DocumentCode :
3082237
Title :
Achieving Thermal-Resiliency for Multicore Hard-Real-Time Systems
Author :
Hettiarachchi, Pradeep M. ; Fisher, Nathan ; Wang, L.Y.
Author_Institution :
Dept. of Comput. Sci., Wayne State Univ., Detroit, MI, USA
fYear :
2013
fDate :
9-12 July 2013
Firstpage :
37
Lastpage :
46
Abstract :
Multicore processor based system designs are increasingly utilized as the processing platform for complex hard-real-time and embedded applications. These real-time systems need to operate under various physical and design constraints. Much research has focused on thermal-aware real-time systems designs. However, no results exist to investigate the resource allocation and the system degradation under external thermal constraints in a predictable manner. This paper proposes a control-theoretic framework to ensure hard-real-time deadlines on a multiprocessor platform in a dynamic thermal environment. We use real-time performance modes to permit the system to adapt to changing conditions. Also, we show how the system designer can use our framework to allocate asymmetric processing resources upon a multicore CPU and still maintain thermal constraints. We develop analysis for determining what modes the system can support for a given external thermal condition. Our system design extends the derivation of thermal-resiliency (originally proposed for uniprocessor systems) to multicore systems and determines the limitations of external thermal stress that any hard-real-time performance mode can withstand. Simulations and physical test bed results show that our algorithm predicts how a system will gracefully and predictably degrade under external thermal stress.
Keywords :
embedded systems; multiprocessing systems; power aware computing; design constraint; dynamic thermal environment; embedded application; multicore hard-realtime system; multicore processor based system design; multiprocessor platform; resource allocation; thermal constraint; thermal resiliency; Central Processing Unit; Multicore processing; Pulse width modulation; Real-time systems; Thermal analysis; Thermal stresses; Control-Theoretic Thermal-Resilient Systems Design; Multi-Mode Systems; Multicore Hard-Real-Time Systems; Real-Time Systems; Thermal-Resiliency; thermal-aware periodic resource;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Real-Time Systems (ECRTS), 2013 25th Euromicro Conference on
Conference_Location :
Paris
Type :
conf
DOI :
10.1109/ECRTS.2013.15
Filename :
6602086
Link To Document :
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