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DOE OSTI · 1889629

SimNet: Accurate and High-Performance Computer Architecture Simulation using Deep Learning

Abstract

While cycle-accurate simulators are essential tools for architecture research, design, and development, their practicality is limited by an extremely long time-to-solution for realistic applications under investigation. This work describes a concerted effort, where machine learning (ML) is used to accelerate microarchitecture simulation. First, an ML-based instruction latency prediction framework that accounts for both static instruction properties and dynamic processor states is constructed. Then, a GPU-accelerated parallel simulator is implemented based on the proposed instruction latency predictor, and its simulation accuracy and throughput are validated and evaluated against a state-of-the-art simulator. Leveraging modern GPUs, the ML-based simulator outperforms traditional CPU-based simulators significantly.

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BibTeXRIS

Li, Lingda, Pandey, Santosh, Flynn, Thomas, Liu, Hang, Wheeler, Noel, Hoisie, Adolfy. 2022-06-06. SimNet: Accurate and High-Performance Computer Architecture Simulation using Deep Learning. https://www.osti.gov/biblio/1889629

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