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Paper Citation Record · LEDGER

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System

As of 10 August 2026, this Paper Citation Record lists 33 of 33 outbound references and 0 inbound Pith citation observations for arXiv:2510.24175.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2510.24175 v1

Coverage vector

measured 33 of 33 reference resolution

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33 of 33 outbound references displayed

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Outbound references

Observation 0757f353-03a1-4d7e-82fe-7036c0f45c95 · outbound

This paper cites Sarkar, Is dark matter self-interacting?, Nat Astron 2 (2018) 856–857.doi:10.1038/s41550-018-0598-6.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Sarkar, Is dark matter self-interacting?, Nat Astron 2 (2018) 856–857.doi:10.1038/s41550-018-0598-6

Reference 1

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Observation bc1ff5bc-f9af-46ac-965c-f42914d5e3d0 · outbound

This paper cites Schoeffler, et al, Can plasma physics establish a significant bound on long-range dark matter interactions?, Phys.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Schoeffler, et al, Can plasma physics establish a significant bound on long-range dark matter interactions?, Phys

Reference 2

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Observation 318fab4f-bb45-41ca-882f-42d90908d6b8 · outbound

This paper cites Romeo, et al, Simulations for 21 cm radiation lensing at eor redshifts, Mon.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Romeo, et al, Simulations for 21 cm radiation lensing at eor redshifts, Mon

Reference 3

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Observation fed4deab-8b0f-4c1b-a5cc-8d3dace1032c · outbound

This paper cites Croft, et al, Weak lensing of the lymanαforest, Mon.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Croft, et al, Weak lensing of the lymanαforest, Mon

Reference 4

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Observation bcdc6856-c3c5-4acd-a147-81fd1ffff0e3 · outbound

This paper cites Markidis, et al, Collisionless magnetic reconnection in a plasmoid chain, Nonlin.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Markidis, et al, Collisionless magnetic reconnection in a plasmoid chain, Nonlin

Reference 5

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Observation b52a3525-7d17-48b6-981d-67d139935303 · outbound

This paper cites Mattia, et al, Resistive relativistic mhd simulations of astrophysical jets, Astronomy & Astrophysics 679 (2023) A49.doi:10.1051/ 0004-6361/202347126.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Mattia, et al, Resistive relativistic mhd simulations of astrophysical jets, Astronomy & Astrophysics 679 (2023) A49.doi:10.1051/ 0004-6361/202347126

Reference 6

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Observation afee9b5c-01f8-4cdb-8fa9-8bb6cdf8a9a0 · outbound

This paper cites Ferro, et al, Comparative simulations of kelvin–helmholtz induced magnetic reconnection at the earth’s magnetospheric flanks, Phys.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Ferro, et al, Comparative simulations of kelvin–helmholtz induced magnetic reconnection at the earth’s magnetospheric flanks, Phys

Reference 7

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Observation e8acb3dc-92a2-40f9-923e-04a49f9e47bc · outbound

This paper cites Borgani, et al, X-ray properties of galaxy clusters and groups from a cosmological hydrodynamical simulation, Mon.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Borgani, et al, X-ray properties of galaxy clusters and groups from a cosmological hydrodynamical simulation, Mon

Reference 8

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Observation 529e8704-6fb8-4403-9d56-d7f34f7f2f39 · outbound

This paper cites Shukla, et al, Conditions for the onset of the current filamentation instability in the laboratory, J.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Shukla, et al, Conditions for the onset of the current filamentation instability in the laboratory, J

Reference 9

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Observation 521bcded-5418-470c-9433-9d6c838f2b55 · outbound

This paper cites Boella, et al, Interaction between electrostatic collisionless shocks generates strong magnetic fields, New J.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Boella, et al, Interaction between electrostatic collisionless shocks generates strong magnetic fields, New J

Reference 10

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Observation cd3c9643-4e8d-4c0a-b26c-234f02e716fa · outbound

This paper cites Shukla, et al, Eurohpc space coe: Redesigning scalable parallel astrophysical codes for exascale, in: 22nd ACM Int.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Shukla, et al, Eurohpc space coe: Redesigning scalable parallel astrophysical codes for exascale, in: 22nd ACM Int

Reference 11

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Observation 0d6f70ec-090b-43b0-a7c2-46c9ef6adcca · outbound

This paper cites Rossaza, Gpu porting of the pluto code for computational plasma physics using openacc, Ph.D.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Rossaza, Gpu porting of the pluto code for computational plasma physics using openacc, Ph.D

Reference 12

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Observation fb2f7b6d-0f3b-4008-9a35-6ba3eb7b7dd5 · outbound

This paper cites The Cosmological Simulation Code OpenGadget3 -- Implementation of Meshless Finite Mass.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System The Cosmological Simulation Code OpenGadget3 -- Implementation of Meshless Finite Mass

Reference 13

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Observation 8e6ba7c1-26c8-4693-b569-7821e289d43b · outbound

This paper cites Markidis, et al, Multi-scale simulations of plasma with iPIC3D, Math.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Markidis, et al, Multi-scale simulations of plasma with iPIC3D, Math

Reference 14

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Unresolved cited work

Reference 15

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Observation e640e2b4-f769-4139-8833-65e44a5d8fa7 · outbound

This paper cites The cosmological simulation code GADGET-2.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System The cosmological simulation code GADGET-2

Reference 16

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Observation a056ade4-4b95-476d-afe6-39fb07e8f8d3 · outbound

This paper cites Barnes, P.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Barnes, P

Reference 17

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Observation 2d1cd0ac-faee-4e37-9740-09e5795ea2c0 · outbound

This paper cites Program Generation, Optimization, and Platform Adaptation.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Program Generation, Optimization, and Platform Adaptation

Reference 18

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Observation 88f94a8a-6dfd-465b-93cd-856e8e01f6cf · outbound

This paper cites An improved SPH scheme for cosmological simulations.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System An improved SPH scheme for cosmological simulations

Reference 19

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Observation 304c82c0-500b-47e4-a4d5-0fa9939f0396 · outbound

This paper cites Ragagnin, N.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Ragagnin, N

Reference 20

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This paper cites Ragagnin, K.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Ragagnin, K

Reference 21

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This paper cites Turisini, et al, Leonardo: A pan-european pre-exascale supercomputer for hpc and ai applications, J.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Turisini, et al, Leonardo: A pan-european pre-exascale supercomputer for hpc and ai applications, J

Reference 22

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Unresolved cited work

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Unresolved cited work

Reference 24

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Tornatore, et al., Code Modules and Kernels, SPACE-COE project document (2024)

Reference 25

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Burtscher, K

Reference 26

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Commercon, et al., Code release (alpha), SPACE-COE project document (2024)

Reference 27

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Williams, et al, Roofline: An insightful visual performance model for multicore architectures, Commun

Reference 28

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This paper cites Karakasis, et al, Enabling continuous testing of hpc systems using reframe, in: Tools and Techniques for High Performance Computing, Springer, Cham, 2020, pp.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Karakasis, et al, Enabling continuous testing of hpc systems using reframe, in: Tools and Techniques for High Performance Computing, Springer, Cham, 2020, pp

Reference 29

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This paper cites Evans, et al, Simulation of Magnetohydrodynamic Flows: A Constrained Transport Model, Astrophys.

Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Evans, et al, Simulation of Magnetohydrodynamic Flows: A Constrained Transport Model, Astrophys

Reference 30

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Londrillo, L

Reference 31

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System Dedner, et al, Hyperbolic Divergence Cleaning for the MHD Equations, J

Reference 32

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Towards Exascale Computing for Astrophysical Simulation Leveraging the Leonardo EuroHPC System A Second-Order Unsplit Godunov Scheme for Cell-Centered MHD: the CTU-GLM scheme

Reference 33

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