DocumentCode :
565192
Title :
An information-theoretic framework for optimal temperature sensor allocation and full-chip thermal monitoring
Author :
Zhou, Huapeng ; Li, Xin ; Cher, Chen-Yong ; Kursun, Eren ; Qian, Haifeng ; Yao, Shi-Chune
Author_Institution :
Carnegie Mellon Univ., Pittsburgh, PA, USA
fYear :
2012
fDate :
3-7 June 2012
Firstpage :
642
Lastpage :
647
Abstract :
Full-chip thermal monitoring is an important and challenging issue in today´s microprocessor design. In this paper, we propose a new information-theoretic framework to quantitatively model the uncertainty of on-chip temperature variation by differential entropy. Based on this framework, an efficient optimization scheme is developed to find the optimal spatial locations for temperature sensors such that the full-chip thermal map can be accurately captured with a minimum number of on-chip sensors. In addition, several efficient numerical algorithms are proposed to minimize the computational cost of the proposed entropy calculation and optimization. As will be demonstrated by our experimental examples, the proposed entropy-based method achieves superior accuracy (1.4× error reduction) for full-chip thermal monitoring over prior art.
Keywords :
entropy; integrated circuit design; microprocessor chips; numerical analysis; optimisation; temperature sensors; computational cost minimization; differential entropy; full-chip thermal monitoring; information-theoretic framework; microprocessor design; numerical algorithms; on-chip temperature variation; optimal spatial locations; optimal temperature sensor allocation; optimization scheme; quantitative model; Entropy; Random variables; Temperature measurement; Temperature sensors; Vectors; Integrated Circuit; Thermal Monitoring;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Design Automation Conference (DAC), 2012 49th ACM/EDAC/IEEE
Conference_Location :
San Francisco, CA
ISSN :
0738-100X
Print_ISBN :
978-1-4503-1199-1
Type :
conf
Filename :
6241574
Link To Document :
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