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GRay: a Massively Parallel GPU-Based Code for Ray Tracing in Relativistic Spacetimes

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arxiv 1303.5057 v1 pith:IAHBA6Y6 submitted 2013-03-20 astro-ph.IM

GRay: a Massively Parallel GPU-Based Code for Ray Tracing in Relativistic Spacetimes

classification astro-ph.IM
keywords grayblackperformancetracingcompactgpu-basedholesintegrator
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We introduce GRay, a massively parallel integrator designed to trace the trajectories of billions of photons in a curved spacetime. This GPU-based integrator employs the stream processing paradigm, is implemented in CUDA C/C++, and runs on nVidia graphics cards. The peak performance of GRay using single precision floating-point arithmetic on a single GPU exceeds 300 GFLOP (or 1 nanosecond per photon per time step). For a realistic problem, where the peak performance cannot be reached, GRay is two orders of magnitude faster than existing CPU-based ray tracing codes. This performance enhancement allows more effective searches of large parameter spaces when comparing theoretical predictions of images, spectra, and lightcurves from the vicinities of compact objects to observations. GRay can also perform on-the-fly ray tracing within general relativistic magnetohydrodynamic algorithms that simulate accretion flows around compact objects. Making use of this algorithm, we calculate the properties of the shadows of Kerr black holes and the photon rings that surround them. We also provide accurate fitting formulae of their dependencies on black hole spin and observer inclination, which can be used to interpret upcoming observations of the black holes at the center of the Milky Way, as well as M87, with the Event Horizon Telescope.

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Cited by 2 Pith papers

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  1. Dark matter environments and safeguards for spacetime inference from horizon scale interferometry

    gr-qc 2026-07 conditional novelty 6.0

    Using public 2017 M87* closure data, a frozen Kerr source fails an absolute adequacy test and the differential tidal-charge response fails numerical convergence, so no posterior or bound is reported.

  2. Pulse profile modelling of the 2024 outburst of the accreting millisecond pulsar SRGA J144459.2-604207

    astro-ph.HE 2026-05 conditional novelty 5.0

    Joint NICER+IXPE pulse-profile modeling of SRGA J144459.2-604207 favors large neutron-star mass and radius with two independent hotspots but shows strong sensitivity to joint-analysis methodology.