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Runtime Power Management of 3-D Multi-Core Architectures Under Peak Power and Temperature Constraints SCIE SCOPUS

Title
Runtime Power Management of 3-D Multi-Core Architectures Under Peak Power and Temperature Constraints
Authors
Kang, KKim, JYoo, SKyung, CM
Date Issued
2011-06
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Abstract
3-D integration is a new technology that overcomes the limitations of 2-D integrated circuits, e.g., power and delay induced from long interconnect wires, by stacking multiple dies to increase logic integration density. However, chip-level power and peak temperature are the major performance limiters in 3-D multi-core architectures. In this paper, we propose a runtime power management method for both peak power and temperature-constrained 3-D multi-core systems in order to maximize the instruction throughput. The proposed method exploits dynamic temperature slack (defined as peak temperature constraint minus current temperature) and workload characteristics (e.g., instructions per cycle and memory-boundness) as well as thermal characteristics of 3-D stacking architectures. Compared with existing thermal-aware power management solutions for 3-D multi-core systems, our method yields up to 34.2% (average 18.5%) performance improvement in terms of instructions per second without significant additional energy consumption.
Keywords
3-D integration; chip-multiprocessor; dynamic voltage and frequency scaling (DVFS); power management; thermal management; THERMAL MANAGEMENT; PERFORMANCE; MICROARCHITECTURE; VOLTAGE; LEVEL
URI
https://oasis.postech.ac.kr/handle/2014.oak/17393
DOI
10.1109/TCAD.2010.2101371
ISSN
0278-0070
Article Type
Article
Citation
IEEE TRANSACTIONS ON COMPUTER-AIDED DESIGN OF INTEGRATED CIRCUITS AND SYSTEMS, vol. 30, no. 6, page. 905 - 918, 2011-06
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유승주YOO, SUNGJOO
Dept of Electrical Enginrg
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