DocumentCode :
1697402
Title :
Dynamic voltage scaling for systemwide energy minimization in real-time embedded systems
Author :
Jejurikar, Ravindra ; Gupta, Rajesh
Author_Institution :
Center for Embedded Comput. Syst., California Univ., Irvine, CA, USA
fYear :
2004
Firstpage :
78
Lastpage :
81
Abstract :
Traditionally, dynamic voltage scaling (DVS) techniques have focused on minimizing the processor energy consumption as opposed to the entire system energy consumption. The slowdown resulting from DVS can increase the energy consumption of components like memory and network interfaces. Furthermore, the leakage power consumption is increasing with the scaling device technology and must also be taken into account. In this work, we consider energy efficient slowdown in a real-time task system. We present an algorithm to compute task slowdown factors based on the contribution of the processor leakage and standby energy consumption of the resources in the system. Our simulation experiments using randomly generated task sets show on an average 10% energy gains over traditional dynamic voltage scaling. We further combine slowdown with procrastination scheduling which increases the average energy savings to 15%. We show that our scheduling approach minimizes the total static and dynamic energy consumption of the systemwide resources.
Keywords :
discrete event simulation; embedded systems; leakage currents; low-power electronics; microprocessor chips; operating systems (computers); processor scheduling; resource allocation; critical speed; discrete event simulator; dynamic voltage scaling; energy efficient slowdown; leakage power consumption; processor leakage; procrastination; randomly generated task sets; real-time embedded systems; resource standby energy; scheduling approach; standby energy consumption; systemwide energy minimization; task slowdown factors; Computational modeling; Dynamic scheduling; Dynamic voltage scaling; Embedded system; Energy consumption; Energy efficiency; Network interfaces; Processor scheduling; Real time systems; Voltage control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Low Power Electronics and Design, 2004. ISLPED '04. Proceedings of the 2004 International Symposium on
Print_ISBN :
1-58113-929-2
Type :
conf
DOI :
10.1109/LPE.2004.1349313
Filename :
1349313
Link To Document :
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