Highly-parallelized simulation of a pixelated LArTPC on a GPU
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| Publication date | 04-2023 |
| Journal | Journal of Instrumentation |
| Article number | P04034 |
| Volume | Issue number | 18 | 4 |
| Number of pages | 34 |
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| Abstract |
The rapid development of general-purpose computing on graphics processing units (GPGPU) is allowing the implementation of highly-parallelized Monte Carlo simulation chains for particle physics experiments. This technique is particularly suitable for the simulation of a pixelated charge readout for time projection chambers, given the large number of channels that this technology employs. Here we present the first implementation of a full microphysical simulator of a liquid argon time projection chamber (LArTPC) equipped with light readout and pixelated charge readout, developed for the DUNE Near Detector. The software is implemented with an end-to-end set of GPU-optimized algorithms. The algorithms have been written in Python and translated into CUDA kernels using Numba, a just-in-time compiler for a subset of Python and NumPy instructions. The GPU implementation achieves a speed up of four orders of magnitude compared with the equivalent CPU version. The simulation of the current induced on 10^3 pixels takes around 1 ms on the GPU, compared with approximately 10 s on the CPU. The results of the simulation are compared against data from a pixel-readout LArTPC prototype.
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| Document type | Article |
| Language | English |
| Published at | https://doi.org/10.1088/1748-0221/18/04/P04034 |
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Highly-parallelized simulation of a pixelated LArTPC on a GPU
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