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Paper Citation Record · LEDGER

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation

As of 10 August 2026, this Paper Citation Record lists 42 of 42 outbound references and 1 inbound Pith citation observation for arXiv:2501.14030.

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

pith.paper-citation-record.v1
2501.14030 v2

Coverage vector

measured 42 of 42 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-10T15:30:05.310313Z

measured 43 of 43 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-10T06:31:04.303077+00:00

measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-05-22T13:32:46.042409Z

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: arxiv_reference, observed 2026-05-22T13:34:53.403296Z

Reference resolution

42 of 42 outbound references displayed

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Outbound references

Observation 7f5decce-cc5d-4987-ab49-fdbdd29c83af · outbound

This paper cites GWTC-2.1: Deep extended catalog of compact binary coalescences observed by LIGO and Virgo during the first half of the third observing run.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation GWTC-2.1: Deep extended catalog of compact binary coalescences observed by LIGO and Virgo during the first half of the third observing run

Reference 1

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Observation 8574601b-0f6e-44ca-934a-4534d4c5b4d9 · outbound

This paper cites GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run

Reference 2

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Observation 3e4350bd-c6f4-413c-abf3-d797d200fd38 · outbound

This paper cites Eccentricity estimate for black hole mergers with numerical relativity simulations.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Eccentricity estimate for black hole mergers with numerical relativity simulations

Reference 3

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Observation 84b3407a-8d0d-4dc8-a743-bb7786807698 · outbound

This paper cites A Parameter Estimation Method that Directly Compares Gravitational Wave Observations to Numerical Relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation A Parameter Estimation Method that Directly Compares Gravitational Wave Observations to Numerical Relativity

Reference 4

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Observation 6c1a3efb-c5ce-4534-872e-ae3d5c3a1301 · outbound

This paper cites Directly comparing GW150914 with numerical solutions of Einstein's equations for binary black hole coalescence.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Directly comparing GW150914 with numerical solutions of Einstein's equations for binary black hole coalescence

Reference 5

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Observation 34900da1-16c9-40f9-86c4-37e089c29caa · outbound

This paper cites Accessed: 2024-09-07, Available at: https: //xdmod.access-ci.org/.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Accessed: 2024-09-07, Available at: https: //xdmod.access-ci.org/

Reference 6

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Observation 2ac794ec-4d37-4838-a3e2-ca135620b330 · outbound

This paper cites Ready for what lies ahead? -- Gravitational waveform accuracy requirements for future ground based detectors.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Ready for what lies ahead? -- Gravitational waveform accuracy requirements for future ground based detectors

Reference 7

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Observation 161eb06f-5461-444e-819c-cb6f32d5659f · outbound

This paper cites Assessing the readiness of numerical relativity for LISA and 3G detectors.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Assessing the readiness of numerical relativity for LISA and 3G detectors

Reference 8

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Observation e79224e4-4ba1-4e04-971b-a5be332d7055 · outbound

This paper cites SENR/NRPy+: Numerical Relativity in Singular Curvilinear Coordinate Systems.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation SENR/NRPy+: Numerical Relativity in Singular Curvilinear Coordinate Systems

Reference 9

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Observation 29f20539-1cde-4fec-8dfd-ba3132b27018 · outbound

This paper cites Improved Moving-Puncture Techniques for Compact Binary Simulations.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Improved Moving-Puncture Techniques for Compact Binary Simulations

Reference 10

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Observation a6846794-5321-4712-8a59-cadf2aa93ce8 · outbound

This paper cites Baumgarte and Stuart L.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Baumgarte and Stuart L

Reference 11

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Observation 8666e257-db1b-488e-a98c-75504dcb9544 · outbound

This paper cites 3+1 Formalism and Bases of Numerical Relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation 3+1 Formalism and Bases of Numerical Relativity

Reference 12

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Observation 5b2d328f-1a8b-4d64-a0c7-2d8bd9d7d867 · outbound

This paper cites Taking GPU Programming Models to Task for Performance Portability.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Taking GPU Programming Models to Task for Performance Portability

Reference 13

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Observation 7c6d2d3a-3320-4614-a4e5-62e6c104e3ed · outbound

This paper cites OpenMP Application Program Interface Version 5.0.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation OpenMP Application Program Interface Version 5.0

Reference 14

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Observation 6446db98-c3d1-4b36-950b-ebaa9094d251 · outbound

This paper cites Achieving Portability and Performance through OpenACC.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Achieving Portability and Performance through OpenACC

Reference 15

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Observation 30c206a5-30f2-484f-953b-e0f8bf1f8263 · outbound

This paper cites Evaluating the performance portability of SYCL across CPUs and GPUs on bandwidth-bound applications.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Evaluating the performance portability of SYCL across CPUs and GPUs on bandwidth-bound applications

Reference 16

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Observation d288b6c0-1a9c-4704-9ae5-0470d743fb7d · outbound

This paper cites RAJA: Portable Performance for Large-Scale Scientific Applications.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation RAJA: Portable Performance for Large-Scale Scientific Applications

Reference 17

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Observation b1b048b9-c0d6-4089-9190-d778f7b54e40 · outbound

This paper cites Kokkos 3: Programming Model Extensions for the Exascale Era.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Kokkos 3: Programming Model Extensions for the Exascale Era

Reference 18

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Observation e32a6633-0fdf-4239-a9f5-4cd135d4a824 · outbound

This paper cites AsterX: a new open-source GPU-accelerated GRMHD code for dynamical spacetimes.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation AsterX: a new open-source GPU-accelerated GRMHD code for dynamical spacetimes

Reference 19

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Observation f2b0a86c-9311-4942-bd9c-1bb3df4b7d82 · outbound

This paper cites GRaM-X: a new GPU-accelerated dynamical spacetime GRMHD code for Exascale computing with the Einstein Toolkit.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation GRaM-X: a new GPU-accelerated dynamical spacetime GRMHD code for Exascale computing with the Einstein Toolkit

Reference 20

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Observation 0e02f100-cb9a-4a88-b248-b8fb1f83b71b · outbound

This paper cites http:einsteintoolkit.org.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation http:einsteintoolkit.org

Reference 21

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Observation ffc45654-4031-4c21-9537-746600fd6fa3 · outbound

This paper cites AMReX: A Framework for Block-Structured Adaptive Mesh Refinement.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation AMReX: A Framework for Block-Structured Adaptive Mesh Refinement

Reference 22

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Observation 8b3ca5ef-358d-4814-89d9-17c0e929e3ca · outbound

This paper cites K-athena: a performance portable structured grid finite volume magnetohydrodynamics code.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation K-athena: a performance portable structured grid finite volume magnetohydrodynamics code

Reference 23

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Observation f8c8590b-ad10-4aa0-8d31-80eda824d58a · outbound

This paper cites Parthenon -- a performance portable block-structured adaptive mesh refinement framework.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Parthenon -- a performance portable block-structured adaptive mesh refinement framework

Reference 24

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Observation 255524b3-62d7-401d-b9b6-20c6b98b9ef5 · outbound

This paper cites Performance-Portable Numerical Relativity with AthenaK.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Performance-Portable Numerical Relativity with AthenaK

Reference 25

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Observation 9c04a5aa-8329-4a5d-8f11-19fb2a20a33f · outbound

This paper cites Performance-Portable Binary Neutron Star Mergers with AthenaK.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Performance-Portable Binary Neutron Star Mergers with AthenaK

Reference 26

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Observation 6c3aff62-d6c0-4857-b5e5-b4b286fe9b97 · outbound

This paper cites GPU-accelerated simulations of isolated black holes.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation GPU-accelerated simulations of isolated black holes

Reference 27

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Observation 0f5858cf-005f-4abb-ab46-8a508be331e6 · outbound

This paper cites A GPU-accelerated AMR solver for gravitational wave propagation.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation A GPU-accelerated AMR solver for gravitational wave propagation

Reference 28

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Observation da8715d9-be30-495c-a438-e5a79e6755fe · outbound

This paper cites A Simflowny-based finite-difference code for high-performance computing in Relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation A Simflowny-based finite-difference code for high-performance computing in Relativity

Reference 29

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Observation b658ceb2-f6ea-4ace-b155-018a8f93d3b8 · outbound

This paper cites Code generation for AMReX with applications to numerical relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Code generation for AMReX with applications to numerical relativity

Reference 30

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Observation 78e53c55-5716-46fa-9f1a-17c761702eb5 · outbound

This paper cites http://nrpyplus.net/.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation http://nrpyplus.net/

Reference 31

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Observation 610cbbc5-ab0a-48b4-8932-e4a88fb38845 · outbound

This paper cites NRPyElliptic: A Fast Hyperbolic Relaxation Elliptic Solver for Numerical Relativity, I: Conformally Flat, Binary Puncture Initial Data.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation NRPyElliptic: A Fast Hyperbolic Relaxation Elliptic Solver for Numerical Relativity, I: Conformally Flat, Binary Puncture Initial Data

Reference 32

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Observation 23d362db-c597-47d1-b3fc-e67e09927686 · outbound

This paper cites Hyperbolic Relaxation Method for Elliptic Equations.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Hyperbolic Relaxation Method for Elliptic Equations

Reference 33

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Observation b6752166-3d27-496b-8410-347b6a2343f3 · outbound

This paper cites Dynamical Structure and Definition of Energy in General Relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Dynamical Structure and Definition of Energy in General Relativity

Reference 34

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This paper cites The Dynamics of general relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation The Dynamics of general relativity

Reference 35

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This paper cites Initial Data for Numerical Relativity.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Initial Data for Numerical Relativity

Reference 36

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This paper cites A simple construction of initial data for multiple black holes.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation A simple construction of initial data for multiple black holes

Reference 37

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This paper cites https://docs.nvidia.com/ cuda/cuda-c-programming-guide/.

Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation https://docs.nvidia.com/ cuda/cuda-c-programming-guide/

Reference 38

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Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Array programming with NumPy

Reference 39

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Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation SciPy 1.0: Fundamental Algorithms for Scientific Computing in Python

Reference 40

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Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation SymPy: symbolic computing in Python

Reference 41

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Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation Matplotlib: A 2D graphics environment

Reference 42

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Pith citing papers

Observation 9519550e-44fa-4019-bd05-0039546a6219 · inbound

BHaHAHA: A Fast, Robust Apparent Horizon Finder Library for Numerical Relativity cites this paper.

BHaHAHA: A Fast, Robust Apparent Horizon Finder Library for Numerical Relativity Accelerating Numerical Relativity with Code Generation: CUDA-enabled Hyperbolic Relaxation

Reference 37

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