DocumentCode :
2483471
Title :
Energy minimization for periodic real-time tasks on heterogeneous processing units
Author :
Chen, Jian-Jia ; Schranzhofer, Andreas ; Thiele, Lothar
Author_Institution :
Comput. Eng. & Networks Lab. (TIK), ETH Zurich, Zurich, Switzerland
fYear :
2009
fDate :
23-29 May 2009
Firstpage :
1
Lastpage :
12
Abstract :
Adopting multiple processing units to enhance the computing capability or reduce the power consumption has been widely accepted for designing modern computing systems. Such configurations impose challenges on energy efficiency in hardware and software implementations. This work targets power-aware and energy-efficient task partitioning and processing unit allocation for periodic real-time tasks on a platform with a library of applicable processing unit types. Each processing unit type has its own power consumption characteristics for maintaining its activeness and executing jobs. This paper proposes polynomial-time algorithms for energy-aware task partitioning and processing unit allocation. The proposed algorithms first decide how to assign tasks onto processing unit types to minimize the energy consumption, and then allocate processing units to fit the demands. The proposed algorithms for systems without limitation on the allocated processing units are shown with an (m + 1)-approximation factor, where mis the number of the available processing unit types. For systems with limitation on the number of the allocated processing units, the proposed algorithm is shown with bounded resource augmentation on the limited number of allocated units. Experimental results show that the proposed algorithms are effective for the minimization of the overall energy consumption.
Keywords :
computational complexity; multiprocessing systems; real-time systems; resource allocation; (m + 1)-approximation factor; energy minimization; energy-efficient task partitioning; heterogeneous processing units; multiple processing units; periodic real-time tasks; polynomial-time algorithms; power-aware task partitioning; processing unit allocation; Algorithm design and analysis; Computer networks; Energy consumption; Energy efficiency; Hardware; Multiprocessing systems; Partitioning algorithms; Polynomials; Power engineering computing; Real time systems; Heterogeneous processing units; Power-aware design; Processing unit allocation; Real-time systems; Task partitioning;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel & Distributed Processing, 2009. IPDPS 2009. IEEE International Symposium on
Conference_Location :
Rome
ISSN :
1530-2075
Print_ISBN :
978-1-4244-3751-1
Electronic_ISBN :
1530-2075
Type :
conf
DOI :
10.1109/IPDPS.2009.5161024
Filename :
5161024
Link To Document :
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