780-9740-aacd6fb3c430 · outbound

This paper cites Limitations of Bayesian leave-one-out cross-validation for model selection.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Limitations of Bayesian leave-one-out cross-validation for model selection

Reference 6

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Observation a1729acc-74bd-4674-9d20-3d5dd718fbdf · outbound

This paper cites Coarsening in algebraic multigrid using Gaussian processes.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Coarsening in algebraic multigrid using Gaussian processes

Reference 7

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Observation 96175272-6e79-4265-ae8d-69783c9f7e96 · outbound

This paper cites FP-AMG: FPGA-based acceleration frame- work for algebraic multigrid solvers.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs FP-AMG: FPGA-based acceleration frame- work for algebraic multigrid solvers

Reference 8

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Observation 5affbc52-2ee5-4d71-8cc2-a2f6784a2933 · outbound

This paper cites Root mean square error (RMSE) or mean absolute error (MAE): When to use them or not.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Root mean square error (RMSE) or mean absolute error (MAE): When to use them or not

Reference 9

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This paper cites A general alternating-direction implicit framework with Gaussian process regression parameter prediction for large sparse linear systems.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs A general alternating-direction implicit framework with Gaussian process regression parameter prediction for large sparse linear systems

Reference 10

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Observation e67da7b3-f115-4238-b7aa-801ba96fb7b6 · outbound

This paper cites Multitask kernel-learning parameter prediction method for solv- ing time-dependent linear systems.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Multitask kernel-learning parameter prediction method for solv- ing time-dependent linear systems

Reference 11

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This paper cites Algebraic multi-grid for discrete elliptic second-order problems.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Algebraic multi-grid for discrete elliptic second-order problems

Reference 12

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Observation 7723531f-4837-4b65-bb59-83f822d9f9d3 · outbound

This paper cites Algebraic multigrid.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Algebraic multigrid

Reference 13

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This paper cites GPU acceleration of algebraic multigrid preconditioners for discrete elliptic field problems.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs GPU acceleration of algebraic multigrid preconditioners for discrete elliptic field problems

Reference 14

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Observation bc535760-b1c1-4b98-a148-8c0bffdd07b5 · outbound

This paper cites Learning algebraic multigrid using graph neu- ral networks.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Learning algebraic multigrid using graph neu- ral networks

Reference 15

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This paper cites Adaptive algebraic multigrid.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Adaptive algebraic multigrid

Reference 16

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This paper cites The Bayesian information criterion: background, derivation, and applications.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs The Bayesian information criterion: background, derivation, and applications

Reference 17

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This paper cites Algebraic multigrid for discontinuous Galerkin discretizations of heterogeneous elliptic problems.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Algebraic multigrid for discontinuous Galerkin discretizations of heterogeneous elliptic problems

Reference 18

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This paper cites Parameter selection in Gaussian process interpolation: an empirical study of selection criteria.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Parameter selection in Gaussian process interpolation: an empirical study of selection criteria

Reference 19

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This paper cites A scalable estimate of the out-of-sample prediction error via approxi- mate leave-one-out cross-validation.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs A scalable estimate of the out-of-sample prediction error via approxi- mate leave-one-out cross-validation

Reference 20

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Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs & Bui D T

Reference 21

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Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Robust Gaussian process modeling using EM algorithm

Reference 22

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Observation a806739a-a57a-416b-b186-31fa8b0f5c87 · outbound

This paper cites On solving groundwater flow and transport models with algebraic 23 multigrid preconditioning.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs On solving groundwater flow and transport models with algebraic 23 multigrid preconditioning

Reference 23

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Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs A tutorial on Gaussian process regression: Modelling, exploring, and exploiting functions

Reference 24

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This paper cites Machine learning approaches for estimation of prediction interval for the model output.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Machine learning approaches for estimation of prediction interval for the model output

Reference 25

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

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This paper cites Optimization-based algebraic multigrid coarsening using reinforcement learning.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Optimization-based algebraic multigrid coarsening using reinforcement learning

Reference 26

Resolution
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This paper cites Practical Bayesian model evaluation using leave-one-out cross-validation and WAIC.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Practical Bayesian model evaluation using leave-one-out cross-validation and WAIC

Reference 27

Resolution
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This paper cites A widely applicable Bayesian information criterion.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs A widely applicable Bayesian information criterion

Reference 28

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This paper cites Algebraic multigrid methods for saddle point systems arising from mortar contact formulations.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Algebraic multigrid methods for saddle point systems arising from mortar contact formulations

Reference 29

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No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

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This paper cites & Huang M.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs & Huang M

Reference 30

Resolution
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Source-reported events for the cited work

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This paper cites An aggregation-based algebraic multigrid method.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs An aggregation-based algebraic multigrid method

Reference 31

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This paper cites A supplementary strategy for coarsening in algebraic multigrid.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs A supplementary strategy for coarsening in algebraic multigrid

Reference 32

Resolution
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

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This paper cites Gaussian process regression-based load forecasting model.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs Gaussian process regression-based load forecasting model

Reference 33

Resolution
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Source-reported events for the cited work

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Observation ec413b4c-56db-42d4-b1d1-238fa4880aae · outbound

This paper cites AutoAMG (θ): An Auto-tuned AMG Method Based on Deep Learning for Strong Threshold.

Kernel-learning parameter prediction and evaluation in algebraic multigrid method for several PDEs AutoAMG (θ): An Auto-tuned AMG Method Based on Deep Learning for Strong Threshold

Reference 34

Resolution
verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

source=pdf_text observed=2026-08-16T11:41:40.405545Z digest=sha256:47eb2db46ccb3e88df8e680c26018bdf07bc9877eb35bdfd540125e62ab9c7a7

Pith citing papers

No inbound Pith citation observations are available.