Thermal Management for S-NUCA Many-Cores via Synchronous Thread Rotations

Open Access
Authors
Publication date 2023
Book title 2023 Design, Automation & Test in Europe Conference & Exhibition (DATE)
Book subtitle proceedings : Antwerp, Belgium, USA, 17-19 April 2023
ISBN
  • 9798350396249
ISBN (electronic)
  • 9783981926378
Event 2023 Design, Automation and Test in Europe Conference and Exhibition, DATE 2023
Pages (from-to) 537-542
Number of pages 6
Publisher Piscataway, NJ: IEEE
Organisations
  • Faculty of Science (FNWI) - Informatics Institute (IVI)
Abstract
On-chip thermal management is quintessential to a thermally safe operation of a many-core processor. The presence of a physically distributed logically shared Last-Level Cache (LLC) significantly reduces the performance penalty of migrating threads within the cores of an S-NUCA many-core. This cost reduction allows novel thermal management of these many-cores via synchronous thread migration. Synchronous thread migration provides a viable alternative to Dynamic Voltage and Frequency Scaling (DVFS) and asynchronous thread migration used traditionally to manage thermals of S-NUCA many-cores. We present a theoretical method to compute the peak tem-perature in many-cores with synchronous thread migrations. We use the method to create a thermal management heuristic called HotPotato that maximizes the performance of S-NUCA many-cores under a peak temperature constraint. We implement HotPotato within the state-of-the-art HotSniper simulator. Detailed interval thermal simulations with HotSniper show an average 10.72% improvement in response time of S-NUCA many-cores when scheduling with HotPotato compared to a state-of-the-art thermal-aware S-NUCA scheduler.
Document type Conference contribution
Language English
Published at https://doi.org/10.23919/DATE56975.2023.10136895
Other links https://www.proceedings.com/69274.html
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