Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-06-28T10:39:56.302357Z
Paper Citation Record · LEDGER
As of 11 August 2026, this Paper Citation Record lists 67 of 67 outbound references and 0 inbound Pith citation observations for arXiv:2606.04100.
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 2026-06-28T10:39:56.302357Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-11T06:34:44.6726+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
67 of 67 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 5379a0b7-f2fa-424b-97de-97da4f264f01 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Podryabinkin, A.V
Reference 1
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Observation 7469f079-8708-4921-9cd8-859cc3436c31 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Bernstein, G
Reference 2
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Observation db3ee2f6-0c15-4b50-810d-1781cfbebd4a · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Performant implementation of the atomic cluster expansion (PACE) and application to copper and silicon
Reference 3
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Observation c56eba35-271f-4757-bcbb-1313f5d13a87 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Lysogorskiy, A
Reference 4
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Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials On-the-fly machine learning force field generation: Application to melting points
Reference 5
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Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials On-the-fly active learning of interpretable Bayesian force fields for atomistic rare events
Reference 6
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Observation 23d56b5c-6a59-4c90-9040-a9b74d60bc10 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Active learning of reactive Bayesian force fields: Application to heterogeneous hydrogen-platinum catalysis dynamics
Reference 7
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Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Bayesian force fields from active learning for simulation of inter-dimensional transformation of stanene
Reference 8
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Observation 9ed8c5f7-9388-4ced-8738-a154ea1d8a6f · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Uncertainty-aware molecular dynamics from Bayesian active learning for Phase Transformations and Thermal Transport in SiC
Reference 9
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Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials An entropy-maximization approach to automated training set generation for interatomic potentials
Reference 10
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Observation 26f89fea-0e60-42e8-b55c-22511428a6f4 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Information-entropy-driven generation of material-agnostic datasets for machine-learning interatomic potentials
Reference 11
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Observation 2c5e736e-720b-4ad9-8bd7-874eee61897a · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials High-dimensional neural network potentials for metal surfaces: A prototype study for copper
Reference 12
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Observation f2dd4ace-56c9-49a6-8460-e1fea4711c99 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Data Curation for Machine Learning Interatomic Potentials by Determinantal Point Processes
Reference 13
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Observation c328b999-7cd5-4a8e-b377-34a44de69bf1 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Metadynamics for training neural network model chemistries: A competi- tive assessment
Reference 14
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Observation a2f35fd7-80bc-4845-9c36-92ad949bdbbc · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Uncertainty-driven dynamics for active learning of interatomic potentials
Reference 15
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Observation b5b52ec4-6027-407c-b1af-6e8999ab0657 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Hyperactive Learning (HAL) for Data-Driven Interatomic Potentials
Reference 16
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Observation 09d8ad31-98b2-4f34-92f3-7a650c2e9fb4 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Stein Variational Gradient Descent: A General Purpose Bayesian Inference Algorithm
Reference 17
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Observation ecc70ebe-3762-424e-9245-71ae6e25305f · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Boltzmann generators: Sampling equilibrium states of many-body systems with deep learning
Reference 18
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Observation b069ef97-971c-4704-b28b-4df00c642711 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials ArXiv abs/2506.17139
Reference 19
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Observation 05c16d54-62ce-4738-84a5-ec4ac31dc892 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Flow matching for accelerated simulation of atomic transport in crystalline materials
Reference 20
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Observation ac9c9d50-6ca4-4a15-8579-89f257710c68 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Empirical interatomic potential for silicon with improved elastic properties
Reference 21
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Observation a6b9a734-a7a2-4853-8b86-499dddf1b194 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Computer simulation of local order in condensed phases of silicon
Reference 22
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Observation 32501ad9-8bbc-48aa-855b-f9498e2d7ae5 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Embedded-atom method: Derivation and application to impurities, surfaces, and other defects in metals.Physical Review B, 29(12):6443, 1984.doi:10.1103/PhysRevB.29.6443
Reference 23
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Observation f182de1b-a8a7-4193-ba3b-a3ffee786daa · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Modified embedded atom potentials for HCP metals
Reference 24
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Observation 9a3640c1-388e-4959-b930-63231092fe49 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials E(3)-equivariant graph neural networks for data-efficient and accurate interatomic potentials
Reference 25
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Observation 1b24d486-6e33-4583-8712-681794dec140 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Learning local equivariant representations for large-scale atomistic dynamics
Reference 26
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Observation d96d4f61-482d-44ce-a83b-f7647187c5aa · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials MACE: Higher Order Equivariant Message Passing Neural Networks for Fast and Accurate Force Fields
Reference 27
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Observation 3acc2f67-e0c7-4b74-b4e0-90fd8b0825bf · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials BeyondBOLSIG+:MonteCarlosimulation of electron and ion swarms to obtain transport and rate coefficients forplasmamodeling
Reference 28
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Observation 61c34517-5b21-42b4-81fd-860ae5432f1a · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Gaussian approximation potentials: The accuracy of quantum mechanics, without the electrons
Reference 29
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Observation f78446fd-3f0a-4e38-831b-02472e73933e · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Spectral neighbor analysis method for automated generation of quantum-accurate interatomic potentials
Reference 30
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Observation e5388890-8dc3-48d6-920c-1a09d93726aa · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Atomic cluster expansion for accurate and transferable interatomic potentials
Reference 31
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Observation b1a219ad-20ee-414a-9741-0cf0f60a186b · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Lelievre, M
Reference 32
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Observation 6844e9f9-d99b-4413-aa42-e6c60d7969ce · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Enhanced Sampling Methods for Molecular Dynamics Simulations
Reference 33
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Observation af4e56f5-901a-43bc-bf1f-a0f41842d377 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials A bound for the error in the normal approximation to the distribution of a sum of dependent random variables
Reference 34
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Observation 1872e8fa-52b4-4de9-908f-91c6d73d7705 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Stein variational gradient descent as gradient flow
Reference 35
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Observation 5b3ce765-4558-47e6-bb87-ac1bb2cdf80d · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials On the Mean-Field Limit of Stein Variational Gradient Descent
Reference 36
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Observation 9d147ddc-eb6d-4081-886e-a247ea02cd02 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Thompson, H.M
Reference 37
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Observation 096eaf80-143c-4e9b-ba4c-15c7f57b25b5 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Stochastic Gradient MCMC with Repulsive Forces
Reference 38
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Observation 145848d0-42a9-4496-a810-af238282fc47 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials On the geometry of Stein variational gradient descent
Reference 39
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Observation a0097db2-0de2-4bef-9922-a363931608d3 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Stein Self-Repulsive Dynamics: Benefits From Past Samples
Reference 40
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Observation a40d8bde-89b7-4ba2-b3fb-21a77a87a5f0 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Bayesian experimental design using regularized determinantal point processes
Reference 41
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Observation 42b2b230-c6e8-4169-8859-b4b6fe9ca543 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Stein Points
Reference 42
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Observation aed3baca-da13-4979-b596-2dde75ec7e6d · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials A Stein variational Newton method
Reference 43
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Observation 4fc4095a-c76f-4065-8cfd-467ec7a48208 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Stein variational gradient descent with matrix-valued kernels
Reference 44
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Observation 5be6e72a-bc22-4b51-94c2-df3dfee089ef · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials A stochastic version of Stein variational gradient descent for efficient sampling
Reference 45
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Observation 0aa6f3a3-7d11-45d9-bcf7-845ee6b1799e · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Multilevel Stein variational gradient descent with applications to Bayesian inverse problems
Reference 46
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Observation 2ea27bee-279d-4c5d-9140-0875b71ff936 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials p-Kernel Stein Variational Gradient Descent for Data Assimilation and History Matching
Reference 47
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Observation 5bb79f77-e255-4147-9462-fac3e52aa385 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials ESCORT: Efficient Stein-variational and Sliced Consistency-Optimized Temporal Belief Representation for POMDPs
Reference 48
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Observation 420e22e8-196d-411e-be1d-04af1233c5b5 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Differentiable sampling of molecular geometries with uncertainty-based adversarial attacks
Reference 49
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Observation 1d2f6a1e-f7b7-460f-9369-6109546c616a · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Uncertainty-biased molecular dynamics for learning uniformly accurate interatomic potentials
Reference 50
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Observation 1addf9a3-b13d-4a20-918d-9a301f276973 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials P.et al.MACE-OFF: Short-Range Transferable Machine Learning Force Fields for Organic Molecules.J
Reference 51
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Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Dotson, Raimondas Galvelis, John E
Reference 52
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Observation c6086e1a-9199-426b-9192-231b23101991 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Early Application Experiences on Aurora at ALCF: Moving From Petascale to Exascale Systems
Reference 53
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Observation 54a55ff3-eb09-4fc5-8370-0bc040c6804d · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Calculating free energies using average force
Reference 54
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Observation 3688a778-39f7-4f16-8ce3-96a9c961a680 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Riemann Manifold Langevin and Hamiltonian Monte Carlo Methods
Reference 55
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Observation a22a23f3-5832-4d07-9b90-754a4ee038b6 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Using Perturbed Underdamped Langevin Dynamics to Efficiently Sample from Probability Distributions
Reference 56
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Observation f90e7a25-f5c4-4756-9acf-599dfb312050 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Well-Tempered Metadynamics: A Smoothly Converging and Tunable Free-Energy Method
Reference 57
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Observation 39794785-d2f8-4816-9603-e90034d4a4b4 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Schirhagl, K
Reference 58
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Observation da68cfd6-3fe3-4ab7-8a37-d4f18c453a55 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Lectures in Mathematics ETH Zürich
Reference 59
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Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Super-Samples from Kernel Herding
Reference 60
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Observation 899d7db4-5860-4ccd-b9c1-af97a624d536 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Projected support points: a new method for high-dimensional data reduction
Reference 61
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Observation b5c99463-3cbf-421a-9a4c-b8157b84ffdd · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Support Points
Reference 62
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Observation 519d2110-d623-4dfd-823d-4366dde80e57 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Kernel Thinning
Reference 63
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Observation e9bfb65c-dbb8-4dc8-9d0e-5c8895c38c13 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Compress Then Test: Powerful Kernel Testing in Near-linear Time
Reference 64
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Observation 08203955-f11f-4aed-ace7-1479cfab5a24 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials A coreset selection of coreset selection literature: Introduction and recent advances
Reference 65
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Observation 69f8017d-590d-48f2-8b6b-d23ffa5a2041 · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials LoRA: Low-Rank Adaptation of Large Language Models
Reference 66
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Observation be904837-3322-4d11-8827-fb7cfbad60cc · outbound
Stein Kernelized Molecular Dynamics for Active Learning of Interatomic Potentials Unresolved cited work
Reference 67
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No inbound Pith citation observations are available.