Papers › Modeling Deep Learning Accelerator Enabled GPUs

Modeling Deep Learning Accelerator Enabled GPUs

19 Nov 2018arXiv:1811.08309links table onlyarchive 2025-07-28

Md Aamir Raihan, Negar Goli, Tor Aamodt

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The efficacy of deep learning has resulted in its use in a growing number of applications. The Volta graphics processor unit (GPU) architecture from NVIDIA introduced a specialized functional unit, the "tensor core", that helps meet the growing demand for higher performance for deep learning. In this paper we study the design of the tensor cores in NVIDIA's Volta and Turing architectures. We further propose an architectural model for the tensor cores in Volta. When implemented a GPU simulator, GPGPU-Sim, our tensor core model achieves 99.6\% correlation versus an NVIDIA Titan~V GPU in terms of average instructions per cycle when running tensor core enabled GEMM workloads. We also describe support added to enable GPGPU-Sim to run CUTLASS, an open-source CUDA C++ template library providing customizable GEMM templates that utilize tensor cores.

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William-An/gpgpu-sim_distribution mentioned on GitHubpytorch report
accel-sim/gpgpu-sim_distribution mentioned on GitHubpytorch report
csl-iisc/ScoRD mentioned on GitHubpytorch report
gpgpu-sim/gpgpu-sim_distribution mentioned on GitHubpytorch report
gunjae/gpgpusim-4.0.1 mentioned on GitHubpytorch report
harryborison/sim_dist mentioned on GitHubpytorch report
nikoguil1/gpusim_SMK mentioned on GitHubpytorch report
prdalmia/gpgpu-sim-tlb mentioned on GitHubpytorch report
woodun/gpgpusim_new mentioned on GitHubpytorch report
woodun/my_gpgpusim4_bfloat mentioned on GitHubpytorch report
woodun/new_gpgpusim_org mentioned on GitHubpytorch report

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