DocumentCode :
1949326
Title :
Domain knowledge based energy management in handhelds
Author :
Nachiappan, Nachiappan Chidambaram ; Yedlapalli, Praveen ; Soundararajan, Niranjan ; Sivasubramaniam, Anand ; Kandemir, Mahmut T. ; Iyer, Ravi ; Das, Chita R.
Author_Institution :
Pennsylvania State Univ., University Park, PA, USA
fYear :
2015
fDate :
7-11 Feb. 2015
Firstpage :
150
Lastpage :
160
Abstract :
Energy management in handheld devices is becoming a daunting task with the growing number of accelerators, increasing memory demands and high computing capacities required to support applications with stringent QoS needs. Current DVFS techniques that modulate power states of a single hardware component, or even recent proposals that manage multiple components, can lose out opportunities for attaining high energy efficiencies that may be possible by leveraging application domain knowledge. Thus, this paper proposes a coordinated multi-component energy optimization mechanism for handheld devices, where the energy profile of different components such as CPU, memory, GPU and IP cores are considered in unison to trigger the appropriate DVFS state by exploiting the application domain knowledge. Specifically, we show that for the important class of frame-based applications, the domain knowledge - frame processing rates, component utilization and available slack - can be used to decide effective DVFS states for each component from among the numerous choices. With such knowledge, rather than a brute force search of all speed setting choices, we propose two simpler heuristics, called Greedy policy and Kaldor-Hicks compensation policy, to make the decisions at frame boundaries. Our evaluations with 7 commonly-used Android apps show that our domain-aware coordinated DVFS policies have 23% better energy efficiency than the conventionally used Android governors, and are within ~9% of an optimal policy that does not drop any frames.
Keywords :
energy conservation; notebook computers; power aware computing; Android apps; DVFS technique; Kaldor-Hicks compensation policy; QoS; accelerator; coordinated multicomponent energy optimization; domain knowledge based energy management; energy efficiency; frame-based application; greedy policy; handheld device; Computer aided manufacturing; Energy management; Games; Hardware; IP networks; Power measurement; System-on-chip;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
High Performance Computer Architecture (HPCA), 2015 IEEE 21st International Symposium on
Conference_Location :
Burlingame, CA
Type :
conf
DOI :
10.1109/HPCA.2015.7056029
Filename :
7056029
Link To Document :
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