シミュレーションで探る宇宙最初期の星団形成と銀河形成
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1.The First Star-by-star N-body/Hydrodynamics Simulation of Our Galaxy Coupling with a Surrogate Model
- 关键词:
- Astrophysics;Big data;Fuel additives;Galaxies;Hydrodynamics;Interactive computer graphics;Learning systems;Program processors;Supernovae;CPU cores;Deep learning;Fugaku;Galaxy simulations;Hydrodynamic simulation;Milky way galaxy;N-body/smoothed-particle hydrodynamic simulation;Smoothed particle hydrodynamics;Supernovae explosions;Surrogate modeling
- Hirashima, Keiya;Fujii, Michiko S.;Saitoh, Takayuki R.;Harada, Naoto;Nomura, Kentaro;Yoshikawa, Kohji;Hirai, Yutaka;Asano, Tetsuro;Moriwaki, Kana;Iwasawa, Masaki;Okamoto, Takashi;Makino, Junichiro
- 《2025 International Conference for High Performance Computing, Networking, Storage, and Analysis, SC 2025》
- 2025年
- November 16, 2025 - November 21, 2025
- St. Louis, MO, United states
- 会议
A major goal of computational astrophysics is to simulate the Milky Way Galaxy with sufficient resolution down to individual stars. However, the scaling fails due to some small-scale, short-timescale phenomena, such as supernova explosions. We have developed a novel integration scheme of N-body/hydrodynamics simulations working with machine learning. This approach bypasses the short timesteps caused by supernova explosions using a surrogate model, thereby improving scalability. With this method, we reached 300 billion particles using 148,900 nodes, equivalent to 7,147,200 CPU cores, breaking through the billion-particle barrier currently faced by state-of-the-art simulations. This resolution allows us to perform the first star-by-star galaxy simulation, which resolves individual stars in the Milky Way Galaxy. The performance scales over 104 CPU cores, an upper limit in the current state-of-the-art simulations using both A64FX and X86-64 processors and NVIDIA CUDA GPUs. © 2025 Copyright held by the owner/author(s).
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